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,{"id":70234336,"text":"70234336 - 2022 - Sub-indicator: Cladophora","interactions":[],"lastModifiedDate":"2022-08-09T13:29:52.027904","indexId":"70234336","displayToPublicDate":"2022-07-29T08:20:24","publicationYear":"2022","noYear":false,"publicationType":{"id":18,"text":"Report"},"publicationSubtype":{"id":4,"text":"Other Government Series"},"title":"Sub-indicator: Cladophora","docAbstract":"Every three years the Great Lakes Executive Committee reports on the status of the Great Lakes' ecosystem based on 9 indicators and several sub-indicators.  This sub-indicator technical report supports assessment of the Nutrients and Algae Indicator by evaluating the status of Cladophora and other benthic algae that can grow to nuisance levels.  Based on established criteria, the overall status for Cladophora was poor, indicating overabundance.  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Milwaukee","active":true,"usgs":false}],"preferred":false,"id":848592,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Howell, Todd","contributorId":294685,"corporation":false,"usgs":false,"family":"Howell","given":"Todd","affiliations":[{"id":63627,"text":"Ontario Ministry of Environment and Climate Change","active":true,"usgs":false}],"preferred":false,"id":848593,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"McCusker, Megan","contributorId":294687,"corporation":false,"usgs":false,"family":"McCusker","given":"Megan","email":"","affiliations":[{"id":36681,"text":"Environment and Climate Change Canada","active":true,"usgs":false}],"preferred":false,"id":848594,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Evans, Mary Anne 0000-0002-1627-7210 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,{"id":70249765,"text":"70249765 - 2022 - Key observations of flexed-leg urination in the free-ranging Gray Wolf (Canis lupus)","interactions":[],"lastModifiedDate":"2023-10-27T12:16:03.178081","indexId":"70249765","displayToPublicDate":"2022-07-29T07:12:09","publicationYear":"2022","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":7173,"text":"Canadian Field Naturalist","active":true,"publicationSubtype":{"id":10}},"title":"Key observations of flexed-leg urination in the free-ranging Gray Wolf (Canis lupus)","docAbstract":"<div class=\"main_entry\"><p>Flexed-leg urination (FLU) in female Gray Wolves (<i>Canis lupus</i>) has been little studied in the wild. Captive females in packs do not exhibit FLU unless they are both mature and dominant to an associate female, but these characteristics have not been confirmed in free-ranging wolves. We present observations of wolves in Yellowstone National Park that accord with those of wolves in captivity, extend our knowledge of FLU in Gray Wolf, pose additional questions about it, and suggest new areas of study to better understand it.</p></div>","language":"English","publisher":"Canadian Field Naturalist","doi":"10.22621/cfn.v136i1.2781","usgsCitation":"Mech, L.D., and McIntyre, R., 2022, Key observations of flexed-leg urination in the free-ranging Gray Wolf (Canis lupus): Canadian Field Naturalist, v. 136, no. 1, p. 10-12, https://doi.org/10.22621/cfn.v136i1.2781.","productDescription":"3 p.","startPage":"10","endPage":"12","ipdsId":"IP-128879","costCenters":[{"id":480,"text":"Northern Prairie Wildlife Research Center","active":true,"usgs":true}],"links":[{"id":446985,"rank":0,"type":{"id":40,"text":"Open Access Publisher Index Page"},"url":"https://doi.org/10.22621/cfn.v136i1.2781","text":"Publisher Index Page"},{"id":422186,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"country":"United States","state":"Wyoming","otherGeospatial":"Yellowstone National Park","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"coordinates\": [\n          [\n            [\n              -111.66059442025166,\n              45.34922449751062\n            ],\n            [\n              -111.66059442025166,\n              42.69553138513359\n            ],\n            [\n              -107.39789910775183,\n              42.69553138513359\n            ],\n            [\n              -107.39789910775183,\n              45.34922449751062\n            ],\n            [\n              -111.66059442025166,\n              45.34922449751062\n            ]\n          ]\n        ],\n        \"type\": \"Polygon\"\n      }\n    }\n  ]\n}","volume":"136","issue":"1","noUsgsAuthors":false,"publicationDate":"2022-07-29","publicationStatus":"PW","contributors":{"authors":[{"text":"Mech, L. David 0000-0003-3944-7769 david_mech@usgs.gov","orcid":"https://orcid.org/0000-0003-3944-7769","contributorId":2518,"corporation":false,"usgs":true,"family":"Mech","given":"L.","email":"david_mech@usgs.gov","middleInitial":"David","affiliations":[{"id":480,"text":"Northern Prairie Wildlife Research Center","active":true,"usgs":true}],"preferred":true,"id":886973,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"McIntyre, Rick","contributorId":331215,"corporation":false,"usgs":false,"family":"McIntyre","given":"Rick","email":"","affiliations":[{"id":79152,"text":"Yellowstone Center for Resources","active":true,"usgs":false}],"preferred":false,"id":886974,"contributorType":{"id":1,"text":"Authors"},"rank":2}]}}
,{"id":70234181,"text":"70234181 - 2022 - Spatiotemporal changes in influenza A virus prevalence among wild waterfowl inhabiting the continental United States throughout the annual cycle","interactions":[],"lastModifiedDate":"2022-08-03T12:09:42.114227","indexId":"70234181","displayToPublicDate":"2022-07-29T07:05:04","publicationYear":"2022","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":3358,"text":"Scientific Reports","active":true,"publicationSubtype":{"id":10}},"title":"Spatiotemporal changes in influenza A virus prevalence among wild waterfowl inhabiting the continental United States throughout the annual cycle","docAbstract":"<div id=\"Abs1-section\" class=\"c-article-section\"><div id=\"Abs1-content\" class=\"c-article-section__content\"><p>Avian influenza viruses can pose serious risks to agricultural production, human health, and wildlife. An understanding of viruses in wild reservoir species across time and space is important to informing surveillance programs, risk models, and potential population impacts for vulnerable species. Although it is recognized that influenza A virus prevalence peaks in reservoir waterfowl in late summer through autumn, temporal and spatial variation across species has not been fully characterized. We combined two large influenza databases for North America and applied spatiotemporal models to explore patterns in prevalence throughout the annual cycle and across the continental United States for 30 waterfowl species. Peaks in prevalence in late summer through autumn were pronounced for dabbling ducks in the genera<span>&nbsp;</span><i>Anas</i><span>&nbsp;</span>and<span>&nbsp;</span><i>Spatula</i>, but not<span>&nbsp;</span><i>Mareca</i>. Spatially, areas of high prevalence appeared to be related to regional duck density, with highest predicted prevalence found across the upper Midwest during early fall, though further study is needed. We documented elevated prevalence in late winter and early spring, particularly in the Mississippi Alluvial Valley. Our results suggest that spatiotemporal variation in prevalence outside autumn staging areas may also represent a dynamic parameter to be considered in IAV ecology and associated risks.</p></div></div>","language":"English","publisher":"Nature","doi":"10.1038/s41598-022-17396-5","usgsCitation":"Kent, C.M., Ramey, A.M., Ackerman, J.T., Bahl, J., Bevins, S.N., Bowman, A.S., Boyce, W., Cardona, C., Casazza, M.L., Cline, T.D., De La Cruz, S.E., Hall, J.S., Hill, N.J., Ip, H., Krauss, S., Mullinax, J.M., Nolting, J.M., Plancarte, M., Poulson, R., Runstadler, J.A., Slemons, R.D., Stallknecht, D., Sullivan, J.D., Takekawa, J., Webby, R.J., Webster, R., and Prosser, D.J., 2022, Spatiotemporal changes in influenza A virus prevalence among wild waterfowl inhabiting the continental United States throughout the annual cycle: Scientific Reports, v. 12, 13083, 10 p., https://doi.org/10.1038/s41598-022-17396-5.","productDescription":"13083, 10 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,{"id":70234195,"text":"70234195 - 2022 - Interspecific and local variation in Tern chick diets across nesting colonies in the Gulf of Maine","interactions":[],"lastModifiedDate":"2022-08-03T12:01:09.932392","indexId":"70234195","displayToPublicDate":"2022-07-29T06:57:12","publicationYear":"2022","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":3731,"text":"Waterbirds","onlineIssn":"19385390","printIssn":"15244695","active":true,"publicationSubtype":{"id":10}},"title":"Interspecific and local variation in Tern chick diets across nesting colonies in the Gulf of Maine","docAbstract":"<div class=\"div0\"><div class=\"row ArticleContentRow\"><p id=\"ID0EF\" class=\"first\">The Gulf of Maine, USA is home to four colonial co-nesting tern species: Least Tern (<i>Sternula antillarum</i>), Common Tern (<i>Sterna hirundo</i>), Arctic Tern (<i>Sterna paradisaea</i>), and the federally endangered Roseate Tern (<i>Sterna dougallii</i>). Over three decades of visual observations of chick provisioning were compiled for a comparative dietary study in the region, including the first detailed descriptions of Least and Roseate Tern chick diets. Three prey groups comprised the majority of chick diets among tern species between 1986–2017: hake (<i>Urophycis</i><span>&nbsp;</span>spp.<span>&nbsp;</span><i>or Enchelyopus cimbrius</i>) 28–37% frequency of occurrence (FO), sand lance (<i>Ammodytes americanus or A. dubius<strong>)</strong></i><span>&nbsp;</span>8–22% FO, and herring (<i>Clupea</i><span>&nbsp;</span>spp<i>. or Alosa</i><span>&nbsp;</span>spp.) 3–30% FO. Dietary contributions varied across species and islands. At two inshore colonies, Common Tern diets contained higher amounts of sand lance (30–42% FO), while offshore islands contained lesser amounts (5–9% FO). Overall dietary diversity (H′) was similar between Common (H′ = 1.57) and Arctic Terns (H′ = 1.74) and notably lower in Roseate (H′ = 1.24) and Least Terns (H′ = 1.37), whose diets were primarily piscivorous. The degree of dietary plasticity and general feeding ecology provided by baseline dietary information can inform holistic assessments of risk to ongoing and future disturbances from fishing and climate change.</p></div></div>","language":"English","publisher":"BioOne","doi":"10.1675/063.044.0402","usgsCitation":"Yakola, K., Jordaan, A., Kress, S., Shannon, P., and Staudinger, M., 2022, Interspecific and local variation in Tern chick diets across nesting colonies in the Gulf of Maine: Waterbirds, v. 44, no. 4, p. 397-414, https://doi.org/10.1675/063.044.0402.","productDescription":"20 p.","startPage":"397","endPage":"414","ipdsId":"IP-109768","costCenters":[{"id":5080,"text":"Northeast Climate Adaptation Science Center","active":true,"usgs":true}],"links":[{"id":404746,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"country":"United States","state":"Maine","otherGeospatial":"Gulf of Maine","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"type\": \"Polygon\",\n        \"coordinates\": [\n          [\n            [\n              -70.77392578125,\n              43.03677585761058\n            ],\n            [\n              -69.06005859375,\n              43.03677585761058\n            ],\n            [\n              -69.06005859375,\n              44.762336674810996\n            ],\n            [\n              -70.77392578125,\n              44.762336674810996\n            ],\n            [\n              -70.77392578125,\n              43.03677585761058\n            ]\n          ]\n        ]\n      }\n    }\n  ]\n}","volume":"44","issue":"4","noUsgsAuthors":false,"publicationStatus":"PW","contributors":{"authors":[{"text":"Yakola, Keenan","contributorId":294489,"corporation":false,"usgs":false,"family":"Yakola","given":"Keenan","affiliations":[{"id":34616,"text":"University of Massachusetts Amherst","active":true,"usgs":false}],"preferred":false,"id":848150,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Jordaan, Adrian","contributorId":294490,"corporation":false,"usgs":false,"family":"Jordaan","given":"Adrian","affiliations":[{"id":34616,"text":"University of Massachusetts Amherst","active":true,"usgs":false}],"preferred":false,"id":848151,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Kress, Stephen","contributorId":294491,"corporation":false,"usgs":false,"family":"Kress","given":"Stephen","affiliations":[{"id":62414,"text":"National Audubon Society Seabird Restoration Program","active":true,"usgs":false}],"preferred":false,"id":848152,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Shannon, Paula","contributorId":294493,"corporation":false,"usgs":false,"family":"Shannon","given":"Paula","email":"","affiliations":[{"id":62414,"text":"National Audubon Society Seabird Restoration Program","active":true,"usgs":false}],"preferred":false,"id":848153,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Staudinger, Michelle 0000-0002-4535-2005","orcid":"https://orcid.org/0000-0002-4535-2005","contributorId":206655,"corporation":false,"usgs":true,"family":"Staudinger","given":"Michelle","affiliations":[{"id":5080,"text":"Northeast Climate Adaptation Science Center","active":true,"usgs":true}],"preferred":true,"id":848154,"contributorType":{"id":1,"text":"Authors"},"rank":5}]}}
,{"id":70254970,"text":"70254970 - 2022 - Nutrient restoration of a large, impounded, ultra-oligotrophic western river to recover declining native fishes","interactions":[],"lastModifiedDate":"2024-06-12T00:45:51.145028","indexId":"70254970","displayToPublicDate":"2022-07-28T19:43:49","publicationYear":"2022","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":2886,"text":"North American Journal of Fisheries Management","active":true,"publicationSubtype":{"id":10}},"title":"Nutrient restoration of a large, impounded, ultra-oligotrophic western river to recover declining native fishes","docAbstract":"<div class=\"abstract-group \"><div class=\"article-section__content en main\"><p>Declines in many fish populations in large, western rivers have been primarily attributed to the anthropogenic reduction of nutrient inputs and subsequent impacts to the food web. The largest known river fertilization program was implemented starting in 2005 on the Kootenai River in northern Idaho to restore resident fisheries. Annual electrofishing surveys were conducted at multiple sites in Idaho and Montana before and during nutrient addition to evaluate assemblage and population-level responses. Although few responses in fish assemblage structure were observed, the addition of liquid ammonium polyphosphate fertilizer (3 μg/L) to the Kootenai River increased fish abundance and biomass over the 20-km stretch of river downstream of the treatment site. Increases were most notable in Largescale Suckers<span>&nbsp;</span><i>Catostomus macrocheilus,</i><span>&nbsp;</span>Mountain Whitefish<span>&nbsp;</span><i>Prosopium williamsoni</i>, and Rainbow Trout<span>&nbsp;</span><i>Oncorhynchus mykiss</i><span>&nbsp;</span>populations, although increases in catch and biomass were detected for nearly all fish species<i>.</i><span>&nbsp;</span>The Kootenai River is approximately 30 times larger in discharge than other rivers that have been experimentally fertilized and provides compelling evidence that the mitigation of nutrient declines in rivers of similar size can result in positive influences on the fish populations where primary and secondary production are limiting growth, survival, and recruitment. However, results from our study also highlight the importance of completing evaluations across varying levels of biological organization (e.g., assemblage and population) and over biologically relevant timeframes.</p></div></div>","language":"English","publisher":"American Fisheries Society","doi":"10.1002/nafm.10792","usgsCitation":"Hardy, R.S., Ross, T.J., McDonnell, K., Quist, M.C., Holderman, C., and Stevens, B., 2022, Nutrient restoration of a large, impounded, ultra-oligotrophic western river to recover declining native fishes: North American Journal of Fisheries Management, v. 42, no. 4, p. 977-993, https://doi.org/10.1002/nafm.10792.","productDescription":"17 p.","startPage":"977","endPage":"993","ipdsId":"IP-134982","costCenters":[{"id":200,"text":"Coop Res Unit Seattle","active":true,"usgs":true}],"links":[{"id":446992,"rank":0,"type":{"id":40,"text":"Open Access Publisher Index Page"},"url":"https://www.osti.gov/biblio/1880174","text":"Publisher Index Page"},{"id":429940,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"country":"United States","state":"Idaho, Montana","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"coordinates\": [\n          [\n            [\n              -116.97207501010362,\n              49.441074796461976\n            ],\n            [\n              -116.97207501010362,\n              47.2211535053967\n            ],\n            [\n              -114.67593243197864,\n              47.2211535053967\n            ],\n            [\n              -114.67593243197864,\n              49.441074796461976\n            ],\n            [\n              -116.97207501010362,\n              49.441074796461976\n            ]\n          ]\n        ],\n        \"type\": \"Polygon\"\n      }\n    }\n  ]\n}","volume":"42","issue":"4","noUsgsAuthors":false,"publicationDate":"2022-07-28","publicationStatus":"PW","contributors":{"authors":[{"text":"Hardy, Ryan S.","contributorId":167032,"corporation":false,"usgs":false,"family":"Hardy","given":"Ryan","email":"","middleInitial":"S.","affiliations":[{"id":6764,"text":"Idaho Department of Fish and Game, Nampa, Idaho","active":true,"usgs":false}],"preferred":false,"id":903000,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Ross, Tyler J.","contributorId":171777,"corporation":false,"usgs":false,"family":"Ross","given":"Tyler","email":"","middleInitial":"J.","affiliations":[],"preferred":false,"id":903001,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"McDonnell, Kevin","contributorId":150586,"corporation":false,"usgs":false,"family":"McDonnell","given":"Kevin","email":"","affiliations":[],"preferred":false,"id":903002,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Quist, Michael C. 0000-0001-8268-1839","orcid":"https://orcid.org/0000-0001-8268-1839","contributorId":207142,"corporation":false,"usgs":true,"family":"Quist","given":"Michael","middleInitial":"C.","affiliations":[{"id":200,"text":"Coop Res Unit Seattle","active":true,"usgs":true}],"preferred":true,"id":903003,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Holderman, Charlie","contributorId":338181,"corporation":false,"usgs":false,"family":"Holderman","given":"Charlie","email":"","affiliations":[{"id":81095,"text":"Kootenai Tribe of Idaho","active":true,"usgs":false}],"preferred":false,"id":903004,"contributorType":{"id":1,"text":"Authors"},"rank":5},{"text":"Stevens, Bryan S.","contributorId":275853,"corporation":false,"usgs":false,"family":"Stevens","given":"Bryan S.","affiliations":[{"id":39599,"text":"ui","active":true,"usgs":false}],"preferred":false,"id":903005,"contributorType":{"id":1,"text":"Authors"},"rank":6}]}}
,{"id":70239298,"text":"70239298 - 2022 - Constraints on the adjustment of tidal marshes to accelerating sea level rise","interactions":[],"lastModifiedDate":"2023-01-06T20:37:20.134822","indexId":"70239298","displayToPublicDate":"2022-07-28T13:53:21","publicationYear":"2022","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":3338,"text":"Science","active":true,"publicationSubtype":{"id":10}},"title":"Constraints on the adjustment of tidal marshes to accelerating sea level rise","docAbstract":"<p><span>Much uncertainty exists about the vulnerability of valuable tidal marsh ecosystems to relative sea level rise. Previous assessments of resilience to sea level rise, to which marshes can adjust by sediment accretion and elevation gain, revealed contrasting results, depending on contemporary or Holocene geological data. By analyzing globally distributed contemporary data, we found that marsh sediment accretion increases in parity with sea level rise, seemingly confirming previously claimed marsh resilience. However, subsidence of the substrate shows a nonlinear increase with accretion. As a result, marsh elevation gain is constrained in relation to sea level rise, and deficits emerge that are consistent with Holocene observations of tidal marsh vulnerability.</span></p>","language":"English","publisher":"American Association for the Advancement of Science","doi":"10.1126/science.abo7872","usgsCitation":"Saintilan, N., Kovalenko, K., Guntenspergen, G.R., Rogers, K., Lynch, J.C., Cahoon, D., Lovelock, C.E., Friess, D.A., Ashe, E., Krauss, K., Cormier, N., Spencer, T., Adams, J., Raw, J., Ibanez, C., Scarton, F., Temmerman, S., Meire, P., Maris, T., Thorne, K., Brazner, J., Chmura, G., Bowron, T., Gamage, V.P., Cressman, K., Endris, C., Marconi, C., Marcum, P., St. Laurent, K., Reay, W.G., Raposa, K.B., Garwood, J.A., and Kahn, N., 2022, Constraints on the adjustment of tidal marshes to accelerating sea level rise: Science, v. 377, no. 6605, p. 523-527, https://doi.org/10.1126/science.abo7872.","productDescription":"5 p.","startPage":"523","endPage":"527","ipdsId":"IP-128228","costCenters":[{"id":651,"text":"Western Ecological Research Center","active":true,"usgs":true},{"id":17705,"text":"Wetland and Aquatic Research Center","active":true,"usgs":true},{"id":50464,"text":"Eastern Ecological Science Center","active":true,"usgs":true}],"links":[{"id":446995,"rank":1,"type":{"id":41,"text":"Open Access External Repository Page"},"url":"https://hdl.handle.net/10067/1897790151162165141","text":"External Repository"},{"id":435753,"rank":0,"type":{"id":30,"text":"Data Release"},"url":"https://doi.org/10.5066/P9UZ4LQ2","text":"USGS data release","linkHelpText":"Constraints on marsh response to accelerating sea level rise"},{"id":411520,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"volume":"377","issue":"6605","noUsgsAuthors":false,"publicationStatus":"PW","contributors":{"authors":[{"text":"Saintilan, Neil","contributorId":300648,"corporation":false,"usgs":false,"family":"Saintilan","given":"Neil","affiliations":[{"id":65215,"text":"Macquarie University, Sydney, Australia","active":true,"usgs":false}],"preferred":false,"id":861040,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Kovalenko, Katya E.","contributorId":275052,"corporation":false,"usgs":false,"family":"Kovalenko","given":"Katya E.","affiliations":[{"id":18006,"text":"University of Minnesota Duluth","active":true,"usgs":false}],"preferred":false,"id":861041,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Guntenspergen, Glenn R. 0000-0002-8593-0244 glenn_guntenspergen@usgs.gov","orcid":"https://orcid.org/0000-0002-8593-0244","contributorId":2885,"corporation":false,"usgs":true,"family":"Guntenspergen","given":"Glenn","email":"glenn_guntenspergen@usgs.gov","middleInitial":"R.","affiliations":[{"id":531,"text":"Patuxent Wildlife Research 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,{"id":70237103,"text":"70237103 - 2022 - Real-time earthquake detection and alerting behavior of PLUM ground-motion-based early warning in the United States","interactions":[],"lastModifiedDate":"2022-09-29T15:17:18.577709","indexId":"70237103","displayToPublicDate":"2022-07-28T10:15:22","publicationYear":"2022","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":1135,"text":"Bulletin of the Seismological Society of America","onlineIssn":"1943-3573","printIssn":"0037-1106","active":true,"publicationSubtype":{"id":10}},"title":"Real-time earthquake detection and alerting behavior of PLUM ground-motion-based early warning in the United States","docAbstract":"<p><span>We examine the real‐time earthquake detection and alerting behavior of the Propagation of Local Undamped Motion (PLUM) earthquake early warning (EEW) algorithm and compare PLUM’s performance with the real‐time performance of the current source‐characterization‐based ShakeAlert System. In the United States (U.S.), PLUM uses a two‐station approach to detect earthquakes. Once a detection is confirmed, observed modified Mercalli intensity (MMI) distributions are forecast onto a regular grid, in which the preferred alert regions are grid cells with MMI 4.0+ forecasts. Although locations of dense station coverage allow PLUM to detect small (</span><strong>M</strong><span>&nbsp;&lt; 4.5) earthquakes typically not considered for EEW in the U.S., a PLUM detection on a small earthquake does not always generate an alert. This is because PLUM alerts are determined by current shaking distributions. If the MMI 4.0+ shaking subsides prior to detection confirmation by shaking at a second neighboring station, the prior MMI 4.0+ information will not be in the alert forecasts. Of the 432&nbsp;</span><strong>M</strong><span>&nbsp;3.0+ U.S. West Coast earthquakes in 2021, 33 produced ground motions large enough to be detected by PLUM. Twenty‐four generated MMI 4.0+ PLUM alerts, whereas ShakeAlert issued public EEW alerts for 13 of these earthquakes. We compare PLUM and ShakeAlert alert regions with ShakeMap and “Did You Feel It?” intensity distributions. Because PLUM alert regions surround stations observed to have strong ground motions (regardless of earthquake magnitude), PLUM alerts reliably include locations that experience significant shaking. This is not necessarily the case for ShakeAlert alert regions when there are large errors in magnitude or epicenter estimates. For two of the largest earthquakes in our real‐time dataset, the&nbsp;</span><strong>M</strong><span>&nbsp;6.0 Antelope Valley and&nbsp;</span><strong>M</strong><span>&nbsp;5.1 Petrolia earthquakes, the inclusion of PLUM would have improved real‐time ShakeAlert performance. Our results indicate that incorporation of PLUM into ShakeAlert will improve the robustness of the EEW system.</span></p>","language":"English","publisher":"Seismological Society of America","doi":"10.1785/0120220022","usgsCitation":"Saunders, J.K., Minson, S.E., Baltay Sundstrom, A.S., Bunn, J.J., Cochran, E.S., Kilb, D.L., O’Rourke, C.T., Hoshiba, M., and Kodera, Y., 2022, Real-time earthquake detection and alerting behavior of PLUM ground-motion-based early warning in the United States: Bulletin of the Seismological Society of America, v. 112, no. 5, p. 2668-2688, https://doi.org/10.1785/0120220022.","productDescription":"21 p.","startPage":"2668","endPage":"2688","ipdsId":"IP-135990","costCenters":[{"id":237,"text":"Earthquake Science Center","active":true,"usgs":true}],"links":[{"id":407607,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"country":"United States","state":"California, Oregon, 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,{"id":70232540,"text":"ofr20221066 - 2022 - Proceedings of the Highly Pathogenic Avian Influenza and Wild Birds Webinar Series, August 2–5, 2021","interactions":[],"lastModifiedDate":"2022-09-27T13:36:10.573209","indexId":"ofr20221066","displayToPublicDate":"2022-07-28T09:05:02","publicationYear":"2022","noYear":false,"publicationType":{"id":18,"text":"Report"},"publicationSubtype":{"id":5,"text":"USGS Numbered Series"},"seriesTitle":{"id":330,"text":"Open-File Report","code":"OFR","onlineIssn":"2331-1258","printIssn":"0196-1497","active":true,"publicationSubtype":{"id":5}},"seriesNumber":"2022-1066","displayTitle":"Proceedings of the Highly Pathogenic Avian Influenza and Wild Birds Webinar Series, August 2–5, 2021","title":"Proceedings of the Highly Pathogenic Avian Influenza and Wild Birds Webinar Series, August 2–5, 2021","docAbstract":"<p>In light of ongoing and geographically widespread highly pathogenic avian influenza (HPAI) outbreaks in wild birds throughout much of Eurasia during 2020–21, the Interagency Steering Committee for Avian Influenza Surveillance in Wild Migratory Birds disseminated an informational memorandum in January 2021 to highlight the need for enhanced surveillance and heightened awareness in North America. This was followed by coordination of this August 2021 international HPAI webinar series facilitated by the U.S. Department of Agriculture (USDA) Animal and Plant Health Inspection Service (APHIS) Veterinary Services Training Program. In addition to heightening awareness, the webinars provided an opportunity for information exchange and facilitated virtual discussions between Federal, State, academic, and international partners on the ongoing Eurasian outbreak, lessons learned from the 2014–15 North American HPAI outbreak, and associated challenges and opportunities.</p>","language":"English","publisher":"U.S. Geological Survey","publisherLocation":"Reston, VA","doi":"10.3133/ofr20221066","usgsCitation":"Hopkins, M.C., Mason, J.R., Haddock, G., and Ramey, A.M., 2022, Proceedings of the Highly Pathogenic Avian Influenza and Wild Birds Webinar Series, August 2–5, 2021: U.S. Geological Survey Open-File Report 2022–1066, 27 p., https://doi.org/10.3133/ofr20221066.","productDescription":"vi, 27 p.","numberOfPages":"23","onlineOnly":"Y","additionalOnlineFiles":"N","ipdsId":"IP-140410","costCenters":[{"id":117,"text":"Alaska Science Center Biology WTEB","active":true,"usgs":true},{"id":506,"text":"Office of the AD Ecosystems","active":true,"usgs":true}],"links":[{"id":404536,"rank":4,"type":{"id":39,"text":"HTML Document"},"url":"https://pubs.usgs.gov/publication/ofr20221066/full","text":"Report","linkFileType":{"id":5,"text":"html"},"description":"OFR 2022-1066"},{"id":403060,"rank":5,"type":{"id":34,"text":"Image Folder"},"url":"https://pubs.usgs.gov/of/2022/1066/images/"},{"id":403057,"rank":1,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/of/2022/1066/coverthb.jpg"},{"id":403058,"rank":2,"type":{"id":11,"text":"Document"},"url":"https://pubs.usgs.gov/of/2022/1066/ofr20221066.pdf","text":"Report","size":"2.31 MB","linkFileType":{"id":1,"text":"pdf"},"description":"OFR 2022-1066"},{"id":403059,"rank":3,"type":{"id":31,"text":"Publication XML"},"url":"https://pubs.usgs.gov/of/2022/1066/ofr20221066.XML"}],"contact":"<p>Associate Director, <a href=\"https://www.usgs.gov/mission-areas/ecosystems\" data-mce-href=\"https://www.usgs.gov/mission-areas/ecosystems\">Ecosystems</a><br>U.S. Geological Survey<br>954 National Center<br>12201 Sunrise Valley Drive<br>Reston, VA 20192</p><p><a href=\"https://pubs.er.usgs.gov/contact\" data-mce-href=\"../contact\">Contact Pubs Warehouse</a></p>","tableOfContents":"<ul><li>Preface</li><li>Webinar Series Agenda</li><li>Author-Submitted Abstracts</li><li>Facilitated Discussion Summaries</li><li>References Cited</li><li>Appendix 1. Interagency Steering Committee for Avian Influenza Surveillance in Wild Migratory Birds Information Memorandum, January 11, 2021</li></ul>","publishingServiceCenter":{"id":9,"text":"Reston PSC"},"publishedDate":"2022-07-28","noUsgsAuthors":false,"publicationDate":"2022-07-28","publicationStatus":"PW","contributors":{"authors":[{"text":"Hopkins, M. Camille 0000-0003-1465-6038","orcid":"https://orcid.org/0000-0003-1465-6038","contributorId":206863,"corporation":false,"usgs":true,"family":"Hopkins","given":"M.","email":"","middleInitial":"Camille","affiliations":[{"id":506,"text":"Office of the AD Ecosystems","active":true,"usgs":true}],"preferred":true,"id":845881,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Mason, J. 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,{"id":70234156,"text":"70234156 - 2022 - Fifty years of Landsat science and impacts","interactions":[],"lastModifiedDate":"2022-08-02T13:41:56.206949","indexId":"70234156","displayToPublicDate":"2022-07-28T08:08:38","publicationYear":"2022","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":3254,"text":"Remote Sensing of Environment","printIssn":"0034-4257","active":true,"publicationSubtype":{"id":10}},"title":"Fifty years of Landsat science and impacts","docAbstract":"<p><span>Since 1972, the&nbsp;</span>Landsat<span>&nbsp;program has been continually monitoring the Earth, to now provide 50&nbsp;years of digital, multispectral,&nbsp;medium spatial resolution&nbsp;observations. Over this time, Landsat data were crucial for many scientific and technical advances. Prior to the Landsat program, detailed, synoptic depictions of the Earth's surface were rare, and the ability to acquire and work with large datasets was limited. The early years of the Landsat program delivered a series of technological breakthroughs, pioneering new methods, and demonstrating the ability and capacity of digital satellite imagery, creating a template for other global Earth observation missions and programs. Innovations driven by the Landsat program have paved the way for subsequent science, application, and policy support activities. The economic and scientific value of the knowledge gained through the Landsat program has been long recognized, and despite periods of funding uncertainty, has resulted in the program's 50&nbsp;years of continuity, as well as substantive and ongoing improvements to payload and mission performance. Free and open access to Landsat data, enacted in 2008, was unprecedented for medium spatial resolution Earth observation data and substantially increased usage and led to a proliferation of science and application opportunities. Here, we highlight key developments over the past 50&nbsp;years of the Landsat program that have influenced and changed our scientific understanding of the Earth system. Major scientific and programmatic impacts have been realized in the areas of agricultural crop mapping and water use, climate change drivers and impacts, ecosystems and land cover monitoring, and mapping the changing human footprint. The introduction of Landsat collection processing, coupled with the free and open data policy, facilitated a transition in Landsat data usage away from single images and towards time series analyses over large areas and has fostered the widespread use of science-grade data. The launch of Landsat-9 on September 27, 2021, and the advanced planning of its successor mission, Landsat-Next, underscore the sustained institutional support for the program. Such support and commitment to continuity is recognition of both the historic impact the program, and the future potential to build upon Landsat's remarkable 50-year legacy.</span></p>","language":"English","publisher":"Elsevier","doi":"10.1016/j.rse.2022.113195","usgsCitation":"Wulder, M., Roy, D., Radeloff, V., Loveland, T., Anderson, M.C., Johnson, D.M., Healey, S., Zhu, Z., Scambos, T.A., Pahlevan, N., Hansen, M., Gorelick, N., Crawford, C., Masek, J.G., Hermosilla, T., White, J.C., Belward, A.S., Schaaf, C., Woodcock, C.E., Huntington, J., Lymburner, L., Hostert, P., Gao, F., Lyapustin, A., Pekel, J., Strobl, P., Eric Vermote, and Cook, B., 2022, Fifty years of Landsat science and impacts: Remote Sensing of Environment, v. 280, 113195, 21 p., https://doi.org/10.1016/j.rse.2022.113195.","productDescription":"113195, 21 p.","ipdsId":"IP-140037","costCenters":[{"id":222,"text":"Earth Resources Observation and Science (EROS) 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Matthew","contributorId":294416,"corporation":false,"usgs":false,"family":"Hansen","given":"Matthew","affiliations":[{"id":7083,"text":"University of Maryland","active":true,"usgs":false}],"preferred":false,"id":848024,"contributorType":{"id":1,"text":"Authors"},"rank":11},{"text":"Gorelick, Noel","contributorId":294417,"corporation":false,"usgs":false,"family":"Gorelick","given":"Noel","affiliations":[{"id":12484,"text":"Google","active":true,"usgs":false}],"preferred":false,"id":848025,"contributorType":{"id":1,"text":"Authors"},"rank":12},{"text":"Crawford, Christopher J. 0000-0002-7145-0709 cjcrawford@usgs.gov","orcid":"https://orcid.org/0000-0002-7145-0709","contributorId":213607,"corporation":false,"usgs":true,"family":"Crawford","given":"Christopher J.","email":"cjcrawford@usgs.gov","affiliations":[{"id":222,"text":"Earth Resources Observation and Science (EROS) 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Service","active":true,"usgs":false}],"preferred":false,"id":848029,"contributorType":{"id":1,"text":"Authors"},"rank":16},{"text":"Belward, Alan S.","contributorId":294421,"corporation":false,"usgs":false,"family":"Belward","given":"Alan","email":"","middleInitial":"S.","affiliations":[{"id":54481,"text":"European Commission","active":true,"usgs":false}],"preferred":false,"id":848030,"contributorType":{"id":1,"text":"Authors"},"rank":17},{"text":"Schaaf, Crystal","contributorId":294422,"corporation":false,"usgs":false,"family":"Schaaf","given":"Crystal","affiliations":[{"id":63571,"text":"University of Massachusetts Boston","active":true,"usgs":false}],"preferred":false,"id":848031,"contributorType":{"id":1,"text":"Authors"},"rank":18},{"text":"Woodcock, Curtis E.","contributorId":294423,"corporation":false,"usgs":false,"family":"Woodcock","given":"Curtis","email":"","middleInitial":"E.","affiliations":[{"id":13570,"text":"Boston University","active":true,"usgs":false}],"preferred":false,"id":848032,"contributorType":{"id":1,"text":"Authors"},"rank":19},{"text":"Huntington, Justin L.","contributorId":294424,"corporation":false,"usgs":false,"family":"Huntington","given":"Justin L.","affiliations":[{"id":16138,"text":"Desert Research Institute","active":true,"usgs":false}],"preferred":false,"id":848033,"contributorType":{"id":1,"text":"Authors"},"rank":20},{"text":"Lymburner, Leo","contributorId":294425,"corporation":false,"usgs":false,"family":"Lymburner","given":"Leo","affiliations":[{"id":35920,"text":"Geoscience Australia","active":true,"usgs":false}],"preferred":false,"id":848034,"contributorType":{"id":1,"text":"Authors"},"rank":21},{"text":"Hostert, Patrick","contributorId":294426,"corporation":false,"usgs":false,"family":"Hostert","given":"Patrick","affiliations":[{"id":63572,"text":"Humboldt University of Berlin","active":true,"usgs":false}],"preferred":false,"id":848035,"contributorType":{"id":1,"text":"Authors"},"rank":22},{"text":"Gao, Feng","contributorId":294427,"corporation":false,"usgs":false,"family":"Gao","given":"Feng","affiliations":[{"id":18168,"text":"USDA ARS","active":true,"usgs":false}],"preferred":false,"id":848036,"contributorType":{"id":1,"text":"Authors"},"rank":23},{"text":"Lyapustin, Alexi","contributorId":294428,"corporation":false,"usgs":false,"family":"Lyapustin","given":"Alexi","email":"","affiliations":[{"id":38788,"text":"NASA","active":true,"usgs":false}],"preferred":false,"id":848037,"contributorType":{"id":1,"text":"Authors"},"rank":24},{"text":"Pekel, Jean-Francois","contributorId":294429,"corporation":false,"usgs":false,"family":"Pekel","given":"Jean-Francois","email":"","affiliations":[{"id":54481,"text":"European Commission","active":true,"usgs":false}],"preferred":false,"id":848038,"contributorType":{"id":1,"text":"Authors"},"rank":25},{"text":"Strobl, Peter","contributorId":294430,"corporation":false,"usgs":false,"family":"Strobl","given":"Peter","email":"","affiliations":[{"id":54481,"text":"European Commission","active":true,"usgs":false}],"preferred":false,"id":848039,"contributorType":{"id":1,"text":"Authors"},"rank":26},{"text":"Eric Vermote","contributorId":294431,"corporation":false,"usgs":false,"family":"Eric Vermote","affiliations":[{"id":38788,"text":"NASA","active":true,"usgs":false}],"preferred":false,"id":848040,"contributorType":{"id":1,"text":"Authors"},"rank":27},{"text":"Cook, Bruce D.","contributorId":294432,"corporation":false,"usgs":false,"family":"Cook","given":"Bruce D.","affiliations":[{"id":38788,"text":"NASA","active":true,"usgs":false}],"preferred":false,"id":848041,"contributorType":{"id":1,"text":"Authors"},"rank":28}]}}
,{"id":70236053,"text":"70236053 - 2022 - Comparisons of the NGA-Subduction ground motion models","interactions":[],"lastModifiedDate":"2022-10-17T16:04:02.593176","indexId":"70236053","displayToPublicDate":"2022-07-28T06:53:06","publicationYear":"2022","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":1436,"text":"Earthquake Spectra","active":true,"publicationSubtype":{"id":10}},"title":"Comparisons of the NGA-Subduction ground motion models","docAbstract":"<div class=\"hlFld-Abstract\"><div class=\"abstractSection abstractInFull\"><p>In this article, ground-motion models (GMMs) for subduction earthquakes recently developed as part of the Next Generation Attenuation-Subduction (NGA-Sub) project are compared. The four models presented in this comparison study are documented in their respective articles submitted along with this article. Each of these four models is based on the analysis of the large NGA-Sub database. Three of the four current models are developed for a global version as well as separate regionalized models. The fourth model was developed based on earthquakes only from Japan, and as such is applicable only for Japan. As part of this comparison study, a general discussion on the parameterization of the four models and the regionalization of the three models is provided. The specific strengths and or weaknesses or the technical decisions and justifications of any one model are not part of this comparison. A selected suite of deterministic attenuation curves and spectra are presented for the models along with a selected suite of currently used subduction models. A limited number of comparisons are presented in this article with a larger number of comparisons and the digital values provided in the electronic attachment. In addition to these scenario calculation comparisons, the results from a standard probabilistic seismic hazard analysis (PSHA) for two sites located in the Pacific Northwest Region in the state of Washington are presented. These calculations highlight the potential impact of using the new GMMs. Based on the comparisons presented here, a general understanding of these new GMMs can be obtained with the expectation that the implementation of a specific seismic hazard study should incorporate similar and additional comparisons and sensitivity studies pertinent to the site of interest.</p></div></div>","language":"English","publisher":"Sage Publications","doi":"10.1177/87552930221112688","usgsCitation":"Gregor, N., Addo, K.O., Abrahamson, N.A., Al Atik, L., Atkinson, G.M., Boore, D., Bozorgnia, Y., Campbell, K.W., Chiou, B.S., Gulerce, Z., Hassani, B., Kishida, T., Kuehn, N., Mazzoni, S., Midorikawa, S., Parker, G.A., Si, H., Stewart, J.P., and Youngs, R.R., 2022, Comparisons of the NGA-Subduction ground motion models: Earthquake Spectra, v. 38, no. 4, p. 2580-2610, https://doi.org/10.1177/87552930221112688.","productDescription":"31 p.","startPage":"2580","endPage":"2610","ipdsId":"IP-125220","costCenters":[{"id":237,"text":"Earthquake Science Center","active":true,"usgs":true}],"links":[{"id":405674,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"volume":"38","issue":"4","noUsgsAuthors":false,"publicationDate":"2022-07-28","publicationStatus":"PW","contributors":{"authors":[{"text":"Gregor, Nick","contributorId":140531,"corporation":false,"usgs":false,"family":"Gregor","given":"Nick","email":"","affiliations":[],"preferred":false,"id":849836,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Addo, Kofi O.","contributorId":213947,"corporation":false,"usgs":false,"family":"Addo","given":"Kofi","email":"","middleInitial":"O.","affiliations":[{"id":37568,"text":"BC Hydro","active":true,"usgs":false}],"preferred":false,"id":849837,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Abrahamson, Norman A.","contributorId":115451,"corporation":false,"usgs":false,"family":"Abrahamson","given":"Norman","email":"","middleInitial":"A.","affiliations":[],"preferred":false,"id":849838,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Al Atik, Linda","contributorId":140526,"corporation":false,"usgs":false,"family":"Al Atik","given":"Linda","email":"","affiliations":[],"preferred":false,"id":849839,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Atkinson, Gail M.","contributorId":60515,"corporation":false,"usgs":false,"family":"Atkinson","given":"Gail","email":"","middleInitial":"M.","affiliations":[{"id":13255,"text":"University of Western Ontario","active":true,"usgs":false}],"preferred":false,"id":849840,"contributorType":{"id":1,"text":"Authors"},"rank":5},{"text":"Boore, David 0000-0002-8605-9673 boore@usgs.gov","orcid":"https://orcid.org/0000-0002-8605-9673","contributorId":140502,"corporation":false,"usgs":true,"family":"Boore","given":"David","email":"boore@usgs.gov","affiliations":[{"id":237,"text":"Earthquake Science Center","active":true,"usgs":true}],"preferred":true,"id":849841,"contributorType":{"id":1,"text":"Authors"},"rank":6},{"text":"Bozorgnia, Yousef","contributorId":40101,"corporation":false,"usgs":false,"family":"Bozorgnia","given":"Yousef","affiliations":[{"id":6643,"text":"University of California - Berkeley","active":true,"usgs":false}],"preferred":false,"id":849842,"contributorType":{"id":1,"text":"Authors"},"rank":7},{"text":"Campbell, Kenneth W.","contributorId":74391,"corporation":false,"usgs":false,"family":"Campbell","given":"Kenneth","email":"","middleInitial":"W.","affiliations":[],"preferred":false,"id":849843,"contributorType":{"id":1,"text":"Authors"},"rank":8},{"text":"Chiou, Brian S.-J.","contributorId":295734,"corporation":false,"usgs":false,"family":"Chiou","given":"Brian","email":"","middleInitial":"S.-J.","affiliations":[{"id":34112,"text":"California Department of Transportation","active":true,"usgs":false}],"preferred":false,"id":849844,"contributorType":{"id":1,"text":"Authors"},"rank":9},{"text":"Gulerce, Zeynep","contributorId":295690,"corporation":false,"usgs":false,"family":"Gulerce","given":"Zeynep","email":"","affiliations":[{"id":49823,"text":"Middle East Technical University","active":true,"usgs":false}],"preferred":false,"id":849845,"contributorType":{"id":1,"text":"Authors"},"rank":10},{"text":"Hassani, Behzad","contributorId":275298,"corporation":false,"usgs":false,"family":"Hassani","given":"Behzad","email":"","affiliations":[{"id":37568,"text":"BC Hydro","active":true,"usgs":false}],"preferred":false,"id":849846,"contributorType":{"id":1,"text":"Authors"},"rank":11},{"text":"Kishida, Tadahiro","contributorId":140538,"corporation":false,"usgs":false,"family":"Kishida","given":"Tadahiro","email":"","affiliations":[{"id":6643,"text":"University of California - Berkeley","active":true,"usgs":false}],"preferred":false,"id":849847,"contributorType":{"id":1,"text":"Authors"},"rank":12},{"text":"Kuehn, Nicolas","contributorId":229633,"corporation":false,"usgs":false,"family":"Kuehn","given":"Nicolas","email":"","affiliations":[{"id":6772,"text":"UC Los Angeles","active":true,"usgs":false}],"preferred":false,"id":849848,"contributorType":{"id":1,"text":"Authors"},"rank":13},{"text":"Mazzoni, Silvia","contributorId":217354,"corporation":false,"usgs":false,"family":"Mazzoni","given":"Silvia","email":"","affiliations":[{"id":13399,"text":"UCLA","active":true,"usgs":false}],"preferred":false,"id":849849,"contributorType":{"id":1,"text":"Authors"},"rank":14},{"text":"Midorikawa, Saburoh","contributorId":197120,"corporation":false,"usgs":false,"family":"Midorikawa","given":"Saburoh","email":"","affiliations":[],"preferred":false,"id":849850,"contributorType":{"id":1,"text":"Authors"},"rank":15},{"text":"Parker, Grace Alexandra 0000-0002-9445-2571","orcid":"https://orcid.org/0000-0002-9445-2571","contributorId":237091,"corporation":false,"usgs":true,"family":"Parker","given":"Grace","email":"","middleInitial":"Alexandra","affiliations":[{"id":237,"text":"Earthquake Science Center","active":true,"usgs":true}],"preferred":true,"id":849851,"contributorType":{"id":1,"text":"Authors"},"rank":16},{"text":"Si, Hongjun","contributorId":295700,"corporation":false,"usgs":false,"family":"Si","given":"Hongjun","email":"","affiliations":[{"id":63905,"text":"Seismological Research Institute Inc.","active":true,"usgs":false}],"preferred":false,"id":849852,"contributorType":{"id":1,"text":"Authors"},"rank":17},{"text":"Stewart, Jonathan P.","contributorId":100110,"corporation":false,"usgs":false,"family":"Stewart","given":"Jonathan","email":"","middleInitial":"P.","affiliations":[{"id":7081,"text":"University of California - Los Angeles","active":true,"usgs":false}],"preferred":false,"id":849853,"contributorType":{"id":1,"text":"Authors"},"rank":18},{"text":"Youngs, Robert R.","contributorId":295735,"corporation":false,"usgs":false,"family":"Youngs","given":"Robert","email":"","middleInitial":"R.","affiliations":[{"id":39607,"text":"Wood","active":true,"usgs":false}],"preferred":false,"id":849854,"contributorType":{"id":1,"text":"Authors"},"rank":19}]}}
,{"id":70256648,"text":"70256648 - 2022 - Island of misfit tortoises: Waif gopher tortoise health assessment following translocation","interactions":[],"lastModifiedDate":"2024-08-12T22:32:21.878351","indexId":"70256648","displayToPublicDate":"2022-07-27T17:24:49","publicationYear":"2022","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":3919,"text":"Conservation Physiology","onlineIssn":"2051-1434","active":true,"publicationSubtype":{"id":10}},"title":"Island of misfit tortoises: Waif gopher tortoise health assessment following translocation","docAbstract":"<p class=\"chapter-para\">Translocation, the intentional movement of animals from one location to another, is a common management practice for the gopher tortoise (<i>Gopherus polyphemus</i>). Although the inadvertent spread of pathogens is a concern with any translocation effort, waif tortoises—individuals that have been collected illegally, injured and rehabilitated or have unknown origins—are generally excluded from translocation efforts due to heightened concerns of introducing pathogens and subsequent disease to naïve populations. However, repurposing these long-lived animals for species recovery is desirable when feasible, and introducing waif tortoises may bolster small populations facing extirpation. The objective of this study was to assess the health of waif tortoises experimentally released at an isolated preserve in Aiken County, SC, USA. Our assessments included visual examination, screening for 14 pathogens using conventional or quantitative polymerase chain reaction (qPCR) and haematological evaluation. Of the 143 individuals assessed in 2017 and 2018, most individuals (76%;<span>&nbsp;</span><i>n =</i>&nbsp;109 of 143) had no overt clinical evidence of disease and, when observed, clinical findings were mild. In both years, we detected two known tortoise pathogens,<span>&nbsp;</span><i>Mycoplasma agassizii</i><span>&nbsp;</span>and<span>&nbsp;</span><i>Mycoplasma testudineum</i>, at a prevalence of 10.2–13.9% and 0.0–0.8%, respectively. Additionally, we found emydid<span>&nbsp;</span><i>Mycoplasma</i>, a bacterium commonly found in box turtles (<i>Terrapene</i><span>&nbsp;</span>spp<i>.</i>), in a single tortoise that showed no clinical evidence of infection. The presence of nasal discharge was an important, but imperfect, predictor of<span>&nbsp;</span><i>Mycoplasma</i><span>&nbsp;</span>spp. infection in translocated tortoises. Hemogram data were comparable with wild populations. Our study is the first comprehensive effort to assess pathogen prevalence and hemogram data of waif gopher tortoises following translocation. Although caution is warranted and pathogen screening necessary, waif tortoises may be an important resource for establishing or augmenting isolated populations when potential health risks can be managed.</p>","language":"English","publisher":"Oxford Academic","doi":"10.1093/conphys/coac051","usgsCitation":"McKee, R.K., Buhlmann, K.A., Moore, C.T., Allender, M., Stacy, N.I., and Tuberville, T., 2022, Island of misfit tortoises: Waif gopher tortoise health assessment following translocation: Conservation Physiology, v. 10, no. 1, coac051, 18 p., https://doi.org/10.1093/conphys/coac051.","productDescription":"coac051, 18 p.","ipdsId":"IP-133988","costCenters":[{"id":198,"text":"Coop Res Unit Atlanta","active":true,"usgs":true}],"links":[{"id":447004,"rank":0,"type":{"id":40,"text":"Open Access Publisher Index Page"},"url":"https://doi.org/10.1093/conphys/coac051","text":"Publisher Index Page"},{"id":432572,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"volume":"10","issue":"1","noUsgsAuthors":false,"publicationDate":"2022-07-27","publicationStatus":"PW","contributors":{"authors":[{"text":"McKee, Rebecca K.","contributorId":341474,"corporation":false,"usgs":false,"family":"McKee","given":"Rebecca","email":"","middleInitial":"K.","affiliations":[{"id":12697,"text":"University of Georgia","active":true,"usgs":false}],"preferred":false,"id":908478,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Buhlmann, Kurt. A.","contributorId":341475,"corporation":false,"usgs":false,"family":"Buhlmann","given":"Kurt.","email":"","middleInitial":"A.","affiliations":[{"id":12697,"text":"University of Georgia","active":true,"usgs":false}],"preferred":false,"id":908479,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Moore, Clinton T. 0000-0002-6053-2880 cmoore@usgs.gov","orcid":"https://orcid.org/0000-0002-6053-2880","contributorId":3643,"corporation":false,"usgs":true,"family":"Moore","given":"Clinton","email":"cmoore@usgs.gov","middleInitial":"T.","affiliations":[{"id":198,"text":"Coop Res Unit Atlanta","active":true,"usgs":true}],"preferred":true,"id":908480,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Allender, Matthew C.","contributorId":341476,"corporation":false,"usgs":false,"family":"Allender","given":"Matthew C.","affiliations":[{"id":36403,"text":"University of Illinois","active":true,"usgs":false}],"preferred":false,"id":908481,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Stacy, Nicole I.","contributorId":341477,"corporation":false,"usgs":false,"family":"Stacy","given":"Nicole","email":"","middleInitial":"I.","affiliations":[{"id":36221,"text":"University of Florida","active":true,"usgs":false}],"preferred":false,"id":908482,"contributorType":{"id":1,"text":"Authors"},"rank":5},{"text":"Tuberville, Tracey D.","contributorId":341478,"corporation":false,"usgs":false,"family":"Tuberville","given":"Tracey D.","affiliations":[{"id":12697,"text":"University of Georgia","active":true,"usgs":false}],"preferred":false,"id":908483,"contributorType":{"id":1,"text":"Authors"},"rank":6}]}}
,{"id":70233771,"text":"sir20175022R - 2022 - Field-trip guide to continental arc to rift volcanism of the southern Rocky Mountains—Southern Rocky Mountain, Taos Plateau, and Jemez Mountains volcanic fields of southern Colorado and northern New Mexico","interactions":[{"subject":{"id":70233771,"text":"sir20175022R - 2022 - Field-trip guide to continental arc to rift volcanism of the southern Rocky Mountains—Southern Rocky Mountain, Taos Plateau, and Jemez Mountains volcanic fields of southern Colorado and northern New Mexico","indexId":"sir20175022R","publicationYear":"2022","noYear":false,"chapter":"R","displayTitle":"Field-Trip Guide to Continental Arc to Rift Volcanism of the Southern Rocky Mountains—Southern Rocky Mountain, Taos Plateau, and Jemez Mountains Volcanic Fields of Southern Colorado and Northern New Mexico","title":"Field-trip guide to continental arc to rift volcanism of the southern Rocky Mountains—Southern Rocky Mountain, Taos Plateau, and Jemez Mountains volcanic fields of southern Colorado and northern New Mexico"},"predicate":"IS_PART_OF","object":{"id":70188710,"text":"sir20175022 - 2017 - Field-trip guides to selected volcanoes and volcanic landscapes of the western United States","indexId":"sir20175022","publicationYear":"2017","noYear":false,"title":"Field-trip guides to selected volcanoes and volcanic landscapes of the western United States"},"id":1}],"isPartOf":{"id":70188710,"text":"sir20175022 - 2017 - Field-trip guides to selected volcanoes and volcanic landscapes of the western United States","indexId":"sir20175022","publicationYear":"2017","noYear":false,"title":"Field-trip guides to selected volcanoes and volcanic landscapes of the western United States"},"lastModifiedDate":"2026-04-01T15:39:59.466844","indexId":"sir20175022R","displayToPublicDate":"2022-07-27T13:25:11","publicationYear":"2022","noYear":false,"publicationType":{"id":18,"text":"Report"},"publicationSubtype":{"id":5,"text":"USGS Numbered Series"},"seriesTitle":{"id":334,"text":"Scientific Investigations Report","code":"SIR","onlineIssn":"2328-0328","printIssn":"2328-031X","active":true,"publicationSubtype":{"id":5}},"seriesNumber":"2017-5022","chapter":"R","displayTitle":"Field-Trip Guide to Continental Arc to Rift Volcanism of the Southern Rocky Mountains—Southern Rocky Mountain, Taos Plateau, and Jemez Mountains Volcanic Fields of Southern Colorado and Northern New Mexico","title":"Field-trip guide to continental arc to rift volcanism of the southern Rocky Mountains—Southern Rocky Mountain, Taos Plateau, and Jemez Mountains volcanic fields of southern Colorado and northern New Mexico","docAbstract":"<p>The southern Rocky Mountains of northern New Mexico and southern Colorado preserve the Oligocene to Pleistocene record of North American continental arc to rift volcanism. The 35–23 million year old (Ma) southern Rocky Mountain volcanic field (SRMVF), spectacularly preserved in the San Juan Mountains of southern Colorado, records the evolution of large andesitic stratovolcanoes to complex caldera clusters, from which at least 22 major ignimbrite sheets (each 150–5,000 cubic kilometers) were erupted. Outflow deposits of the SRMVF preserved along the broadly uplifted northwest flank of the northern Rio Grande rift basin (the San Luis Valley) provide critical structural and temporal constraints on the inception of crustal extension. Coincident with waning stages of SRMVF caldera-forming volcanism (~25.4 Ma), extensional tectonism was accompanied by a transition from bimodal early Miocene to intermediate-composition late Miocene and dominantly basaltic Pliocene rift volcanism of the Taos Plateau in the southern San Luis Basin. Concomitant rift volcanism in the Española Basin and bordering Jemez Mountains of northern New Mexico records a similar Miocene eruptive history dominated by intermediate-composition volcanism that transitioned locally to Pliocene rift-related basaltic volcanism of the Cerros del Rio volcanic field and culminated in eruptions of the iconic rhyolitic Pleistocene Bandelier Tuff and formation of the Valles Caldera along the northwestern rift-basin margin.</p><p>This 6-day, 7-night field trip will focus, in broadly equal proportions, on rift-related extensional volcanism of the Jemez Mountains and Taos Plateau regions during the first half of the trip, and on caldera-forming volcanism of the southern Rocky Mountain volcanic field during the second half of the trip. The 35-million-year volcanic history of the region highlighted by new geologic mapping, high-resolution geochronology, petrologic, geochemical, and geophysical data facilitates discussion of (1) the magmatic response to the tectonic transition from subducted-slab arc to continental-rift volcanism; (2) the nature and temporal evolution of rift magmas; (3) fault controls on the spatial evolution of rift magmatism; (4) the diversity of continental-arc ignimbrite volcanism and associated lavas; (5) ignimbrite caldera structure and associated intrusions in three-dimension; (6) the role of recycled crystal mush and magmatic cumulates during growth of Cordilleran batholiths; and (7) high-precision geochronologic contributions to interpretation of relations between regional tectonic and volcanic processes. Most stops will be along roads, but there will be moderate hikes on trails of less than 1-hour duration covering 1–2 kilometers (0.6–1.2 miles) with modest elevation gain of &lt;150 meters (&lt;492 feet).</p><p>The route will progress in reverse stratigraphic order, starting in the Jemez Mountains of New Mexico and proceed northward to San Luis Basin and San Luis Hills before turning west to the southeast and central San Juan Mountains. Our last full day takes us to the little-visited and only recently mapped, Bonanza caldera of the northeastern San Juan Mountains and on the final day, we leave the San Luis Valley to briefly explore the Tertiary subvolcanic plutons of the Collegiate Range along the west side of the Arkansas Valley rift valley, en route to Denver.</p><p>The authors of all daily contributions acknowledge the helpful reviews by Amy Gilmer and Joe Colgan and thank Christine Chan and Jeremy Havens for assistance with figures, tables, and guidebook text.</p>","language":"English","publisher":"U.S. Geological Survey","publisherLocation":"Reston, VA","doi":"10.3133/sir20175022R","usgsCitation":"Thompson, R.A., Turner, K.J., Lipman, P.W., Wolff, J.A., and Dungan, M.A., 2022, Field-trip guide to continental arc to rift volcanism of the southern Rocky Mountains—Southern Rocky Mountain, Taos Plateau, and Jemez Mountains volcanic fields of southern Colorado and northern New Mexico: U.S. Geological Survey Scientific Investigations Report 2017-5022-R, 346 p., https://doi.org/10.3133/sir20175022R.","productDescription":"Report: xix, 346 p.; Data Release","numberOfPages":"346","onlineOnly":"Y","ipdsId":"IP-103158","costCenters":[{"id":318,"text":"Geosciences and Environmental Change Science Center","active":true,"usgs":true},{"id":617,"text":"Volcano Science Center","active":true,"usgs":true}],"links":[{"id":501942,"rank":4,"type":{"id":36,"text":"NGMDB Index Page"},"url":"https://ngmdb.usgs.gov/Prodesc/proddesc_113348.htm","linkFileType":{"id":5,"text":"html"}},{"id":404505,"rank":2,"type":{"id":11,"text":"Document"},"url":"https://pubs.usgs.gov/sir/2017/5022/r/sir20175022r.pdf","text":"Report","size":"51 MB","linkFileType":{"id":1,"text":"pdf"}},{"id":404504,"rank":1,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/sir/2017/5022/r/covrthb.jpg"},{"id":404506,"rank":3,"type":{"id":30,"text":"Data Release"},"url":"https://doi.org/10.5066/P9BKL3ZE","text":"Data Release","description":"Turner, K.J., Thompson, R.A., and Cosca, M.A., 2022, Data release for geochronology and geochemistry of volcanic rocks in the Southern Rocky Mountains and Taos Plateau volcanic fields and other Oligocene to Pleistocene volcanic rocks within the southern San Luis Basin and San Juan Mountains, southern Colorado and northern New Mexico: U.S. Geological Survey data release, https://doi.org/10.5066/P9BKL3ZE.","linkHelpText":"Data release for geochronology and geochemistry of volcanic rocks in the Southern Rocky Mountains and Taos Plateau volcanic fields and other Oligocene to Pleistocene volcanic rocks within the southern San Luis Basin and San Juan Mountains, southern Colorado and northern New Mexico"}],"country":"United States","state":"Colorado, New Mexico","otherGeospatial":"Southern Rocky Mountain, Taos Plateau, and Jemez Mountains Volcanic Fields","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"type\": \"Polygon\",\n        \"coordinates\": [\n          [\n            [\n              -107.52319335937497,\n              35.51434313431818\n            ],\n            [\n              -105.10620117187499,\n              35.51434313431818\n            ],\n            [\n              -105.10620117187499,\n              37.76202988573206\n            ],\n            [\n              -107.52319335937497,\n              37.76202988573206\n            ],\n            [\n              -107.52319335937497,\n              35.51434313431818\n            ]\n          ]\n        ]\n      }\n    }\n  ]\n}","contact":"<p><a href=\"http://volcanoes.usgs.gov/\" data-mce-href=\"http://volcanoes.usgs.gov/\">Volcano Science Center</a>&nbsp;- Menlo Park<br><a href=\"https://usgs.gov/\" data-mce-href=\"https://usgs.gov/\">U.S. Geological Survey</a><br>345 Middlefield Road, MS 910<br>Menlo Park, CA 94025</p>","tableOfContents":"<ul><li>Introduction&nbsp;&nbsp;</li><li>Day 1—The Jemez Mountains Volcanic Field and Valles Caldera&nbsp;&nbsp;</li><li>Day 2—The Southern San Luis Basin and Taos Plateau Volcanic Field&nbsp;&nbsp;</li><li>Day 3—The Taos Plateau Volcanic Field and Central San Luis Basin&nbsp;&nbsp;</li><li>Days 4–6 Introductory Summary—The Southern Rocky Mountain Volcanic Field&nbsp;&nbsp;</li><li>Day 4—The Platoro Caldera Complex&nbsp;&nbsp;</li><li>Day 5—The Central San Juan Region&nbsp;&nbsp;</li><li>Day 6—Bonanza Caldera&nbsp; Acknowledgments&nbsp; References&nbsp; &nbsp;</li></ul>","publishingServiceCenter":{"id":1,"text":"Sacramento PSC"},"publishedDate":"2022-07-27","noUsgsAuthors":false,"publicationDate":"2022-07-27","publicationStatus":"PW","contributors":{"authors":[{"text":"Thompson, Ren A. 0000-0002-3044-3043 rathomps@usgs.gov","orcid":"https://orcid.org/0000-0002-3044-3043","contributorId":1265,"corporation":false,"usgs":true,"family":"Thompson","given":"Ren","email":"rathomps@usgs.gov","middleInitial":"A.","affiliations":[{"id":318,"text":"Geosciences and Environmental Change Science Center","active":true,"usgs":true}],"preferred":true,"id":847631,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Turner, Kenzie J. 0000-0002-4940-3981 kturner@usgs.gov","orcid":"https://orcid.org/0000-0002-4940-3981","contributorId":496,"corporation":false,"usgs":true,"family":"Turner","given":"Kenzie","email":"kturner@usgs.gov","middleInitial":"J.","affiliations":[{"id":318,"text":"Geosciences and Environmental Change Science Center","active":true,"usgs":true}],"preferred":true,"id":847632,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Lipman, Peter W. 0000-0001-9175-6118 plipman@usgs.gov","orcid":"https://orcid.org/0000-0001-9175-6118","contributorId":3486,"corporation":false,"usgs":true,"family":"Lipman","given":"Peter","email":"plipman@usgs.gov","middleInitial":"W.","affiliations":[{"id":617,"text":"Volcano Science Center","active":true,"usgs":true},{"id":5079,"text":"Pacific Regional Director's Office","active":true,"usgs":true}],"preferred":true,"id":847633,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Wolff, John A. 0000-0002-6292-4888","orcid":"https://orcid.org/0000-0002-6292-4888","contributorId":194546,"corporation":false,"usgs":false,"family":"Wolff","given":"John","email":"","middleInitial":"A.","affiliations":[],"preferred":true,"id":847634,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Dungan, Michael A.","contributorId":194548,"corporation":false,"usgs":false,"family":"Dungan","given":"Michael","email":"","middleInitial":"A.","affiliations":[],"preferred":true,"id":847635,"contributorType":{"id":1,"text":"Authors"},"rank":5}]}}
,{"id":70233563,"text":"ofr20221069 - 2022 - Groundwater-level monitoring from January 17 to March 3, 2022, Hālawa area, O‘ahu, Hawai‘i","interactions":[],"lastModifiedDate":"2026-03-30T20:26:28.36942","indexId":"ofr20221069","displayToPublicDate":"2022-07-27T13:13:30","publicationYear":"2022","noYear":false,"publicationType":{"id":18,"text":"Report"},"publicationSubtype":{"id":5,"text":"USGS Numbered Series"},"seriesTitle":{"id":330,"text":"Open-File Report","code":"OFR","onlineIssn":"2331-1258","printIssn":"0196-1497","active":true,"publicationSubtype":{"id":5}},"seriesNumber":"2022-1069","displayTitle":"Groundwater-Level Monitoring from January 17 to March 3, 2022, Hālawa Area, O‘ahu, Hawai‘i","title":"Groundwater-level monitoring from January 17 to March 3, 2022, Hālawa area, O‘ahu, Hawai‘i","docAbstract":"<p>A reported fuel release in November 2021 at the Red Hill Bulk Fuel Storage Facility within the naval reservation at Red Hill led to the shutdown of several production wells in the Hālawa area, O‘ahu, Hawai‘i. Red Hill Shaft—one of the high-capacity production wells that shut down—was reactivated on January 29, 2022. Submersible pressure transducers were deployed at 20 wells in the Hālawa area to measure groundwater levels and evaluate the regional groundwater-level response to the resumption of groundwater withdrawals from Red Hill Shaft. Groundwater levels measured in wells from January 17 to March 3, 2022, ranged between 16 and 20 feet at all sites and generally between 17 and 19 feet at most sites. Average groundwater-level decreases measured in wells 10 days after the January 29, 2022, resumption of withdrawal from Red Hill Shaft ranged from about 0.1 to 0.4 foot. In general, greatest decreases in groundwater levels occurred in wells closest to Red Hill Shaft.</p><p>The groundwater-level data contain uncertainty because of several potential sources of error associated with (1) the accuracy of the measuring tapes and submersible pressure transducers used, (2) the accuracy of the measuring-point altitude at the top of each well, (3) the stability of the submersible pressure transducers’ suspension depth in each well, (4) well plumbness and alignment, and (5) human error. Because of the potential sources of error, comparability of groundwater-level data may be affected. Some sources of uncertainty, including the accuracy of measuring-point altitudes, can be addressed and lead to improved accuracy and comparability of groundwater levels. Data collected for this study are available in the U.S. Geological Survey National Water Information System database.</p>","language":"English","publisher":"U.S. Geological Survey","publisherLocation":"Reston, VA","doi":"10.3133/ofr20221069","collaboration":"Prepared in cooperation with the U.S. Navy","usgsCitation":"Nakama, R.K., Mitchell, J.N., and Oki, D.S., 2022, Groundwater-level monitoring from January 17 to March 3, 2022, Hālawa area, O‘ahu, Hawai‘i: U.S. Geological Survey Open-File Report 2022–1069, 29 p., https://doi.org/10.3133/ofr20221069.","productDescription":"Report: vi, 29 p.; Data Release","numberOfPages":"29","onlineOnly":"Y","ipdsId":"IP-141201","costCenters":[{"id":525,"text":"Pacific Islands Water Science Center","active":true,"usgs":true}],"links":[{"id":501822,"rank":6,"type":{"id":36,"text":"NGMDB Index Page"},"url":"https://ngmdb.usgs.gov/Prodesc/proddesc_113349.htm","linkFileType":{"id":5,"text":"html"}},{"id":404436,"rank":5,"type":{"id":22,"text":"Related Work"},"url":"https://doi.org/10.3133/ofr20221018","text":"Open-File Report 2022-1018","description":"Nakama, R.K., Mitchell, J.N., and Oki, D.S., 2022, December 23, 2021, Red Hill synoptic groundwater-level survey, Hālawa area, O‘ahu, Hawai‘i: U.S. Geological Survey Open-File Report 2022–1018, 10 p., https://doi.org/10.3133/ofr20221018.","linkHelpText":"- December 23, 2021, Red Hill Synoptic Groundwater-Level Survey, Hālawa Area, O‘ahu, Hawai‘i"},{"id":404435,"rank":4,"type":{"id":22,"text":"Related Work"},"url":"https://doi.org/10.3133/ofr20221048","text":"Open-File Report 2022-1048","description":"Nakama, R.K., Mitchell, J.N., and Oki, D.S., 2022, January 18, 2022, Red Hill synoptic groundwater-level survey, Hālawa area, O‘ahu, Hawai‘i: U.S. Geological Survey Open-File Report 2022–1048, 11 p., https://doi.org/10.3133/ofr20221048.","linkHelpText":"- January 18, 2022, Red Hill Synoptic Groundwater-Level Survey, Hālawa Area, O‘ahu, Hawai‘i"},{"id":404434,"rank":3,"type":{"id":30,"text":"Data Release"},"url":"https://doi.org/10.5066/F7P55KJN","text":"USGS water data for the nation","description":"U.S. Geological Survey, 2022, USGS water data for the nation: U.S. Geological Survey National Water Information System database, https://doi.org/10.5066/F7P55KJN."},{"id":404433,"rank":2,"type":{"id":11,"text":"Document"},"url":"https://pubs.usgs.gov/of/2022/1069/ofr20221069.pdf","text":"Report","size":"7 MB","linkFileType":{"id":1,"text":"pdf"}},{"id":404432,"rank":1,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/of/2022/1069/covrthb.jpg"}],"country":"United States","state":"Hawaii","otherGeospatial":"Hālawa Area","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"type\": \"Polygon\",\n        \"coordinates\": [\n          [\n            [\n              -157.96142578124997,\n              21.317522325157526\n            ],\n            [\n              -157.85156249999997,\n              21.317522325157526\n            ],\n            [\n              -157.85156249999997,\n              21.409605198965597\n            ],\n            [\n              -157.96142578124997,\n              21.409605198965597\n            ],\n            [\n              -157.96142578124997,\n              21.317522325157526\n            ]\n          ]\n        ]\n      }\n    }\n  ]\n}","contact":"<p><a href=\"mailto:dc_hi@usgs.gov\" data-mce-href=\"mailto:dc_hi@usgs.gov\">Director</a>,<br><a href=\"https://www.usgs.gov/piwsc\" target=\"_blank\" rel=\"noopener\" data-mce-href=\"https://www.usgs.gov/piwsc\">Pacific Islands Water Science Center</a><br><a href=\"https://www.usgs.gov/\" target=\"_blank\" rel=\"noopener\" data-mce-href=\"https://www.usgs.gov\">U.S. Geological Survey</a><br>Inouye Regional Center<br>1845 Wasp Blvd., B176<br>Honolulu, HI 96818</p>","tableOfContents":"<ul><li>Acknowledgments&nbsp;&nbsp;</li><li>Abstract&nbsp;&nbsp;</li><li>Introduction&nbsp;&nbsp;</li><li>Purpose and Scope&nbsp;&nbsp;</li><li>Methods&nbsp;&nbsp;</li><li>Data&nbsp;&nbsp;</li><li>Limitations&nbsp;&nbsp;</li><li>Summary&nbsp;&nbsp;</li><li>References Cited&nbsp;</li></ul>","publishingServiceCenter":{"id":14,"text":"Menlo Park PSC"},"publishedDate":"2022-07-27","noUsgsAuthors":false,"publicationDate":"2022-07-27","publicationStatus":"PW","contributors":{"authors":[{"text":"Nakama, Rylen K. 0000-0001-7370-4322 rnakama@usgs.gov","orcid":"https://orcid.org/0000-0001-7370-4322","contributorId":280010,"corporation":false,"usgs":true,"family":"Nakama","given":"Rylen","email":"rnakama@usgs.gov","middleInitial":"K.","affiliations":[{"id":525,"text":"Pacific Islands Water Science Center","active":true,"usgs":true}],"preferred":true,"id":847418,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Mitchell, Jackson N. 0000-0002-9289-6240 jnmitchell@usgs.gov","orcid":"https://orcid.org/0000-0002-9289-6240","contributorId":207734,"corporation":false,"usgs":true,"family":"Mitchell","given":"Jackson","email":"jnmitchell@usgs.gov","middleInitial":"N.","affiliations":[{"id":622,"text":"Washington Water Science Center","active":true,"usgs":true}],"preferred":true,"id":847419,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Oki, Delwyn S. 0000-0002-6913-8804 dsoki@usgs.gov","orcid":"https://orcid.org/0000-0002-6913-8804","contributorId":1901,"corporation":false,"usgs":true,"family":"Oki","given":"Delwyn","email":"dsoki@usgs.gov","middleInitial":"S.","affiliations":[{"id":525,"text":"Pacific Islands Water Science Center","active":true,"usgs":true}],"preferred":true,"id":847420,"contributorType":{"id":1,"text":"Authors"},"rank":3}]}}
,{"id":70241504,"text":"70241504 - 2022 - Effects of warming winter embryo incubation temperatures on larval cisco (Coregonus artedi) survival, growth, and critical thermal maximum","interactions":[],"lastModifiedDate":"2023-03-22T13:41:00.902503","indexId":"70241504","displayToPublicDate":"2022-07-27T08:35:41","publicationYear":"2022","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":2330,"text":"Journal of Great Lakes Research","active":true,"publicationSubtype":{"id":10}},"displayTitle":"Effects of warming winter embryo incubation temperatures on larval cisco (<i>Coregonus artedi</i>) survival, growth, and critical thermal maximum","title":"Effects of warming winter embryo incubation temperatures on larval cisco (Coregonus artedi) survival, growth, and critical thermal maximum","docAbstract":"<p><span>Freshwater whitefishes, Salmonidae Coregoninae, are cold stenothermic fishes of ecological and socio-economic importance in northern hemisphere lakes that are warming in response to climate change. To address the effect of warming waters on coregonine reproduction we experimentally evaluated different embryo incubation temperatures on post-hatching survival, growth, and critical thermal maximum of larval cisco (</span><i>Coregonus artedi</i><span>) sampled from&nbsp;<a class=\"topic-link\" title=\"Learn more about lakes Superior from ScienceDirect's AI-generated Topic Pages\" href=\"https://www.sciencedirect.com/topics/earth-and-planetary-sciences/lake-superior\" data-mce-href=\"https://www.sciencedirect.com/topics/earth-and-planetary-sciences/lake-superior\">lakes Superior</a>&nbsp;and Ontario. Embryos were incubated at water temperatures of 2.0, 4.4, 6.9, and 8.9&nbsp;°C to simulate present and increased winter temperatures, and hatched larvae were reared in a common environment. For the populations from both lakes, larval survival and critical thermal maximum were negatively related to incubation temperature, and larval growth was positively related to incubation temperature. The magnitude of change across incubation temperatures was greater in the population sampled from Lake Superior than Lake Ontario for all traits examined. The more rapid decrease in survival and critical thermal maximum across incubation temperatures for larval cisco in Lake Superior, compared to those from Lake Ontario, suggests that Lake Superior larvae may possess a more limited ability to acclimate to and cope with increasing winter water temperatures. However, the rapid increase in growth rates across incubation temperatures in Lake Superior larvae suggests they could recover better from hatching at a small length induced by warm winters, as compared to Lake Ontario larvae. Our results suggest propagation and restoration programs may want to consider integrating natural habitat preferences and maximizing phenotypic variability to ensure offspring are set up for success upon stocking.</span></p>","language":"English","publisher":"Elsevier","doi":"10.1016/j.jglr.2022.04.013","usgsCitation":"Stewart, T., Vinson, M., and Stockwell, J.D., 2022, Effects of warming winter embryo incubation temperatures on larval cisco (Coregonus artedi) survival, growth, and critical thermal maximum: Journal of Great Lakes Research, v. 48, no. 4, p. 1042-1049, https://doi.org/10.1016/j.jglr.2022.04.013.","productDescription":"8 p.","startPage":"1042","endPage":"1049","ipdsId":"IP-136238","costCenters":[{"id":324,"text":"Great Lakes Science Center","active":true,"usgs":true}],"links":[{"id":447006,"rank":0,"type":{"id":40,"text":"Open Access Publisher Index Page"},"url":"https://doi.org/10.1016/j.jglr.2022.04.013","text":"Publisher Index 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Center","active":true,"usgs":true}],"preferred":true,"id":867053,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Stockwell, Jason D. 0000-0003-3393-6799","orcid":"https://orcid.org/0000-0003-3393-6799","contributorId":61004,"corporation":false,"usgs":false,"family":"Stockwell","given":"Jason","email":"","middleInitial":"D.","affiliations":[],"preferred":false,"id":867054,"contributorType":{"id":1,"text":"Authors"},"rank":3}]}}
,{"id":70241060,"text":"70241060 - 2022 - The new lava dome growth of Nevado del Ruiz (2015–2021)","interactions":[],"lastModifiedDate":"2023-03-08T14:29:16.349364","indexId":"70241060","displayToPublicDate":"2022-07-27T06:52:26","publicationYear":"2022","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":13450,"text":"Journal of Vulcanological and Geothermal Research","active":true,"publicationSubtype":{"id":10}},"title":"The new lava dome growth of Nevado del Ruiz (2015–2021)","docAbstract":"<div id=\"abstracts\" class=\"Abstracts u-font-gulliver text-s\"><div id=\"ab0005\" class=\"abstract author\" lang=\"en\"><div id=\"as0005\"><p id=\"sp0080\"><span>The morphology of the summit of Nevado del Ruiz&nbsp;volcano&nbsp;(Colombia) and its active Arenas&nbsp;crater&nbsp;is the product of complex interactions between effusive and explosive eruptions, and the dynamics of the summit glacier. Here, we document the morphologic evolution of the summit of Nevado del Ruiz, and the growth of its dome, from a variety of methods: monitoring data (2010 to 2021), photogrammetry,&nbsp;remote sensing, and quantitative modeling. The present morphology of Arenas crater, with small terraces limited by the walls of the crater, various vents of ash emission, and zones of fumarolic activity, has been shaped by the activity following the eruptions of 1845, 1985, 1989, 2012 and the volcanic unrest of the last 10&nbsp;years. The latest&nbsp;emplacement&nbsp;of a&nbsp;lava dome&nbsp;at the bottom of the main crater began in 2015. The dome grew, with fluctuations in its extrusion rate between ~0.19&nbsp;m</span><sup>3</sup>/s (November 2015) and 0.02&nbsp;m<sup>3</sup>/s (February 2018), until December 2019, reaching a diameter of ~130&nbsp;m, a maximum height of ~60&nbsp;m, and a volume of 1.7&nbsp;±&nbsp;0.2&nbsp;×&nbsp;10<sup>6</sup>&nbsp;m<sup>3</sup>.</p></div></div></div>","language":"English","publisher":"Elsevier","doi":"10.1016/j.jvolgeores.2022.107626","usgsCitation":"Ordonez, M., La Verde, C., and Battaglia, M., 2022, The new lava dome growth of Nevado del Ruiz (2015–2021): Journal of Vulcanological and Geothermal Research, v. 430, 107626, 11 p., https://doi.org/10.1016/j.jvolgeores.2022.107626.","productDescription":"107626, 11 p.","ipdsId":"IP-130006","costCenters":[{"id":617,"text":"Volcano Science Center","active":true,"usgs":true}],"links":[{"id":447008,"rank":2,"type":{"id":41,"text":"Open Access External Repository Page"},"url":"https://doi.org/10.1016/j.jvolgeores.2022.107626","text":"External Repository"},{"id":413846,"rank":1,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"country":"Columbia","otherGeospatial":"Nevado del Ruiz volcano","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"coordinates\": [\n          [\n            [\n              -75.5,\n              5\n            ],\n            [\n              -75.5,\n              4.7833\n            ],\n            [\n              -75.1667,\n              4.7833\n            ],\n            [\n              -75.1667,\n              5\n            ],\n            [\n              -75.5,\n              5\n            ]\n          ]\n        ],\n        \"type\": \"Polygon\"\n      }\n    }\n  ]\n}","volume":"430","noUsgsAuthors":false,"publicationStatus":"PW","contributors":{"authors":[{"text":"Ordonez, Milton","contributorId":302934,"corporation":false,"usgs":false,"family":"Ordonez","given":"Milton","affiliations":[{"id":12810,"text":"Colombian Geological Survey","active":true,"usgs":false}],"preferred":false,"id":865914,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"La Verde, Carlos","contributorId":302935,"corporation":false,"usgs":false,"family":"La Verde","given":"Carlos","email":"","affiliations":[{"id":12810,"text":"Colombian Geological Survey","active":true,"usgs":false}],"preferred":false,"id":865915,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Battaglia, Maurizio 0000-0003-4726-5287 mbattaglia@usgs.gov","orcid":"https://orcid.org/0000-0003-4726-5287","contributorId":204742,"corporation":false,"usgs":true,"family":"Battaglia","given":"Maurizio","email":"mbattaglia@usgs.gov","affiliations":[{"id":617,"text":"Volcano Science Center","active":true,"usgs":true},{"id":114,"text":"Alaska Science Center","active":true,"usgs":true}],"preferred":true,"id":865916,"contributorType":{"id":1,"text":"Authors"},"rank":3}]}}
,{"id":70236446,"text":"70236446 - 2022 - Implications of habitat-driven survival and dispersal on recruitment in a spatially structured piping plover population","interactions":[],"lastModifiedDate":"2022-09-07T11:53:37.618683","indexId":"70236446","displayToPublicDate":"2022-07-27T06:50:20","publicationYear":"2022","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":1475,"text":"Ecosphere","active":true,"publicationSubtype":{"id":10}},"title":"Implications of habitat-driven survival and dispersal on recruitment in a spatially structured piping plover population","docAbstract":"<div class=\"abstract-group\"><div class=\"article-section__content en main\"><p>Natal survival and dispersal have important consequences for populations through the movement of genes and individuals. Metapopulation theory predicts either balanced natal dispersal among regions or source–sink dynamics, which can dramatically change population structure. For species reliant on dynamic, early-successional habitats, availability and location of habitat will shift from year to year, requiring primiparous individuals to locate an appropriate breeding habitat. We estimated hatch-year survival to adulthood and natal dispersal rates between two breeding groups of Northern Great Plains piping plovers (<i>Charadrius melodus</i>) from four cohorts (<i>n</i>&nbsp;=&nbsp;2669 total individuals; 2014–2017). Hatch-year survival to adulthood was slightly higher for individuals hatched on the Missouri River than on the US Alkali Wetlands but declined over time. Individuals hatched on the US Alkali Wetlands were more likely to disperse to breed on the Missouri River (0.33 [0.20, 0.48]) than vice versa (0.17 [0.11, 0.24]). When more habitat was available at the natal site than in the prior year, natal dispersal rates increased. However, despite higher recruitment rates as a result of higher natal fidelity, the Missouri River showed lower total recruitment with a declining trend in the number of recruits, largely due to differences in abundance between breeding groups. Overall, unbalanced, high natal dispersal rates within the Northern Great Plains indicate high connectivity among distinct regions with different water regimes on the Missouri River and on the US Alkali Wetlands driven by fluctuating availability of habitat. Our results suggest that plovers in the Northern Great Plains take advantage of dynamic habitats where they are available in a broad geographic area, which is consistent with a spatially structured panmictic population rather than a true metapopulation, but further research on adult breeding dispersal is needed to clarify population structure.</p></div></div>","language":"English","publisher":"Ecological Society of America","doi":"10.1002/ecs2.4190","usgsCitation":"Swift, R.J., Anteau, M.J., Ellis, K.S., Ring, M., Sherfy, M.H., Toy, D.L., and Koons, D.N., 2022, Implications of habitat-driven survival and dispersal on recruitment in a spatially structured piping plover population: Ecosphere, v. 13, no. 7, 14190, 15 p., https://doi.org/10.1002/ecs2.4190.","productDescription":"14190, 15 p.","ipdsId":"IP-130345","costCenters":[{"id":480,"text":"Northern Prairie Wildlife Research Center","active":true,"usgs":true}],"links":[{"id":447010,"rank":1,"type":{"id":40,"text":"Open Access Publisher Index Page"},"url":"https://doi.org/10.1002/ecs2.4190","text":"Publisher Index Page"},{"id":435754,"rank":0,"type":{"id":30,"text":"Data Release"},"url":"https://doi.org/10.5066/P9G1JUS0","text":"USGS data release","linkHelpText":"Piping plover hatch-year survival and natal dispersal probabilities in the Northern Great Plains, USA 2014-2019"},{"id":406295,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"country":"United States","state":"North Dakota, South Dakota","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"type\": \"Polygon\",\n        \"coordinates\": [\n          [\n            [\n              -105.07324218750001,\n              43.35713822211053\n            ],\n            [\n              -96.0205078125,\n              43.35713822211053\n            ],\n            [\n              -96.0205078125,\n              49.52520834197442\n            ],\n            [\n              -105.07324218750001,\n              49.52520834197442\n            ],\n            [\n              -105.07324218750001,\n              43.35713822211053\n            ]\n          ]\n        ]\n      }\n    }\n  ]\n}","volume":"13","issue":"7","noUsgsAuthors":false,"publicationDate":"2022-07-27","publicationStatus":"PW","contributors":{"authors":[{"text":"Swift, Rose J. 0000-0001-7044-6196","orcid":"https://orcid.org/0000-0001-7044-6196","contributorId":212082,"corporation":false,"usgs":true,"family":"Swift","given":"Rose","email":"","middleInitial":"J.","affiliations":[{"id":480,"text":"Northern Prairie Wildlife Research Center","active":true,"usgs":true}],"preferred":true,"id":851024,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Anteau, Michael J. 0000-0002-5173-5870 manteau@usgs.gov","orcid":"https://orcid.org/0000-0002-5173-5870","contributorId":3427,"corporation":false,"usgs":true,"family":"Anteau","given":"Michael","email":"manteau@usgs.gov","middleInitial":"J.","affiliations":[{"id":480,"text":"Northern Prairie Wildlife Research Center","active":true,"usgs":true}],"preferred":true,"id":851025,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Ellis, Kristen S. 0000-0003-2759-3670","orcid":"https://orcid.org/0000-0003-2759-3670","contributorId":251877,"corporation":false,"usgs":true,"family":"Ellis","given":"Kristen","email":"","middleInitial":"S.","affiliations":[{"id":480,"text":"Northern Prairie Wildlife Research Center","active":true,"usgs":true}],"preferred":true,"id":851026,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Ring, Megan M. 0000-0001-8331-8492","orcid":"https://orcid.org/0000-0001-8331-8492","contributorId":225026,"corporation":false,"usgs":true,"family":"Ring","given":"Megan M.","affiliations":[{"id":480,"text":"Northern Prairie Wildlife Research Center","active":true,"usgs":true}],"preferred":true,"id":851027,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Sherfy, Mark H. 0000-0003-3016-4105 msherfy@usgs.gov","orcid":"https://orcid.org/0000-0003-3016-4105","contributorId":125,"corporation":false,"usgs":true,"family":"Sherfy","given":"Mark","email":"msherfy@usgs.gov","middleInitial":"H.","affiliations":[{"id":480,"text":"Northern Prairie Wildlife Research Center","active":true,"usgs":true}],"preferred":true,"id":851028,"contributorType":{"id":1,"text":"Authors"},"rank":5},{"text":"Toy, Dustin L. 0000-0001-5390-5784 dtoy@usgs.gov","orcid":"https://orcid.org/0000-0001-5390-5784","contributorId":5150,"corporation":false,"usgs":true,"family":"Toy","given":"Dustin","email":"dtoy@usgs.gov","middleInitial":"L.","affiliations":[{"id":480,"text":"Northern Prairie Wildlife Research Center","active":true,"usgs":true}],"preferred":true,"id":851029,"contributorType":{"id":1,"text":"Authors"},"rank":6},{"text":"Koons, David N.","contributorId":28137,"corporation":false,"usgs":false,"family":"Koons","given":"David","email":"","middleInitial":"N.","affiliations":[{"id":6621,"text":"Colorado State University","active":true,"usgs":false}],"preferred":false,"id":851030,"contributorType":{"id":1,"text":"Authors"},"rank":7}]}}
,{"id":70254838,"text":"70254838 - 2022 - Comparison of structures used to estimate age and growth of Yellowstone Cutthroat Trout","interactions":[],"lastModifiedDate":"2024-06-11T11:08:21.488537","indexId":"70254838","displayToPublicDate":"2022-07-27T06:06:47","publicationYear":"2022","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":2287,"text":"Journal of Fish and Wildlife Management","active":true,"publicationSubtype":{"id":10}},"title":"Comparison of structures used to estimate age and growth of Yellowstone Cutthroat Trout","docAbstract":"<div id=\"15049948\" class=\"article-section-wrapper js-article-section js-content-section  \" data-section-parent-id=\"0\"><p>Understanding age and growth of fishes is critical for making meaningful management decisions. Obtaining useful information is dependent on using the best structure (e.g., scale, otolith). The objective of this study was to evaluate precision and reader confidence in age estimates from sagittal otoliths (i.e., whole, sectioned) and scales for Yellowstone Cutthroat Trout<span>&nbsp;</span><i>Oncorhynchus clarkii bouvieri</i><span>&nbsp;</span>collected from Henrys Lake, Idaho. We also sought to compare growth estimates among structures sampled during annual gill net surveys in May 2019 and 2020. We removed sagittal otoliths and scales from 416 Yellowstone Cutthroat Trout. Two readers without prior knowledge of fish length independently aged scales, whole otoliths, and sectioned otoliths. Each reader also provided a confidence rating of 0 (not confident) to 3 (completely confident). Percent exact agreement between readers was highest for sectioned otoliths (85.3%), followed by scales (68.5%) and whole otoliths (66.1%). Average confidence rating was highest for sectioned (mean ± SD = 2.2 ± 0.6) and whole (1.4 ± 0.5) otoliths and lowest for scales (1.0 ± 0.2). Among structures, percent exact agreement (i.e., consensus age) was highest between whole and sectioned otoliths (66.7%), followed by scales and sectioned otoliths (58.9%). Exact agreement was lowest between scales and whole otoliths (51.2%). Differences in back-calculated length at age estimates between sectioned otoliths and scales were minimal, particularly for ages 1–4. Although sectioned otoliths required more time to prepare than scales or whole otoliths, sectioned otoliths produced the most precise age estimates for Yellowstone Cutthroat Trout, with the highest reader confidence.</p></div>","language":"English","publisher":"Allen Press","doi":"10.3996/JFWM-21-095","usgsCitation":"Quist, M.C., McCarrick, D.K., and Harris, L., 2022, Comparison of structures used to estimate age and growth of Yellowstone Cutthroat Trout: Journal of Fish and Wildlife Management, v. 13, no. 2, p. 544-551, https://doi.org/10.3996/JFWM-21-095.","productDescription":"8 p.","startPage":"544","endPage":"551","ipdsId":"IP-135381","costCenters":[{"id":200,"text":"Coop Res Unit Seattle","active":true,"usgs":true}],"links":[{"id":447013,"rank":0,"type":{"id":40,"text":"Open Access Publisher Index Page"},"url":"https://doi.org/10.3996/jfwm-21-095","text":"Publisher Index Page"},{"id":429806,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"volume":"13","issue":"2","noUsgsAuthors":false,"publicationDate":"2022-06-27","publicationStatus":"PW","contributors":{"authors":[{"text":"Quist, Michael C. 0000-0001-8268-1839","orcid":"https://orcid.org/0000-0001-8268-1839","contributorId":207142,"corporation":false,"usgs":true,"family":"Quist","given":"Michael","middleInitial":"C.","affiliations":[{"id":200,"text":"Coop Res Unit Seattle","active":true,"usgs":true}],"preferred":true,"id":902683,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"McCarrick, Darcy K.","contributorId":269700,"corporation":false,"usgs":false,"family":"McCarrick","given":"Darcy","email":"","middleInitial":"K.","affiliations":[],"preferred":false,"id":902684,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Harris, Lynsey","contributorId":337796,"corporation":false,"usgs":false,"family":"Harris","given":"Lynsey","email":"","affiliations":[{"id":36394,"text":"University of Idaho","active":true,"usgs":false}],"preferred":false,"id":902685,"contributorType":{"id":1,"text":"Authors"},"rank":3}]}}
,{"id":70233572,"text":"fs20223037 - 2022 - Groundwater quality in selected Stream Valley aquifers, eastern United States","interactions":[],"lastModifiedDate":"2026-03-24T21:23:35.998775","indexId":"fs20223037","displayToPublicDate":"2022-07-26T14:14:18","publicationYear":"2022","noYear":false,"publicationType":{"id":18,"text":"Report"},"publicationSubtype":{"id":5,"text":"USGS Numbered Series"},"seriesTitle":{"id":313,"text":"Fact Sheet","code":"FS","onlineIssn":"2327-6932","printIssn":"2327-6916","active":true,"publicationSubtype":{"id":5}},"seriesNumber":"2022-3037","displayTitle":"Groundwater Quality in Selected Stream-Valley Aquifers, Eastern United States","title":"Groundwater quality in selected Stream Valley aquifers, eastern United States","docAbstract":"<p>Groundwater provides nearly 50 percent of the Nation’s drinking water. To help protect this vital resource, the U.S. Geological Survey (USGS) National Water-Quality Assessment (NAWQA) Project assesses groundwater quality in aquifers that are important sources of drinking water (Burow and Belitz, 2014). The stream-valley aquifers constitute one of the important aquifer systems being evaluated.</p>","language":"English","publisher":"U.S. Geological Survey","publisherLocation":"Reston, VA","doi":"10.3133/fs20223037","collaboration":"National Water-Quality Assessment Project","programNote":"National Water Quality Program","usgsCitation":"Kingsbury, J.A., 2022, Groundwater quality in selected Stream Valley aquifers, eastern United States: U.S. Geological Survey Fact Sheet 2022-3037, 4 p., https://doi.org/10.3133/fs20223037.","productDescription":"4 p.","numberOfPages":"4","onlineOnly":"N","ipdsId":"IP-135420","costCenters":[{"id":37277,"text":"WMA - Earth System Processes Division","active":true,"usgs":true}],"links":[{"id":404450,"rank":1,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/fs/2022/3037/covrthb.jpg"},{"id":404451,"rank":2,"type":{"id":11,"text":"Document"},"url":"https://pubs.usgs.gov/fs/2022/3037/fs20223037.pdf","text":"Report","size":"3.41 MB","linkFileType":{"id":1,"text":"pdf"}},{"id":404452,"rank":3,"type":{"id":31,"text":"Publication XML"},"url":"https://pubs.usgs.gov/fs/2022/3037/fs20223037.xml"},{"id":404453,"rank":4,"type":{"id":34,"text":"Image Folder"},"url":"https://pubs.usgs.gov/fs/2022/3037/images"},{"id":501492,"rank":5,"type":{"id":36,"text":"NGMDB Index Page"},"url":"https://ngmdb.usgs.gov/Prodesc/proddesc_113350.htm","linkFileType":{"id":5,"text":"html"}}],"country":"United States","state":"Illinois, Indiana, Kentucky, Missouri, New York, Ohio, Pennsylvania, West Virginia","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"type\": \"Polygon\",\n        \"coordinates\": [\n          [\n            [\n              -89.2529296875,\n              36.59788913307022\n            ],\n            [\n              -87.890625,\n              36.94989178681327\n            ],\n            [\n              -85.517578125,\n              37.71859032558816\n            ],\n            [\n              -83.54003906250001,\n              38.13455657705411\n            ],\n            [\n              -82.44140625,\n              37.92686760148135\n            ],\n            [\n              -80.85937499999999,\n              38.30718056188316\n            ],\n            [\n              -80.1123046875,\n              38.75408327579141\n            ],\n            [\n              -78.92578124999999,\n              39.977120098439634\n            ],\n            [\n              -77.82714843749999,\n              40.713955826286046\n            ],\n            [\n              -76.4208984375,\n              41.409775832009565\n            ],\n            [\n              -76.4208984375,\n              41.902277040963696\n            ],\n            [\n              -76.728515625,\n              42.58544425738491\n            ],\n            [\n              -77.82714843749999,\n              42.58544425738491\n            ],\n            [\n              -78.486328125,\n              41.96765920367816\n            ],\n            [\n              -79.89257812499999,\n              41.27780646738183\n            ],\n            [\n              -81.650390625,\n              40.91351257612758\n            ],\n            [\n              -83.14453125,\n              40.44694705960048\n            ],\n            [\n              -84.375,\n              39.9434364619742\n            ],\n            [\n              -86.484375,\n              39.33429742980725\n            ],\n            [\n              -88.11035156249999,\n              38.58252615935333\n            ],\n            [\n              -88.9453125,\n              38.13455657705411\n            ],\n            [\n              -89.8681640625,\n              37.37015718405753\n            ],\n            [\n              -89.736328125,\n              36.70365959719456\n            ],\n            [\n              -89.2529296875,\n              36.59788913307022\n            ]\n          ]\n        ]\n      }\n    }\n  ]\n}","contact":"<p><a href=\"mailto:email=wausp-info@usgs.gov\" target=\"_blank\" rel=\"noopener\" data-mce-href=\"mailto:email=wausp-info@usgs.gov\">NAWQA Chief Scientist</a><br><a href=\"https://www.usgs.gov/mission-areas/water-resources\" target=\"_blank\" rel=\"noopener\" data-mce-href=\"https://www.usgs.gov/mission-areas/water-resources\">National Water-Quality Program</a><br><a href=\"https://www.usgs.gov/\" target=\"_blank\" rel=\"noopener\" data-mce-href=\"https://www.usgs.gov/\">U.S. Geological Survey</a>&nbsp;<br>12201 Sunrise Valley Drive, MS 413&nbsp;<br>Reston, VA 20192-0002</p>","tableOfContents":"<ul><li>Background&nbsp;&nbsp;</li><li>Overview of Water Quality&nbsp;&nbsp;</li><li>Results: Groundwater Quality at the Depth Zone Used for Public Supply in Stream-Valley Aquifers&nbsp;&nbsp;</li><li>Inorganic Constituents&nbsp;&nbsp;</li><li>Organic Constituents&nbsp;&nbsp;</li><li>Benchmarks for Evaluating Groundwater Quality&nbsp;&nbsp;</li><li>References Cited&nbsp;</li></ul>","publishingServiceCenter":{"id":1,"text":"Sacramento PSC"},"publishedDate":"2022-07-26","noUsgsAuthors":false,"publicationDate":"2022-07-26","publicationStatus":"PW","contributors":{"authors":[{"text":"Kingsbury, James A. 0000-0003-4985-275X jakingsb@usgs.gov","orcid":"https://orcid.org/0000-0003-4985-275X","contributorId":883,"corporation":false,"usgs":true,"family":"Kingsbury","given":"James","email":"jakingsb@usgs.gov","middleInitial":"A.","affiliations":[{"id":37277,"text":"WMA - Earth System Processes Division","active":true,"usgs":true},{"id":24708,"text":"Lower Mississippi-Gulf Water Science Center","active":true,"usgs":true},{"id":581,"text":"Tennessee Water Science Center","active":true,"usgs":true},{"id":451,"text":"National Water Quality Assessment Program","active":true,"usgs":true}],"preferred":true,"id":847445,"contributorType":{"id":1,"text":"Authors"},"rank":1}]}}
,{"id":70234139,"text":"70234139 - 2022 - Temporal and spatial relationships of Yellowfin Tuna to deepwater petroleum platforms in the northern Gulf of Mexico","interactions":[],"lastModifiedDate":"2022-08-02T13:38:51.101266","indexId":"70234139","displayToPublicDate":"2022-07-26T08:31:48","publicationYear":"2022","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":2680,"text":"Marine and Coastal Fisheries: Dynamics, Management, and Ecosystem Science","active":true,"publicationSubtype":{"id":10}},"title":"Temporal and spatial relationships of Yellowfin Tuna to deepwater petroleum platforms in the northern Gulf of Mexico","docAbstract":"<p><span>In 2006–2007, 110 Yellowfin Tuna&nbsp;</span><i>Thunnus albacares</i><span>&nbsp;were tagged with acoustic transmitters near deepwater oil platforms and one drillship in the northern Gulf of Mexico off the Mississippi River delta to determine the extent to which platforms act as fish aggregating devices (FADs). Vemco acoustic receivers were installed on six deepwater platforms to detect the presence of tagged individuals. Five of 12 Yellowfin Tuna captured in 2006 were detected in 2007, demonstrating multi-year presence in the region. Ninety Yellowfin Tuna were detected in 2007, resulting in 221 platform residencies and 32 single detections. Duration of residence at a platform was positively correlated with the platform's depth, and the number of transitions decreased with platform-to-platform distance. In total, 109 movements between platforms by 46 (51%) different individuals were detected, traveling distances of up to 98.2 km. Yellowfin Tuna displayed interactions with deepwater platforms in the northern Gulf of Mexico similar to their interactions with FADs and other studied geological features, by way of aggregating or using them as meeting points, landmarks, and stopovers within a movement corridor. The large number of oil and gas platforms located in the northern Gulf of Mexico may have a significant effect on distribution, retention, and migration of Yellowfin Tuna populations in this area of the gulf.</span></p>","language":"English","publisher":"American Fisheries Society","doi":"10.1002/mcf2.10213","usgsCitation":"Price, M.E., Randall, M.T., Sulak, K.J., Edwards, R., and Lamont, M., 2022, Temporal and spatial relationships of Yellowfin Tuna to deepwater petroleum platforms in the northern Gulf of Mexico: Marine and Coastal Fisheries: Dynamics, Management, and Ecosystem Science, v. 14, no. 4, e10213, 14 p., https://doi.org/10.1002/mcf2.10213.","productDescription":"e10213, 14 p.","ipdsId":"IP-075192","costCenters":[{"id":17705,"text":"Wetland and Aquatic Research Center","active":true,"usgs":true}],"links":[{"id":447014,"rank":0,"type":{"id":40,"text":"Open Access Publisher Index Page"},"url":"https://doi.org/10.1002/mcf2.10213","text":"Publisher Index Page"},{"id":404651,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"country":"United States","state":"Louisiana","otherGeospatial":"northern Gulf of Mexico","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"type\": \"Polygon\",\n        \"coordinates\": [\n          [\n            [\n              -89.75,\n              28\n            ],\n            [\n              -88.5,\n              28\n            ],\n            [\n              -88.5,\n              29.25\n            ],\n            [\n              -89.75,\n              29.25\n            ],\n            [\n              -89.75,\n              28\n            ]\n          ]\n        ]\n      }\n    }\n  ]\n}","volume":"14","issue":"4","noUsgsAuthors":false,"publicationDate":"2022-07-26","publicationStatus":"PW","contributors":{"authors":[{"text":"Price, Melissa E. 0000-0002-4276-0855 mprice@usgs.gov","orcid":"https://orcid.org/0000-0002-4276-0855","contributorId":5875,"corporation":false,"usgs":true,"family":"Price","given":"Melissa","email":"mprice@usgs.gov","middleInitial":"E.","affiliations":[{"id":17705,"text":"Wetland and Aquatic Research Center","active":true,"usgs":true}],"preferred":true,"id":847941,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Randall, Michael T. 0000-0001-8805-0886 mrandall@usgs.gov","orcid":"https://orcid.org/0000-0001-8805-0886","contributorId":3127,"corporation":false,"usgs":true,"family":"Randall","given":"Michael","email":"mrandall@usgs.gov","middleInitial":"T.","affiliations":[{"id":17705,"text":"Wetland and Aquatic Research Center","active":true,"usgs":true},{"id":566,"text":"Southeast Ecological Science Center","active":true,"usgs":true}],"preferred":true,"id":847942,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Sulak, Kenneth J. 0000-0002-4795-9310 ksulak@usgs.gov","orcid":"https://orcid.org/0000-0002-4795-9310","contributorId":2217,"corporation":false,"usgs":true,"family":"Sulak","given":"Kenneth","email":"ksulak@usgs.gov","middleInitial":"J.","affiliations":[{"id":566,"text":"Southeast Ecological Science Center","active":true,"usgs":true},{"id":17705,"text":"Wetland and Aquatic Research Center","active":true,"usgs":true}],"preferred":true,"id":847943,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Edwards, Randy E.","contributorId":294382,"corporation":false,"usgs":false,"family":"Edwards","given":"Randy E.","affiliations":[{"id":7163,"text":"University of South Florida","active":true,"usgs":false}],"preferred":false,"id":847944,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Lamont, Margaret 0000-0001-7520-6669","orcid":"https://orcid.org/0000-0001-7520-6669","contributorId":222403,"corporation":false,"usgs":true,"family":"Lamont","given":"Margaret","affiliations":[{"id":17705,"text":"Wetland and Aquatic Research Center","active":true,"usgs":true}],"preferred":true,"id":847945,"contributorType":{"id":1,"text":"Authors"},"rank":5}]}}
,{"id":70260132,"text":"70260132 - 2022 - Community established best practice recommendations for tephra studies— From collection through analysis","interactions":[],"lastModifiedDate":"2024-10-29T13:44:36.183044","indexId":"70260132","displayToPublicDate":"2022-07-26T08:31:43","publicationYear":"2022","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":3907,"text":"Scientific Data","active":true,"publicationSubtype":{"id":10}},"title":"Community established best practice recommendations for tephra studies— From collection through analysis","docAbstract":"<p><span>Tephra is a unique volcanic product with an unparalleled role in understanding past eruptions, long-term behavior of volcanoes, and the effects of volcanism on climate and the environment. Tephra deposits also provide spatially widespread, high-resolution time-stratigraphic markers across a range of sedimentary settings and thus&nbsp;are used in numerous disciplines (e.g., volcanology, climate science, archaeology). Nonetheless, the study of tephra deposits is challenged by a lack of standardization that inhibits data integration across geographic regions and disciplines. We present comprehensive recommendations for tephra data gathering and reporting that were developed by the tephra science community to guide future investigators and to ensure that sufficient data are gathered for interoperability. Recommendations include standardized field and laboratory data collection, reporting and correlation guidance. These are organized as tabulated lists of key metadata with their definition and purpose. They are system independent and usable for template, tool, and database development. This standardized framework promotes consistent documentation and archiving, fosters interdisciplinary communication, and improves effectiveness of data sharing among diverse communities of researchers.</span></p>","language":"English","publisher":"Springer","doi":"10.1038/s41597-022-01515-y","usgsCitation":"Wallace, K.L., Bursik, M., Kuehn, S., Kurbatov, A., Abbot, P., Bonadonna, C., Cashman, K., Davies, S., Jensen, B.J., Lane, C., Plunkett, G., Smith, V., Tomlinson, E., Thordarsson, T., and Walker, J.D., 2022, Community established best practice recommendations for tephra studies— From collection through analysis: Scientific Data, v. 9, 447, 11 p., https://doi.org/10.1038/s41597-022-01515-y.","productDescription":"447, 11 p.","ipdsId":"IP-120110","costCenters":[{"id":617,"text":"Volcano Science Center","active":true,"usgs":true}],"links":[{"id":467172,"rank":0,"type":{"id":40,"text":"Open Access Publisher Index Page"},"url":"https://doi.org/10.1038/s41597-022-01515-y","text":"Publisher Index Page"},{"id":463319,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"volume":"9","noUsgsAuthors":false,"publicationDate":"2022-07-26","publicationStatus":"PW","contributors":{"authors":[{"text":"Wallace, Kristi L. 0000-0002-0962-048X kwallace@usgs.gov","orcid":"https://orcid.org/0000-0002-0962-048X","contributorId":3454,"corporation":false,"usgs":true,"family":"Wallace","given":"Kristi","email":"kwallace@usgs.gov","middleInitial":"L.","affiliations":[{"id":617,"text":"Volcano Science Center","active":true,"usgs":true}],"preferred":true,"id":917115,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Bursik, Marcus 0000-0002-9312-5202","orcid":"https://orcid.org/0000-0002-9312-5202","contributorId":345615,"corporation":false,"usgs":false,"family":"Bursik","given":"Marcus","email":"","affiliations":[{"id":82657,"text":"SUNY Buffalo, Buffalo, NY","active":true,"usgs":false}],"preferred":false,"id":917116,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Kuehn, Stephen 0000-0002-2918-980X","orcid":"https://orcid.org/0000-0002-2918-980X","contributorId":345616,"corporation":false,"usgs":false,"family":"Kuehn","given":"Stephen","email":"","affiliations":[{"id":82658,"text":"Concord University, WV","active":true,"usgs":false}],"preferred":false,"id":917117,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Kurbatov, Andrei 0000-0002-9819-9251","orcid":"https://orcid.org/0000-0002-9819-9251","contributorId":345617,"corporation":false,"usgs":false,"family":"Kurbatov","given":"Andrei","email":"","affiliations":[{"id":82659,"text":"University of Maine, ME","active":true,"usgs":false}],"preferred":false,"id":917118,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Abbot, Peter 0000-0002-6347-9499","orcid":"https://orcid.org/0000-0002-6347-9499","contributorId":345618,"corporation":false,"usgs":false,"family":"Abbot","given":"Peter","email":"","affiliations":[{"id":38843,"text":"University of Bern, Switzerland","active":true,"usgs":false}],"preferred":false,"id":917119,"contributorType":{"id":1,"text":"Authors"},"rank":5},{"text":"Bonadonna, Contanza 0000-0002-2368-2193","orcid":"https://orcid.org/0000-0002-2368-2193","contributorId":339895,"corporation":false,"usgs":false,"family":"Bonadonna","given":"Contanza","email":"","affiliations":[{"id":62805,"text":"Université de Genève","active":true,"usgs":false}],"preferred":false,"id":917120,"contributorType":{"id":1,"text":"Authors"},"rank":6},{"text":"Cashman, Katharine 0000-0001-9312-8377","orcid":"https://orcid.org/0000-0001-9312-8377","contributorId":345619,"corporation":false,"usgs":false,"family":"Cashman","given":"Katharine","email":"","affiliations":[{"id":38325,"text":"University of Bristol, UK","active":true,"usgs":false}],"preferred":false,"id":917121,"contributorType":{"id":1,"text":"Authors"},"rank":7},{"text":"Davies, Siwan 0000-0003-0999-7233","orcid":"https://orcid.org/0000-0003-0999-7233","contributorId":345620,"corporation":false,"usgs":false,"family":"Davies","given":"Siwan","email":"","affiliations":[{"id":34013,"text":"Swansea University, UK","active":true,"usgs":false}],"preferred":false,"id":917122,"contributorType":{"id":1,"text":"Authors"},"rank":8},{"text":"Jensen, Britta J.L. 0000-0001-9134-7170","orcid":"https://orcid.org/0000-0001-9134-7170","contributorId":244298,"corporation":false,"usgs":false,"family":"Jensen","given":"Britta","email":"","middleInitial":"J.L.","affiliations":[{"id":36696,"text":"University of Alberta","active":true,"usgs":false}],"preferred":false,"id":917123,"contributorType":{"id":1,"text":"Authors"},"rank":9},{"text":"Lane, Christine 0000-0001-9206-3903","orcid":"https://orcid.org/0000-0001-9206-3903","contributorId":345621,"corporation":false,"usgs":false,"family":"Lane","given":"Christine","email":"","affiliations":[{"id":52574,"text":"University of Cambridge, UK","active":true,"usgs":false}],"preferred":false,"id":917124,"contributorType":{"id":1,"text":"Authors"},"rank":10},{"text":"Plunkett, Gill 0000-0003-1014-3454","orcid":"https://orcid.org/0000-0003-1014-3454","contributorId":288522,"corporation":false,"usgs":false,"family":"Plunkett","given":"Gill","email":"","affiliations":[{"id":61787,"text":"Queen’s University Belfast","active":true,"usgs":false}],"preferred":false,"id":917125,"contributorType":{"id":1,"text":"Authors"},"rank":11},{"text":"Smith, Victoria 0000-0003-0878-5060","orcid":"https://orcid.org/0000-0003-0878-5060","contributorId":345622,"corporation":false,"usgs":false,"family":"Smith","given":"Victoria","email":"","affiliations":[{"id":82660,"text":"Research Laboratory for Archaeology and the History of Art, University of Oxford, UK","active":true,"usgs":false}],"preferred":false,"id":917126,"contributorType":{"id":1,"text":"Authors"},"rank":12},{"text":"Tomlinson, Emma 0000-0002-0646-6640","orcid":"https://orcid.org/0000-0002-0646-6640","contributorId":288524,"corporation":false,"usgs":false,"family":"Tomlinson","given":"Emma","email":"","affiliations":[{"id":61788,"text":"Trinity College Dublin","active":true,"usgs":false}],"preferred":false,"id":917127,"contributorType":{"id":1,"text":"Authors"},"rank":13},{"text":"Thordarsson, Thor","contributorId":345623,"corporation":false,"usgs":false,"family":"Thordarsson","given":"Thor","email":"","affiliations":[{"id":35076,"text":"University of Iceland, Reykjavík, Iceland","active":true,"usgs":false}],"preferred":false,"id":917128,"contributorType":{"id":1,"text":"Authors"},"rank":14},{"text":"Walker, J. Douglas 0000-0002-3706-2729","orcid":"https://orcid.org/0000-0002-3706-2729","contributorId":345624,"corporation":false,"usgs":false,"family":"Walker","given":"J.","email":"","middleInitial":"Douglas","affiliations":[{"id":82661,"text":"University of Kansas, Lawrence, KS, USA","active":true,"usgs":false}],"preferred":false,"id":917129,"contributorType":{"id":1,"text":"Authors"},"rank":15}]}}
,{"id":70249206,"text":"70249206 - 2022 - Invasive brown treesnakes (Boiga irregularis) move short distances and have small activity areas in a high prey environment","interactions":[],"lastModifiedDate":"2023-10-02T12:08:45.807835","indexId":"70249206","displayToPublicDate":"2022-07-26T07:06:35","publicationYear":"2022","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":3358,"text":"Scientific Reports","active":true,"publicationSubtype":{"id":10}},"title":"Invasive brown treesnakes (Boiga irregularis) move short distances and have small activity areas in a high prey environment","docAbstract":"<p><span>Animal movements reflect temporal and spatial availability of resources as well as when, where, and how individuals access such resources. To test these relationships for a predatory reptile, we quantified the effects of prey abundance on the spatial ecology of invasive brown treesnakes (</span><i>Boiga irregularis</i><span>) on Guam. Five months after toxicant-mediated suppression of a brown treesnake population, we simultaneously used visual encounter surveys to generate relative rodent abundance and radiotelemetry of snakes to document movements of surviving snakes. After snake suppression, encounter rates for small mammals increased 22-fold and brown treesnakes had smaller mean daily movement distances (24 ± 13&nbsp;m/day,&nbsp;</span><span class=\"mathjax-tex\"><span id=\"MathJax-Element-1-Frame\" class=\"MathJax\" data-mathml=\"<math xmlns=&quot;http://www.w3.org/1998/Math/MathML&quot;><mover><mi>x</mi><mo accent=&quot;false&quot;>&amp;#x00AF;</mo></mover></math>\"><span id=\"MathJax-Span-1\" class=\"math\"><span><span id=\"MathJax-Span-2\" class=\"mrow\"><span id=\"MathJax-Span-3\" class=\"munderover\"><span id=\"MathJax-Span-4\" class=\"mi\">x</span></span></span></span></span></span></span><span>&nbsp;± SD) and activity areas (5.47 ± 5 ha) than all previous observations. Additionally, snakes frequenting forest edges, where our small mammal encounters were the highest, had smaller mean daily movement distances and three-dimensional activity volumes compared to those within the forest interior. Collectively, these results suggest that reduced movements by snakes were in part a response to increased prey availability. The impact of prey availability on snake movement may be a management consideration when attempting to control cryptic invasive species using tools that rely on movement of the target species to be effective,</span></p>","language":"English","publisher":"Nature","doi":"10.1038/s41598-022-16660-y","usgsCitation":"Boback, S.M., Nafus, M., Yackel Adams, A.A., and Reed, R., 2022, Invasive brown treesnakes (Boiga irregularis) move short distances and have small activity areas in a high prey environment: Scientific Reports, v. 12, 12705, 13 p., https://doi.org/10.1038/s41598-022-16660-y.","productDescription":"12705, 13 p.","ipdsId":"IP-131730","costCenters":[{"id":291,"text":"Fort Collins Science Center","active":true,"usgs":true},{"id":5049,"text":"Pacific Islands Ecosys Research Center","active":true,"usgs":true}],"links":[{"id":447016,"rank":1,"type":{"id":40,"text":"Open Access Publisher Index Page"},"url":"https://doi.org/10.1038/s41598-022-16660-y","text":"Publisher Index Page"},{"id":435755,"rank":0,"type":{"id":30,"text":"Data Release"},"url":"https://doi.org/10.5066/P95QJ2PE","text":"USGS data release","linkHelpText":"Brown treesnake movement following snake suppression in the Habitat Management Unit on Northern Guam from 2015"},{"id":421459,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"country":"United States","otherGeospatial":"Guam","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"coordinates\": [\n          [\n            [\n              144.4454408053391,\n              13.844174280166072\n            ],\n            [\n              144.4454408053391,\n              13.155138931716053\n            ],\n            [\n              145.03870252409075,\n              13.155138931716053\n            ],\n            [\n              145.03870252409075,\n              13.844174280166072\n            ],\n            [\n              144.4454408053391,\n              13.844174280166072\n            ]\n          ]\n        ],\n        \"type\": \"Polygon\"\n      }\n    }\n  ]\n}","volume":"12","noUsgsAuthors":false,"publicationDate":"2022-07-26","publicationStatus":"PW","contributors":{"authors":[{"text":"Boback, Scott M.","contributorId":69370,"corporation":false,"usgs":false,"family":"Boback","given":"Scott","email":"","middleInitial":"M.","affiliations":[],"preferred":false,"id":884807,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Nafus, Melia Gail 0000-0002-7325-3055","orcid":"https://orcid.org/0000-0002-7325-3055","contributorId":245717,"corporation":false,"usgs":true,"family":"Nafus","given":"Melia Gail","affiliations":[{"id":291,"text":"Fort Collins Science Center","active":true,"usgs":true}],"preferred":true,"id":884808,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Yackel Adams, Amy A. 0000-0002-7044-8447 yackela@usgs.gov","orcid":"https://orcid.org/0000-0002-7044-8447","contributorId":3116,"corporation":false,"usgs":true,"family":"Yackel Adams","given":"Amy","email":"yackela@usgs.gov","middleInitial":"A.","affiliations":[{"id":291,"text":"Fort Collins Science Center","active":true,"usgs":true}],"preferred":true,"id":884809,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Reed, Robert 0000-0001-8349-6168","orcid":"https://orcid.org/0000-0001-8349-6168","contributorId":267796,"corporation":false,"usgs":true,"family":"Reed","given":"Robert","affiliations":[{"id":521,"text":"Pacific Island Ecosystems Research Center","active":false,"usgs":true}],"preferred":true,"id":884810,"contributorType":{"id":1,"text":"Authors"},"rank":4}]}}
,{"id":70236242,"text":"70236242 - 2022 - Geological reservoir characterization of a gas hydrate prospect associated with the Hydrate-01 Stratigraphic Test Well, Alaska North Slope","interactions":[],"lastModifiedDate":"2022-08-31T11:51:24.970277","indexId":"70236242","displayToPublicDate":"2022-07-26T06:49:00","publicationYear":"2022","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":12564,"text":"Journal of Energy and Fuels","active":true,"publicationSubtype":{"id":10}},"title":"Geological reservoir characterization of a gas hydrate prospect associated with the Hydrate-01 Stratigraphic Test Well, Alaska North Slope","docAbstract":"<div class=\"article_abstract\"><div class=\"container container_scaled-down\"><div class=\"row\"><div class=\"col-xs-12\"><div id=\"abstractBox\" class=\"article_abstract-content hlFld-Abstract\"><p class=\"articleBody_abstractText\">Geological reservoir characterization is essential for accurate evaluation of gas production performance from gas hydrate reservoirs. Particularly, the understanding of reservoir architecture and heterogeneity is of great importance since these are considered as major controls on fluid hydrodynamic and thermodynamic conditions. This study deals with well log and three-dimensional (3-D) vertical seismic profile (VSP) data acquired from the Hydrate-01 Stratigraphic Test Well within the 7-11-12 prospect, Prudhoe Bay Unit, Alaska North Slope and reports on the results of geological/geophysical evaluation related to the geological structure and reservoir properties of the 7-11-12 prospect. The structural trends of the target reservoirs, based on well correlations, are mostly consistent with the predrill prediction using the surface seismic data, and infer the existence of subseismic faults cutting through the Hydrate-01 well. The 3-D VSP data confirm a down-to-the-east normal fault that offsets the reservoir units across the Hydrate-01 well, which is concordant with the well identification of the same fault, and indicate a northeast-dipping relay structure associated with the overstepping normal faults. The edge enhancement attribute associated with discontinuity generated from the 3-D VSP data shows small faults/fractures, possibly as part of a complex fault network within the imaged normal fault system. These results reveal that the 3-D VSP data provide detailed structural information that is not present from the surface seismic data. The Hydrate-01 well log data confirm the occurrence of gas hydrate at high saturation in the two targeted sand units (B1 and D1 sands), and the comparison to a nearby pre-existing well (7-11-12 well) shows the same general trend in gas hydrate saturation as a map of seismic impedance generated from surface seismic data. The well log data also suggest that the base of gas hydrate occurrence in the Hydrate-01 and 7-11-12 wells is almost aligned at the same depth in both of the targeted B1 and D1 sand reservoirs. Especially for the D1 sand in the Hydrate-01 well, the resistivity logs show a sharp transition from high gas hydrate saturation to fully water-saturated within the D1 sand, suggesting a common gas hydrate/water contact. The results of this study will be used to construct the geological models needed for reservoir simulation studies and they can provide important insights into the geological factors that control the occurrence of gas hydrate on the Alaska North Slope.</p></div></div></div></div></div>","language":"English","publisher":"American Chemical Society","doi":"10.1021/acs.energyfuels.2c00336","usgsCitation":"Tamaki, M., Fujimoto, A., Boswell, R., and Collett, T., 2022, Geological reservoir characterization of a gas hydrate prospect associated with the Hydrate-01 Stratigraphic Test Well, Alaska North Slope: Journal of Energy and Fuels, v. 36, no. 15, p. 8128-8149, https://doi.org/10.1021/acs.energyfuels.2c00336.","productDescription":"22 p.","startPage":"8128","endPage":"8149","ipdsId":"IP-135326","costCenters":[{"id":164,"text":"Central Energy Resources Science Center","active":true,"usgs":true}],"links":[{"id":447019,"rank":0,"type":{"id":40,"text":"Open Access Publisher Index Page"},"url":"https://doi.org/10.1021/acs.energyfuels.2c00336","text":"Publisher Index Page"},{"id":405984,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"country":"United States","state":"Alaska","otherGeospatial":"North Slope","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"type\": \"Polygon\",\n        \"coordinates\": [\n          [\n            [\n              -160.6201171875,\n              69.4421276134176\n            ],\n            [\n              -149.677734375,\n              69.4421276134176\n            ],\n            [\n              -149.677734375,\n              71.69129271863999\n            ],\n            [\n              -160.6201171875,\n              71.69129271863999\n            ],\n            [\n              -160.6201171875,\n              69.4421276134176\n            ]\n          ]\n        ]\n      }\n    }\n  ]\n}","volume":"36","issue":"15","noUsgsAuthors":false,"publicationDate":"2022-07-26","publicationStatus":"PW","contributors":{"authors":[{"text":"Tamaki, Machiko","contributorId":240078,"corporation":false,"usgs":false,"family":"Tamaki","given":"Machiko","email":"","affiliations":[{"id":48086,"text":"Japan Oil Engineering Co., Ltd.","active":true,"usgs":false}],"preferred":false,"id":850466,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Fujimoto, Akira","contributorId":240087,"corporation":false,"usgs":false,"family":"Fujimoto","given":"Akira","email":"","affiliations":[{"id":39359,"text":"JOGMEC","active":true,"usgs":false}],"preferred":false,"id":850467,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Boswell, Ray","contributorId":240083,"corporation":false,"usgs":false,"family":"Boswell","given":"Ray","affiliations":[{"id":48091,"text":"NETL, DOE","active":true,"usgs":false}],"preferred":false,"id":850468,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Collett, Timothy 0000-0002-7598-4708","orcid":"https://orcid.org/0000-0002-7598-4708","contributorId":220806,"corporation":false,"usgs":true,"family":"Collett","given":"Timothy","affiliations":[{"id":255,"text":"Energy Resources Program","active":true,"usgs":true},{"id":164,"text":"Central Energy Resources Science Center","active":true,"usgs":true}],"preferred":true,"id":850306,"contributorType":{"id":1,"text":"Authors"},"rank":4}]}}
]}