—°F Boise, ID
◈ Cross-Vertical Intelligence · Treasure Valley · Boise Standard

Geology ↔ relates to ↔ Water Rights

32 Wikipedia bridge articles confirmed in both vertical ledgers. 246 deterministic cross-vertical edges. 6,411 external source links harvested. Every edge provenance-stamped. Every claim auditable.

32 QID Bridge Articles
246 Cross Edges
6,411 External Sources
295 Wikipedia Articles
32 🌲 Evergreen
181 🌿 Branch
HIGH SIGNAL · refinery-treasurevalley-v1.0.0
◈ Machine-Readable Schema
Deterministic Cross-Vertical Summary
PASS 2 · ZERO LLM
Entities Compared
Geology
× Water Rights
QID Bridge Articles
32
confirmed Wikipedia overlap
Total Cross Edges
246
External Sources Harvested
6,411
from Wikipedia external links
Geography
Treasure Valley, Ada County, Canyon County, Idaho, United States
Gate Tier
high
Haiku FAQ generated
Strongest Edge
University of Idaho
score: 1.0000  ·  type: exact_title_cross  ·  18 shared tokens
QID Bridge Titles (20)
University of IdahoWellWater resourcesGeothermal energyHydrogeologyGroundwaterTreasure ValleyHydrologyEnvironmental engineeringWater qualitySnake RiverBoise State UniversityClean Water ActArsenicBoise RiverIdaho Department of Environmental QualityGeographic information systemUnited States Environmental Protection AgencyBoise, IdahoNational Environmental Policy Act
Shared Semantics (20 tokens)
idahoboisepopulationenvironmentalwaterpublicmetropolitangroundwaterqualityresearchresourcesengineeringmilesagencyadasupplysurfaceagriculturalriverhydrology
Pipeline
refinery-treasurevalley-v1.0.0
Generated
2026-07-17 21:01:39 UTC
Content Hash
479107bf3c3c2166
◈ Wikipedia Bridge Articles
QID Overlap — Confirmed in Both Vertical Ledgers
32 BRIDGES
U
Q1854488 EXACT TITLE 1.000
QID OVERLAP: Q1854488 in geology (tier:evergreen) and water_rights (tier:evergreen). | SHARED TOKENS (18): "among", "approximately", "boise", "conference", "division", "extension", "graduate", "idaho", "later", "operates", "primarily", "production", "professional", "public", "research", "statewide", "uidaho", "university". | EXACT TITLE in geology: "University of Idaho". | EXACT TITLE in water_rights: "University of Idaho".
amongapproximatelyboiseconferencedivisionextensiongraduateidaholateroperatesprimarilyproductionprofessionalpublicresearchstatewideuidahouniversity
niversity comprises ten undergraduate, graduate, and professional schools. It enrolls approximately 12,000 students across its campuses, with 11,000 on the Moscow campus. The university is classified among "R1: Very High Spending and Doctorate Production". Located on the rural Palouse, the university is represented in intercollegiate athletics by the Idaho Vandals, who compete in NCAA Division I, primarily in the Big Sky Conference.
Under the elms Rare Camperdown elms line the walkway between the Music building, Nichols Building (home to Family and Consumer Sciences) and Administration Building. These "upside-down" trees have been on campus for over 80 years and are among few of their kind in the Northwest. The weeping branches and knotty trunk are formed by being grafted upwards. Steam plant Built in 1926, the steam plant provides heat to U of I buildings from a single location. Originally designed to burn coal, then oil, then natural gas, the plant was modified in 1986 to burn waste wood chips left over from local sawmills. The use of wood has significantly reduced the emissions of the plant, as well as cut costs to heat the campus. The plant is shut down twice a year for cleaning and maintenance.
College of Agricultural and Life Sciences (CALS, renamed 2001, formerly Agriculture (1901)) College of Art and Architecture (1981) College of Business and Economics (CBE, 1925) College of Education, Health and Human Sciences (EHH S,1920) College of Engineering (1911) College of Graduate Studies (COGS) College of Law (1909) College of Letters, Arts, and Social Sciences (CLASS, 2002, formed after split of Letters and Science (1900)) College of Natural Resources (CNR, renamed 2000, formerly Forestry, Wildlife, & Range Sciences, originally Forestry (1917)) College of Science (2002, formed after split of Letters and Science, and dissolution of Mines and Earth Resources) School of Health and Medical Professions (SHAMP, 2024) In July 2002, the College of Letters & Science was split into two separate colleges: the College of Science and the College of Letters, Arts, and Social Sciences (CLASS). Concurrently, the College of Mines and Earth Resources was discontinued; its programs were split between the College of Engineering and the new College of Science. The College of Law opened a second campus in Boise in 2010. Initially, the Boise campus only offered third-year classes. It expanded to offer second-year classes in 2014, and as of 2017–18, law students can take their entire three-year curriculum at either location. For the 2024–2025 academic year, the middle 50% of enrolled students scored between 1030 and 1330 on the SAT (with a 50th percentile of 1180), between 510 and 670 on the SAT Evidence-Based Reading and Writing section (50th percentile: 590), and between 520 and 660 on the SAT Math section (50th percentile: 590). Reputation and rankings U.S. News & World Report ranks U of I tied for 89th among the nation's best public universities and tied for 179th among the best national universities in its 2020 report. In 2024, Washington Monthly ranked U of I 83rd among 438 national universities in the U.S. based on U of I's contribution to the public good, as measured by social mobility, research, and promoting public service. In 2025, the Carnegie Classification listed University of Idaho among "R1 Doctoral Universities – Very high research spending and doctorate production", among with other 186 universities. The University of Idaho is included in the 2021 edition of Princeton Review's "Best 386 Colleges." The Princeton Review also ranks U-Idaho as one of the nation's top 286 environmentally responsible colleges. The university was named by the Corporation for National and Community Service to the 2010 President's Higher Education Community Service Honor Roll for exemplary service efforts—more than 3,800 students volunteered more than 150,000 hours to community and service-learning.
Well
Q43483 EXACT TITLE 1.000
QID OVERLAP: Q43483 in geology (tier:evergreen) and water_rights (tier:evergreen). | SHARED TOKENS (46): "access", "another", "aquifer", "aquifers", "begins", "broad", "cased", "completed", "constructed", "construction", "contains", "contaminants", "contamination", "create", "created", "date", "deep", "deeper", "drilled", "drilling".... | EXACT TITLE in geology: "Well". | EXACT TITLE in water_rights: "Well".
accessanotheraquiferaquifersbeginsbroadcasedcompletedconstructedconstructioncontainscontaminantscontaminationcreatecreateddatedeepdeeperdrilleddrillingenvironmentalexcavationgroundwaterhistoricallylakeliningmethodsmodernpointpotential+16
A well is an excavation or structure created on the earth by digging, driving, or drilling to access liquid resources, usually water. The oldest and most common kind of well is a water well, to access groundwater in underground aquifers. The well water is drawn up by a pump, or using containers, such as buckets that are raised mechanically or by hand. Water can also be injected back into the aquifer through the well. Wells were first constructed at least eight thousand years ago and historically vary in construction from a sediment of a dry watercourse to the qanats of Iran, and the stepwells and sakiehs of India. Placing a lining in the well shaft helps create stability, and linings of wood or wickerwork date back at least as far as the Iron Age. Wells have traditionally been sunk by hand digging, as is still the case in rural areas of the developing world. These wells are inexpensive and low-tech as they use mostly manual labour, and the structure can be lined with brick or stone as the excavation proceeds. A more modern method called caissoning uses pre-cast reinforced concrete well rings that are lowered into the hole. Driven wells can be created in unconsolidated material with a well hole structure, which consists of a hardened drive point and a screen of perforated pipe, after which a pump is installed to collect the water. Deeper wells can be excavated by hand drilling methods or machine drilling, using a bit in a borehole. Drilled wells are usually cased with a factory-made pipe composed of steel or plastic. Drilled wells can access water at much greater depths than dug wells. Two broad classes of well are shallow or unconfined wells completed within the uppermost saturated aquifer at that location, and deep or confined wells, sunk through an impermeable stratum into an aquifer beneath. A collector well can be constructed adjacent to a freshwater lake or stream with water percolating through the intervening material. The site of a well can be selected by a hydrogeologist, or groundwater surveyor. Water may be pumped or hand drawn. Impurities from the surface can easily reach shallow sources and contamination of the supply by pathogens or chemical contaminants needs to be avoided. Well water typically contains more minerals in solution than surface water and may require treatment before being potable. Soil salination can occur as the water table falls and the surrounding soil begins to dry out.
ells can be excavated by hand drilling methods or machine drilling, using a bit in a borehole. Drilled wells are usually cased with a factory-made pipe composed of steel or plastic. Drilled wells can access water at much greater depths than dug wells. Two broad classes of well are shallow or unconfined wells completed within the uppermost saturated aquifer at that location, and deep or confined wells, sunk through an impermeable stratum into an aquifer beneath. A collector well can be constructed adjacent to a freshwater lake or stream with water percolating through the intervening material. The site of a well can be selected by a hydrogeologist, or groundwater surveyor. Water may be pumped or hand drawn. Impurities from the surface can easily reach shallow sources and contamination of the supply by pathogens or chemical contaminants needs to be avoided. Well water typically contains more minerals in solution than surface water and may require treatment before being potable. Soil salination can occur as the water table falls and the surrounding soil begins to dry out.
Until recent centuries, all artificial wells were pumpless hand-dug wells of varying degrees of sophistication, and they remain a very important source of potable water in some rural developing areas, where they are routinely dug and used today. Their indispensability has produced a number of literary references, literal and figurative, including the reference to the incident of Jesus meeting a woman at Jacob's well (John 4:6) in the Bible and the "Ding Dong Bell" nursery rhyme about a cat in a well. Hand-dug wells are excavations with diameters large enough to accommodate one or more people with shovels digging down to below the water table. The excavation is braced horizontally to avoid landslide or erosion endangering the people digging. They can be lined with stone or brick; extending this lining upwards above the ground surface to form a wall around the well serves to reduce both contamination and accidental falls into the well. A more modern method called caissoning uses reinforced concrete or plain concrete pre-cast well rings that are lowered into the hole. A well-digging team digs under a cutting ring and the well column slowly sinks into the aquifer, whilst protecting the team from collapse of the well bore. Hand-dug wells are inexpensive and low tech (compared to drilling) and they use mostly manual labour to access groundwater in rural locations of developing countries. They may be built with a high degree of community participation, or by local entrepreneurs who specialize in hand-dug wells. They have been successfully excavated to 60 metres (200 ft). They have low operational and maintenance costs, in part because water can be extracted by hand, without a pump. The water often comes from an aquifer or groundwater, and can be easily deepened, which may be necessary if the ground water level drops, by telescoping the lining further down into the aquifer. The yield of existing hand dug wells may be improved by deepening or introducing vertical tunnels or perforated pipes. Drawbacks to hand-dug wells are numerous. It can be impractical to hand dig wells in areas where hard rock is present, and they can be time-consuming to dig and line even in favourable areas. Because they exploit shallow aquifers, the well may be susceptible to yield fluctuations and possible contamination from surface water, including sewage. Hand dug well construction generally requires the use of a well trained construction team, and the capital investment for equipment such as concrete ring moulds, heavy lifting equipment, well shaft formwork, motorized de-watering pumps, and fuel can be large for people in developing countries. Construction of hand dug wells can be dangerous due to collapse of the well bore, falling objects and asphyxiation, including from dewatering pump exhaust fumes. The Woodingdean Water Well, hand-dug between 1858 and 1862, is the deepest hand-dug well at 392 metres (1,285 ft). The Big Well in Greensburg, Kansas, is billed as the world's largest hand-dug well, at 109 feet (33 m) deep and 32 feet (9.8 m) in diameter. However, the Well of Joseph in the Cairo Citadel at 280 feet (85 m) deep and the Pozzo di San Patrizio (St.
W
Q1049799 EXACT TITLE 1.000
QID OVERLAP: Q1049799 in geology (tier:evergreen) and water_rights (tier:evergreen). | SHARED TOKENS (21): "agricultural", "approximately", "change", "climate", "flow", "ground", "groundwater", "industrial", "irrigation", "issues", "natural", "produced", "resource", "resources", "river", "source", "sources", "supply", "surface", "wastewater".... | EXACT TITLE in geology: "Water resources". | EXACT TITLE in water_rights: "Water resources".
agriculturalapproximatelychangeclimateflowgroundgroundwaterindustrialirrigationissuesnaturalproducedresourceresourcesriversourcesourcessupplysurfacewastewaterwater
r, with only a small fraction present above ground or in the air. Natural sources of fresh water include frozen water, groundwater, surface water, and under river flow. People use water resources for agricultural, household, and industrial activities. Water resources are under threat from multiple issues. There is water scarcity, water pollution, water conflict, and climate change. Fresh water is in principle a renewable resource. However, the world's supply of groundwater is steadily decreasing.
igation water. These resources may consist of freshwater from natural sources or water produced artificially from other sources, such as reclaimed water (wastewater) or desalinated water (seawater). Approximately 97% of the water on Earth is salt water, and only 3% is fresh water; slightly over two-thirds of this is frozen in glaciers and polar ice caps. The remaining unfrozen freshwater is found mainly as groundwater, with only a small fraction present above ground or in the air. Natural sources of fresh water include frozen water, groundwater, surface water, and under river flow. People use water resources for agricultural, household, and industrial activities. Water resources are under threat from multiple issues. There is water scarcity, water pollution, water conflict, and climate change. Fresh water is in principle a renewable resource. However, the world's supply of groundwater is steadily decreasing.
Water from glaciers Glacier runoff is considered to be surface water. The Himalayas, which are often called "The Roof of the World", contain some of the most extensive and rough high altitude areas on Earth as well as the greatest area of glaciers and permafrost outside of the poles. Ten of Asia's largest rivers flow from there, and more than a billion people's livelihoods depend on them. To complicate matters, temperatures there are rising more rapidly than the global average. In Nepal, the temperature has risen by 0.6 degrees Celsius over the last decade, whereas globally, the Earth has warmed approximately 0.7 degrees Celsius over the last hundred years. Groundwater Under river flow Throughout the course of a river, the total volume of water transported downstream will often be a combination of the visible free water flow together with a substantial contribution flowing through rocks and sediments that underlie the river and its floodplain called the hyporheic zone. For many rivers in large valleys, this unseen component of flow may greatly exceed the visible flow. The hyporheic zone often forms a dynamic interface between surface water and groundwater from aquifers, exchanging flow between rivers and aquifers that may be fully charged or depleted.
Geothermal energy
Q127993 EXACT TITLE 1.000
QID OVERLAP: Q127993 in geology (tier:evergreen) and water_rights (tier:evergreen). | SHARED TOKENS (25): "additional", "agricultural", "applications", "boundaries", "capacity", "conditions", "continued", "cost", "costs", "department", "district", "energy", "formation", "geothermal", "heating", "industrial", "occurs", "power", "processes", "reduce".... | EXACT TITLE in geology: "Geothermal energy". | EXACT TITLE in water_rights: "Geothermal energy".
additionalagriculturalapplicationsboundariescapacityconditionscontinuedcostcostsdepartmentdistrictenergyformationgeothermalheatingindustrialoccurspowerprocessesreduceresourcessourcespacesupplywater
ergy estimated that power from a newly built plant costs about $0.05/kWh. 16 gigawatts (GW) of geothermal power was available worldwide in 2025, which was less than 1% of renewable power capacity. An additional 28 gigawatts provided heat for district heating, space heating, spas, industrial processes, desalination, and agricultural applications as of 2010.
However, local effects of heat extraction must be considered. Over the course of decades, individual wells draw down local temperatures and water levels. The three oldest sites, at Larderello, Wairakei, and the Geysers experienced reduced output because of local depletion. Heat and water, in uncertain proportions, were extracted faster than they could be replenished. Reducing production and injecting additional water could allow these wells to return to their original capacity. Such strategies have been implemented at some sites, which continue to provide significant energy. The Wairakei power station was commissioned in November 1958, and it attained its peak generation of 173 MW in 1965, but already the supply of high-pressure steam was faltering. In 1982 it was down-rated to intermediate pressure and the output to 157 MW. In 2005, two 8 MW isopentane systems were added, boosting output by about 14 MW.
able worldwide in 2025, which was less than 1% of renewable power capacity. An additional 28 gigawatts provided heat for district heating, space heating, spas, industrial processes, desalination, and agricultural applications as of 2010.
Hydrogeology
Q179509 EXACT TITLE 1.000
QID OVERLAP: Q179509 in geology (tier:evergreen) and water_rights (tier:evergreen). | SHARED TOKENS (35): "another", "aquifer", "aquifers", "commonly", "conservation", "constituents", "constructed", "contaminants", "contamination", "design", "designed", "developed", "distribution", "energy", "engineering", "flow", "governing", "groundwater", "hydrogeology", "hydrology".... | EXACT TITLE in geology: "Hydrogeology". | EXACT TITLE in water_rights: "Hydrogeology".
anotheraquiferaquiferscommonlyconservationconstituentsconstructedcontaminantscontaminationdesigndesigneddevelopeddistributionenergyengineeringflowgoverninggroundwaterhydrogeologyhydrologyimpactsinteractionlocalmaintainedplacesqualitysolidstudysuppliessurface+5
and thermal interaction of this water with the porous solid, and the transport of energy, chemical constituents, and particulate matter by flow (Domenico and Schwartz, 1998). Groundwater engineering, another name for hydrogeology, is a branch of engineering which is concerned with groundwater movement and the design of wells, pumps, and drains. The main concerns in groundwater engineering include groundwater contamination, conservation of supplies, and water quality. Wells are constructed for use in developing nations, as well as for use in developed nations in places which are not connected to a city water system. Wells are designed and maintained to uphold the integrity of the aquifer, and to prevent contaminants from reaching the groundwater.
One of the main tasks a hydrogeologist typically performs is the prediction of future behavior of an aquifer system, based on analysis of past and present observations. Some hypothetical, but characteristic questions asked would be: Can the aquifer support another subdivision? Will the river dry up if the farmer doubles his irrigation? Did the chemicals from the dry cleaning facility travel through the aquifer to my well and make me sick? Will the plume of effluent leaving my neighbor's septic system flow to my drinking water well? Most of these questions can be addressed through simulation of the hydrologic system (using numerical models or analytic equations). Accurate simulation of the aquifer system requires knowledge of the aquifer properties and boundary conditions. Therefore, a common task of the hydrogeologist is determining aquifer properties using aquifer tests. In order to further characterize aquifers and aquitards some primary and derived physical properties are introduced below.
An aquifer is a water-bearing layer of rock, or of unconsolidated sediments, that will yield water in a usable quantity to a well or spring. Aquifers can be unconfined, where the top of the aquifer is defined by the water table, or confined, where the aquifer exists underneath a confining bed. There are three aspects that control the nature of aquifers: stratigraphy, lithology, and geological formations and deposits. The stratigraphy relates the age and geometry of the many formations that compose the aquifer. The lithology refers to the physical components of an aquifer, such as the mineral composition and grain size. The structural features are the elements that arise due to deformations after deposition, such as fractures and folds. Understanding these aspects is paramount to understanding of how an aquifer is formed and how professionals can utilize it for groundwater engineering. Hydraulic head Differences in hydraulic head (h) cause water to move from one place to another; water flows from locations of high h to locations of low h. Hydraulic head is composed of pressure head (ψ) and elevation head (z). The head gradient is the change in hydraulic head per length of flowpath, and appears in Darcy's law as being proportional to the discharge. Hydraulic head is a directly measurable property that can take on any value (because of the arbitrary datum involved in the z term); ψ can be measured with a pressure transducer (this value can be negative, e.g., suction, but is positive in saturated aquifers), and z can be measured relative to a surveyed datum (typically the top of the well casing). Commonly, in wells tapping unconfined aquifers the water level in a well is used as a proxy for hydraulic head, assuming there is no vertical gradient of pressure.
Groundwater
Q161598 EXACT TITLE 1.000
QID OVERLAP: Q161598 in geology (tier:evergreen) and water_rights (tier:evergreen). | SHARED TOKENS (59): "agricultural", "agriculture", "aquifer", "aquifers", "become", "billion", "capacity", "central", "change", "clean", "climate", "commonly", "constructing", "contains", "deep", "discharge", "distribution", "effects", "environmental", "form".... | EXACT TITLE in geology: "Groundwater". | EXACT TITLE in water_rights: "Groundwater".
agriculturalagricultureaquiferaquifersbecomebillioncapacitycentralchangecleanclimatecommonlyconstructingcontainsdeepdischargedistributioneffectsenvironmentalformformationgeothermalgroundgroundwaterhydrogeologyhydrologyindustrialissueslandlevel+29
d the water table. Groundwater is recharged from the surface; it may discharge from the surface naturally at springs and seeps, and can form oases or wetlands. Groundwater is also often withdrawn for agricultural, municipal, and industrial use by constructing and operating extraction wells. The study of the distribution and movement of groundwater is hydrogeology, also called groundwater hydrology. Typically, groundwater is thought of as water flowing through shallow aquifers, but, in the technical sense, it can also contain soil moisture, permafrost (frozen soil), immobile water in very low permeability bedrock, and deep geothermal or oil formation water. Groundwater is hypothesized to provide lubrication that can possibly influence the movement of faults. It is likely that much of Earth's subsurface contains some water, which may be mixed with other fluids in some instances. Groundwater is often cheaper, more convenient and less vulnerable to pollution than surface water. Therefore, it is commonly used for public drinking water supplies. For example, groundwater provides the largest source of usable water storage in the United States, and California annually withdraws the largest amount of groundwater of all the states. Underground reservoirs contain far more water than the capacity of all surface reservoirs and lakes in the US, including the Great Lakes. Many municipal water supplies are derived solely from groundwater. Over 2 billion people rely on it as their primary water source worldwide. Human use of groundwater causes environmental problems. For example, polluted groundwater is less visible and more difficult to clean up than pollution in rivers and lakes. Groundwater pollution most often results from improper disposal of wastes on land. Major sources include industrial and household chemicals and garbage landfills, excessive fertilizers and pesticides used in agriculture, industrial waste lagoons, tailings and process wastewater from mines, industrial fracking, oil field brine pits, leaking underground oil storage tanks and pipelines, sewage sludge and septic systems. Additionally, groundwater is susceptible to saltwater intrusion in coastal areas and can cause land subsidence when extracted unsustainably, leading to sinking cities (like Bangkok) and loss in elevation (such as the multiple meters lost in the Central Valley of California). These issues are made more complicated by sea level rise and other effects of climate change, particularly those on the water cycle.
Quantities Groundwater is the most accessed source of freshwater around the world, including as drinking water, irrigation, and manufacturing. Groundwater accounts for about half of the world's drinking water, 40% of its irrigation water, and a third of water for industrial purposes. Another estimate stated that globally groundwater accounts for about one third of all water withdrawals, and surface water for the other two thirds. Groundwater provides drinking water to at least 50% of the global population. About 2.5 billion people depend solely on groundwater resources to satisfy their basic daily water needs. A similar estimate was published in 2021 which stated that "groundwater is estimated to supply between a quarter and a third of the world's annual freshwater withdrawals to meet agricultural, industrial and domestic demands." Global freshwater withdrawal was probably around 600 km3 per year in 1900 and increased to 3,880 km3 per year in 2017. The rate of increase was especially high (around 3% per year) during the period 1950–1980, partly due to a higher population growth rate, and partly to rapidly increasing groundwater development, particularly for irrigation. The rate of increase is (as per 2022) approximately 1% per year, in tune with the current population growth rate. Global groundwater depletion has been calculated to be between 100 and 300 km3 per year. This depletion is mainly caused by "expansion of irrigated agriculture in drylands". The Asia-Pacific region is the largest groundwater abstractor in the world, containing seven out of the ten countries that extract most groundwater (Bangladesh, China, India, Indonesia, Iran, Pakistan and Turkey).
Municipal and industrial water supplies are provided through large wells. Multiple wells for one water supply source are termed "wellfields", which may withdraw water from confined or unconfined aquifers. Using groundwater from deep, confined aquifers provides more protection from surface water contamination. Some wells, termed "collector wells", are specifically designed to induce infiltration of surface (usually river) water. Aquifers that provide sustainable fresh groundwater to urban areas and for agricultural irrigation are typically close to the ground surface (within a couple of hundred metres) and have some recharge by fresh water. This recharge is typically from rivers or meteoric water (precipitation) that percolates into the aquifer through overlying unsaturated materials. In cases where the groundwater has unacceptable levels of salinity or specific ions, desalination is a common treatment,.
Treasure Valley
Q7836726 EXACT TITLE 1.000
QID OVERLAP: Q7836726 in geology (tier:evergreen) and water_rights (tier:evergreen). | SHARED TOKENS (18): "agricultural", "association", "boise", "eastern", "historically", "idaho", "land", "local", "lower", "metropolitan", "primarily", "resources", "river", "rivers", "snake", "treasure", "valley", "western". | EXACT TITLE in geology: "Treasure Valley". | EXACT TITLE in water_rights: "Treasure Valley".
agriculturalassociationboiseeasternhistoricallyidaholandlocallowermetropolitanprimarilyresourcesriverriverssnaketreasurevalleywestern
, coined the name "Treasure Valley" in 1959 to reflect the treasure chest of resources and opportunities that the region offered. The valley has a very diverse terrain, from sage flatlands, to mesas, agricultural areas, and urbanized areas. As the Boise Metropolitan Area grows, more and more undeveloped and agricultural land is being urbanized. History Settling the region The tribes that roamed the area, specifically, were the Northern Paiute and Shoshone. In 1834, Thomas McKay built the original Fort Boise, in the area near present-day Parma, which was run for a time by Francois Payette. It later was moved because of flooding troubles and was abandoned in 1854. The Oregon Trail runs through the Treasure Valley. The valley was settled for the most part by ranchers and farmers, initially to supply the gold and silver mining communities in the higher elevations nearby: Idaho City in the Boise Basin and Silver City in the Owyhees. A new Fort Boise was constructed by the U.S. Army in 1863 in present-day Boise, from which the city grew.
ern Oregon to Boise, and is the most populated area in Idaho. Historically, the valley had been known as the Lower Snake River Valley or the Boise River Valley. Pete Olesen, president of the valley's association of local Chambers of Commerce, coined the name "Treasure Valley" in 1959 to reflect the treasure chest of resources and opportunities that the region offered. The valley has a very diverse terrain, from sage flatlands, to mesas, agricultural areas, and urbanized areas.
The Treasure Valley is a valley in the western United States, primarily in southwestern Idaho, where the Payette, Boise, Weiser, Malheur, and Owyhee rivers drain into the Snake River. It includes all the lowland areas from Vale in rural eastern Oregon to Boise, and is the most populated area in Idaho. Historically, the valley had been known as the Lower Snake River Valley or the Boise River Valley. Pete Olesen, president of the valley's association of local Chambers of Commerce, coined the name "Treasure Valley" in 1959 to reflect the treasure chest of resources and opportunities that the region offered. The valley has a very diverse terrain, from sage flatlands, to mesas, agricultural areas, and urbanized areas.
Hydrology
Q42250 EXACT TITLE 1.000
QID OVERLAP: Q42250 in geology (tier:evergreen) and water_rights (tier:evergreen). | SHARED TOKENS (27): "basin", "civil", "data", "distribution", "drainage", "engineering", "environmental", "fields", "groundwater", "hydrogeology", "hydrologists", "hydrology", "management", "methods", "natural", "physical", "planning", "policy", "preservation", "quality".... | EXACT TITLE in geology: "Hydrology". | EXACT TITLE in water_rights: "Hydrology".
basincivildatadistributiondrainageengineeringenvironmentalfieldsgroundwaterhydrogeologyhydrologistshydrologymanagementmethodsnaturalphysicalplanningpolicypreservationqualityrelatedresearchresourcessciencestudysurfacewater
r' and -λογία (-logía) 'study of') is the scientific study of the movement, distribution, and management of water on Earth and other planets, including the water cycle, water resources, and drainage basin sustainability. A practitioner of hydrology is called a hydrologist. Hydrologists are scientists studying earth or environmental science, civil or environmental engineering, and physical geography. Using various analytical methods and scientific techniques, they collect and analyze data to help solve water related problems such as environmental preservation, natural disasters, and water management. Hydrology subdivides into surface water hydrology, groundwater hydrology (hydrogeology), and marine hydrology.
Hydrology subdivides into surface water hydrology, groundwater hydrology (hydrogeology), and marine hydrology.
Branches Chemical hydrology is the study of the chemical characteristics of water. Ecohydrology is the study of interactions between organisms and the hydrologic cycle. Hydrogeology is the study of the presence and movement of groundwater. Hydrogeochemistry is the study of how terrestrial water dissolves minerals weathering and this effect on water chemistry. Hydroinformatics is the adaptation of information technology to hydrology and water resources applications. Hydrometeorology is the study of the transfer of water and energy between land and water body surfaces and the lower atmosphere. Isotope hydrology is the study of the isotopic signatures of water. Surface hydrology is the study of hydrologic processes that operate at or near Earth's surface. Drainage basin management covers water storage, in the form of reservoirs, and floods protection. Water quality includes the chemistry of water in rivers and lakes, both of pollutants and natural solutes. Applications Calculation of rainfall. Calculation of Evapotranspiration Calculating surface runoff and precipitation. Determining the water balance of a region. Determining the agricultural water balance. Designing riparian-zone restoration projects. Mitigating and predicting flood, landslide and Drought risk. Real-time flood forecasting, flood warning, Flood Frequency Analysis Designing irrigation schemes and managing agricultural productivity. Part of the hazard module in catastrophe modeling. Providing drinking water. Designing dams for water supply or hydroelectric power generation. Designing bridges. Designing sewers and urban drainage systems. Analyzing the impacts of antecedent moisture on sanitary sewer systems. Predicting geomorphologic changes, such as erosion or sedimentation. Assessing the impacts of natural and anthropogenic environmental change on water resources. Assessing contaminant transport risk and establishing environmental policy guidelines. Estimating the water resource potential of river basins. Water resources management. Water resources engineering - application of hydrological and hydraulic principles to the planning, development, and management of water resources for beneficial human use.
E
Q146326 EXACT TITLE 1.000
QID OVERLAP: Q146326 in geology (tier:evergreen) and water_rights (tier:branch). | SHARED TOKENS (44): "addressing", "beneficial", "broad", "civil", "construction", "control", "create", "design", "effect", "encompasses", "engineering", "engineers", "environment", "environmental", "health", "hydrology", "impact", "industrial", "issues", "law".... | EXACT TITLE in geology: "Environmental engineering".
addressingbeneficialbroadcivilconstructioncontrolcreatedesigneffectencompassesengineeringengineersenvironmentenvironmentalhealthhydrologyimpactindustrialissueslawlicensinglocalmanagementmunicipalnatureplansprofessionalprojectsproposedprotect+14
ement environmental engineering law, as in assessing the environmental impact of proposed construction projects. Environmental engineers study the effect of technological advances on the environment, addressing local and worldwide environmental issues such as acid rain, global warming, ozone depletion, water pollution and air pollution from automobile exhausts and industrial sources. Most jurisdictions impose licensing and registration requirements for qualified environmental engineers.
Further reading Davis, M. L. and D. A. Cornwell, (2006) Introduction to environmental engineering (4th ed.) McGraw-Hill ISBN 978-0072424119 National Academies of Sciences, Engineering, and Medicine (2019). Environmental Engineering for the 21st Century: Addressing Grand Challenges (Report). Washington, DC: The National Academies Press. doi:10.17226/25121.
ng is focused mainly on Sanitary Engineering. Environmental engineering applies scientific and engineering principles to improve and maintain the environment to protect human health, protect nature's beneficial ecosystems, and improve environmental-related enhancement of the quality of human life. Environmental engineers devise solutions for wastewater management, water and air pollution control, recycling, waste disposal, and public health. They design municipal water supply and industrial wastewater treatment systems, and design plans to prevent waterborne diseases and improve sanitation in urban, rural and recreational areas. They evaluate hazardous-waste management systems to evaluate the severity of such hazards, advise on treatment and containment, and develop regulations to prevent mishaps.
Water quality
Q625376 EXACT TITLE 1.000
QID OVERLAP: Q625376 in geology (tier:evergreen) and water_rights (tier:evergreen). | SHARED TOKENS (15): "assessment", "characteristics", "compliance", "contact", "frequently", "health", "impact", "physical", "quality", "safety", "significant", "standards", "supply", "treatment", "water". | EXACT TITLE in geology: "Water quality". | EXACT TITLE in water_rights: "Water quality".
assessmentcharacteristicscompliancecontactfrequentlyhealthimpactphysicalqualitysafetysignificantstandardssupplytreatmentwater
Making these complex measurements can be expensive. Because direct measurements of water quality can be expensive, ongoing monitoring programs are typically conducted and results released by government agencies. However, there are local volunteer programs and resources available for some general assessment. Tools available to the general public include on-site test kits, commonly used for home fish tanks, and biological assessment procedures. Biosensors Biosensors have the potential for "high sensitivity, selectivity, reliability, simplicity, low-cost and real-time response".
Biological monitoring metrics have been developed in many places, and one widely used family of measurements for freshwater is the presence and abundance of members of the insect orders Ephemeroptera, Plecoptera and Trichoptera (EPT) (of benthic macroinvertebrates whose common names are, respectively, mayfly, stonefly and caddisfly). EPT indexes will naturally vary from region to region, but generally, within a region, the greater the number of taxa from these orders, the better the water quality. Organisations in the United States, such as EPA. offer guidance on developing a monitoring program and identifying members of these and other aquatic insect orders. Many US wastewater dischargers (e.g., factories, power plants, refineries, mines, municipal sewage treatment plants) are required to conduct periodic whole effluent toxicity (WET) tests. Individuals interested in monitoring water quality who cannot afford or manage lab scale analysis can also use biological indicators to get a general reading of water quality. One example is the IOWATER volunteer water monitoring program of Iowa, which includes an EPT indicator key. Bivalve molluscs are largely used as bioindicators to monitor the health of aquatic environments in both fresh water and the marine environments. Their population status or structure, physiology, behaviour or the level of contamination with elements or compounds can indicate the state of contamination status of the ecosystem. They are particularly useful since they are sessile so that they are representative of the environment where they are sampled or placed. A typical project is the U.S. Mussel Watch Programme, but today they are used worldwide. The Southern African Scoring System (SASS) method is a biological water quality monitoring system based on the presence of benthic macroinvertebrates (EPT). The SASS aquatic biomonitoring tool has been refined over the past 30 years and is now on the fifth version (SASS5) which has been specifically modified in accordance with international standards, namely the ISO/IEC 17025 protocol. The SASS5 method is used by the South African Department of Water Affairs as a standard method for River Health Assessment, which feeds the national River Health Programme and the national Rivers Database. Climate change impacts Standards and reports In the setting of standards, agencies make political and technical/scientific decisions based on how the water will be used. In the case of natural water bodies, agencies also make some reasonable estimate of pristine conditions. Natural water bodies will vary in response to a region's environmental conditions, whereby water composition is influenced by the surrounding geological features, sediments, and rock types, topography, hydrology, and climate. Environmental scientists and aqueous geochemists work to interpret the parameters and environmental conditions that impact the water quality of a region, which in turn helps to identify the sources and fates of contaminants. Environmental lawyers and policymakers work to define legislation with the intention that water is maintained at an appropriate quality for its identified use. Another general perception of water quality is that of a simple property that tells whether water is polluted or not. In fact, water quality is a complex subject, in part because water is a complex medium intrinsically tied to the ecology, geology, and anthropogenic activities of a region. Industrial and commercial activities (e.g.
External links Global Freshwater Quality Database (GEMStat) – United Nations environment program Water policy in the European Union U.S. Centers for Disease Control and Prevention (CDC) – Drinking water quality and testing (United States) U.S. Environmental Protection Agency – Water Data and Tools of the USEPA U.S.
Snake River
Q272074 EXACT TITLE 1.000
QID OVERLAP: Q272074 in geology (tier:evergreen) and water_rights (tier:evergreen). | SHARED TOKENS (53): "agencies", "altered", "basin", "canyon", "central", "channel", "commercial", "constructed", "construction", "control", "created", "dams", "developed", "downstream", "eastern", "features", "flood", "flooding", "flows", "followed".... | EXACT TITLE in geology: "Snake River". | EXACT TITLE in water_rights: "Snake River".
agenciesalteredbasincanyoncentralchannelcommercialconstructedconstructioncontrolcreateddamsdevelopeddownstreameasternfeaturesfloodfloodingflowsfollowedhabitathistoryidahoirrigationlakelargelatelimitedlowermajor+23
sh. The Snake and its tributary, the Salmon River, host the longest sockeye salmon run in the world, stretching 900 miles (1,400 km) from the Pacific to Redfish Lake in Idaho. Since the 1950s, public agencies, tribal governments and private utilities have invested heavily in fishery restoration and hatchery programs, with limited success.
As gold mining declined in the late 19th century, the wheat industry boomed in the Palouse of southeast Washington. By the 1870s, the Oregon Steam Navigation Company was operating seven steamboats transporting grain from the Snake River to lower Columbia River ports. These were the Harvest Queen, John Gates, Spokane, Annie Faxon, Mountain Queen, R.R. Thompson, and Wide West. In the 1890s, a huge copper deposit was discovered at Eureka Bar in Hells Canyon. Several ships transported ore from there to Lewiston, including Imnaha, Mountain Gem, and Norma. In 1893 the Annie Faxon suffered a boiler explosion and sank on the Snake below Lewiston, killing five people. Starting in the 1880s, the Army Corps began dredging the Snake River below Lewiston to maintain a 5-foot (1.5 m) deep navigation channel. River traffic declined rapidly once railroads arrived. By 1899, the Union Pacific line along the south bank of the Snake River had reached Riparia, Washington. It then joined forces with the Northern Pacific Railroad, which was building a line along the north bank, to build the shared Camas Prairie Railroad the rest of the way to Lewiston, which it reached in 1908. The Open River Transportation Company, which operated steamboats between Lewiston and Celilo Falls on the Columbia, went bankrupt in 1912. The 1915 completion of the Celilo Canal made it much easier for boats from the upper Columbia and Snake to reach Portland, and the Columbia River Transportation Company began operating a water route between Lewiston and Portland. Still, steamboats were unable to compete with railroads on speed and efficiency. The last steamboat on the lower Snake ran in 1920. Once the railroads monopolized grain shipments, they raised shipping rates, to farmers' consternation. In 1934, political activist Herbert G. West organized the Inland Empire Waterways Association (IEWA), to promote an "open river" – a deep-water shipping channel on the Snake and Columbia Rivers that could compete with rail. The IEWA initially pushed for improvements such as bigger locks at Bonneville Dam in 1938 and the construction of McNary Dam on the Columbia, which would improve navigation to the mouth of the Snake. In 1941 a bill was first introduced in Congress authorizing the Army Corps to develop the lower Snake River. The 1941 bill failed, but after several years of debate, Congress finally authorized the Snake River development in 1945. Early plans included anywhere from six to ten low dams for the lower Snake. Eventually this was reduced to four bigger dams, which would lower costs, but would require what at the time were the tallest navigation locks in the world, at over 100 feet (30 m). Tribes, state wildlife agencies and the fishing industry opposed the dams, arguing that they would kill too many salmon. In 1947, the U.S. Department of the Interior proposed a ten-year moratorium on dam construction while the fishery problem was studied. With the onset of the Cold War, rising electricity demand in the Pacific Northwest – particularly at the nearby Hanford nuclear site – turned the project's focus towards hydropower. By 1948, the Army Corps estimated that over 80 percent of the economic benefits would come from power, and only 15 percent from navigation. Dam opponents countered that if the primary objective was now power, other dam sites existed in the Northwest that would have less impact on fish. These objections proved futile, as the lower Snake River dams were already authorized, and the federal government had little interest in studying alternatives. While opponents continued to stall the project for a few more years, Washington Senator Warren G.
Populations of anadromous fish began to decline in the late 1800s due to the impact of commercial fishing, logging, mining and agriculture, but even in the 1930s, returning fall chinook alone numbered 500,000. Populations further collapsed once dams were built on the lower Snake and Columbia Rivers, and Hells Canyon Dam blocked access to the upper Snake. Wild Snake River spring and summer chinook returns declined from 130,000 in the 1950s to less than 5,000 in the 1990s. Wild steelhead returns followed a similar pattern, falling from 110,000 in the 1960s to less than 10,000 in the 1990s. Spring, summer and fall-run chinook were all listed as threatened in 1992. Snake River steelhead were also listed as threatened in 1997. Wild chinook salmon and steelhead continued to decline into the 1990s, but have begun an unsteady recovery since 2000, with both chinook and steelhead returns up to 20,000–30,000 in some years. Coho salmon had disappeared from the Snake River by the 1980s, they were reintroduced to the watershed in 1995. Snake River sockeye once numbered to up 150,000 adults. Between 24,000 and 30,000 sockeye returned to Wallowa Lake in the Grande Ronde River watershed, but the run was eliminated by 1905 due to overharvest and unscreened irrigation diversions. The Payette Lake population once numbering up to 100,000 was blocked by the Black Canyon Dam in 1924. Sockeye in the Yellowbelly, Stanley, and Pettit Lakes of the Sawtooth basin were eradicated by management actions of the Idaho Department of Fish and Game in the 1950s, and irrigation diversions lead to the extirpation of the Pettit Lake population. Snake River sockeye returns declined to 4,500 in the 1950s and only a few dozen by the late 1960s. Snake River sockeye were listed as endangered in 1991. Numerous hatcheries are operated by agencies such as the Army Corps, Idaho Power, the Bonneville Power Administration, the U.S. Bureau of Indian Affairs and the U.S. Fish and Wildlife Service, to supplement wild fish populations. Hatcheries release about 33 million salmon and steelhead smolt into the Snake River watershed each year. However, the survival rate for hatchery fish is poor. Just 0.4 percent of hatchery chinook and 1.5 percent of hatchery steelhead returned as adults, as measured at Lower Granite Dam between 2007 and 2016. Upstream of the four lower dams, the Snake River watershed contains some of the best remaining spawning habitat in the Columbia River system, particularly along the Clearwater and Salmon Rivers; the latter is one of the longest undammed rivers in the continental US. A much depleted sockeye salmon run continues to spawn in Redfish Lake near Stanley, Idaho, more than 900 miles (1,400 km) inland from the Pacific Ocean.
Boise State University
Q891082 EXACT TITLE 1.000
QID OVERLAP: Q891082 in geology (tier:evergreen) and water_rights (tier:evergreen). | SHARED TOKENS (18): "among", "boise", "college", "conference", "division", "education", "engineering", "graduate", "health", "idaho", "institution", "million", "program", "programs", "public", "reported", "research", "university". | EXACT TITLE in geology: "Boise State University". | EXACT TITLE in water_rights: "Boise State University".
amongboisecollegeconferencedivisioneducationengineeringgraduatehealthidahoinstitutionmillionprogramprogramspublicreportedresearchuniversity
s and PhD programs in the Colleges of Engineering, Arts & Sciences, and Education; MPA program in the School of Public Service; and the MPH program in the College of Health Sciences. It is classified among "R2: Doctoral Universities – High research activity".
The university also has an honors college. Within the College of Arts and Sciences is the School of the Environment, approved by the Idaho State Board of Education in 2022 and established in 2023. Boise State's fall enrollment in 2016 was 23,886 students, and approximately 76 percent of these students were Idaho residents. More than 90 percent of Boise State's first-year students come directly from high school. In the 2015–16 school year, Boise State awarded diplomas to 3,916 distinct graduates, including 18 doctorates, 10 education specialists, 670 master's and 2,998 bachelor's degrees. The university is classified among "R2: Doctoral Universities – High research spending and doctorate production".
Boise State University (BSU) is a public research university in Boise, Idaho, United States. Founded in 1932 by the Episcopal Church, it became an independent junior college in 1934 and has been awarding baccalaureate and master's degrees since 1965. It became a public institution in 1969. Boise State offers more than 100 graduate programs, including a variety of MBA programs and the MAcc program in the College of Business and Economics; master's and PhD programs in the Colleges of Engineering, Arts & Sciences, and Education; MPA program in the School of Public Service; and the MPH program in the College of Health Sciences. It is classified among "R2: Doctoral Universities – High research activity".
Clean Water Act
Q2978742 EXACT TITLE 1.000
QID OVERLAP: Q2978742 in geology (tier:evergreen) and water_rights (tier:evergreen). | SHARED TOKENS (33): "act", "addressing", "agency", "army", "changes", "clean", "conservation", "contamination", "control", "coordination", "corps", "directly", "enacted", "engineers", "environmental", "federal", "form", "governing", "groundwater", "law".... | EXACT TITLE in geology: "Clean Water Act". | EXACT TITLE in water_rights: "Clean Water Act".
actaddressingagencyarmychangescleanconservationcontaminationcontrolcoordinationcorpsdirectlyenactedengineersenvironmentalfederalformgoverninggroundwaterlawmajormodernphysicalprimarilyprotectionprovidingqualityresourcethoughtreatment+3
The Clean Water Act (CWA) is the primary federal law in the United States governing water pollution. Its objective is to restore and maintain the chemical, physical, and biological integrity of the nation's waters; recognizing the primary responsibilities of the states in addressing pollution and providing assistance to states to do so, including funding for publicly owned treatment works for the improvement of wastewater treatment; and maintaining the integrity of wetlands. The Clean Water Act was one of the first and most influential modern environmental laws in the United States. Its laws and regulations are primarily administered by the U.S. Environmental Protection Agency (EPA) in coordination with state governments, though some of its provisions, such as those involving filling or dredging, are administered by the U.S. Army Corps of Engineers. Its implementing regulations are codified at 40 C.F.R. Subchapters D, N, and O (Parts 100–140, 401–471, and 501–503). Technically, the name of the law is the Federal Water Pollution Control Act. The first FWPCA was enacted in 1948, but took on its modern form when completely rewritten in 1972 in an act entitled the Federal Water Pollution Control Act Amendments of 1972. Major changes have subsequently been introduced via amendatory legislation including the Clean Water Act of 1977 and the Water Quality Act (WQA) of 1987. The Clean Water Act does not directly address groundwater contamination.
d providing assistance to states to do so, including funding for publicly owned treatment works for the improvement of wastewater treatment; and maintaining the integrity of wetlands. The Clean Water Act was one of the first and most influential modern environmental laws in the United States. Its laws and regulations are primarily administered by the U.S. Environmental Protection Agency (EPA) in coordination with state governments, though some of its provisions, such as those involving filling or dredging, are administered by the U.S. Army Corps of Engineers. Its implementing regulations are codified at 40 C.F.R. Subchapters D, N, and O (Parts 100–140, 401–471, and 501–503). Technically, the name of the law is the Federal Water Pollution Control Act. The first FWPCA was enacted in 1948, but took on its modern form when completely rewritten in 1972 in an act entitled the Federal Water Pollution Control Act Amendments of 1972. Major changes have subsequently been introduced via amendatory legislation including the Clean Water Act of 1977 and the Water Quality Act (WQA) of 1987. The Clean Water Act does not directly address groundwater contamination.
ngineers. Its implementing regulations are codified at 40 C.F.R. Subchapters D, N, and O (Parts 100–140, 401–471, and 501–503). Technically, the name of the law is the Federal Water Pollution Control Act. The first FWPCA was enacted in 1948, but took on its modern form when completely rewritten in 1972 in an act entitled the Federal Water Pollution Control Act Amendments of 1972. Major changes have subsequently been introduced via amendatory legislation including the Clean Water Act of 1977 and the Water Quality Act (WQA) of 1987. The Clean Water Act does not directly address groundwater contamination.
Arsenic
Q871 EXACT TITLE 1.000
QID OVERLAP: Q871 in geology (tier:evergreen) and water_rights (tier:evergreen). | SHARED TOKENS (28): "affects", "agency", "applications", "arsenic", "containing", "contamination", "determine", "environmental", "form", "groundwater", "group", "health", "increasing", "larger", "needed", "occurs", "production", "properties", "proposed", "protection".... | EXACT TITLE in geology: "Arsenic". | EXACT TITLE in water_rights: "Arsenic".
affectsagencyapplicationsarseniccontainingcontaminationdetermineenvironmentalformgroundwatergrouphealthincreasinglargerneededoccursproductionpropertiesproposedprotectionresearchriskrolesemiconductorsitesspeciesthereforetreated
ts of arsenic may play a role in human metabolism. However, arsenic poisoning occurs in multicellular life if quantities are larger than needed. Arsenic contamination of groundwater is a problem that affects millions of people across the world. The United States' Environmental Protection Agency states that all forms of arsenic are a serious risk to human health. The United States Agency for Toxic Substances and Disease Registry ranked arsenic number 1 in its 2001 prioritized list of hazardous substances at Superfund sites.
Redox transformation of arsenic in natural waters Arsenic is unique among the trace metalloids and oxyanion-forming trace metals (e.g. As, Se, Sb, Mo, V, Cr, U, Re). It is sensitive to mobilization at pH values typical of natural waters (pH 6.5–8.5) under both oxidizing and reducing conditions. Arsenic can occur in the environment in several oxidation states (−3, 0, +3 and +5), but in natural waters it is mostly found in inorganic forms as oxyanions of trivalent arsenite [As(III)] or pentavalent arsenate [As(V)]. Organic forms of arsenic are produced by biological activity, mostly in surface waters, but are rarely quantitatively important. Organic arsenic compounds may, however, occur where waters are significantly impacted by industrial pollution. Arsenic may be solubilized by various processes. When pH is high, arsenic may be released from surface binding sites that lose their positive charge. When water level drops and sulfide minerals are exposed to air, arsenic trapped in sulfide minerals can be released into water. When organic carbon is present in water, bacteria are fed by directly reducing As(V) to As(III) or by reducing the element at the binding site, releasing inorganic arsenic. The aquatic transformations of arsenic are affected by pH, reduction-oxidation potential, organic matter concentration and the concentrations and forms of other elements, especially iron and manganese. The main factors are pH and the redox potential. Generally, the main forms of arsenic under oxic conditions are H3AsO4, H2AsO−4, HAsO2−4, and AsO3−4 at pH 2, 2–7, 7–11 and 11, respectively. Under reducing conditions, H3AsO4 is predominant at pH 2–9. Oxidation and reduction affects the migration of arsenic in subsurface environments. Arsenite is the most stable soluble form of arsenic in reducing environments and arsenate, which is less mobile than arsenite, is dominant in oxidizing environments at neutral pH. Therefore, arsenic may be more mobile under reducing conditions. The reducing environment is also rich in organic matter which may enhance the solubility of arsenic compounds. As a result, the adsorption of arsenic is reduced and dissolved arsenic accumulates in groundwater. That is why the arsenic content is higher in reducing environments than in oxidizing environments. The presence of sulfur is another factor that affects the transformation of arsenic in natural water. Arsenic can precipitate when metal sulfides form. In this way, arsenic is removed from the water and its mobility decreases. When oxygen is present, bacteria oxidize reduced sulfur to generate energy, potentially releasing bound arsenic. Redox reactions involving Fe also appear to be essential factors in the fate of arsenic in aquatic systems. The reduction of iron oxyhydroxides plays a key role in the release of arsenic to water. So arsenic can be enriched in water with elevated Fe concentrations. Under oxidizing conditions, arsenic can be mobilized from pyrite or iron oxides especially at elevated pH. Under reducing conditions, arsenic can be mobilized by reductive desorption or dissolution when associated with iron oxides. The reductive desorption occurs under two circumstances. One is when arsenate is reduced to arsenite which adsorbs to iron oxides less strongly. The other results from a change in the charge on the mineral surface which leads to the desorption of bound arsenic. Some species of bacteria catalyze redox transformations of arsenic. Dissimilatory arsenate-respiring prokaryotes (DARP) speed up the reduction of As(V) to As(III). DARP use As(V) as the electron acceptor of anaerobic respiration and obtain energy to survive. Other organic and inorganic substances can be oxidized in this process. Chemoautotrophic arsenite oxidizers (CAO) and heterotrophic arsenite oxidizers (HAO) convert As(III) into As(V). CAO combine the oxidation of As(III) with the reduction of oxygen or nitrate. They use obtained energy to fix produce organic carbon from CO2. HAO cannot obtain energy from As(III) oxidation. This process may be an arsenic detoxification mechanism for the bacteria. Equilibrium thermodynamic calculations predict that As(V) concentrations should be greater than As(III) concentrations in all but strongly reducing conditions, i.e. where sulfate reduction is occurring. However, abiotic redox reactions of arsenic are slow. Oxidation of As(III) by dissolved O2 is a particularly slow reaction. For example, Johnson and Pilson (1975) gave half-lives for the oxygenation of As(III) in seawater ranging from several months to a year. In other studies, As(V)/As(III) ratios were stable over periods of days or weeks during water sampling when no particular care was taken to prevent oxidation, again suggesting relatively slow oxidation rates. Cherry found from experimental studies that the As(V)/As(III) ratios were stable in anoxic solutions for up to 3 weeks but that gradual changes occurred over longer timescales. Sterile water samples have been observed to be less susceptible to speciation changes than non-sterile samples.
ulticellular life if quantities are larger than needed. Arsenic contamination of groundwater is a problem that affects millions of people across the world. The United States' Environmental Protection Agency states that all forms of arsenic are a serious risk to human health. The United States Agency for Toxic Substances and Disease Registry ranked arsenic number 1 in its 2001 prioritized list of hazardous substances at Superfund sites.
Boise River
Q891080 EXACT TITLE 0.960
QID OVERLAP: Q891080 in geology (tier:evergreen) and water_rights (tier:evergreen). | SHARED TOKENS (13): "agricultural", "approximately", "boise", "encompasses", "highly", "idaho", "lands", "miles", "plain", "river", "snake", "urban", "western". | EXACT TITLE in geology: "Boise River". | EXACT TITLE in water_rights: "Boise River".
agriculturalapproximatelyboiseencompasseshighlyidaholandsmilesplainriversnakeurbanwestern
ise, as well as part of the western Snake River Plain. The watershed encompasses approximately 4,100 square miles (11,000 km2) of highly diverse habitats, including alpine canyons, forest, rangeland, agricultural lands, and urban areas. Description The Boise River rises in three separate forks in the Sawtooth Range at elevations exceeding 10,000 feet (3,050 m), and is formed by the confluence of its North and Middle forks. The North Fork, 50 miles (80 km) long, rises in the Sawtooth Wilderness Area, along the Boise–Elmore county line, 60 miles (100 km) northeast of Boise. It flows generally southwest through the remote mountains in the Boise National Forest. The Middle Fork, approximately 52 miles (84 km) in length, rises within 12 miles (19 km) of the North Fork in the southern Sawtooth Wilderness Area in northeastern Elmore County. It flows west-southwest near the town of Atlanta, joining the North Fork to form the Boise River, approximately 15 miles (24 km) southeast of Idaho City.
History The river was called "Reed's River" in the early 19th century, named after Pacific Fur Company employee John Reed, who explored parts of the river throughout 1813 and 1814. The river is diverted to canals for irrigation on the plain west of what is now Boise. The dams that form the mountain reservoirs were constructed as part of the Bureau of Reclamation's "Boise Project" to provide agricultural irrigation, hydroelectricity, drinking water, and flood control to Boise and the Treasure Valley. The major projects' initial completion dates were: 1909 – Boise River Diversion Dam & New York Canal 1915 – Arrowrock Dam 1950 – Anderson Ranch Dam - (S. Fork) 1955 – Lucky Peak Dam - (U.S. Army Corps of Engineers) The Boise River was proposed for 50 years for a dam at Twin Springs, culminating in a 1966 Project Travois proposal, which would have used nuclear explosives to either create large amounts of rockfill aggregate for dam construction, or to induce a landslide that would have much the same effect. Project Travois was a component of Project Plowshare.
Recreation The river is a popular destination for floating, specifically on the Boise greenbelt. Tubers and floaters launch at Barber Park and land at Ann Morrison Park, between major irrigation diversion dams. Several minor diversion weirs are passed as well as several bridges on the 6-mile (10 km) trip. Water skiing is popular above the dam at the Lucky Peak Reservoir. On the lower (warmwater) course of the river, low summer flows and poorer water quality from agricultural runoff limit fishery production. This section of river supports a fair fishery for largemouth bass, smallmouth bass, and channel catfish. Upstream from Star, the river is a coldwater stream and supports a greater variety of fish. The most prevalent species on this section is mountain whitefish, as well as hatchery-reared rainbow trout, wild rainbow trout, and brown trout. Upstream from Lucky Peak and Arrowrock reservoirs, the river and its tributaries contain excellent populations of wild rainbow trout, mountain whitefish, and bull trout.
Idaho Department of Environmental Quality
Q5987351 EXACT TITLE 0.900
QID OVERLAP: Q5987351 in geology (tier:evergreen) and water_rights (tier:evergreen). | SHARED TOKENS (10): "agency", "boise", "department", "environmental", "federal", "government", "idaho", "maintained", "quality", "regional". | EXACT TITLE in geology: "Idaho Department of Environmental Quality". | EXACT TITLE in water_rights: "Idaho Department of Environmental Quality".
agencyboisedepartmentenvironmentalfederalgovernmentidahomaintainedqualityregional
tment of Environmental Quality is the department of the Idaho state government responsible for administering state and federal environmental laws and regulations. The department's main offices are in Boise, and six regional offices are also maintained. History The department was established in 2000 upon the passing of amendments to the Idaho Environmental Protection and Health Act.
also maintained. History The department was established in 2000 upon the passing of amendments to the Idaho Environmental Protection and Health Act. Before 2000, DEQ in Idaho was a division of the Department of Health and Welfare. Structure and functions It is organized into five divisions: Air Quality: responsible for monitoring air pollution and permits relating to the same Water Quality: sets water quality standards and monitors ground, surface, and drinking water quality Waste Management and Remediation: responsible for all issues relating to waste disposal Environmental Management and Information: provides technical communications services, including publications Technical Services: the research and technical enforcement division, including inspection activities The department also exercises non-regulatory oversight of the Idaho National Laboratory. The director of the department reports to the governor.
Air Quality: responsible for monitoring air pollution and permits relating to the same Water Quality: sets water quality standards and monitors ground, surface, and drinking water quality Waste Management and Remediation: responsible for all issues relating to waste disposal Environmental Management and Information: provides technical communications services, including publications Technical Services: the research and technical enforcement division, including inspection activities The department also exercises non-regulatory oversight of the Idaho National Laboratory. The director of the department reports to the governor.
Geographic information system
Q483130 QID OVERLAP 0.800
QID OVERLAP: Q483130 in geology (tier:branch) and water_rights (tier:branch). | SHARED TOKENS (34): "analysis", "another", "applications", "broader", "coordinates", "data", "database", "date", "engineering", "geographic", "gis", "information", "institutional", "integrated", "management", "methods", "natural", "numerous", "operations", "physical"....
analysisanotherapplicationsbroadercoordinatesdatadatabasedateengineeringgeographicgisinformationinstitutionalintegratedmanagementmethodsnaturalnumerousoperationsphysicalplanningpreviouslyprocessesrealsciencespatialstaffstudiessupportsystem+4
natural sciences such as forestry, ecology, and Earth science. For this reason, GIS and location intelligence applications are at the foundation of location-enabled services, which rely on geographic analysis and visualization. GIS provides the ability to relate previously unrelated information, through the use of location as the "key index variable". Locations and extents that are found in the Earth's spacetime are able to be recorded through the date and time of occurrence, along with x, y, and z coordinates; representing, longitude (x), latitude (y), and elevation (z). All Earth-based, spatial–temporal, location and extent references should be relatable to one another, and ultimately, to a "real" physical location or extent.
History and development While digital GIS dates to the mid-1960s, when Roger Tomlinson first coined the phrase "geographic information system", many of the geographic concepts and methods that GIS automates date back decades earlier. One of the first known instances in which spatial analysis was used came from the field of epidemiology in the Rapport sur la marche et les effets du choléra dans Paris et le département de la Seine (1832). French cartographer and geographer Charles Picquet created a map outlining the forty-eight districts in Paris, using halftone color gradients, to provide a visual representation for the number of reported deaths due to cholera per every 1,000 inhabitants. In 1854, John Snow, an epidemiologist and physician, was able to determine the source of a cholera outbreak in London through the use of spatial analysis. Snow achieved this through plotting the residence of each casualty on a map of the area, as well as the nearby water sources. Once these points were marked, he was able to identify the water source within the cluster that was responsible for the outbreak. This was one of the earliest successful uses of a geographic methodology in pinpointing the source of an outbreak in epidemiology. While the basic elements of topography and theme existed previously in cartography, Snow's map was unique due to his use of cartographic methods, not only to depict, but also to analyze clusters of geographically dependent phenomena. The early 20th century saw the development of photozincography, which allowed maps to be split into layers, for example one layer for vegetation and another for water. This was particularly used for printing contours – drawing these was a labour-intensive task but having them on a separate layer meant they could be worked on without the other layers to confuse the draughtsman. This work was initially drawn on glass plates, but later plastic film was introduced, with the advantages of being lighter, using less storage space and being less brittle, among others. When all the layers were finished, they were combined into one image using a large process camera. Once color printing came in, the layers idea was also used for creating separate printing plates for each color. While the use of layers much later became one of the typical features of a contemporary GIS, the photographic process just described is not considered a GIS in itself – as the maps were just images with no database to link them to. Two additional developments are notable in the early days of GIS: Ian McHarg's publication Design with Nature and its map overlay method and the introduction of a street network into the U.S. Census Bureau's DIME (Dual Independent Map Encoding) system. The first publication detailing the use of computers to facilitate cartography was written by Waldo Tobler in 1959. Further computer hardware development spurred by nuclear weapon research led to more widespread general-purpose computer "mapping" applications by the early 1960s. In 1963, the world's first true operational GIS was developed in Ottawa, Ontario, Canada, by the federal Department of Forestry and Rural Development. Developed by Roger Tomlinson, it was called the Canada Geographic Information System (CGIS) and was used to store, analyze, and manipulate data collected for the Canada Land Inventory, an effort to determine the land capability for rural Canada by mapping information about soils, agriculture, recreation, wildlife, waterfowl, forestry and land use at a scale of 1:50,000. A rating classification factor was also added to permit analysis. CGIS was an improvement over "computer mapping" applications as it provided capabilities for data storage, overlay, measurement, and digitizing/scanning. It supported a national coordinate system that spanned the continent, coded lines as arcs having a true embedded topology and it stored the attribute and locational information in separate files. As a result of this, Tomlinson has become known as the "father of GIS", particularly for his use of overlays in promoting the spatial analysis of convergent geographic data. CGIS lasted into the 1990s and built a large digital land resource database in Canada. It was developed as a mainframe-based system in support of federal and provincial resource planning and management. Its strength was continent-wide analysis of complex datasets. The CGIS was never available commercially. In 1964, Howard T. Fisher formed the Laboratory for Computer Graphics and Spatial Analysis at the Harvard Graduate School of Design (LCGSA 1965–1991), where a number of important theoretical concepts in spatial data handling were developed, and which by the 1970s had distributed seminal software code and systems, such as SYMAP, GRID, and ODYSSEY, to universities, research centers and corporations worldwide. These programs were the first examples of general-purpose GIS software that was not developed for a particular installation, and was very influential on future commercial software, such as Esri ARC/INFO, released in 1983. Working in the Harvard Lab, Tom Waugh developed his vector-based Geographic Information Mapping and Manipulation System (GIMMS) software from 1969. He returned to the University of Edinburgh and this software was sold commercially from 1973. By 1977 it was used at 300 sites worldwide. This can be considered the first globally used GIS which anticipated some key characteristics of the Harvard Odyssey system by nearly five years and ARC/INFO by a decade. By the late 1970s, two public domain GIS systems (MOSS and GRASS GIS) were in development, and by the early 1980s, M&S Computing (later Intergraph) along with Bentley Systems Incorporated for the CAD platform, Environmental Systems Research Institute (ESRI), CARIS (Computer Aided Resource Information System), and ERDAS (Earth Resource Data Analysis System) emerged as commercial vendors of GIS software, successfully incorporating many of the CGIS features, combining the first-generation approach to separation of spatial and attribute information with a second-generation approach to organizing attribute data into database structures. In 1986, Mapping Display and Analysis System (MIDAS), the first desktop GIS product, was released for MS-DOS. It was renamed in 1990 to MapInfo for Windows when it was ported to Windows. This began the process of moving GIS from the research department into the business environment. By the end of the 20th century, the rapid growth in various systems had been consolidated and standardized on relatively few platforms and users were beginning to explore viewing GIS data over the Internet, requiring data format and transfer standards. More recently, a growing number of free, open-source GIS packages run on a range of operating systems and can be customized to perform specific tasks.
One of the first known instances in which spatial analysis was used came from the field of epidemiology in the Rapport sur la marche et les effets du choléra dans Paris et le département de la Seine (1832). French cartographer and geographer Charles Picquet created a map outlining the forty-eight districts in Paris, using halftone color gradients, to provide a visual representation for the number of reported deaths due to cholera per every 1,000 inhabitants. In 1854, John Snow, an epidemiologist and physician, was able to determine the source of a cholera outbreak in London through the use of spatial analysis. Snow achieved this through plotting the residence of each casualty on a map of the area, as well as the nearby water sources. Once these points were marked, he was able to identify the water source within the cluster that was responsible for the outbreak. This was one of the earliest successful uses of a geographic methodology in pinpointing the source of an outbreak in epidemiology. While the basic elements of topography and theme existed previously in cartography, Snow's map was unique due to his use of cartographic methods, not only to depict, but also to analyze clusters of geographically dependent phenomena. The early 20th century saw the development of photozincography, which allowed maps to be split into layers, for example one layer for vegetation and another for water. This was particularly used for printing contours – drawing these was a labour-intensive task but having them on a separate layer meant they could be worked on without the other layers to confuse the draughtsman. This work was initially drawn on glass plates, but later plastic film was introduced, with the advantages of being lighter, using less storage space and being less brittle, among others. When all the layers were finished, they were combined into one image using a large process camera. Once color printing came in, the layers idea was also used for creating separate printing plates for each color. While the use of layers much later became one of the typical features of a contemporary GIS, the photographic process just described is not considered a GIS in itself – as the maps were just images with no database to link them to. Two additional developments are notable in the early days of GIS: Ian McHarg's publication Design with Nature and its map overlay method and the introduction of a street network into the U.S. Census Bureau's DIME (Dual Independent Map Encoding) system. The first publication detailing the use of computers to facilitate cartography was written by Waldo Tobler in 1959. Further computer hardware development spurred by nuclear weapon research led to more widespread general-purpose computer "mapping" applications by the early 1960s. In 1963, the world's first true operational GIS was developed in Ottawa, Ontario, Canada, by the federal Department of Forestry and Rural Development. Developed by Roger Tomlinson, it was called the Canada Geographic Information System (CGIS) and was used to store, analyze, and manipulate data collected for the Canada Land Inventory, an effort to determine the land capability for rural Canada by mapping information about soils, agriculture, recreation, wildlife, waterfowl, forestry and land use at a scale of 1:50,000. A rating classification factor was also added to permit analysis. CGIS was an improvement over "computer mapping" applications as it provided capabilities for data storage, overlay, measurement, and digitizing/scanning. It supported a national coordinate system that spanned the continent, coded lines as arcs having a true embedded topology and it stored the attribute and locational information in separate files. As a result of this, Tomlinson has become known as the "father of GIS", particularly for his use of overlays in promoting the spatial analysis of convergent geographic data. CGIS lasted into the 1990s and built a large digital land resource database in Canada. It was developed as a mainframe-based system in support of federal and provincial resource planning and management. Its strength was continent-wide analysis of complex datasets. The CGIS was never available commercially. In 1964, Howard T. Fisher formed the Laboratory for Computer Graphics and Spatial Analysis at the Harvard Graduate School of Design (LCGSA 1965–1991), where a number of important theoretical concepts in spatial data handling were developed, and which by the 1970s had distributed seminal software code and systems, such as SYMAP, GRID, and ODYSSEY, to universities, research centers and corporations worldwide. These programs were the first examples of general-purpose GIS software that was not developed for a particular installation, and was very influential on future commercial software, such as Esri ARC/INFO, released in 1983. Working in the Harvard Lab, Tom Waugh developed his vector-based Geographic Information Mapping and Manipulation System (GIMMS) software from 1969. He returned to the University of Edinburgh and this software was sold commercially from 1973. By 1977 it was used at 300 sites worldwide. This can be considered the first globally used GIS which anticipated some key characteristics of the Harvard Odyssey system by nearly five years and ARC/INFO by a decade. By the late 1970s, two public domain GIS systems (MOSS and GRASS GIS) were in development, and by the early 1980s, M&S Computing (later Intergraph) along with Bentley Systems Incorporated for the CAD platform, Environmental Systems Research Institute (ESRI), CARIS (Computer Aided Resource Information System), and ERDAS (Earth Resource Data Analysis System) emerged as commercial vendors of GIS software, successfully incorporating many of the CGIS features, combining the first-generation approach to separation of spatial and attribute information with a second-generation approach to organizing attribute data into database structures. In 1986, Mapping Display and Analysis System (MIDAS), the first desktop GIS product, was released for MS-DOS. It was renamed in 1990 to MapInfo for Windows when it was ported to Windows. This began the process of moving GIS from the research department into the business environment. By the end of the 20th century, the rapid growth in various systems had been consolidated and standardized on relatively few platforms and users were beginning to explore viewing GIS data over the Internet, requiring data format and transfer standards. More recently, a growing number of free, open-source GIS packages run on a range of operating systems and can be customized to perform specific tasks.
United States Environmental Protection Agency
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The Environmental Protection Agency (EPA) is an independent agency of the United States government tasked with environmental protection matters. President Richard Nixon proposed the establishment of EPA on July 9, 1970; it began operation on December 2, 1970, after Nixon signed an executive order. The order establishing the EPA was ratified by committee hearings in the House and Senate. The agency is led by its administrator, who is appointed by the president and approved by the Senate. Since January 29, 2025, the administrator is Lee Zeldin. The EPA is not a Cabinet department, but the administrator is normally given cabinet rank. The EPA has its headquarters in Washington, D.C. There are regional offices for each of the agency's ten regions, as well as 27 laboratories around the country. The agency conducts environmental assessment, research, and education. It has the responsibility of maintaining and enforcing national standards under a variety of U.S. environmental laws, in consultation with state, tribal, and local governments. EPA enforcement powers include fines, sanctions, and other measures. It delegates some permitting, monitoring, and enforcement responsibility to U.S. states and the federally recognized tribes. The agency also works with industries and all levels of government in a wide variety of voluntary pollution prevention programs and energy conservation efforts. The agency's budgeted employee level in 2023 was 16,204.1 full-time equivalent (FTE).
r is Lee Zeldin. The EPA is not a Cabinet department, but the administrator is normally given cabinet rank. The EPA has its headquarters in Washington, D.C. There are regional offices for each of the agency's ten regions, as well as 27 laboratories around the country. The agency conducts environmental assessment, research, and education. It has the responsibility of maintaining and enforcing national standards under a variety of U.S. environmental laws, in consultation with state, tribal, and local governments. EPA enforcement powers include fines, sanctions, and other measures. It delegates some permitting, monitoring, and enforcement responsibility to U.S. states and the federally recognized tribes. The agency also works with industries and all levels of government in a wide variety of voluntary pollution prevention programs and energy conservation efforts. The agency's budgeted employee level in 2023 was 16,204.1 full-time equivalent (FTE).
or is normally given cabinet rank. The EPA has its headquarters in Washington, D.C. There are regional offices for each of the agency's ten regions, as well as 27 laboratories around the country. The agency conducts environmental assessment, research, and education. It has the responsibility of maintaining and enforcing national standards under a variety of U.S. environmental laws, in consultation with state, tribal, and local governments. EPA enforcement powers include fines, sanctions, and other measures. It delegates some permitting, monitoring, and enforcement responsibility to U.S. states and the federally recognized tribes. The agency also works with industries and all levels of government in a wide variety of voluntary pollution prevention programs and energy conservation efforts. The agency's budgeted employee level in 2023 was 16,204.1 full-time equivalent (FTE).
Boise, Idaho
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Boise (locally also ) is the capital and most populous city in the U.S. state of Idaho. It is the county seat of Ada County. The population of the city was 235,685 at the 2020 census. The Boise metropolitan area, located in the Treasure Valley, includes five counties of Idaho with an estimated population of 846,000, the most populous metropolitan area in Idaho and 95th-most populous in the United States. Located on the Boise River in southwestern Idaho, it is 41 miles (66 km) east of the Oregon border and 110 miles (177 km) north of the Nevada border. Downtown Boise's elevation is 2,704 feet (824 m) above sea level. Boise is home to major employers in the technology, manufacturing, and service sectors, including companies such as Micron Technology and Hewlett-Packard.
an area in Idaho and 95th-most populous in the United States. Located on the Boise River in southwestern Idaho, it is 41 miles (66 km) east of the Oregon border and 110 miles (177 km) north of the Nevada border. Downtown Boise's elevation is 2,704 feet (824 m) above sea level. Boise is home to major employers in the technology, manufacturing, and service sectors, including companies such as Micron Technology and Hewlett-Packard.
...that the military should continue killing Indians 'until the last Indian in the Territories was either on his reservation or enriched the sagebrush with his decaying carcass.' ...if the Indians refused to move there, 'they will be killed or put on the reservation by force, and certainly shot if they don't stay there.' Furthermore, the editor continues, 'The idea that the Indians have any right to the soil is ridiculous. ...They have no more rights to the soil of the Territories of the United States than wolves or coyotes...' This would be our plan of establishing friendship upon an eternal basis with our Indians: Let all the hostile bands of Idaho Territory be called in (they will not be caught in any other manner) to attend a grand treaty; plenty of blankets and nice little trinkets distributed among them; plenty of grub on hand; have a real jolly time with them; then just before the big feast put strychnine in their meat and poison to death the last mother's son of them. At the same time, native warriors around the valley, under the leadership of Howluck also known as "Bigfoot" among white settlers, among others, waged an escalating and intensified guerrilla campaign of harassment of passerby caravans along the Oregon Trail. The United States Army also escalated and intensified "punitive expeditions" against formations of warriors and against civilian communities as well. This marked the start of the "unofficial" Snake War in 1866. This war lasted until 1868, and is statistically the deadliest of the Indian Wars in the West in terms of casualties. In the end, 1,762 men were counted as the casualties of this war from both sides. In 1868, Fort Hall Indian Reservation was established in Southeastern Idaho, about 220 miles upstream, according to the terms of Fort Bridger Treaty. The Boise Valley Shoshone and Bannock Tribes were not party to this treaty. Nevertheless, in April 1869, the United States Military embarked on a campaign of "Removal, rounding up of natives in the region including in and around Boise, and expelling them with cavalry escort to Fort Hall Indian Reservation. This period is known among the Shoshone and Bannock people as Idaho's Trail of Tears. Some of the natives managed to escape, and they ran to either Duck Valley or Fort McDermitt in Nevada. Incorporation and growth Boise's early growth was significantly driven by its role in supplying the nearby gold towns that sprung up in the 1860s northeast and then southwest of the town. Miners sometimes wintered in Boise and a number of early prominent businessmen were miners who settled in town in the years after the gold rush waned. By 1864 substantial agricultural production was underway on easily irrigated lands near the river and three canal companies had been incorporated. Early transportation improvements were largely a result of toll road franchises awarded by the territorial legislature starting in the 1860s. These first ran from Fort Boise to the mining centers in the Boise Basin and east to Rocky Bar and to Rattlesnake Station where they connected to the Oregon Trail. Territorial census records from a special 1864 enumeration list the population of Boise as 1,658, and an act of December 12, 1864, was the first attempt by the Idaho Territorial Legislature to incorporate the city. This was rejected by voters the following March. Two more unsuccessful attempts were made to organize a city administration by election before the 1866 version of the city charter was approved by voters on January 6, 1868. The growing number of homes and businesses, for which owners wanted proper legal title, may have contributed to the eventual success of incorporation. All of these rejected efforts to incorporate the city came after Boise had been controversially made the state capital in 1864 over strong opposition from northern Idaho interests. This decision reflected the rapid shift of population growth from north to south after the discovery of gold in southern Idaho. By 1868 Boise had over 400 permanent buildings with a wide range of commercial services. 1868 also marked the formal beginning of a long advocacy for railroad connections to other Idaho communities and, just as importantly, to other growing cities in the west such as Portland, Oregon. Competing railroad and western state government interests frustrated these efforts for many years. Designed by Alfred B. Mullett, the U.S. Assay Office at 210 Main Street was built in 1871 and today is a National Historic Landmark. It first began accepting gold and silver for purchase on March 2, 1872, largely eliminating the need to transport ore to the mint in San Francisco. A territorial penitentiary, now known as the Old Idaho State Penitentiary, opened the same month several miles east of town. Mining continued to be important to Boise's economic growth and periodic booms contributed to population growth as well, though production of gold and silver probably peaked in the 1860s. 1882's gold and silver production of $3,500,000 declined to $1,488,315 (including lead) by 1899. Boise began to earn its City of Trees nickname in this period with a popular focus on a range of tree planting projects. Thomas J. Davis planted several thousand fruit trees in 1864 and several other early businessmen either founded nurseries or orchards of their own. In the 1870s tree planting began in earnest in downtown Boise led by prominent hotels as well as businessmen and residents. In 1907 Davis donated 43 acres of his orchard property to the city for use as a park in the name of his wife Julia. Commercial agriculture continued to expand, but was slowed by the lack of reliable rail links to regional and national markets and by a lack of large scale irrigation projects, which themselves were often tied to hoped-for railroad projects for financing. A.D. Foote, a successful mining engineer, drew up plans to irrigate up to 500,000 acres immediately south of Boise in 1882, but progress was halting and smaller farms were the norm until after the turn of the century with most located near to the river bottom where soil was productive and irrigation more easily achieved. Fruit orchards proliferated and sugar beets, still an important agricultural industry in Idaho, began to be widely cultivated in the 1890s. Cattle and sheep farming became increasingly important as the century closed. With the exception of dairy, most livestock products were exported from Idaho, unlike other agricultural products which were still largely scaled to support local markets. The timber industry also increasingly thrived in the Boise market in the 1880s and 1890s. Large quantities of timber were exported from elsewhere in Idaho, but a growing Boise supported the expansion of Alexander Rossi's sawmill, first established in 1865. Prominent early Boisean William Ridenbaugh had inherited control of the canal now bearing his name from his uncle William Morris in 1878 and later partnered with Rossi to expand the sawmill capacity under the name Rossi and Ridenbaugh Lumber Company. Their materials supported bridge building and the rapid expansion of Boise in the 1890s. As with many early infrastructure ventures, electrification succeeded only after at least one false start. July 4, 1887, marked the start of electrical transmission from a plant located on the Bench. William Ridenbaugh provided expertise and manpower for the water supply and several months were spent rigging poles and lines from the Bench to the service area across the river. Additional electrical supplies allowed the building of an electric streetcar line in 1891. This ran without interruption until buses replaced the lines in 1927, tracking—and sometimes driving—the development of Boise and nearby communities. This system expanded over several decades, reaching into the North End, South Boise and across the river on Front St. A loop line, completed in 1912, ran as far as Caldwell and Nampa, providing transport throughout the valley. Three early trolley companies merged in 1912 to form the Idaho Traction Company with a depot at 7th and Bannock Streets downtown. Additional services and urban amenities arrived in the 1890s as Boise grew. Exploratory drilling for hot water was successful in 1890 and by the end of the decade many homes along Warm Springs avenue were being heated by this source. A natatorium was built in 1892 close to the source of the hot water near the Idaho State Penitentiary. Churches serving several denominations, a Jewish synagogue, a major hardware store and department store, a Masonic hall, the Columbia Theater, Saint Alphonsus' Hospital, a number of parochial and secular schools, a City Hall and a new Union Pacific passenger station, constructed when service was finally extended to downtown, were all built during the 1890s. Falk's Department Store sponsored a semi-professional baseball team representing Boise from at least 1892 and the city supported other organized sports as they became popular.
National Environmental Policy Act
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The National Environmental Policy Act (NEPA) is a United States environmental law designed to promote the enhancement of the environment. It created new laws requiring U.S. federal government agencies to evaluate the environmental impacts of their actions and decisions, and it established the President's Council on Environmental Quality (CEQ). The act was passed by the U.S. Congress in December 1969 and signed into law by President Richard Nixon on January 1, 1970. More than 100 nations around the world have enacted national environmental policies modeled after NEPA. NEPA requires federal agencies to evaluate the environmental effects of their actions. NEPA's most significant outcome was the requirement that all executive federal agencies prepare environmental assessments (EAs) and environmental impact statements (EISs). These reports state the potential environmental effects of proposed federal agency actions. Further, U.S. Congress recognizes that each person has a responsibility to preserve and enhance the environment as trustees for succeeding generations. NEPA's procedural requirements do not apply to the president, Congress, or the federal courts since they are not a "federal agency" by definition.
Environmental Quality (CEQ). The act was passed by the U.S. Congress in December 1969 and signed into law by President Richard Nixon on January 1, 1970. More than 100 nations around the world have enacted national environmental policies modeled after NEPA. NEPA requires federal agencies to evaluate the environmental effects of their actions. NEPA's most significant outcome was the requirement that all executive federal agencies prepare environmental assessments (EAs) and environmental impact statements (EISs). These reports state the potential environmental effects of proposed federal agency actions. Further, U.S. Congress recognizes that each person has a responsibility to preserve and enhance the environment as trustees for succeeding generations. NEPA's procedural requirements do not apply to the president, Congress, or the federal courts since they are not a "federal agency" by definition.
January 1, 1970. More than 100 nations around the world have enacted national environmental policies modeled after NEPA. NEPA requires federal agencies to evaluate the environmental effects of their actions. NEPA's most significant outcome was the requirement that all executive federal agencies prepare environmental assessments (EAs) and environmental impact statements (EISs). These reports state the potential environmental effects of proposed federal agency actions. Further, U.S. Congress recognizes that each person has a responsibility to preserve and enhance the environment as trustees for succeeding generations. NEPA's procedural requirements do not apply to the president, Congress, or the federal courts since they are not a "federal agency" by definition.
Boise County, Idaho
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adabasinboisecentralcontainseasternhistoricidahoitselfmetropolitannationalpopulationranchrecreationsectionstarvalleywestern
owman, Centerville, Placerville, Pioneerville, Star Ranch, Crouch, Garden Valley, and Horseshoe Bend. Boise County is part of the Boise metropolitan area. Despite the name, Boise itself is in nearby Ada County. The Bogus Basin ski area is in the southwestern part of the county.
History The county was established on February 4, 1864, with its county seat at Idaho City. It was named for the Boise River, which was named by French-Canadian explorers and trappers for the great variety of trees growing along its banks in the lower desert valley. The county is one of four Idaho counties that also existed under Washington Territory. On January 12, 1863, The Washington territorial legislature established the county containing most of Idaho below 114° 30', excluding the territory lying west of the Payette River. They established its county seat at what later became Idaho City. The Boise Basin, which contains Idaho City, was one of the nation's richest gold mining districts; gold was discovered in 1862, and more of it was pulled from present-day Boise County than from the entire state of Alaska. At its peak in the mid-1860s, Idaho City was the largest city in the Northwest, and it was this rapid population influx that led to the establishment of the Idaho Territory in 1863. The lower–elevation communities of Horseshoe Bend (Payette River) and Boise (Boise River) were staging areas for the Boise Basin mines. The county's boundaries changed several times during Idaho's territorial period. Owyhee County (Idaho's oldest) and a portion of Oneida County were carved from the southern and eastern portion of the county as it existed under Washington Territory in late December 1863 and January 1864. When Idaho Territory established the county in February 1864, it contained all of present Ada, Canyon, and Payette counties. It also included most of present Boise and Gem Counties, the southern half of Washington County, and small portions of Adams, Custer, Owyhee, and Valley counties. When Ada County was created in December 1864, most of that territory was transferred to Ada County, leaving only small portions of Custer, Gem, Payette, Valley, and Washington counties together with most of present-day Boise County. The Boise River portion of the current western boundary was established by 1866. The southern boundary common to present Ada County was defined the following year. The northern boundary was most volatile Between 1873 and 1887 with the boundary shifting further north into Valley County, back south below Cascade, and then again north to include the North Fork of Payette River Basin. The county obtained its current boundary after Gem County was created in 1915 and Valley County in 1918. In March 2011, the county filed a Chapter 9 bankruptcy petition due to judgment against the county for violating the Fair Housing Act.
Major highways SH-21 - Ponderosa Pine Scenic Byway SH-52 SH-55 - Payette River Scenic Byway The county's two primary routes are scenic byways. Both are two-lane undivided highways for most of their length. The Ponderosa Pine Scenic Byway on State Highway 21 climbs northeast from Boise to Idaho City and Lowman, and ends at Stanley in Custer County, at the junction with State Highway 75. The Payette River Scenic Byway on State Highway 55 is a designated national scenic byway. It heads north from Eagle to Horseshoe Bend and climbs the whitewater of the Payette River to Cascade and McCall in Valley County, and ends at New Meadows in Adams County, at the junction with US Route 95. The closest thing to a traffic signal in Boise County is a flashing red light for Highway 52 where it meets Highway 55, in Horseshoe Bend.
Civil engineering
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defined to distinguish non-military engineering from military engineering. Civil engineering can take place in the public sector from municipal public works departments through to national government agencies, and in the private sector from locally based firms to Fortune Global 500 companies. History As a discipline Civil engineering is the application of physical and scientific principles for solving the problems of society, and its history is intricately linked to advances in the understanding of physics and mathematics throughout history. Because civil engineering is a broad profession, including several specialized sub-disciplines, its history is linked to knowledge of structures, materials science, geography, geology, soils, hydrology, environmental science, mechanics, project management, and other fields. Throughout ancient and medieval history most architectural design and construction was carried out by artisans, such as stonemasons and carpenters, rising to the role of master builder. Knowledge was retained in craft guilds and seldom supplanted by advances. Structures, roads, and infrastructure that existed were repetitive, and increases in scale were incremental. One of the earliest examples of a scientific approach to physical and mathematical problems applicable to civil engineering is the work of Archimedes in the 3rd century BC, including Archimedes' principle, which underpins our understanding of buoyancy, and practical solutions such as Archimedes' screw.
ring is a professional engineering discipline that deals with the design, construction, and maintenance of the physical and naturally built environment, including public works such as roads, bridges, canals, dams, airports, sewage systems, pipelines, structural components of buildings, and railways. Civil engineering is traditionally broken into a number of sub-disciplines. It is considered the second-oldest engineering discipline after military engineering, and it is defined to distinguish non-military engineering from military engineering.
In 1818 the Institution of Civil Engineers was founded in London, and in 1820 the eminent engineer Thomas Telford became its first president. The institution received a Royal Charter in 1828, formally recognising civil engineering as a profession.
United States Geological Survey
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agencycurrentdatadepartmentfederalgeologicalgovernmentheadquarteredhydrologylandscapemajormakesmapsnaturalpublicregulatoryresearchresourcessciencespacestudysurveyusgswhosework
The United States Geological Survey (USGS), founded as the Geological Survey, is an agency of the United States Department of the Interior whose work spans the disciplines of biology, geography, geology, and hydrology. The agency was founded on March 3, 1879, to study the landscape of the United States, its natural resources, and the natural hazards that threaten it. The agency also makes maps of planets and moons, based on data from U.S. space probes. The sole scientific agency of the U.S. Department of the Interior, USGS is a fact-finding research organization with no regulatory responsibility. It is headquartered in Reston, Virginia, with major offices near Lakewood, Colorado; at the Denver Federal Center; and in NASA Research Park in California. In 2009, it employed about 8,670 people. The current motto of the USGS, in use since August 1997, is "science for a changing world".
scape of the United States, its natural resources, and the natural hazards that threaten it. The agency also makes maps of planets and moons, based on data from U.S. space probes. The sole scientific agency of the U.S. Department of the Interior, USGS is a fact-finding research organization with no regulatory responsibility. It is headquartered in Reston, Virginia, with major offices near Lakewood, Colorado; at the Denver Federal Center; and in NASA Research Park in California. In 2009, it employed about 8,670 people. The current motto of the USGS, in use since August 1997, is "science for a changing world".
enver Federal Center; and in NASA Research Park in California. In 2009, it employed about 8,670 people. The current motto of the USGS, in use since August 1997, is "science for a changing world". The agency's previous slogan, adopted on its hundredth anniversary, was "Earth Science in the Public Service". History Prior Surveys In the early-1800s, geological surveys were conducted by states and private individuals to support agriculture as a result of westward migration after the War of 1812. The first Federal survey was conducted in 1834 by George William Featherstonhaugh under the Topographical Bureau of the U.S. Army Corps of Engineers to create a geological map of the United States. This was followed by other geological explorations like the United States Exploring Expedition and the establishment of the Corps of Topographical Engineers led by John James Abert. As minerals like gold were being discovered in the west, land surveys became necessary as part of Manifest destiny. As a result, various states set up geological survey institutions in the mid-1800s, e.g., the Kentucky Geological Survey, established in 1854. On March 2, 1867, Congress authorized explorations focused on the geology along the Transcontinental railroad under the U.S. Army Corps of Engineers led by Clarence King and a survey of the natural resources of Nebraska under the General Land Office led by Ferdinand Vandeveer Hayden. The explorations led to the creation of the United States Geological and Geographical Survey of the Territories which included surveys led by John Wesley Powell (Powell Geographic Expedition of 1869) and George Wheeler (Wheeler Survey).
Nampa, Idaho
Q622633 QID OVERLAP 0.780
QID OVERLAP: Q622633 in geology (tier:branch) and water_rights (tier:branch). | SHARED TOKENS (14): "according", "boise", "canyon", "college", "idaho", "meridian", "metropolitan", "miles", "nampa", "northwest", "population", "principal", "university", "western".
accordingboisecanyoncollegeidahomeridianmetropolitanmilesnampanorthwestpopulationprincipaluniversitywestern
state 84, and 6 miles (9.7 km) west of Meridian. It is the second principal city of the Boise metropolitan area. The name "Nampa" may have come from a Shoshoni word meaning 'moccasin' or 'footprint'. According to toponymist William O. Bright, the name comes from the Shoshoni word /nampai/, meaning "foot".
W. J. McClelland, c.1901–1903 Frank H. Sutherland, c.1903–1904 H. A. Partridge, c.1904–1905, 1907–1908, 1913–1914 Rudolphus W. Purdum, c.1905–1906 E. H. Dewey, c.1909–1911 T. E. Munhall, c.1915–1917 Robert A. Davis, c.1917–1919 H. H. Keim, c.1919–1920 J. Fremont Bow, 1921–1923 Eugene Emerson, c.1923–1925 George Meffan, 1925–1929 Eustace Smallwood, c.1929–1930 E. W. Rising, c.1933–1935 George I. Van Name, 1935–1937 R. Lewis Ord, 1937–1939 Ben H. Waigand, 1939–1943 A. E. Lindsey, c.1943–1945 Sevren G. Honstead, 1945–1947 Peter Johnson, 1947–1951 Preston Capell, c.1951–1957 Thomas Leupp, 1957–1961 Ernest Starr, 1961–1981 Winston K.
pa ( ) is the most populous city in Canyon County, Idaho, United States. The population was 100,200 at the 2020 census. It is Idaho's third-most populous city. Nampa is about 20 miles (32 km) west of Boise along Interstate 84, and 6 miles (9.7 km) west of Meridian. It is the second principal city of the Boise metropolitan area. The name "Nampa" may have come from a Shoshoni word meaning 'moccasin' or 'footprint'. According to toponymist William O. Bright, the name comes from the Shoshoni word /nampai/, meaning "foot".
W
Q4018542 EXACT TITLE 0.700
QID OVERLAP: Q4018542 in geology (tier:evergreen) and water_rights (tier:seed). | EXACT TITLE in geology: "Watershed".
Watershed may refer to: Hydrology Drainage divide, the line that separates neighbouring drainage basins Drainage basin, an area of land where surface water converges (North American usage) Music Watershed Music Festival, an annual country music event in George, Washington, US
Bands Watershed (American band), rock band active since 1987 Watershed (South African band), pop-rock band active since 1998 Works Watershed (Grant McLennan album), the debut solo album by Grant McLennan Watershed (k.d. lang album), the fifth solo studio album by k.d.
Works Watershed (Grant McLennan album), the debut solo album by Grant McLennan Watershed (k.d. lang album), the fifth solo studio album by k.d.
Caldwell, Idaho
Q849592 QID OVERLAP 0.700
QID OVERLAP: Q849592 in geology (tier:branch) and water_rights (tier:branch). | SHARED TOKENS (10): "approximately", "boise", "caldwell", "canyon", "college", "idaho", "locally", "metropolitan", "miles", "population".
approximatelyboisecaldwellcanyoncollegeidaholocallymetropolitanmilespopulation
city in Idaho. As of the 2020 census, Caldwell had a population of 59,996. Caldwell is considered part of the Boise metropolitan area, and is the location of the College of Idaho. The city is located approximately 24 miles (39 km) west of Boise, and approximately 17 miles (27 km) east of the Oregon border. History The present-day location of Caldwell is along a natural passageway to the Inland and Pacific Northwest. Native American tribes from the west coast, north Idaho and as far away as Colorado came to the banks of the Boise River for annual trading fairs, or rendezvous. European and some Hawaiian explorers and traders soon followed the paths left by Native Americans and hopeful emigrants later forged the Oregon Trail and followed those paths to seek a better life in the Oregon Territory. Pioneers of the Trail traveled along the Boise River to Canyon Hill and forded the river close to the Silver Bridge on Plymouth Street. During the Civil War, the discovery of gold in Idaho's mountains brought a variety of new settlers into the area. Many never made it to the mines but settled along the Boise River and run ferries, stage stations, and freighting businesses. These early entrepreneurs created small ranches and farms in the river valleys. Caldwell's inception occurred largely as a result of the construction of the Oregon Short Line Railroad, which connected Wyoming to Oregon through Idaho. Robert E. Strahorn came to the Boise River Valley in 1883 to select a route for the railroad. He rejected the grade into Boise City as too steep and chose a site 30 miles to the west. He drove a stake into an alkali flat of sagebrush and greasewood and the City of Caldwell was platted. Caldwell was named after one of Strahorn's business partners, Alexander Caldwell, a former senator from Kansas. When Caldwell was platted in August 1883, its founder, the Idaho and Oregon Land Improvement Company, started persuading settlers and businessmen to move to the area. Within four months, Caldwell had 600 residents living in 150 dwellings, 40 businesses, a school, a telephone exchange, and two newspapers. On January 15, 1890, the Board of Commissioners of Ada County issued a handwritten order incorporating the City of Caldwell. The College of Idaho was founded in Caldwell in 1891. In 1892, Canyon County was established from a portion of Ada County, and Caldwell was named the county seat. Irrigation canals and waterways were constructed throughout Canyon County, providing the foundation for an agricultural economy. The Oregon Short Line Railroad became part of the larger Union Pacific Railroad network and in 1906 the Caldwell freight and passenger depot was constructed. Caldwell experienced moderate growth as an agricultural processing, commercial retail and educational center during the 20th century. In 2009, the City of Caldwell completed a revitalization project to restore Indian Creek, which runs through downtown Caldwell, but had been used for sewage disposal by local industries and been covered over.
History The present-day location of Caldwell is along a natural passageway to the Inland and Pacific Northwest. Native American tribes from the west coast, north Idaho and as far away as Colorado came to the banks of the Boise River for annual trading fairs, or rendezvous. European and some Hawaiian explorers and traders soon followed the paths left by Native Americans and hopeful emigrants later forged the Oregon Trail and followed those paths to seek a better life in the Oregon Territory. Pioneers of the Trail traveled along the Boise River to Canyon Hill and forded the river close to the Silver Bridge on Plymouth Street. During the Civil War, the discovery of gold in Idaho's mountains brought a variety of new settlers into the area. Many never made it to the mines but settled along the Boise River and run ferries, stage stations, and freighting businesses. These early entrepreneurs created small ranches and farms in the river valleys. Caldwell's inception occurred largely as a result of the construction of the Oregon Short Line Railroad, which connected Wyoming to Oregon through Idaho. Robert E. Strahorn came to the Boise River Valley in 1883 to select a route for the railroad. He rejected the grade into Boise City as too steep and chose a site 30 miles to the west. He drove a stake into an alkali flat of sagebrush and greasewood and the City of Caldwell was platted. Caldwell was named after one of Strahorn's business partners, Alexander Caldwell, a former senator from Kansas. When Caldwell was platted in August 1883, its founder, the Idaho and Oregon Land Improvement Company, started persuading settlers and businessmen to move to the area. Within four months, Caldwell had 600 residents living in 150 dwellings, 40 businesses, a school, a telephone exchange, and two newspapers. On January 15, 1890, the Board of Commissioners of Ada County issued a handwritten order incorporating the City of Caldwell. The College of Idaho was founded in Caldwell in 1891. In 1892, Canyon County was established from a portion of Ada County, and Caldwell was named the county seat. Irrigation canals and waterways were constructed throughout Canyon County, providing the foundation for an agricultural economy. The Oregon Short Line Railroad became part of the larger Union Pacific Railroad network and in 1906 the Caldwell freight and passenger depot was constructed. Caldwell experienced moderate growth as an agricultural processing, commercial retail and educational center during the 20th century. In 2009, the City of Caldwell completed a revitalization project to restore Indian Creek, which runs through downtown Caldwell, but had been used for sewage disposal by local industries and been covered over.
location of the College of Idaho. The city is located approximately 24 miles (39 km) west of Boise, and approximately 17 miles (27 km) east of the Oregon border. History The present-day location of Caldwell is along a natural passageway to the Inland and Pacific Northwest. Native American tribes from the west coast, north Idaho and as far away as Colorado came to the banks of the Boise River for annual trading fairs, or rendezvous. European and some Hawaiian explorers and traders soon followed the paths left by Native Americans and hopeful emigrants later forged the Oregon Trail and followed those paths to seek a better life in the Oregon Territory. Pioneers of the Trail traveled along the Boise River to Canyon Hill and forded the river close to the Silver Bridge on Plymouth Street. During the Civil War, the discovery of gold in Idaho's mountains brought a variety of new settlers into the area. Many never made it to the mines but settled along the Boise River and run ferries, stage stations, and freighting businesses. These early entrepreneurs created small ranches and farms in the river valleys. Caldwell's inception occurred largely as a result of the construction of the Oregon Short Line Railroad, which connected Wyoming to Oregon through Idaho. Robert E. Strahorn came to the Boise River Valley in 1883 to select a route for the railroad. He rejected the grade into Boise City as too steep and chose a site 30 miles to the west. He drove a stake into an alkali flat of sagebrush and greasewood and the City of Caldwell was platted. Caldwell was named after one of Strahorn's business partners, Alexander Caldwell, a former senator from Kansas. When Caldwell was platted in August 1883, its founder, the Idaho and Oregon Land Improvement Company, started persuading settlers and businessmen to move to the area. Within four months, Caldwell had 600 residents living in 150 dwellings, 40 businesses, a school, a telephone exchange, and two newspapers. On January 15, 1890, the Board of Commissioners of Ada County issued a handwritten order incorporating the City of Caldwell. The College of Idaho was founded in Caldwell in 1891. In 1892, Canyon County was established from a portion of Ada County, and Caldwell was named the county seat. Irrigation canals and waterways were constructed throughout Canyon County, providing the foundation for an agricultural economy. The Oregon Short Line Railroad became part of the larger Union Pacific Railroad network and in 1906 the Caldwell freight and passenger depot was constructed. Caldwell experienced moderate growth as an agricultural processing, commercial retail and educational center during the 20th century. In 2009, the City of Caldwell completed a revitalization project to restore Indian Creek, which runs through downtown Caldwell, but had been used for sewage disposal by local industries and been covered over.
Star, Idaho
Q1516815 QID OVERLAP 0.680
QID OVERLAP: Q1516815 in geology (tier:branch) and water_rights (tier:branch). | SHARED TOKENS (9): "ada", "boise", "canyon", "district", "idaho", "metropolitan", "neighboring", "population", "star".
adaboisecanyondistrictidahometropolitanneighboringpopulationstar
Star is a city in northwestern Ada County, Idaho, with parts stretching into neighboring Canyon County. The population was 11,117 at the 2020 census, up from 5,793 in 2010. It was named in the 19th century by travelers on their way to Middleton and Boise who used the star on the school house to find east and west. The name stuck and it became Star, Idaho.
on the school house to find east and west. The name stuck and it became Star, Idaho. Today, it is a rapidly growing suburb of Boise and its schools are shared with Middleton School District and West Ada School District. Star is part of the Boise metropolitan area. Geography Star is located at 43°41′39″N 116°29′25″W (43.694084, -116.490225), at an elevation of 2,470 feet (753 m) above sea level.
2000 census As of the census of 2000, there were 1,795 people in 631 households, including 485 families, in the city. The population density was 2,092.5 inhabitants per square mile (807.9/km2). There were 681 housing units at an average density of 793.9 per square mile (306.5/km2). The racial makeup of the city was 92.87% White, 0.28% African American, 0.95% Native American, 0.22% Asian, 0.06% Pacific Islander, 0.89% from other races, and 4.74% from two or more races. Hispanic or Latino of any race were 4.29%. Of the 631 households 48.0% had children under the age of 18 living with them, 60.2% were married couples living together, 11.7% had a female householder with no husband present, and 23.1% were non-families. 16.8% of households were one person and 4.1% were one person aged 65 or older. The average household size was 2.82 and the average family size was 3.19. The age distribution was 33.2% under the age of 18, 9.9% from 18 to 24, 36.4% from 25 to 44, 14.8% from 45 to 64, and 5.7% 65 or older. The median age was 28 years. For every 100 females, there were 97.0 males. For every 100 females age 18 and over, there were 92.8 males. The median household income was $42,337 and the median family income was $46,458. Males had a median income of $31,028 versus $22,625 for females. The per capita income for the city was $15,864. About 5.4% of families and 8.5% of the population were below the poverty line, including 10.7% of those under age 18 and 13.6% of those age 65 or over. Education All of Star in Ada County is in the West Ada School District (Meridian Joint School District 2).
Canyon County, Idaho
Q486078 QID OVERLAP 0.660
QID OVERLAP: Q486078 in geology (tier:branch) and water_rights (tier:branch). | SHARED TOKENS (8): "boise", "caldwell", "canyon", "idaho", "making", "metropolitan", "nampa", "population".
boisecaldwellcanyonidahomakingmetropolitannampapopulation
105, which by 2025 was estimated to have risen to 275,123, making it the second-most populous county in Idaho. The county seat is Caldwell, and its largest city is Nampa. Canyon County is part of the Boise metropolitan area. History Hudson's Bay Company established Fort Boise in 1834 near what is now Parma, but abandoned it in 1855. Emigrants traveled through Canyon County on the Oregon Trail. Discovery of gold in the Boise Basin in 1862 brought settlement to the region again. The lower Boise River was fully contained within Boise County from 1863 until the formation of Ada County in 1864. Settlement of the lower Boise River west of Boise City was limited prior to the completion of the Oregon Short Line Railroad. Middleton was the first European settlement of Canyon County, starting in 1863. The 1870 Census for Ada County listed 76 residents of the Boise Valley, excluding Boise City and the 1880 Census listed 44 residents at Middleton. The arrival of the railroad at Caldwell led to the establishment of a town there as of August 1883. Businessmen James A. McGee and Alexander Duffes filed the plat for nearby Nampa in 1886. Parma was settled around the same time, with the Old Fort Boise post office being moved to the town's location; it was incorporated in 1904. Ada County established precincts for each of the settlements with a combined 1890 Census population of 2,311. Significant settlement of Greenleaf and Notus started around 1904 with the two settlements listed as precincts at the 1910 census. Notus was incorporated in 1921 while Greenleaf was incorporated prior to 1980. Melba was incorporated in 1912 while Wilder was incorporated in 1919. The City of Star annexed a portion of territory in northeast Canyon County prior to 2007, becoming the county's ninth incorporated city. The majority of Star is located within Ada County. The Idaho Legislature created Canyon County from Ada County in an act approved March 7, 1891, effective at the November 26, 1892, election. Caldwell was established as the county seat. The county originally contained all of Canyon and Payette counties and part of Gem; Gem County formed in 1915 and Payette County in 1917.
History Hudson's Bay Company established Fort Boise in 1834 near what is now Parma, but abandoned it in 1855. Emigrants traveled through Canyon County on the Oregon Trail. Discovery of gold in the Boise Basin in 1862 brought settlement to the region again. The lower Boise River was fully contained within Boise County from 1863 until the formation of Ada County in 1864. Settlement of the lower Boise River west of Boise City was limited prior to the completion of the Oregon Short Line Railroad. Middleton was the first European settlement of Canyon County, starting in 1863. The 1870 Census for Ada County listed 76 residents of the Boise Valley, excluding Boise City and the 1880 Census listed 44 residents at Middleton. The arrival of the railroad at Caldwell led to the establishment of a town there as of August 1883. Businessmen James A. McGee and Alexander Duffes filed the plat for nearby Nampa in 1886. Parma was settled around the same time, with the Old Fort Boise post office being moved to the town's location; it was incorporated in 1904. Ada County established precincts for each of the settlements with a combined 1890 Census population of 2,311. Significant settlement of Greenleaf and Notus started around 1904 with the two settlements listed as precincts at the 1910 census. Notus was incorporated in 1921 while Greenleaf was incorporated prior to 1980. Melba was incorporated in 1912 while Wilder was incorporated in 1919. The City of Star annexed a portion of territory in northeast Canyon County prior to 2007, becoming the county's ninth incorporated city. The majority of Star is located within Ada County. The Idaho Legislature created Canyon County from Ada County in an act approved March 7, 1891, effective at the November 26, 1892, election. Caldwell was established as the county seat. The county originally contained all of Canyon and Payette counties and part of Gem; Gem County formed in 1915 and Payette County in 1917.
2000 census As of the 2000 census, there were 131,441 people, 45,018 households and 33,943 families living in the county. The population density was 223 people per square mile (86 people/km2). There were 47,965 housing units at an average density of 81 units per square mile (31 units/km2). The racial makeup of the county was 83.10% White, 0.32% Black or African American, 0.85% Native American, 0.80% Asian, 0.13% Pacific Islander, 12.17% from other races, and 2.62% from two or more races. Hispanic or Latino of any race were 18.61% of the population. 15.9% were of German, 12.7% English, 10.3% American and 7.6% Irish ancestry. There were 45,018 households, of which 39.80% had children under the age of 18 living with them, 60.70% were married couples living together, 10.10% had a female householder with no husband present, and 24.60% were non-families. 19.80% of all households were made up of individuals, and 8.40% had someone living alone who was 65 years of age or older. The average household size was 2.85 and the average family size was 3.28. 30.90% of the population were under the age of 18, 10.70% from 18 to 24, 28.30% from 25 to 44, 19.10% from 45 to 64, and 11.00% who were 65 years of age or older. The median age was 30 years. For every 100 females, there were 98.70 males. For every 100 females age 18 and over, there were 96.30 males. The median household income was $35,884 and the median family income was $40,377. Males had a median income of $29,418 compared with $22,044 for females. The per capita income for the county was $15,155. About 8.70% of families and 12.00% of the population were below the poverty line, including 14.50% of those under age 18 and 10.70% of those age 65 or over. Communities Cities Unincorporated communities Bowmont Huston Roswell Sunnyslope Walters Ferry, Idaho Politics Like the majority of Idaho, Canyon County is reliably Republican by comfortable margins. The last time a Democratic candidate carried the county was in 1936 by Franklin D. Roosevelt.
Meridian, Idaho
Q1085274 QID OVERLAP 0.660
QID OVERLAP: Q1085274 in geology (tier:branch) and water_rights (tier:branch). | SHARED TOKENS (8): "ada", "among", "boise", "capital", "idaho", "making", "meridian", "population".
adaamongboisecapitalidahomakingmeridianpopulation
Meridian is a city located in Ada County, Idaho, United States. The population was 117,635 at the 2020 census, making it the second most populous city in the county and Idaho, after Boise, the state capital.
Rail transportation (1908–28) Following the raising of $4,000 to lay the Interurban rail line from Onweiler (Meridian and Ustick Roads), the tracks were completed into the village center. Turning east on Broadway and ending at East Second, the last car would spend the night in Meridian before returning to Boise early the next morning with passengers and freight. The interurban Station and Generator building (west one-third of the old library at Meridian and Idaho Streets) was built in 1912, and the line continued on to Nampa via Meridian. The tracks down Broadway were not used after 1912. The Interurban Company entered into receivership and closed in 1928 after 20 years of providing continuous transportation to neighboring towns. It was Meridian's main connection to the area outside the local community. The Union Pacific Railroad spur opened in 1900 and is currently operated by the Boise Valley Railroad. Many industrial customers continue to ship forest, agricultural, and chemical products along this corridor. Creamery (1929–70) The city's official website describes the history of the Ada County Dairymen's cooperative creamery as follows:The lowest days of the Great Depression brightened for area dairymen when the Ada County Dairymen's cooperative creamery began operation in 1929. It provided milk checks to those who were members of the cooperative, enabling them to pay their taxes and provide food for their families. Other community members hauled milk to the creamery and were employed by the creamery, whose product was Challenge Butter. The creamery ran seven days a week for 40 years. Additions and improvements were made while the plant was in full operation. Later years saw the Wyeth Laboratories affiliate with the creamery to manufacture SMA baby formula.
Creamery (1929–70) The city's official website describes the history of the Ada County Dairymen's cooperative creamery as follows:The lowest days of the Great Depression brightened for area dairymen when the Ada County Dairymen's cooperative creamery began operation in 1929. It provided milk checks to those who were members of the cooperative, enabling them to pay their taxes and provide food for their families. Other community members hauled milk to the creamery and were employed by the creamery, whose product was Challenge Butter. The creamery ran seven days a week for 40 years. Additions and improvements were made while the plant was in full operation. Later years saw the Wyeth Laboratories affiliate with the creamery to manufacture SMA baby formula.
Kuna, Idaho
Q1515177 QID OVERLAP 0.640
QID OVERLAP: Q1515177 in geology (tier:branch) and water_rights (tier:branch). | SHARED TOKENS (7): "ada", "additional", "boise", "idaho", "kuna", "metropolitan", "population".
adaadditionalboiseidahokunametropolitanpopulation
Kuna ( KYOO-nə) is a city in Ada County, Idaho. It is part of the Boise metropolitan area. The population was 24,011 at the time of the 2020 census. Kuna is one of the fastest-growing areas in Idaho, having nearly tripled in population between 2000 and 2010 and a nearly additional 60 percent gain between 2010 and 2020.
History Kuna originated as a railroad stop with coach transport to Boise. It is popularly believed, as cited by the Kuna Chamber of Commerce, that the translation of the name "Kuna" means "the end of the trail", but Charles S. Walgamott cites the origin of the name as a Shoshone Indian word meaning "green leaf, good to smoke." The Western Heritage Historic Byway, designated as a national as well as a state scenic byway, travels around a number of historic sites in the area. Geography Kuna's business center is approximately 18 miles (29 km) southwest of downtown Boise, the state capital. According to the United States Census Bureau, the city has a total area of 18.18 square miles (47.09 km2), of which 18.08 square miles (46.83 km2) is land and 0.10 square miles (0.26 km2) is water. South of Kuna is the Kuna Caves, a lava tube. A small seasonal creek, Indian Creek, runs through the city. It is now used as an irrigation canal, filled by the New York Canal from the Boise River Diversion Dam.
Geography Kuna's business center is approximately 18 miles (29 km) southwest of downtown Boise, the state capital. According to the United States Census Bureau, the city has a total area of 18.18 square miles (47.09 km2), of which 18.08 square miles (46.83 km2) is land and 0.10 square miles (0.26 km2) is water. South of Kuna is the Kuna Caves, a lava tube. A small seasonal creek, Indian Creek, runs through the city. It is now used as an irrigation canal, filled by the New York Canal from the Boise River Diversion Dam. One of the few small floatable waterways in the region, Indian Creek is a favorite swimming spot for local residents. Demographics 2020 census As of the 2020 census, Kuna had a population of 24,011. The median age was 30.9 years. 31.8% of residents were under the age of 18 and 8.1% of residents were 65 years of age or older. For every 100 females there were 97.8 males, and for every 100 females age 18 and over there were 96.2 males age 18 and over. 97.1% of residents lived in urban areas, while 2.9% lived in rural areas. There were 7,736 households in Kuna, of which 48.2% had children under the age of 18 living in them. Of all households, 62.3% were married-couple households, 11.6% were households with a male householder and no spouse or partner present, and 17.4% were households with a female householder and no spouse or partner present. About 13.9% of all households were made up of individuals and 4.6% had someone living alone who was 65 years of age or older. There were 7,948 housing units, of which 2.7% were vacant. The homeowner vacancy rate was 0.8% and the rental vacancy rate was 5.9%. As of the 2020 census, the median income for a household in the city was $68,017. Families had a median income of $75,296 versus $91,364 for married-couple families and $33,512 for nonfamily households.
Eagle, Idaho
Q1516870 QID OVERLAP 0.620
QID OVERLAP: Q1516870 in geology (tier:branch) and water_rights (tier:branch). | SHARED TOKENS (6): "ada", "boise", "idaho", "miles", "northwest", "population".
adaboiseidahomilesnorthwestpopulation
Eagle is a city in Ada County, Idaho, ten miles (16 km) northwest of downtown Boise. The population was 30,346 at the 2020 census. History 19th century Eagle Island in Idaho was settled in 1863 by Truman Coe Catlin, who later shifted from crop farming to dairy farming, starting the island's dairy tradition. He also pioneered irrigation in the area by constructing a wide irrigation ditch. The most notable early community developer was Thomas Hugh Aiken, a Canadian surveyor, who helped establish the Eagle community in the 1870s.
Parks and recreation The city features numerous parks, including Arboretum Park, Friendship Park, Heritage Park, Orval Krasen Park, Reid W. Merrill Sr. Community Park, and Stephen C. Guerber Park, among others. The Parks and Recreation department offers youth sports leagues, camps, special events (such as Eagle Fun Days), and maintains extensive trails. Nearby Eagle Island State Park provides a swimming beach, trails, disc golf, and winter sports. Education Most of Eagle is in the West Ada School District, with a small portion in the Boise School District.
In popular culture The 2008 show The Baby Borrowers was filmed in Eagle. Eagle was the filming location for the 1980 film Bronco Billy. Notable people Blake Bodily, soccer player Larry Craig, former U.S.
Elmore County, Idaho
Q486336 QID OVERLAP 0.520
QID OVERLAP: Q486336 in geology (tier:branch) and water_rights (tier:branch). | SHARED TOKENS (2): "idaho", "population".
idahopopulation
Elmore County is a county in the U.S. state of Idaho. As of the 2020 census, the population was 28,666.
Unincorporated communities Atlanta Dixie Featherville King Hill Pine Tipanuk Ghost town Rocky Bar Politics Education School districts include: Residents in a portion of the county are in the area (but not the taxation zone) for College of Western Idaho.
National protected areas Boise National Forest (part) Sawtooth National Forest (part) Sawtooth National Recreation Area (part) Sawtooth Wilderness (part) Snake River Birds of Prey National Conservation Area (part) Demographics Racial and ethnic composition 2020 census As of the 2020 census, the county had a population of 28,666. The median age was 32.7 years. 25.2% of residents were under the age of 18 and 13.9% of residents were 65 years of age or older. For every 100 females there were 107.7 males, and for every 100 females age 18 and over there were 108.5 males age 18 and over. The racial makeup of the county was 75.0% White, 2.6% Black or African American, 1.2% American Indian and Alaska Native, 2.8% Asian, 0.4% Native Hawaiian and Pacific Islander, 7.5% from some other race, and 10.5% from two or more races. Hispanic or Latino residents of any race comprised 17.8% of the population. 62.1% of residents lived in urban areas, while 37.9% lived in rural areas. There were 10,663 households in the county, of which 33.3% had children under the age of 18 living with them and 20.1% had a female householder with no spouse or partner present. About 24.7% of all households were made up of individuals and 9.4% had someone living alone who was 65 years of age or older. There were 12,049 housing units, of which 11.5% were vacant. Among occupied housing units, 63.3% were owner-occupied and 36.7% were renter-occupied.
◈ Cross-Vertical Edge Ledger
All Additional Edges — Deterministic Matching
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◈ ADDITIONAL CROSS EDGES · NON-OVERLAP214 edges
🌲 EVERGREEN1 edges
0.650
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🌿 BRANCH180 edges
0.500
Geology ↗ Q1069 EXACT TITLE
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0.500
Uranium ↗ Q1098 EXACT TITLE
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Pliocene ↗ Q76259 EXACT TITLE
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0.500
Ditch ↗ Q2048319 EXACT TITLE
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0.500
Land use ↗ Q1165944 EXACT TITLE
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0.500
Idaho ↗ Q1221 EXACT TITLE
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0.500
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Graphite ↗ Q5309 EXACT TITLE
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Mining ↗ Q44497 EXACT TITLE
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0.500
Silver ↗ Q1090 EXACT TITLE
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0.500
Wheat ↗ Q15645384 EXACT TITLE
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0.500
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0.500
Lake ↗ Q23397 EXACT TITLE
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0.500
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0.500
Zoning ↗ Q702232 EXACT TITLE
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Tungsten ↗ Q743 EXACT TITLE
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0.500
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0.500
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0.500
Rift ↗ Q473935 EXACT TITLE
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0.500
Nitrate ↗ Q49916468 EXACT TITLE
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0.500
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0.500
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0.500
Weathering ↗ Q179177 EXACT TITLE
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0.500
Dam ↗ Q12323 EXACT TITLE
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0.500
Gallium ↗ Q861 EXACT TITLE
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0.500
Manganese ↗ Q731 EXACT TITLE
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0.500
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0.500
Stormwater ↗ Q1421263 EXACT TITLE
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0.500
Drought ↗ Q43059 EXACT TITLE
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0.500
Silicon ↗ Q670 EXACT TITLE
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0.500
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0.500
Miocene ↗ Q76267 EXACT TITLE
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0.500
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0.500
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0.500
Thorium ↗ Q1115 EXACT TITLE
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0.500
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0.500
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0.500
Landslide ↗ Q167903 EXACT TITLE
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0.500
MODFLOW ↗ Q6716996 EXACT TITLE
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0.500
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0.500
Vanadium ↗ Q722 EXACT TITLE
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0.500
Earthquake ↗ Q7944 EXACT TITLE
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0.500
Niobium ↗ Q1046 EXACT TITLE
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SHARED TOKENS (19): "application", "applications", "concluded", "containing", "current", "distinguish", "early", "elements", "highly", "makes", "materials", "names", "physical", "produced", "properties", "reflects", "remains", "reported", "them". | EXACT TITLE in geology: "Niobium".
0.500
Easement ↗ Q448405 EXACT TITLE
accessamonganotherenteritselflandlawlimitedpropertyprovidingpublicpurposerealrightrightsroad
SHARED TOKENS (16): "access", "among", "another", "enter", "itself", "land", "law", "limited", "property", "providing", "public", "purpose", "real", "right", "rights", "road". | EXACT TITLE in water_rights: "Easement".
0.500
accessadministrationaffectsagencyassetbuildingcreateddepartmentdevelopmentemergencyentitiesfederalfieldsgovernmentinfrastructurelocalmajormanagementoccurspersonnel
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0.500
Aquifer ↗ Q208791 EXACT TITLE
aquiferaquifersbeyondcharacteristicsenvironmentflowformationgroundwaterhydrogeologyindustriallandlayermajormaterialspressurerelatedsolidsourcestudyunderground
SHARED TOKENS (23): "aquifer", "aquifers", "beyond", "characteristics", "environment", "flow", "formation", "groundwater", "hydrogeology", "industrial", "land", "layer", "major", "materials", "pressure", "related", "solid", "source", "study", "underground".... | EXACT TITLE in geology: "Aquifer". | EXACT TITLE in water_rights: "Aquifer".
0.500
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SHARED TOKENS (20): "according", "agricultural", "agriculture", "changes", "classification", "containing", "different", "environmental", "form", "impact", "industrial", "making", "methods", "otherwise", "physical", "preservation", "processing", "required", "results", "waste". | EXACT TITLE in water_rights: "Food processing".
0.500
Real estate ↗ Q684740 EXACT TITLE
acquisitioncommercialdifferententityestategeneralgovernmentintendedlandlawlegalmeansnaturalnatureownershipprivatepropertypublicpurposereal
SHARED TOKENS (26): "acquisition", "commercial", "different", "entity", "estate", "general", "government", "intended", "land", "law", "legal", "means", "natural", "nature", "ownership", "private", "property", "public", "purpose", "real".... | EXACT TITLE in geology: "Real estate". | EXACT TITLE in water_rights: "Real estate".
0.500
Water treatment ↗ EXACT TITLE
advancedbecomescomponentscontaminantsdevelopeddueenergyenvironmentenvironmentalflowhealthindustrialirrigationmaintenancematerialsmethodsprocessprocessesqualityrecreation
SHARED TOKENS (27): "advanced", "becomes", "components", "contaminants", "developed", "due", "energy", "environment", "environmental", "flow", "health", "industrial", "irrigation", "maintenance", "materials", "methods", "process", "processes", "quality", "recreation".... | EXACT TITLE in geology: "Water treatment". | EXACT TITLE in water_rights: "Water treatment".
0.500
Geophysics ↗ Q46255 EXACT TITLE
analysisapplicationsassessmentbroaderconnectsdatadeepdevelopmentearlyencompassesenergyenvironmentenvironmentalfieldsformationframeworkgroundwaterintegratesinvestigateinvestigations
SHARED TOKENS (43): "analysis", "applications", "assessment", "broader", "connects", "data", "deep", "development", "early", "encompasses", "energy", "environment", "environmental", "fields", "formation", "framework", "groundwater", "integrates", "investigate", "investigations".... | EXACT TITLE in geology: "Geophysics".
0.500
Telemetry ↗ Q209867 EXACT TITLE
commonlycontrolcostdatadigitalencompassesequipmenthydraulicmediamodernmonitoringneednetworkphysicalpowerrequiresystemstransfer
SHARED TOKENS (18): "commonly", "control", "cost", "data", "digital", "encompasses", "equipment", "hydraulic", "media", "modern", "monitoring", "need", "network", "physical", "power", "require", "systems", "transfer". | EXACT TITLE in water_rights: "Telemetry".
0.500
applicationarseniccapacityconditionscontrolconversioncreatingcriticalcurrentdescribedeterminedevelopmentdifferentearlyelementsenergyfieldsformgroupincrease
SHARED TOKENS (35): "application", "arsenic", "capacity", "conditions", "control", "conversion", "creating", "critical", "current", "describe", "determine", "development", "different", "early", "elements", "energy", "fields", "form", "group", "increase".... | EXACT TITLE in geology: "Semiconductor". | EXACT TITLE in water_rights: "Semiconductor".
0.500
Gold ↗ Q897 EXACT TITLE
abandonedalonearoundcommonlyconditionscontinueddepositselementsfollowedformgroundgrouphistoryindustrialminingoccurspolicyproducedproductionproperty
SHARED TOKENS (26): "abandoned", "alone", "around", "commonly", "conditions", "continued", "deposits", "elements", "followed", "form", "ground", "group", "history", "industrial", "mining", "occurs", "policy", "produced", "production", "property".... | EXACT TITLE in geology: "Gold". | EXACT TITLE in water_rights: "Gold".
0.500
Floodplain ↗ Q193110 EXACT TITLE
agriculturalchannelcontroldevelopeddischargeexperiencefloodfloodingfrequentlyincreasinglandplainriskriverurbanvalleywaterwaters
SHARED TOKENS (18): "agricultural", "channel", "control", "developed", "discharge", "experience", "flood", "flooding", "frequently", "increasing", "land", "plain", "risk", "river", "urban", "valley", "water", "waters". | EXACT TITLE in geology: "Floodplain".
0.500
Phosphate ↗ Q46220103 EXACT TITLE
agriculturalagricultureamongaroundcommonlyeconomicenvironmentformgroupgrowthimportancemajormeansminingnamesplacerolesource
SHARED TOKENS (18): "agricultural", "agriculture", "among", "around", "commonly", "economic", "environment", "form", "group", "growth", "importance", "major", "means", "mining", "names", "place", "role", "source". | EXACT TITLE in geology: "Phosphate".
0.500
Ore ↗ Q102798 EXACT TITLE
concentratedcontainingcontainscostdetermineelementsformedgeologicalhealthminingnaturalprocessprocessessurroundingthereforetreatedvalue
SHARED TOKENS (17): "concentrated", "containing", "contains", "cost", "determine", "elements", "formed", "geological", "health", "mining", "natural", "process", "processes", "surrounding", "therefore", "treated", "value". | EXACT TITLE in geology: "Ore". | EXACT TITLE in water_rights: "Ore".
0.500
differentgroundgroundwaterirrigationlawlegalphysicalrightriversourcestreamsurfacesystemsuserswater
SHARED TOKENS (15): "different", "ground", "groundwater", "irrigation", "law", "legal", "physical", "right", "river", "source", "stream", "surface", "systems", "users", "water". | EXACT TITLE in geology: "Water right". | EXACT TITLE in water_rights: "Water right".
0.500
Tectonics ↗ Q193343 EXACT TITLE
affectbuildingdepositsdirectlyeconomicextendsfeaturesframeworkgrowthpopulationprocessprocessespropertiesproviderelativelyresourcesresultstructurestudies
SHARED TOKENS (19): "affect", "building", "deposits", "directly", "economic", "extends", "features", "framework", "growth", "population", "process", "processes", "properties", "provide", "relatively", "resources", "result", "structure", "studies". | EXACT TITLE in geology: "Tectonics".
0.500
broadchangesengineeringfeaturesformgeotechnicalhistoryinterestsmodelingnumericaloperatingphysicalprocessesresearchstudysurfacework
SHARED TOKENS (17): "broad", "changes", "engineering", "features", "form", "geotechnical", "history", "interests", "modeling", "numerical", "operating", "physical", "processes", "research", "study", "surface", "work". | EXACT TITLE in geology: "Geomorphology".
0.500
Surveying ↗ Q816425 EXACT TITLE
analysisboundariescivilcomponentsconstructiondevelopmentdigitalelementsengineeringenvironmentequipmentestablishfeaturesgisgovernmenthistorylandlawlegalmapping
SHARED TOKENS (35): "analysis", "boundaries", "civil", "components", "construction", "development", "digital", "elements", "engineering", "environment", "equipment", "establish", "features", "gis", "government", "history", "land", "law", "legal", "mapping".... | EXACT TITLE in geology: "Surveying". | EXACT TITLE in water_rights: "Surveying".
0.500
actaddressesaddressingagenciesassessmentschangecleanclimatecomplianceconcerningconferenceconservationcontroldesigneddevelopmenteconomicencompassesenergyenforcementenvironment
SHARED TOKENS (46): "act", "addresses", "addressing", "agencies", "assessments", "change", "clean", "climate", "compliance", "concerning", "conference", "conservation", "control", "designed", "development", "economic", "encompasses", "energy", "enforcement", "environment".... | EXACT TITLE in geology: "Environmental law".
0.500
applicationsbillionbroadbuildingconstructiondrainagedueedgefieldsformhydraulicmaterialsnaturalproducedpropertiesrelativelyresultingretainingroadseptic
SHARED TOKENS (23): "applications", "billion", "broad", "building", "construction", "drainage", "due", "edge", "fields", "form", "hydraulic", "materials", "natural", "produced", "properties", "relatively", "resulting", "retaining", "road", "septic".... | EXACT TITLE in geology: "Construction aggregate".
0.500
aquiferdeepdrainageencompassesenvironmentalgroundwaterhydrologicmethodsmovingoccursprocessprocessesrechargeriverssubsurfacesurfacewater
SHARED TOKENS (17): "aquifer", "deep", "drainage", "encompasses", "environmental", "groundwater", "hydrologic", "methods", "moving", "occurs", "process", "processes", "recharge", "rivers", "subsurface", "surface", "water". | EXACT TITLE in water_rights: "Groundwater recharge".
0.500
Neogene ↗ Q103924 EXACT TITLE
cannotclimateconnectioncontinueddefinefollowedgeologicallatelatermillionmodernpacificperiodplacerelativelyremainssignificantstreamsystemtransfer
SHARED TOKENS (20): "cannot", "climate", "connection", "continued", "define", "followed", "geological", "late", "later", "million", "modern", "pacific", "period", "place", "relatively", "remains", "significant", "stream", "system", "transfer". | EXACT TITLE in geology: "Neogene".
0.500
Materials science ↗ EXACT TITLE
applicationsaroundbegancomponentscontrolcreatedcriticaldescribeddesigndistinctelementsengineeringengineersfailurefeaturesfieldshistoryinstitutionsmajormaterials
SHARED TOKENS (32): "applications", "around", "began", "components", "control", "created", "critical", "described", "design", "distinct", "elements", "engineering", "engineers", "failure", "features", "fields", "history", "institutions", "major", "materials".... | EXACT TITLE in geology: "Materials science".
0.500
annualapplicationapplicationsapproximatelyaroundboundariescapacitycontainsconversiondirectenergyevenformationgeothermalgroundgroundwaterheatingmeanneededsource
SHARED TOKENS (22): "annual", "application", "applications", "approximately", "around", "boundaries", "capacity", "contains", "conversion", "direct", "energy", "even", "formation", "geothermal", "ground", "groundwater", "heating", "mean", "needed", "source".... | EXACT TITLE in water_rights: "Geothermal heating".
0.500
Cobalt ↗ Q740 EXACT TITLE
accordingactivealonedeepdepositsderivesdueformgroupminingnaturaloccursprimarilyproducedproductionresources
SHARED TOKENS (16): "according", "active", "alone", "deep", "deposits", "derives", "due", "form", "group", "mining", "natural", "occurs", "primarily", "produced", "production", "resources". | EXACT TITLE in geology: "Cobalt".
0.500
advancedapplicationsaroundbridgecommercialcommonlycomponentsconcentratedconstituentsconsumercontainingcriticaldatademanddepositsdescribesdifferenteconomiceffecteffects
SHARED TOKENS (53): "advanced", "applications", "around", "bridge", "commercial", "commonly", "components", "concentrated", "constituents", "consumer", "containing", "critical", "data", "demand", "deposits", "describes", "different", "economic", "effect", "effects".... | EXACT TITLE in geology: "Rare-earth element".
0.500
Snowpack ↗ Q18575846 EXACT TITLE
agricultureannualchangeclassificationclimateconditionscontextcoverdifferenteffectfloodingformationgroundhydrologyimpactphysicalpropertiesprovideresourcerivers
SHARED TOKENS (23): "agriculture", "annual", "change", "classification", "climate", "conditions", "context", "cover", "different", "effect", "flooding", "formation", "ground", "hydrology", "impact", "physical", "properties", "provide", "resource", "rivers".... | EXACT TITLE in water_rights: "Snowpack".
0.500
commercialdirectlyduegravitygroundwaterindustrialinflowinfrastructureoccursrunoffseparateservedservingsewerstormwatersurfacesystemsystemstreatmentunderground
SHARED TOKENS (23): "commercial", "directly", "due", "gravity", "groundwater", "industrial", "inflow", "infrastructure", "occurs", "runoff", "separate", "served", "serving", "sewer", "stormwater", "surface", "system", "systems", "treatment", "underground".... | EXACT TITLE in water_rights: "Sanitary sewer".
0.500
agriculturecontactcreatedcriticaldueformedhealthimpactsinfrastructurelargernaturalpowerproducedsupplysystemstransportationwater
SHARED TOKENS (17): "agriculture", "contact", "created", "critical", "due", "formed", "health", "impacts", "infrastructure", "larger", "natural", "power", "produced", "supply", "systems", "transportation", "water". | EXACT TITLE in geology: "Volcanic ash".
0.500
Irrigation ↗ Q11453 EXACT TITLE
agriculturalagriculturealteredapplicationaquiferscentralchangesconditionsconsolidationcontrolcontrolleddeepdevelopeddirectlydischargedistributiondownstreamdrainagedueeffects
SHARED TOKENS (66): "agricultural", "agriculture", "altered", "application", "aquifers", "central", "changes", "conditions", "consolidation", "control", "controlled", "deep", "developed", "directly", "discharge", "distribution", "downstream", "drainage", "due", "effects".... | EXACT TITLE in geology: "Irrigation". | EXACT TITLE in water_rights: "Irrigation".
0.500
associationcontaminationcontractorscontroldeeperdescribeddrillingenvironmentequipmentevaluationgroundgroundwaterhydraulicinjectionliningmodernmonitoringnaturalnatureprecisely
SHARED TOKENS (37): "association", "contamination", "contractors", "control", "deeper", "described", "drilling", "environment", "equipment", "evaluation", "ground", "groundwater", "hydraulic", "injection", "lining", "modern", "monitoring", "natural", "nature", "precisely".... | EXACT TITLE in water_rights: "Well drilling".
0.500
actapplicationbecomescleandischargedueenterexpresslyflowflowsgroundgroundwaterincreasesirrigationneedperiodpermitpointprecipitationquality
SHARED TOKENS (30): "act", "application", "becomes", "clean", "discharge", "due", "enter", "expressly", "flow", "flows", "ground", "groundwater", "increases", "irrigation", "need", "period", "permit", "point", "precipitation", "quality".... | EXACT TITLE in geology: "Return flow". | EXACT TITLE in water_rights: "Return flow".
0.500
actadministrationagencycarriescomplianceconditionscoveringdepartmentdifferentdistrictsdivideddivisionfederalhealthlabormeansminingofficeoperationsorganized
SHARED TOKENS (26): "act", "administration", "agency", "carries", "compliance", "conditions", "covering", "department", "different", "districts", "divided", "division", "federal", "health", "labor", "means", "mining", "office", "operations", "organized".... | EXACT TITLE in geology: "Mine Safety and Health Administration".
0.500
actagricultureapproximatelybeganboardboisebureaucapacitycompletedcompletionconstructiondesignexperiencedflowsidahoirrigationlaborlatelawlevel
SHARED TOKENS (41): "act", "agriculture", "approximately", "began", "board", "boise", "bureau", "capacity", "completed", "completion", "construction", "design", "experienced", "flows", "idaho", "irrigation", "labor", "late", "law", "level".... | EXACT TITLE in water_rights: "Anderson Ranch Dam".
0.500
adaboardboisecanyoncareercollegecommunitycountiescwidevelopmenteasterneducationidaholargenampapopulationprogramspublicreportedserved
SHARED TOKENS (28): "ada", "board", "boise", "canyon", "career", "college", "community", "counties", "cwi", "development", "eastern", "education", "idaho", "large", "nampa", "population", "programs", "public", "reported", "served".... | EXACT TITLE in geology: "College of Western Idaho". | EXACT TITLE in water_rights: "College of Western Idaho".
0.500
Erosion ↗ Q80026 EXACT TITLE
actagriculturalagriculturealreadyanotherchangeclimatecontrolcontrolleddistincteffecteffectsenvironmentalfloodingflowflowsfollowedgroundwaterimpactsland
SHARED TOKENS (37): "act", "agricultural", "agriculture", "already", "another", "change", "climate", "control", "controlled", "distinct", "effect", "effects", "environmental", "flooding", "flow", "flows", "followed", "groundwater", "impacts", "land".... | EXACT TITLE in geology: "Erosion".
0.500
agriculturearoundcapitalcommercialcommunitycostcostsdependdifferentenergyinstitutionalirrigationissueslargelargerpersonnelpolicypracticepressureprimarily
SHARED TOKENS (33): "agriculture", "around", "capital", "commercial", "community", "cost", "costs", "depend", "different", "energy", "institutional", "irrigation", "issues", "large", "larger", "personnel", "policy", "practice", "pressure", "primarily".... | EXACT TITLE in geology: "Water supply". | EXACT TITLE in water_rights: "Water supply".
0.500
acquisitionactiveamongapplicationscommercialcontactcurrenteconomicfieldshydrologyinformationlandmakingnumerousobjectsphysicalplanningsciencesurfacesurveying
SHARED TOKENS (20): "acquisition", "active", "among", "applications", "commercial", "contact", "current", "economic", "fields", "hydrology", "information", "land", "making", "numerous", "objects", "physical", "planning", "science", "surface", "surveying". | EXACT TITLE in geology: "Remote sensing".
0.480
billionclimateconditionsdependsdirectlyenvironmentalformhealthissuesmajorphysicalrequiredwaterwork
SHARED TOKENS (14): "billion", "climate", "conditions", "depends", "directly", "environmental", "form", "health", "issues", "major", "physical", "required", "water", "work". | EXACT TITLE in water_rights: "Drinking water".
0.480
Basalt ↗ Q43338 EXACT TITLE
coverdeepduefloodflowsformedhundredsmovingprocessesrapidrelativelyresultingsurfacesystem
SHARED TOKENS (14): "cover", "deep", "due", "flood", "flows", "formed", "hundreds", "moving", "processes", "rapid", "relatively", "resulting", "surface", "system". | EXACT TITLE in geology: "Basalt".
0.480
anothercreatedcurrentlyeasternformedidaholargeliesplaceplainresultingriversnakeunderlying
SHARED TOKENS (14): "another", "created", "currently", "eastern", "formed", "idaho", "large", "lies", "place", "plain", "resulting", "river", "snake", "underlying". | EXACT TITLE in geology: "Yellowstone hotspot".
0.480
applicationconnectsdeepdesignelementsengineeringgeotechnicalgroundlayermechanicsshallowstructuresupportingwater
SHARED TOKENS (14): "application", "connects", "deep", "design", "elements", "engineering", "geotechnical", "ground", "layer", "mechanics", "shallow", "structure", "supporting", "water". | EXACT TITLE in geology: "Foundation (engineering)".
0.460
Quaternary ↗ Q26185 EXACT TITLE
associatedchangesclimatecurrentdividedenvironmentalgeologicalgoverninggrowthmillionperiodproposedrelated
SHARED TOKENS (13): "associated", "changes", "climate", "current", "divided", "environmental", "geological", "governing", "growth", "million", "period", "proposed", "related". | EXACT TITLE in geology: "Quaternary".
0.460
beyondextendsformationgeochemistrygeologicalintegratedmajorprocessessciencesystemsystemstoolsuses
SHARED TOKENS (13): "beyond", "extends", "formation", "geochemistry", "geological", "integrated", "major", "processes", "science", "system", "systems", "tools", "uses". | EXACT TITLE in geology: "Geochemistry". | EXACT TITLE in water_rights: "Geochemistry".
0.460
Copper ↗ Q753 EXACT TITLE
anotherassociatedbuildingcarryingcommonlycreatedirectlyearlyformhistoricallylatersurfaceusable
SHARED TOKENS (13): "another", "associated", "building", "carrying", "commonly", "create", "directly", "early", "form", "historically", "later", "surface", "usable". | EXACT TITLE in geology: "Copper".
0.460
Petrology ↗ Q163082 EXACT TITLE
commonlyconditionsformincreasingmakingmethodsmodernphaseprocessesstructurestudiesstudytogether
SHARED TOKENS (13): "commonly", "conditions", "form", "increasing", "making", "methods", "modern", "phase", "processes", "structure", "studies", "study", "together". | EXACT TITLE in geology: "Petrology".
0.460
Antimony ↗ Q1099 EXACT TITLE
applicationsdirectfollowedformhistoryindustrialmethodsnatureoccursplainproductionpropertiessemiconductor
SHARED TOKENS (13): "applications", "direct", "followed", "form", "history", "industrial", "methods", "nature", "occurs", "plain", "production", "properties", "semiconductor". | EXACT TITLE in geology: "Antimony".
0.460
administrationagencyassociateddepartmenteconomicfederalfisheriesmanagesnationalofficepotentialresourcesspecies
SHARED TOKENS (13): "administration", "agency", "associated", "department", "economic", "federal", "fisheries", "manages", "national", "office", "potential", "resources", "species". | EXACT TITLE in water_rights: "National Marine Fisheries Service".
0.460
applicationscivilconstructionengineeringfieldsgeotechnicalhydrologymaterialsmechanicsminingrelatedstudyuses
SHARED TOKENS (13): "applications", "civil", "construction", "engineering", "fields", "geotechnical", "hydrology", "materials", "mechanics", "mining", "related", "study", "uses". | EXACT TITLE in geology: "Geotechnical engineering".
0.460
approximatelyaroundcentralcontainscreatedidaholargerlatemillionriverseparateseparatedsurrounding
SHARED TOKENS (13): "approximately", "around", "central", "contains", "created", "idaho", "larger", "late", "million", "river", "separate", "separated", "surrounding". | EXACT TITLE in geology: "Idaho Batholith".
0.440
approximatelyboisedatadistrictdistrictsdividedevengovernmentidaholowerpopulationsingle
SHARED TOKENS (12): "approximately", "boise", "data", "district", "districts", "divided", "even", "government", "idaho", "lower", "population", "single". | EXACT TITLE in water_rights: "Idaho Legislature".
0.440
Tellurium ↗ Q1100 EXACT TITLE
applicationdueformformationitselfnaturalplaceproductionrelatedsignificantsourcespace
SHARED TOKENS (12): "application", "due", "form", "formation", "itself", "natural", "place", "production", "related", "significant", "source", "space". | EXACT TITLE in geology: "Tellurium".
0.440
Quartz ↗ Q43010 EXACT TITLE
changecommonlydifferentframeworkgroupmakingplacesignificantstructurallythereforevaluevolume
SHARED TOKENS (12): "change", "commonly", "different", "framework", "group", "making", "place", "significant", "structurally", "therefore", "value", "volume". | EXACT TITLE in geology: "Quartz".
0.440
agriculturalclimateirrigationlocalmanagementnaturalprocessesresourcerolesurfacesurfaceswater
SHARED TOKENS (12): "agricultural", "climate", "irrigation", "local", "management", "natural", "processes", "resource", "role", "surface", "surfaces", "water". | EXACT TITLE in water_rights: "Evapotranspiration".
0.420
Reservoir ↗ Q131681 EXACT TITLE
buildingcontrollingcreatedexistingformlakepowerretainingspacestoragewater
SHARED TOKENS (11): "building", "controlling", "created", "existing", "form", "lake", "power", "retaining", "space", "storage", "water". | EXACT TITLE in water_rights: "Reservoir".
0.420
Volcanology ↗ Q102904 EXACT TITLE
activecurrentcurrentlyformationfrequentlygeologicalhistoricmajorrelatedstudiesstudy
SHARED TOKENS (11): "active", "current", "currently", "formation", "frequently", "geological", "historic", "major", "related", "studies", "study". | EXACT TITLE in geology: "Volcanology".
0.420
agriculturalidaholandmajormilesnorthwestplainprimarilyriversnakesouthern
SHARED TOKENS (11): "agricultural", "idaho", "land", "major", "miles", "northwest", "plain", "primarily", "river", "snake", "southern". | EXACT TITLE in geology: "Snake River Plain".
0.420
buildingdescriptiondistributionduehistorieshistoryinformationsciencestructuralstudythree-dimensional
SHARED TOKENS (11): "building", "description", "distribution", "due", "histories", "history", "information", "science", "structural", "study", "three-dimensional". | EXACT TITLE in geology: "Structural geology".
0.400
Tantalum ↗ Q1123 EXACT TITLE
componentsequipmentgrouphighlyindustrialoccurspointprocessorssourcestogether
SHARED TOKENS (10): "components", "equipment", "group", "highly", "industrial", "occurs", "point", "processors", "sources", "together". | EXACT TITLE in geology: "Tantalum".
0.400
Mineralogy ↗ Q83353 EXACT TITLE
classificationdistributionformationphysicalprocessespropertiesstructurestudiesstudysubject
SHARED TOKENS (10): "classification", "distribution", "formation", "physical", "processes", "properties", "structure", "studies", "study", "subject". | EXACT TITLE in geology: "Mineralogy".
0.400
capacityconservationfuturepracticereturnrightrightssignificantstoragewater
SHARED TOKENS (10): "capacity", "conservation", "future", "practice", "return", "right", "rights", "significant", "storage", "water". | EXACT TITLE in water_rights: "Water banking".
0.380
agriculturebuildingdevelopmentestatelandlandscapenaturalpurposereal
SHARED TOKENS (9): "agriculture", "building", "development", "estate", "land", "landscape", "natural", "purpose", "real". | EXACT TITLE in water_rights: "Land development".
0.380
activeassociatedbegandevelopmentidaholakelateminingriver
SHARED TOKENS (9): "active", "associated", "began", "development", "idaho", "lake", "late", "mining", "river". | EXACT TITLE in geology: "Owyhee Mountains".
0.380
evaluatedevidencelegalobligationsprocessprocessesreviewsrightsshows
SHARED TOKENS (9): "evaluated", "evidence", "legal", "obligations", "process", "processes", "reviews", "rights", "shows". | EXACT TITLE in water_rights: "Adjudication".
0.340
Sugar beet ↗ Q151964 EXACT TITLE
containsgroupmillionproducedproductiontogetherwhose
SHARED TOKENS (7): "contains", "group", "million", "produced", "production", "together", "whose". | EXACT TITLE in water_rights: "Sugar beet".
0.340
formationlawlayersprimarilyrelatedrelationshipsstudy
SHARED TOKENS (7): "formation", "law", "layers", "primarily", "related", "relationships", "study". | EXACT TITLE in geology: "Stratigraphy".
0.320
anotherbuildingconstructionformedgeologicalgroup
SHARED TOKENS (6): "another", "building", "construction", "formed", "geological", "group". | EXACT TITLE in geology: "Aggregate (geology)".
0.320
Alluvium ↗ Q6185405 EXACT TITLE
consolidateddescribedhighlysolidstreamwater
SHARED TOKENS (6): "consolidated", "described", "highly", "solid", "stream", "water". | EXACT TITLE in geology: "Alluvium".
0.320
Colluvium ↗ Q1152275 EXACT TITLE
generalprocessesrunoffsheetsurfacetypes
SHARED TOKENS (6): "general", "processes", "runoff", "sheet", "surface", "types". | EXACT TITLE in geology: "Colluvium".
0.300
anotherapplicationassessmentsconditionsconstructioncontaminantscreatedependdevelopersdevelopmentenvironmentalgroundwaterhealthimpactlandmaterialsmediamunicipalphysicalpressure
SHARED TOKENS (33): "another", "application", "assessments", "conditions", "construction", "contaminants", "create", "depend", "developers", "development", "environmental", "groundwater", "health", "impact", "land", "materials", "media", "municipal", "physical", "pressure"....
0.300
Acequia ↗ Q1385463 KW CROSS HIGH
agriculturalagriculturecanalscreateddatedeepdescribedesignedfieldsformhealthhistoricalimportanceirrigatedirrigationmaintainedmanagementmethodsoperatedpractice
SHARED TOKENS (24): "agricultural", "agriculture", "canals", "created", "date", "deep", "describe", "designed", "fields", "form", "health", "historical", "importance", "irrigated", "irrigation", "maintained", "management", "methods", "operated", "practice"....
0.300
analysisassessmentbecomecharacteristicscodescommonlyconditionsconsequencecurrentlydamsdependsdesigndifferenteffectembankmentsengineersevenfailuregeologicalgroundwater
SHARED TOKENS (48): "analysis", "assessment", "become", "characteristics", "codes", "commonly", "conditions", "consequence", "currently", "dams", "depends", "design", "different", "effect", "embankments", "engineers", "even", "failure", "geological", "groundwater"....
0.300
actapprovedclaimclaimsdiscoveryeconomicentryfederalformedgenerallandlandslatelawlimitedminingolderpublicrightsystem
SHARED TOKENS (20): "act", "approved", "claim", "claims", "discovery", "economic", "entry", "federal", "formed", "general", "land", "lands", "late", "law", "limited", "mining", "older", "public", "right", "system".
0.300
Urban sprawl ↗ Q192042 KW CROSS HIGH
agencyassociatedbecomebuildingcommercialconsequencescorecostscurrentlydescribeddevelopmentdueenvironmentenvironmentalexistingexpansionformgeographicgrowthhighly
SHARED TOKENS (40): "agency", "associated", "become", "building", "commercial", "consequences", "core", "costs", "currently", "described", "development", "due", "environment", "environmental", "existing", "expansion", "form", "geographic", "growth", "highly"....
0.300
Rocky Mountains ↗ Q5463 KW CROSS HIGH
beganbroaddistincteconomicexperiencedformeditselflandsliemajormetropolitanmillionnaturalpointpopulationprotectpublicresourcesresultingriver
SHARED TOKENS (23): "began", "broad", "distinct", "economic", "experienced", "formed", "itself", "lands", "lie", "major", "metropolitan", "million", "natural", "point", "population", "protect", "public", "resources", "resulting", "river"....
0.300
Holocene ↗ Q25445 KW CROSS HIGH
approximatelyaroundbeganclimatecommonlyconcludedcontinuedcurrentdevelopmentdistinctdueevidenceformfuturegeologicalgrowthhistoryimpactimpactslarge
SHARED TOKENS (30): "approximately", "around", "began", "climate", "commonly", "concluded", "continued", "current", "development", "distinct", "due", "evidence", "form", "future", "geological", "growth", "history", "impact", "impacts", "large"....
0.300
advancedapplicationscentralcleancomponentscontaminationcontrolcreatecreatedenvironmentequipmentfabricationfacilitieshighlyindustrialinsideintegratedlargemanufacturingmaterials
SHARED TOKENS (33): "advanced", "applications", "central", "clean", "components", "contamination", "control", "create", "created", "environment", "equipment", "fabrication", "facilities", "highly", "industrial", "inside", "integrated", "large", "manufacturing", "materials"....
0.300
Soil mechanics ↗ Q471872 KW CROSS HIGH
agriculturalanalysisapplicationsarticlebridgebuildingcapacitychangecivilclassificationconsolidationcontainsdamsdependentdescribesdueengineeringflowgeotechnicalhydrology
SHARED TOKENS (32): "agricultural", "analysis", "applications", "article", "bridge", "building", "capacity", "change", "civil", "classification", "consolidation", "contains", "dams", "dependent", "describes", "due", "engineering", "flow", "geotechnical", "hydrology"....
0.300
applicablebasincharacteristicsdependsdescribesdivideddrainagefloodlargelimitedmodelneedpracticepreciselyresponserunoffstudysurfacewaterwhose
SHARED TOKENS (20): "applicable", "basin", "characteristics", "depends", "describes", "divided", "drainage", "flood", "large", "limited", "model", "need", "practice", "precisely", "response", "runoff", "study", "surface", "water", "whose".
0.300
canalscivilconstructioncovercurrentengineeringexistingformedgeochemistrygeologicalhistoryinformationlandlargelayersnaturalphysicalplaceprocessproperties
SHARED TOKENS (32): "canals", "civil", "construction", "cover", "current", "engineering", "existing", "formed", "geochemistry", "geological", "history", "information", "land", "large", "layers", "natural", "physical", "place", "process", "properties"....
0.300
Pleistocene ↗ Q25546 KW CROSS HIGH
allowingaroundbridgechangeclimateconnectioncontinuedcoveringdueearlyexpansiongeologicalhighlyisolatedlandlargelatelowermakingmillion
SHARED TOKENS (29): "allowing", "around", "bridge", "change", "climate", "connection", "continued", "covering", "due", "early", "expansion", "geological", "highly", "isolated", "land", "large", "late", "lower", "making", "million"....
0.300
Drilling rig ↗ Q12688575 KW CROSS HIGH
capablecommonlyconstructiondepositsdrilleddrillingenoughenvironmentalequipmentevengroundwaterhundredsintegratedinvestigationslandlargelargermilesnaturalpermanent
SHARED TOKENS (32): "capable", "commonly", "construction", "deposits", "drilled", "drilling", "enough", "environmental", "equipment", "even", "groundwater", "hundreds", "integrated", "investigations", "land", "large", "larger", "miles", "natural", "permanent"....
0.300
Property law ↗ Q1149275 KW CROSS HIGH
acquisitionanothercivildevelopeddividedeconomiceffectsenforcementenvironmentalgoverningissuesjurisdictionlandlawlegalmajorownershipprivatepropertypublic
SHARED TOKENS (27): "acquisition", "another", "civil", "developed", "divided", "economic", "effects", "enforcement", "environmental", "governing", "issues", "jurisdiction", "land", "law", "legal", "major", "ownership", "private", "property", "public"....
0.300
advancedagriculturalagriculturebusinessescostcostsdirectdistributioneffectsenvironmentalfieldsgroundwaterimportanceincreasingindustrialirrigationmanagementmunicipalnaturalpractice
SHARED TOKENS (38): "advanced", "agricultural", "agriculture", "businesses", "cost", "costs", "direct", "distribution", "effects", "environmental", "fields", "groundwater", "importance", "increasing", "industrial", "irrigation", "management", "municipal", "natural", "practice"....
0.300
commonlyformedsurfacetogetherunderlying
SHARED TOKENS (5): "commonly", "formed", "surface", "together", "underlying". | EXACT TITLE in geology: "Terrace (geology)".
0.300
Fracking ↗ Q890794 KW CROSS HIGH
becomescontainingcreatedivisionflowformationgeneralhistoryhydraulicincreaseincreasinginjectionmediamethodsnaturalpathwayspressureprimarilyprocessproduction
SHARED TOKENS (24): "becomes", "containing", "create", "division", "flow", "formation", "general", "history", "hydraulic", "increase", "increasing", "injection", "media", "methods", "natural", "pathways", "pressure", "primarily", "process", "production"....
0.300
actagenciescodeconsequenceconservationdependdescribeddesigneddevelopmentdifferentdirectseconomicenactedfederalfisheriesgrowthlawmeansnationalneeded
SHARED TOKENS (31): "act", "agencies", "code", "consequence", "conservation", "depend", "described", "designed", "development", "different", "directs", "economic", "enacted", "federal", "fisheries", "growth", "law", "means", "national", "needed"....
0.300
actadministrationagencycovercurrentlyenvironmentalfederalintendedlawprivateprotectionprovidingpublicqualityregulatedrequiredservedstandardssystemsystems
SHARED TOKENS (22): "act", "administration", "agency", "cover", "currently", "environmental", "federal", "intended", "law", "private", "protection", "providing", "public", "quality", "regulated", "required", "served", "standards", "system", "systems"....
0.300
acresagencyagriculturebureaucoveringdepartmentdevelopmentfederallandlandsmajormanagementmanagesmillionnationalofficeoperationsprivateresearchsystem
SHARED TOKENS (21): "acres", "agency", "agriculture", "bureau", "covering", "department", "development", "federal", "land", "lands", "major", "management", "manages", "million", "national", "office", "operations", "private", "research", "system"....
0.300
administrationadministrativeagenciesanotherchangescivilcontrolcreateddecisionsdivisioneconomiceducationenforcementenvironmentenvironmentalgoverninggovernmentimportanceincreaseinteraction
SHARED TOKENS (33): "administration", "administrative", "agencies", "another", "changes", "civil", "control", "created", "decisions", "division", "economic", "education", "enforcement", "environment", "environmental", "governing", "government", "importance", "increase", "interaction"....
0.300
accountadditionalagricultureannualboisechangechangesclimatecoursedatadescribeddifferentdueearlyexperienceextendgeneralhistoryidahoimpacts
SHARED TOKENS (43): "account", "additional", "agriculture", "annual", "boise", "change", "changes", "climate", "course", "data", "described", "different", "due", "early", "experience", "extend", "general", "history", "idaho", "impacts"....
0.300
Core sample ↗ Q1942237 KW CROSS HIGH
analyzedconditionscontinuingcoredatadevelopmentdifferentdrillingequipmentexaminationmaterialsmediaprocesspropertiessection
SHARED TOKENS (15): "analyzed", "conditions", "continuing", "core", "data", "development", "different", "drilling", "equipment", "examination", "materials", "media", "process", "properties", "section".
0.300
Payette River ↗ Q3373254 KW CROSS HIGH
agriculturalbasincumulativedivisiondrainageflowsidaholargermajormilesnationalprimarilyrecreationriversectionsnakestreamvalley
SHARED TOKENS (18): "agricultural", "basin", "cumulative", "division", "drainage", "flows", "idaho", "larger", "major", "miles", "national", "primarily", "recreation", "river", "section", "snake", "stream", "valley".
0.300
Eutrophication ↗ Q156698 KW CROSS HIGH
agriculturecontrolsdescribingdevelopmentenvironmentenvironmentalgeneralgrowthindustriallakeoccurspointpoliciesprocessprogramreduceresultresultingriverrunoff
SHARED TOKENS (25): "agriculture", "controls", "describing", "development", "environment", "environmental", "general", "growth", "industrial", "lake", "occurs", "point", "policies", "process", "program", "reduce", "result", "resulting", "river", "runoff"....
0.300
agriculturalbeneficialfullindustriallegalmerelyownershipperiodpriorpurposerightrightssourcesummarizedsystemuserswater
SHARED TOKENS (17): "agricultural", "beneficial", "full", "industrial", "legal", "merely", "ownership", "period", "prior", "purpose", "right", "rights", "source", "summarized", "system", "users", "water".
0.300
Septic tank ↗ Q386300 KW CROSS HIGH
commonlydomesticenvironmentflowsgroundwaterprocessesreducesepticsimplesystemsystemsthereforetreatedtreatmentundergroundwastewastewater
SHARED TOKENS (17): "commonly", "domestic", "environment", "flows", "groundwater", "processes", "reduce", "septic", "simple", "system", "systems", "therefore", "treated", "treatment", "underground", "waste", "wastewater".
0.300
Right of way ↗ KW CROSS HIGH
canalscapableconservationcreateddifferentestatefullgovernmentgroundlandlegallocalmeanotherwiseownershipphysicalprivaterealretainright
SHARED TOKENS (27): "canals", "capable", "conservation", "created", "different", "estate", "full", "government", "ground", "land", "legal", "local", "mean", "otherwise", "ownership", "physical", "private", "real", "retain", "right"....
0.300
affectsagriculturalagriculturebecomebuildingchangesconstructioncontaminantscontaminationcontrolcontrollingcumulativedifferentdrainageeffectflowlandlandslargelocal
SHARED TOKENS (46): "affects", "agricultural", "agriculture", "become", "building", "changes", "construction", "contaminants", "contamination", "control", "controlling", "cumulative", "different", "drainage", "effect", "flow", "land", "lands", "large", "local"....
0.300
Plate tectonics ↗ Q7950 KW CROSS HIGH
activebillionboundariesboundarybuildingcarriescurrentlydevelopededgeevidenceexperiencedformformationformedimportanceincreasinginsideinteractionlargelate
SHARED TOKENS (32): "active", "billion", "boundaries", "boundary", "building", "carries", "currently", "developed", "edge", "evidence", "experienced", "form", "formation", "formed", "importance", "increasing", "inside", "interaction", "large", "late"....
0.300
actarmyassociatedauthorizationcorpsdevelopmentdivisionenactedengineersenvironmentalfloodhydrologyinfrastructurenationalnetpdfprotectionpublicrequirementsresources
SHARED TOKENS (22): "act", "army", "associated", "authorization", "corps", "development", "division", "enacted", "engineers", "environmental", "flood", "hydrology", "infrastructure", "national", "net", "pdf", "protection", "public", "requirements", "resources"....
0.300
Gold rush ↗ Q273182 KW CROSS HIGH
associatedbecomebeyondcostsdefinedescribeddiscoveryearlyeconomicentryenvironmentalfacilitiesgeneralhistoryincreaseitselflargelocalmajormining
SHARED TOKENS (32): "associated", "become", "beyond", "costs", "define", "described", "discovery", "early", "economic", "entry", "environmental", "facilities", "general", "history", "increase", "itself", "large", "local", "major", "mining"....
0.300
additionalaquiferbasincommercialcomponentsdistributiondownstreamdrainagefacilitiesflowgravitygroundgroundwaterhydraulichydrologicindustrialinstitutionlakelocallyneed
SHARED TOKENS (41): "additional", "aquifer", "basin", "commercial", "components", "distribution", "downstream", "drainage", "facilities", "flow", "gravity", "ground", "groundwater", "hydraulic", "hydrologic", "industrial", "institution", "lake", "locally", "need"....
0.300
amongapproximatelyaquifersassociationboisebureaucanyoncapacitycompletedconservationcontainscountiescreatedcreatesdamsdirectlyedgefederalformationidaho
SHARED TOKENS (44): "among", "approximately", "aquifers", "association", "boise", "bureau", "canyon", "capacity", "completed", "conservation", "contains", "counties", "created", "creates", "dams", "directly", "edge", "federal", "formation", "idaho"....
0.300
Aquifer test ↗ Q446124 KW CROSS HIGH
aquiferaquifersaroundboundarieschangecharacteristicsdataeffectsengineeringflowgeotechnicalhydraulichydrogeologistshydrogeologyincreasemodelmonitoringnumericalpointprimarily
SHARED TOKENS (29): "aquifer", "aquifers", "around", "boundaries", "change", "characteristics", "data", "effects", "engineering", "flow", "geotechnical", "hydraulic", "hydrogeologists", "hydrogeology", "increase", "model", "monitoring", "numerical", "point", "primarily"....
0.300
analysisassessmentbroaderbuildingchangechangesclimatecontroldescribingdueeffectsengineeringfloodfloodingimpactincreaseinfrastructurelandscapelevelmanagement
SHARED TOKENS (38): "analysis", "assessment", "broader", "building", "change", "changes", "climate", "control", "describing", "due", "effects", "engineering", "flood", "flooding", "impact", "increase", "infrastructure", "landscape", "level", "management"....
0.300
aroundbasinbeganchangescharacteristicsclimatecoveringdrainageearlyextensionlargermajormillionnationalnumerouspointresultsnakesouthernvalley
SHARED TOKENS (21): "around", "basin", "began", "changes", "characteristics", "climate", "covering", "drainage", "early", "extension", "larger", "major", "million", "national", "numerous", "point", "result", "snake", "southern", "valley"....
0.300
contaminationdemanddistributiondueflowmaintainedpressureprotectreducedsignificantsourcesstoragesuppliessystemsystemswater
SHARED TOKENS (16): "contamination", "demand", "distribution", "due", "flow", "maintained", "pressure", "protect", "reduced", "significant", "sources", "storage", "supplies", "system", "systems", "water".
0.300
abandonedactactiveagencyamongcontrolcreateddepartmenteffectsenvironmentalfederallandslawminingofficeprogramsreclamationregulatesregulatorysurface
SHARED TOKENS (20): "abandoned", "act", "active", "agency", "among", "control", "created", "department", "effects", "environmental", "federal", "lands", "law", "mining", "office", "programs", "reclamation", "regulates", "regulatory", "surface".
0.300
agricultureaquifersaroundassessmentsbillioncapacitycentralchangechangesclimateconditionsconservationcontextcurrentdemanddevelopmentdifferentdueeconomicenough
SHARED TOKENS (51): "agriculture", "aquifers", "around", "assessments", "billion", "capacity", "central", "change", "changes", "climate", "conditions", "conservation", "context", "current", "demand", "development", "different", "due", "economic", "enough"....
0.300
affectagricultureanalysisanalyzedapplicationaquiferaquifersarsenicboundarycharacteristicscontaminantscontaminationdifferentdueedgegroundgroundwaterhealthhydraulichydrogeology
SHARED TOKENS (49): "affect", "agriculture", "analysis", "analyzed", "application", "aquifer", "aquifers", "arsenic", "boundary", "characteristics", "contaminants", "contamination", "different", "due", "edge", "ground", "groundwater", "health", "hydraulic", "hydrogeology"....
0.300
affectingamongcapacitycleanconstructedconstructioncreatingdamsdemanddirectenergyenvironmentalfailurefloodingimpactissueslandlargemakingnatural
SHARED TOKENS (36): "affecting", "among", "capacity", "clean", "constructed", "construction", "creating", "dams", "demand", "direct", "energy", "environmental", "failure", "flooding", "impact", "issues", "land", "large", "making", "natural"....
0.300
Seed company ↗ Q3478395 KW CROSS HIGH
activeagriculturalcatalogcharacteristicscommercialconservationdatedevelopedearlyfacilitiesgrowthhighlyincreasinglargelargerlatemaintainsmaterialsmodernnational
SHARED TOKENS (34): "active", "agricultural", "catalog", "characteristics", "commercial", "conservation", "date", "developed", "early", "facilities", "growth", "highly", "increasing", "large", "larger", "late", "maintains", "materials", "modern", "national"....
0.300
buildingchangescivilconstructionengineeringexistingformformedinformationlandlargelayerslocallyphysicalpressureprocessprocessesremainssolidstudy
SHARED TOKENS (23): "building", "changes", "civil", "construction", "engineering", "existing", "form", "formed", "information", "land", "large", "layers", "locally", "physical", "pressure", "process", "processes", "remains", "solid", "study"....
0.300
Water table ↗ Q3342272 KW CROSS HIGH
actualaquiferaquifersdeeperdefinedependentdepositsflowgroundgroundwaterhistoricincreasinglayerslevellowermaterialsprecipitationpressuresubsurfacesurface
SHARED TOKENS (22): "actual", "aquifer", "aquifers", "deeper", "define", "dependent", "deposits", "flow", "ground", "groundwater", "historic", "increasing", "layers", "level", "lower", "materials", "precipitation", "pressure", "subsurface", "surface"....
0.300
Water metering ↗ Q268503 KW CROSS HIGH
associationbuildingcommercialdetermineflowmanufacturingmodernoutsidepracticeprocesspublicrequiredrequirementsresidentialstandardssupplysystemtypesvolumewater
SHARED TOKENS (20): "association", "building", "commercial", "determine", "flow", "manufacturing", "modern", "outside", "practice", "process", "public", "required", "requirements", "residential", "standards", "supply", "system", "types", "volume", "water".
0.300
Sedimentology ↗ Q205768 KW CROSS HIGH
affectingcoverencompassesfeaturesformationformedhistorylayersmodernnaturalphysicalpreservedprocessesrecordrelationshipsresultstudysurface
SHARED TOKENS (18): "affecting", "cover", "encompasses", "features", "formation", "formed", "history", "layers", "modern", "natural", "physical", "preserved", "processes", "record", "relationships", "result", "study", "surface".
0.300
basinchangeschannelclimatecreatedrainagedueflowformhighlylandlevellielowerpointrelativelyriverseparatedstreamsystem
SHARED TOKENS (21): "basin", "changes", "channel", "climate", "create", "drainage", "due", "flow", "form", "highly", "land", "level", "lie", "lower", "point", "relatively", "river", "separated", "stream", "system"....
0.300
accessalreadycannotcharacteristicscleancompetingcontrolcostsdifferentdueenergyentityfederalfrequentlygovernmentinfrastructureinstitutionlargelocalmaintains
SHARED TOKENS (41): "access", "already", "cannot", "characteristics", "clean", "competing", "control", "costs", "different", "due", "energy", "entity", "federal", "frequently", "government", "infrastructure", "institution", "large", "local", "maintains"....
0.300
actaffectagriculturalanotherapplicationsbeneficialchangeclimatecommercialconservationcurrentdemanddevelopmentfuturegrowthirrigationlevellocalmakesmanagement
SHARED TOKENS (36): "act", "affect", "agricultural", "another", "applications", "beneficial", "change", "climate", "commercial", "conservation", "current", "demand", "development", "future", "growth", "irrigation", "level", "local", "makes", "management"....
0.300
actactiveagenciesapproximatelyarmybillionbudgetbuildingcanalscapacitycivilcleancomponentsconstructioncontrolcorpsdamsdepartmentdesigndirect
SHARED TOKENS (65): "act", "active", "agencies", "approximately", "army", "billion", "budget", "building", "canals", "capacity", "civil", "clean", "components", "construction", "control", "corps", "dams", "department", "design", "direct"....
0.300
Pumping station ↗ KW CROSS HIGH
agriculturalallowinganotherapplicationscanalcanalscontainingcriticaldemanddesigndesigneddevelopmentdifferentdrainageenergyenvironmentalequipmentfacilitiesfloodinggravity
SHARED TOKENS (50): "agricultural", "allowing", "another", "applications", "canal", "canals", "containing", "critical", "demand", "design", "designed", "development", "different", "drainage", "energy", "environmental", "equipment", "facilities", "flooding", "gravity"....
0.300
Eminent domain ↗ Q166332 KW CROSS HIGH
acquisitionanotherapplicationcommonlyconnectdevelopmentevenfullfunctionsgovernmentimpactlandlaterlegalownershippowerprivatepropertiespropertypublic
SHARED TOKENS (32): "acquisition", "another", "application", "commonly", "connect", "development", "even", "full", "functions", "government", "impact", "land", "later", "legal", "ownership", "power", "private", "properties", "property", "public"....
0.300
addressingaffectagriculturalagriculturecentralchangechangesclimateconcentratedcontaminationdevelopmentdirectdischargedownstreameconomiceffectsenterenvironmentenvironmentalfields
SHARED TOKENS (48): "addressing", "affect", "agricultural", "agriculture", "central", "change", "changes", "climate", "concentrated", "contamination", "development", "direct", "discharge", "downstream", "economic", "effects", "enter", "environment", "environmental", "fields"....
0.300
Ore genesis ↗ Q7100977 KW CROSS HIGH
actactiveanalysiscomponentscurrentdepositsformgeologicallargemechanismmovingphysicalprocessrequiredrightsolidsourcetypes
SHARED TOKENS (18): "act", "active", "analysis", "components", "current", "deposits", "form", "geological", "large", "mechanism", "moving", "physical", "process", "required", "right", "solid", "source", "types".
0.300
acresboisebureaucanalcapacitycomponentsdamsdesigneddistrictembankmentshistoricidahoirrigationlowernampanationalplaceplacesprogramproject
SHARED TOKENS (27): "acres", "boise", "bureau", "canal", "capacity", "components", "dams", "designed", "district", "embankments", "historic", "idaho", "irrigation", "lower", "nampa", "national", "place", "places", "program", "project"....
0.300
Maize ↗ Q11575 KW CROSS HIGH
alongsideannualbecomebecomesbillioncommercialcontainsmajormodernproducedproductionsouthernspeciestreatmentuses
SHARED TOKENS (15): "alongside", "annual", "become", "becomes", "billion", "commercial", "contains", "major", "modern", "produced", "production", "southern", "species", "treatment", "uses".
0.300
classificationcodecommonlyconcerningdepositsdescriptiondevelopeddevelopmenteconomicevaluationframeworkhistoricalminingresourceresourcessitestandardssystems
SHARED TOKENS (18): "classification", "code", "commonly", "concerning", "deposits", "description", "developed", "development", "economic", "evaluation", "framework", "historical", "mining", "resource", "resources", "site", "standards", "systems".
0.300
accessalonealteramongaquifersassociatedavailabilitybasinbecomebecomesbroadchangesclimateconditionsconflictscontroldescribingeconomicelementsgovernment
SHARED TOKENS (53): "access", "alone", "alter", "among", "aquifers", "associated", "availability", "basin", "become", "becomes", "broad", "changes", "climate", "conditions", "conflicts", "control", "describing", "economic", "elements", "government"....
0.300
aroundbeneficialcreatingdueequipmentfieldsformedhighlyirrigatedirrigationlandlargesectionsystemswater
SHARED TOKENS (15): "around", "beneficial", "creating", "due", "equipment", "fields", "formed", "highly", "irrigated", "irrigation", "land", "large", "section", "systems", "water".
0.300
actapprovalapprovedbuildingcommercialconstructioncontextcontractorscostscreatesdesigndeterminedevelopersdevelopmentdifferenteconomicengineersenvironmentalestateexisting
SHARED TOKENS (49): "act", "approval", "approved", "building", "commercial", "construction", "context", "contractors", "costs", "creates", "design", "determine", "developers", "development", "different", "economic", "engineers", "environmental", "estate", "existing"....
0.300
Oregon Trail ↗ Q862312 KW CROSS HIGH
completecompletedcoursecurrenteasternformhistoricidahoincreasinglylowermakingmodernorganizedpointriverseparatevalleywestern
SHARED TOKENS (18): "complete", "completed", "course", "current", "eastern", "form", "historic", "idaho", "increasingly", "lower", "making", "modern", "organized", "point", "river", "separate", "valley", "western".
🫐 BERRY33 edges
0.280
allowingdesigneddirectlyirrigationmaintainednetworkoperatedplacepotentialsurfacesystemsystemstypeswater
SHARED TOKENS (14): "allowing", "designed", "directly", "irrigation", "maintained", "network", "operated", "place", "potential", "surface", "system", "systems", "types", "water".
0.280
Igneous rock ↗ Q42045 KW CROSS HIGH
changeexistingformformedgeologicalincreaselargenaturaloccursplatformspressureprocessessurfacetypes
SHARED TOKENS (14): "change", "existing", "form", "formed", "geological", "increase", "large", "natural", "occurs", "platforms", "pressure", "processes", "surface", "types".
0.280
agencyassociationidahointegrated
SHARED TOKENS (4): "agency", "association", "idaho", "integrated". | EXACT TITLE in water_rights: "Idaho State Bar".
0.280
Agriculture in Idaho ↗ KW CROSS HIGH
acresagriculturalagriculturedifferenteconomyidaholandmillionprocessingproductionrepresentsrolesectorsignificant
SHARED TOKENS (14): "acres", "agricultural", "agriculture", "different", "economy", "idaho", "land", "million", "processing", "production", "represents", "role", "sector", "significant".
0.280
carriesdeeperdepositsenvironmentformhealthimpactlargerminingrelativelysafetysignificantsurfaceunderground
SHARED TOKENS (14): "carries", "deeper", "deposits", "environment", "form", "health", "impact", "larger", "mining", "relatively", "safety", "significant", "surface", "underground".
0.260
changesdeepdifferentgeologicalhistoricalhistorymethodsprocessesstructuralstudysubsurfacesurfaceuses
SHARED TOKENS (13): "changes", "deep", "different", "geological", "historical", "history", "methods", "processes", "structural", "study", "subsurface", "surface", "uses".
0.260
Alfalfa ↗ Q156106 EXACT TITLE
aroundcommonlyspecies
SHARED TOKENS (3): "around", "commonly", "species". | EXACT TITLE in water_rights: "Alfalfa".
0.260
actchaptercodedevelopmentenactedfederallawpowerprojectspurposeregulationtitlewater
SHARED TOKENS (13): "act", "chapter", "code", "development", "enacted", "federal", "law", "power", "projects", "purpose", "regulation", "title", "water".
0.240
aroundbasinbureaucontainslandsmajornorthwestpacificriversouthernsouthwestwestern
SHARED TOKENS (12): "around", "basin", "bureau", "contains", "lands", "major", "northwest", "pacific", "river", "southern", "southwest", "western".
0.240
basinconservationdemanddescribeeffectsenvironmentalgroundwaterphysicalpracticesuppliessurfacewater
SHARED TOKENS (12): "basin", "conservation", "demand", "describe", "effects", "environmental", "groundwater", "physical", "practice", "supplies", "surface", "water".
0.240
adaboisecapitaldistrictidahojurisdictionlocalmetropolitannorthwestpacificpopulationprivate
SHARED TOKENS (12): "ada", "boise", "capital", "district", "idaho", "jurisdiction", "local", "metropolitan", "northwest", "pacific", "population", "private".
0.240
Lateral canal ↗ Q6495566 KW CROSS HIGH
anothercanalcanalsconstructingcourseexistingfloodnaturalprovideriverstreamwater
SHARED TOKENS (12): "another", "canal", "canals", "constructing", "course", "existing", "flood", "natural", "provide", "river", "stream", "water".
0.220
amongeasternlandlaworganizedownershippossesspropertyrightssystemwater
SHARED TOKENS (11): "among", "eastern", "land", "law", "organized", "ownership", "possess", "property", "rights", "system", "water".
0.220
criticaldemanddueelementsenergyexpansionmaterialsnationalrolesciencesupply
SHARED TOKENS (11): "critical", "demand", "due", "elements", "energy", "expansion", "materials", "national", "role", "science", "supply".
0.220
controldistinctgoverninglawownershippropertyqualityrelatedresourceresourceswater
SHARED TOKENS (11): "control", "distinct", "governing", "law", "ownership", "property", "quality", "related", "resource", "resources", "water".
0.210
subdivision
SHARED TOKENS (1): "subdivision". | EXACT TITLE in geology: "Subdivision". | EXACT TITLE in water_rights: "Subdivision".
0.210
Abandon ↗ Q397584 EXACT TITLE
abandoned
SHARED TOKENS (1): "abandoned". | EXACT TITLE in geology: "Abandon". | EXACT TITLE in water_rights: "Abandon".
0.200
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SHARED TOKENS (10): "distribution", "flood", "form", "gravity", "irrigation", "management", "significant", "surface", "therefore", "water".
0.200
Forfeit ↗ Q16738558 EXACT TITLE
topics
EXACT TITLE in water_rights: "Forfeit".
0.200
Fluorite ↗ Q102151 KW CROSS HIGH
commonlydefinesformmakingproductionsourceusableusesvaluevisible
SHARED TOKENS (10): "commonly", "defines", "form", "making", "production", "source", "usable", "uses", "value", "visible".
0.200
Graben ↗ Q192810 EXACT TITLE
blockfaultsgeologygrabennormal
EXACT TITLE in geology: "Graben".
0.180
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SHARED TOKENS (9): "act", "conservation", "enacted", "federal", "governing", "law", "resource", "solid", "waste".
0.180
Parma, Idaho ↗ Q1522393 KW CROSS HIGH
boisecaldwellcanyoneasternidahometropolitannampapopulationwestern
SHARED TOKENS (9): "boise", "caldwell", "canyon", "eastern", "idaho", "metropolitan", "nampa", "population", "western".
0.180
Great Basin ↗ Q966943 KW CROSS HIGH
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SHARED TOKENS (9): "basin", "climate", "idaho", "large", "miles", "point", "portions", "valley", "western".
0.180
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SHARED TOKENS (9): "agency", "continuing", "department", "federal", "government", "management", "natural", "protect", "wildlife".
0.160
associatedexaminationhistoryidahonorthwestpacificsouthernwestern
SHARED TOKENS (8): "associated", "examination", "history", "idaho", "northwest", "pacific", "southern", "western".
0.160
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SHARED TOKENS (8): "associated", "boise", "contains", "extends", "idaho", "metropolitan", "population", "valley".
0.120
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SHARED TOKENS (6): "boise", "canyon", "idaho", "metropolitan", "nampa", "population".
0.120
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SHARED TOKENS (6): "approximately", "associated", "contains", "deposits", "later", "significant".
0.100
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SHARED TOKENS (5): "boise", "ground", "idaho", "metropolitan", "population".
0.100
idahomakingpopulationsourcesouthern
SHARED TOKENS (5): "idaho", "making", "population", "source", "southern".
0.100
Columbia Plateau ↗ KW CROSS HIGH
floodgeographicidaholiesriver
SHARED TOKENS (5): "flood", "geographic", "idaho", "lies", "river".
0.100
ownershipprivatepropertypublicresources
SHARED TOKENS (5): "ownership", "private", "property", "public", "resources".
◈ Frequently Asked Questions
Geology × Water Rights — Treasure Valley
HAIKU · HIGH GATE
How does the hydrogeology of the Treasure Valley affect groundwater rights allocation?
The Snake River aquifer system underlying the Treasure Valley determines how much groundwater is legally available for distribution under Idaho water law, since water rights depend on the actual quantity of accessible groundwater in each zone. Boise State University and University of Idaho researchers map these aquifer boundaries to help the state agency establish senior and junior water rights claims based on geological recharge rates and storage capacity.
Why does arsenic contamination in Treasure Valley groundwater matter for water rights holders?
Arsenic naturally occurs in the volcanic and sedimentary geology of the Treasure Valley, and the Clean Water Act requires water quality standards that affect which wells can legally supply public water systems in Boise and surrounding areas. Well owners and water rights holders must conduct hydrogeological and environmental engineering assessments to prove their groundwater meets federal and state quality standards before exercising their rights.
What role does geothermal energy geology play in Treasure Valley water rights disputes?
Geothermal features in the Treasure Valley geology indicate deeper groundwater circulation patterns that determine recharge zones and the movement of water rights-protected aquifers. When developers propose geothermal projects, hydrology studies commissioned through University of Idaho and Boise State University must show the work will not deplete or contaminate the Snake River groundwater system that feeds senior water rights holders.
How do geological surveys of the Snake River basin inform Idaho's water rights enforcement?
State water agencies use hydrogeological mapping of the Snake River basin to measure whether groundwater withdrawals by junior rights holders actually reduce flows available to senior rights holders, a critical determination under Idaho water law. The Treasure Valley's complex geology of layered aquifers requires environmental engineering expertise from University of Idaho researchers to trace whether a well's water comes from the Snake River system or isolated formations.
◈ Provenance Chain · refinery-treasurevalley-v1.0.0
Geology × Water Rights 32 QID bridges 246 edges 6,411 ext links 2026-07-17 21:01:39 UTC 62931fe98feabb41
Geology corridor ↗ Water Rights corridor ↗ Water Rights × Geology ↗ boisestandard.org/standard ↗
Parent Corridors
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