[1]

Bahls P. 1992. The status of fish populations and management of high mountain lakes in the western United States. Northwest Science 66:183−193

[2]

Wiley RW. 2003. Planting trout in Wyoming high-elevation wilderness waters. Fisheries 28:22−27

doi: 10.1577/1548-8446(2003)28[22:ptiwhw]2.0.co;2
[3]

Armstrong TW, Knapp RA. 2004. Response by trout populations in alpine lakes to an experimental halt to stocking. Canadian Journal of Fisheries and Aquatic Sciences 61:2025−2037

doi: 10.1139/f04-144
[4]

Cassinelli JD, Meyer KA, Koenig MK, Vu NV, Campbell MR. 2019. Performance of diploid and triploid westslope cutthroat trout fry stocked into Idaho alpine lakes. North American Journal of Fisheries Management 39:112−123

doi: 10.1002/nafm.10254
[5]

Hoagland JF. 1973. A description of anglers and angling use in two areas of the Uinta Mountains. Thesis. Utah State University, US

[6]

Koenig MK, Kozfkay JR, Meyer KA, Schill DJ. 2011. Performance of diploid and triploid rainbow trout stocked in Idaho alpine lakes. North American Journal of Fisheries Management 31:124−133

doi: 10.1080/02755947.2011.561163
[7]

McCormick JL. 2015. Feasibility and evaluation of probabilistic on-site surveys for estimating angler use and catch in high mountain lakes. North American Journal of Fisheries Management 35:1152−1163

doi: 10.1080/02755947.2015.1088490
[8]

Koenig M. 2020. Opinions and preferences of Idaho anglers – results of the 2017 angler opinion survey. Report Number 20–109. Idaho Department of Fish and Game, Boise, ID

[9]

Wyoming Game and Fish Department. 2002. Annual progress report for projects in the 2001 work schedule. Wyoming Game and Fish Department, Cheyenne, WY

[10]

Birdsong M, Hunt LM, Arlinghaus R. 2021. Recreational angler satisfaction: what drives it? Fish and Fisheries 22:682−706

doi: 10.1111/faf.12545
[11]

Hunt LM, Camp E, van Poorten B, Arlinghaus R. 2019. Catch and non-catch-related determinants of where anglers fish: a review of three decades of site choice research in recreational fisheries. Reviews in Fisheries Science & Aquaculture 27:261−286

doi: 10.1080/23308249.2019.1583166
[12]

Adamowicz W, Louviere J, Williams M. 1994. Combining revealed and stated preference methods for valuing environmental amenities. Journal of Environmental Economics and Management 26:271−292

doi: 10.1006/jeem.1994.1017
[13]

Beardmore B, Hunt LM, Haider W, Dorow M, Arlinghaus R. 2015. Effectively managing angler satisfaction in recreational fisheries requires understanding the fish species and the anglers. Canadian Journal of Fisheries and Aquatic Sciences 72:500−513

doi: 10.1139/cjfas-2014-0177
[14]

Bachman RA, Stinefelt HJ, Gougeon CR. 1989. Wild trout management in the eastern megalopolis. In Wild Trout IV, eds Richardson F, Hamre RH. Arlington, Virginia: Trout Unlimited. pp. 141–152

[15]

Mallet J, Thurow RF. 2022. Resurrecting an Idaho icon: how research and management reversed declines of native westslope cutthroat trout. Fisheries 47:104−117

doi: 10.1002/fsh.10697
[16]

Bailey PE, Hubert WA. 2003. Factors associated with stocked cutthroat trout populations in high-mountain lakes. North American Journal of Fisheries Management 23:611−618

doi: 10.1577/1548-8675(2003)023<0611:FAWSCT>2.0.CO;2
[17]

Policansky D. 2002. Catch-and-release recreational fishing: a historical perspective. In Recreational Fisheries: Ecological, Economic, and Social Evaluation, eds Pitcher T, Hollingworth C. Oxford, UK: Blackwell Science. pp. 74–94

[18]

Meyer KA, Chiaramonte LV, High B, Heckel JW, Thiessen JD, et al. 2024. Exploitation and catch and release of salmonids in Idaho high mountain lakes. North American Journal of Fisheries Management 44:915−924

doi: 10.1002/nafm.11013
[19]

Ayllón D, Nicola GG, Elvira B, Almodóvar A. 2021. Climate change will render size-selective harvest of cold-water fish species unsustainable in Mediterranean freshwaters. Journal of Applied Ecology 58:562−575

doi: 10.1111/1365-2664.13805
[20]

Rypel AL, Goto D, Sass GG, Vander Zanden MJ. 2015. Production rates of walleye and their relationship to exploitation in Escanaba Lake, Wisconsin, 1965–2009. Canadian Journal of Fisheries and Aquatic Sciences 72:834−844

doi: 10.1139/cjfas-2014-0394
[21]

Smith NG, Daugherty DJ, Schlechte JW, Buckmeier DL. 2018. Modeling the responses of alligator gar populations to harvest under various length‐based regulations: implications for conservation and management. Transactions of the American Fisheries Society 147:665−673

doi: 10.1002/tafs.10040
[22]

Marchetto A, Mosello R, Psenner R, Bendetta G, Boggero A, et al. 1995. Factors affecting water chemistry of alpine lakes. Aquatic Sciences 57:81−89

doi: 10.1007/BF00878028
[23]

Kamenik C, Schmidt R, Kum G, Psenner R. 2001. The influence of catchment characteristics on the water chemistry of mountain lakes. Arctic, Antarctic, and Alpine Research 33:404−409

doi: 10.1080/15230430.2001.12003448
[24]

Yu H, Shi X, Zhao S, Sun B, Liu Y, et al. 2022. Primary productivity of phytoplankton and its influencing factors in cold and arid regions: a case study of Wuliangsuhai Lake, China. Ecological Indicators 144:109545

doi: 10.1016/j.ecolind.2022.109545
[25]

Downing JA, Plante C, Lalonde S. 1990. Fish production correlated with primary productivity, not the morphoedaphic index. Canadian Journal of Fisheries and Aquatic Sciences 47:1929−1936

doi: 10.1139/f90-217
[26]

Morris DP, Lewis WM Jr. 1988. Phytoplankton nutrient limitation in Colorado mountain lakes. Freshwater Biology 20:315−327

doi: 10.1111/j.1365-2427.1988.tb00457.x
[27]

Boggero A, Barbieri A, Conedera M, Marchetto A, Mosello R, et al. 1993. Land cover as a factor influencing the chemistry of mountain lakes in the Western Alps. Proceedings of the International Society of Limnology 25:772−775

doi: 10.1080/03680770.1992.11900246
[28]

Weatherley NS, Campbell-Lendrum EW, Ormerod SJ. 1991. The growth of brown trout (Salmo trutta) in mild winters and summer droughts in upland Wales: model validation and preliminary predictions. Freshwater Biology 26:121−131

doi: 10.1111/j.1365-2427.1991.tb00514.x
[29]

Parra I, Almodóvar A, Nicola GG, Elvira B. 2009. Latitudinal and altitudinal growth patterns of brown trout Salmo trutta at different spatial scales. Journal of Fish Biology 74:2355−7233

doi: 10.1111/j.1095-8649.2009.02249.x
[30]

Nilsson NA, Northcote TG. 1981. Rainbow trout (Salmo gairdneri) and cutthroat trout (S. clarki) interactions in coastal British Columbia Lakes. Canadian Journal of Fisheries and Aquatic Sciences 38:1228−1246

doi: 10.1139/f81-165
[31]

Haugen TO, Rygg TA. 1996. Intra- and interspecific life history differences in sympatric grayling and brown trout in a Norwegian reservoir. Journal of Fish Biology 48:964−978

doi: 10.1111/j.1095-8649.1996.tb01490.x
[32]

Bonvechio KI, Hooley SM, Crawford S, Sawyers RE. 2012. Comparison of sinking and floating gill nets for collecting shads (Dorosoma spp.) in shallow Florida lakes. Lake and Reservoir Management 28:1−9

doi: 10.1080/07438141.2011.632707
[33]

van Zyll de Jong M, Adams B, Cote D, Cowx I. 2017. The effects of population density and lake characteristics on growth and size structure of brook trout Salvelinus fontinalis (Mitchill, 1815) in boreal forest lakes in Canada. Journal of Applied Ichthyology 33:957−965

doi: 10.1111/jai.13407
[34]

Rabe FW. 2001. High mountain lake research natural areas in Idaho. Technical Report RMRS-GTR-77. U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Fort Collins, CO. doi: 10.2737/RMRS-GTR-77

[35]

Meyer KA, Schill DJ. 2007. Multistate high mountain lake Summit. Report, 07–55. Idaho Department of Fish and Game, Boise, ID

[36]

Roth CJ, Kennedy PA, Meyer KA. 2022. Population characteristics of brook trout in Idaho streams and alpine lakes. Northwest Science 95:245−259

doi: 10.3955/046.095.0302
[37]

Donald DB, Anderson RS, Mayhood DW. 1980. Correlations between brook trout growth and environmental, variables for mountain lakes in Alberta. Transactions of the American Fisheries Society 109:603−610

doi: 10.1577/1548-8659(1980)109<603:cbbtga>2.0.co;2
[38]

Chamberlain CB, and Hubert WA. 1996. Factors affecting brook trout populations in lakes and reservoirs in Wyoming. Journal of Freshwater Ecology 11:301−309

doi: 10.1080/02705060.1996.9664452
[39]

Google Inc. 2022. Google Earth Pro. Release 7.3.6. Google Inc., Mountain View CA

[40]

Borgstrøm R. 2001. Relationship between spring snow depth and growth of brown trout, Salmo trutta, in an alpine lake: predicting consequences of climate change. Arctic, Antarctic, and Alpine Research 33:476−480

doi: 10.1080/15230430.2001.12003457
[41]

Ohlendorf C, Bigler C, Goudsmit GH, Lemcke G, Livingstone DM, et al. 2000. Causes and effects of long periods of ice cover on a remote high Alpine lake. Journal of Limnology 59:65−80

doi: 10.4081/jlimnol.2000.s1.65
[42]

Minshall GW, Cummins KW, Petersen RC, Cushing CE, Bruns DA, et al. 1985. Developments in stream ecosystem theory. Canadian Journal of Fisheries and Aquatic Sciences 42:1045−1055

doi: 10.1139/f85-130
[43]

Sanderson BL, Coe HJ, Tran CD, Macneale KH, Harstad DL, et al. 2009. Nutrient limitation of periphyton in Idaho streams: results from nutrient diffusing substrate experiments. Journal of the North American Benthological Society 28:832−845

doi: 10.1899/09-072.1
[44]

Lewis RS, Link PK, Stanford LR, Long SP. 2012. Geological map of Idaho. Idaho Geological Survey Geological Map 9, Boise, ID

[45]

Suchet PA, Probst JL, Ludwig W. 2003. Worldwide distribution of continental rock lithology: implications for the atmospheric/soil CO2 uptake by continental weathering and alkalinity river transport to the oceans. Global Biogeochemical Cycles 17(2):2002GB001891

doi: 10.1029/2002gb001891
[46]

SAS Institute. 2009. SAS/STAT 9.2 user's guide, second edition. SAS Institute, Cary, North Carolina

[47]

Burnham KP, Anderson DR. 2002. Model selection and multimodel inference: a practical information-theoretic approach. New York, NY: Springer Verlag. doi: 10.1007/b97636

[48]

Burnham KP, Anderson DR. 2004. Multimodel inference: understanding AIC and BIC in model selection. Sociological Methods & Research 33:261−304

doi: 10.1177/0049124104268644
[49]

Switalski A. 2018. Off-highway vehicle recreation in drylands: a literature review and recommendations for best management practices. Journal of Outdoor Recreation and Tourism 21:87−96

doi: 10.1016/j.jort.2018.01.001
[50]

Ploughe LW, Fraser LH. 2022. Find new RoadsTM? A systematic review on the impacts of off-road vehicle activity on soil, vegetation, and wildlife. Frontiers in Ecology and Evolution 9:805707

doi: 10.3389/fevo.2021.805707
[51]

Risley CAL, Zydlewski J. 2010. Assessing the effects of catch‐and‐release regulations on a brook trout population using an age‐structured model. North American Journal of Fisheries Management 30:1434−1444

doi: 10.1577/M09-158.1
[52]

Carosi A, Ghetti L, Soresina A, Lorenzoni M. 2022. Catch and Release angling: implications for the management and conservation of the Mediterranean trout in central Italy. Fisheries Research 250:106285

doi: 10.1016/j.fishres.2022.106285
[53]

Norman S, Nilsson KA, Klaus M, Seekell D, Karlsson J, et al. 2022. Effects of habitat-specific primary production on fish size, biomass, and production in northern oligotrophic lakes. Ecosystems 25:1555−1570

doi: 10.1007/s10021-021-00733-6
[54]

Reimers N, Maciolek JA, Pister EP. 1955. Limnological study of the lakes in Convict Creek Basin, Mono County, California. United States Department of the Interior, Fish and Wildlife Service. Fishery Bulletin 103:437−503

[55]

Kaemingk MA, Hurley KL, Chizinski CJ, Pope KL. 2020. Harvest–release decisions in recreational fisheries. Canadian Journal of Fisheries and Aquatic Sciences 77:194−201

doi: 10.1139/cjfas-2019-0119
[56]

Pitts HM, Thacher JA, Champ PA, Berrens RP. 2012. A hedonic price analysis of the outfitter market for trout fishing in the Rocky Mountain west. Human Dimensions of Wildlife 17:446−462

doi: 10.1080/10871209.2012.677939
[57]

Dabrowksa K, Hunt LM, Haider W. 2017. Understanding how angler characteristics and context influence angler preferences for fishing sites. North American Journal of Fisheries Management 37:1350−1361

doi: 10.1080/02755947.2017.1383325
[58]

Hall DL. 1991. Age validation and aging methods for stunted brook trout. Transactions of the American Fisheries Society 120:644−649

doi: 10.1577/1548-8659(1991)1200644:avaamf>2.3.co;2
[59]

Hall DL. 1991. Growth, fecundity, and recruitment responses of stunted Brook Trout populations to density reduction. Doctoral dissertation. University of British Columbia, Vancouver

[60]

Donald DB, Alger DJ. 1989. Evaluation of exploitation as a means of improving growth in a stunted population of brook trout. North American Journal of Fisheries Management 9:177−183

doi: 10.1577/1548-8675(1989)009<0177:eoeaam>2.3.co;2
[61]

Pacas C, Taylor MK. 2015. Nonchemical eradication of an introduced trout from a headwater complex in Banff National Park, Canada. North American Journal of Fisheries Management 35:748−754

doi: 10.1080/02755947.2015.1043412
[62]

Dunham JB, Pilliod DS, Young MK. 2004. Assessing the consequences of nonnative trout in headwater ecosystems in western North America. Fisheries 29(6):18−26

doi: 10.1577/1548-8446(2004)29[18:atcont]2.0.co;2
[63]

Wolfe AP, Van Gorp AC, Baron JS. 2003. Recent ecological and biogeochemical changes in alpine lakes of Rocky Mountain National Park (Colorado, USA): a response to anthropogenic nitrogen deposition. Geobiology 1:153−168

doi: 10.1046/j.1472-4669.2003.00012.x
[64]

Brahney J, Mahowald N, Ward DS, Ballantyne AP, Neff JC. 2015. Is atmospheric phosphorus pollution altering global alpine Lake stoichiometry? Global Biogeochemical Cycles 29:1369−1383

doi: 10.1002/2015GB005137
[65]

Rogora M, Mosello R, Arisci S. 2003. The effect of climate warming on the hydrochemistry of alpine lakes. Water, Air, and Soil Pollution 148:347−361

doi: 10.1023/A:1025489215491
[66]

Connolly PJ, Hall JD. 1999. Biomass of coastal cutthroat trout in unlogged and previously clear-cut basins in the central Coast Range of Oregon. Transactions of the American Fisheries Society 128:890−899

doi: 10.1577/1548-8659(1999)128<0890:BOCCTI>2.0.CO;2
[67]

Blanchfield PJ, Ridgway MS. 1997. Reproductive timing and use of redd sites by lake-spawning brook trout (Salvelinus fontinalis). Canadian Journal of Fisheries and Aquatic Sciences 54:747−756

doi: 10.1139/f96-344
[68]

Warren DR, Robinson JM, Josephson DC, Sheldon DR, Kraft CE. 2012. Elevated summer temperatures delay spawning and reduce redd construction for resident brook trout (Salvelinus fontinalis). Global Change Biology 18:1804−1811

doi: 10.1111/j.1365-2486.2012.02670.x
[69]

Vlah MJ, Holtgrieve GW, Sadro S. 2018. Low levels of allochthony in consumers across three high-elevation lake types. Ecosystems 21:1101−1117

doi: 10.1007/s10021-017-0206-0
[70]

Milardi M, Käkelä R, Weckström J, Kahilainen KK. 2016. Terrestrial prey fuels the fish population of a small, high-latitude lake. Aquatic Sciences 78:695−706

doi: 10.1007/s00027-015-0460-1
[71]

Neumann RM, Allen MS. 2007. Size structure. In Analysis and Interpretation of Freshwater Fisheries Data, eds Guy CS, Brown ML. Bethesda, MD: American Fisheries Society. pp. 375–421 doi: 10.47886/9781888569773.ch9

[72]

Ahti PA, Kuparinen A, Uusi-Heikkilä S. 2020. Size does matter—the eco-evolutionary effects of changing body size in fish. Environmental Reviews 28:311−324

doi: 10.1139/er-2019-0076
[73]

Donald DB, Anderson RS. 1982. Importance of environment and stocking density for growth of rainbow trout in mountain lakes. Transactions of the American Fisheries Society 111:675−680

doi: 10.1577/1548-8659(1982)111<675:ioeasd>2.0.co;2
[74]

Smith K, Lavis ME. 1975. Environmental influences on the temperature of a small upland stream. Oikos 26:228−236

doi: 10.2307/3543713
[75]

Stiff RK. 1998. Factors affecting growth of Yellowstone cutthroat trout (Oncorhynchus clarki bouvieri) in alpine lakes, of the Abasroka-Beartooth wilderness, Montana. Thesis. Montana State University, US

[76]

Hessen DO. 1992. Nutrient element limitation of zooplankton production. The American Naturalist 140:799−814

doi: 10.1086/285441
[77]

Tiberti R, Brighenti S, Iacobuzio R, Pasquini G, Rolla M. 2014. Behind the impact of introduced trout in high altitude lakes: adult, not juvenile fish are responsible of the selective predation on crustacean zooplankton. Journal of Limnology 73:593−597

doi: 10.4081/jlimnol.2014.969
[78]

Westerling AL, Hidalgo HG, Cayan DR, Swetnam TW. 2006. Warming and earlier spring increase western US forest wildfire activity. Science 313(5789):940−943

doi: 10.1126/science.1128834
[79]

Weber KT, Yadav R. 2020. Spatiotemporal trends in wildfires across the Western United States (1950–2019). Remote Sensing 12:2959

doi: 10.3390/rs12182959
[80]

McCullough IM, Cheruvelil KS, Lapierre JF, Lottig NR, Moritz MA, et al. 2019. Do lakes feel the burn? Ecological consequences of increasing exposure of lakes to fire in the continental United States. Global Change Biology 25:2841−2854

doi: 10.1111/gcb.14732
[81]

Bohlin T, Sundström LF, Johnsson JI, Höjesjö J, Pettersson J. 2002. Density-dependent growth in brown trout: effects of introducing wild and hatchery fish. Journal of Animal Ecology 71:683−692

doi: 10.1046/j.1365-2656.2002.00631.x
[82]

Miller RB. 1954. Comparative survival of wild and hatchery-reared cutthroat trout in a stream. Transactions of the American Fisheries Society 83:120−130

doi: 10.1577/1548-8659(1953)83[120:CSOWAH]2.0.CO;2