{"pageNumber":"659","pageRowStart":"16450","pageSize":"25","recordCount":184617,"records":[{"id":70210786,"text":"70210786 - 2020 - Observations on the May 2019 Joffre Peak landslides, British Columbia","interactions":[],"lastModifiedDate":"2020-06-25T14:39:44.613134","indexId":"70210786","displayToPublicDate":"2020-01-02T09:33:59","publicationYear":"2020","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":2604,"text":"Landslides","active":true,"publicationSubtype":{"id":10}},"title":"Observations on the May 2019 Joffre Peak landslides, British Columbia","docAbstract":"Two catastrophic landslides occurred in quick succession on 13 and 16 May 2019, from the north face of Joffre Peak, Cerise Creek, southern Coast Mountains, British Columbia. With headscarps at 2560 m and 2690 m elevation, both began as rock avalanches, rapidly transforming into debris flows along middle Cerise Creek, and finally into debris floods affecting the fan. Beyond the fan margin, a flood surge on Cayoosh Creek reached bankfull and attenuated rapidly downstream; only fine sediment reached Duffey Lake. The toe of the main debris flow deposit reached 4 km from the headscarp, with a travel angle of 0.28; while the debris flood phase reached the fan margin 5.9 km downstream, with a travel angle of 0.22. Photogrammetry indicates the source volume of each event is 2-3 Mm3, with combined volume of 5 Mm3. Lidar differencing, used to assess deposit volume, yielded a similar total result; although error in the depth estimate introduced large error and masks expected increase due to dilation and entrainment. The average velocity of the rock avalanche-debris flow phases, from seismic analysis, was ~25-30 m/s, and the velocity of the 16 May debris flood on the upper fan, from super-elevation and boulder sizes, was 5-10 m/s. The volume of debris deposited on the fan was ~104 m3, 2-orders of magnitude less than the avalanche/debris flow phases. The 13 May landslide was apparently triggered by rapid snowmelt; with debuttressing triggering the 16 May event. While spring 2019 was warm, it wasn’t unusual. It is likely that progressive glacier retreat and permafrost degradation were the conditioning factors; precursor activity was noted at least 1 yr previous; thus, the mountain was primed to fail and average seasonal snowmelt tipped the balance.","language":"English","publisher":"Springer","doi":"10.1007/s10346-019-01332-2","usgsCitation":"Friele, P., Millard, T., Mitchell, A., Allstadt, K.E., Menounos, B., Geertsema, M., and Clague, J.J., 2020, Observations on the May 2019 Joffre Peak landslides, British Columbia: Landslides, v. 17, p. 913-930, https://doi.org/10.1007/s10346-019-01332-2.","productDescription":"18 p.","startPage":"913","endPage":"930","ipdsId":"IP-113348","costCenters":[{"id":300,"text":"Geologic Hazards Science Center","active":true,"usgs":true}],"links":[{"id":458247,"rank":0,"type":{"id":40,"text":"Open Access Publisher Index Page"},"url":"https://doi.org/10.1007/s10346-019-01332-2","text":"Publisher Index Page"},{"id":375915,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"country":"Canada","state":"British Columbia","otherGeospatial":"Joffre Peak","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"type\": \"Polygon\",\n        \"coordinates\": [\n          [\n            [\n              -122.51678466796874,\n              50.31828499756704\n            ],\n            [\n              -122.37945556640624,\n              50.31828499756704\n            ],\n            [\n              -122.37945556640624,\n              50.38181606585463\n            ],\n            [\n              -122.51678466796874,\n              50.38181606585463\n            ],\n            [\n              -122.51678466796874,\n              50.31828499756704\n            ]\n          ]\n        ]\n      }\n    }\n  ]\n}","volume":"17","noUsgsAuthors":false,"publicationDate":"2020-01-02","publicationStatus":"PW","contributors":{"authors":[{"text":"Friele, Pierre","contributorId":225511,"corporation":false,"usgs":false,"family":"Friele","given":"Pierre","email":"","affiliations":[{"id":41151,"text":"Cordilleran Geoscience","active":true,"usgs":false}],"preferred":false,"id":791407,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Millard, Tom","contributorId":225512,"corporation":false,"usgs":false,"family":"Millard","given":"Tom","email":"","affiliations":[{"id":41152,"text":"BC Ministry of Forests Lands Natural Resource Operations and Rural Development (BC FLNRORD), Nanaimo, BC","active":true,"usgs":false}],"preferred":false,"id":791408,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Mitchell, Andrew","contributorId":225513,"corporation":false,"usgs":false,"family":"Mitchell","given":"Andrew","email":"","affiliations":[{"id":41153,"text":"Department of Earth, Ocean and Atmospheric Sciences, University of British Columbia","active":true,"usgs":false}],"preferred":false,"id":791409,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Allstadt, Kate E. 0000-0003-4977-5248","orcid":"https://orcid.org/0000-0003-4977-5248","contributorId":138704,"corporation":false,"usgs":true,"family":"Allstadt","given":"Kate","email":"","middleInitial":"E.","affiliations":[{"id":300,"text":"Geologic Hazards Science Center","active":true,"usgs":true}],"preferred":true,"id":791410,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Menounos, Brian","contributorId":225514,"corporation":false,"usgs":false,"family":"Menounos","given":"Brian","email":"","affiliations":[{"id":41154,"text":"Geography Program and Natural Resources and Environmental Studies Institute, University of Northern British Columbia","active":true,"usgs":false}],"preferred":false,"id":791411,"contributorType":{"id":1,"text":"Authors"},"rank":5},{"text":"Geertsema, Marten","contributorId":197464,"corporation":false,"usgs":false,"family":"Geertsema","given":"Marten","email":"","affiliations":[],"preferred":false,"id":791412,"contributorType":{"id":1,"text":"Authors"},"rank":6},{"text":"Clague, John J.","contributorId":191448,"corporation":false,"usgs":false,"family":"Clague","given":"John","email":"","middleInitial":"J.","affiliations":[],"preferred":false,"id":791413,"contributorType":{"id":1,"text":"Authors"},"rank":7}]}}
,{"id":70209596,"text":"70209596 - 2020 - Early goose arrival increases soil nitrogen availability more than an advancing spring in coastal western Alaska","interactions":[],"lastModifiedDate":"2020-09-23T15:39:16.635611","indexId":"70209596","displayToPublicDate":"2020-01-02T07:37:08","publicationYear":"2020","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":1478,"text":"Ecosystems","active":true,"publicationSubtype":{"id":10}},"title":"Early goose arrival increases soil nitrogen availability more than an advancing spring in coastal western Alaska","docAbstract":"<p><span>An understudied aspect of climate change-induced phenological mismatch is its effect on ecosystem functioning, such as nitrogen (N) cycling. Migratory herbivore arrival time may alter N inputs and plant–herbivore feedbacks, whereas earlier springs are predicted to increase N cycling rates through warmer temperatures. However, the relative importance of these shifts in timing and how they interact to affect N cycling are largely unknown. We conducted a 3-year factorial experiment in coastal western Alaska that simulated different timings of Pacific black brant (</span><i>Branta bernicla nigricans</i><span>) arrival (3 weeks early, typical, 3 weeks late, or no-grazing) and the growing season (ca. 3 weeks advanced and ambient) on adsorbed and mobile inorganic (NH</span><sub>4</sub><sup>+</sup><span>–N, NO</span><sub>3</sub><sup>−</sup><span>–N) and mobile organic N (amino acid) pools. Early grazing increased NH</span><sub>4</sub><sup>+</sup><span>–N, NO</span><sub>3</sub><sup>−</sup><span>–N, and amino acids by 103%, 119%, and 7%, respectively, whereas late grazing reduced adsorbed NH</span><sub>4</sub><sup>+</sup><span>–N and NO</span><sub>3</sub><sup>−</sup><span>–N by 16% and 17%, respectively. In comparison, the advanced growing season increased mobile NH</span><sub>4</sub><sup>+</sup><span>–N by 26%. The arrival time by geese and the start of the season did not interact to influence soil N availability. While the onset of spring in our system is advancing at twice the rate of migratory goose arrival, earlier goose migration is likely to be more significant than the advances in springs in influencing soil N, although both early goose arrival and advanced springs are likely to increase N availability in the future. This increase in soil N resources can have a lasting impact on plant community composition and productivity in this N-limited ecosystem.</span></p>","language":"English","publisher":"Springer","doi":"10.1007/s10021-019-00472-9","usgsCitation":"Choi, R.T., Beard, K.H., Kelsey, K., Leffler, J., Schmutz, J.A., and Welker, J., 2020, Early goose arrival increases soil nitrogen availability more than an advancing spring in coastal western Alaska: Ecosystems, v. 23, p. 1309-1324, https://doi.org/10.1007/s10021-019-00472-9.","productDescription":"26 p.","startPage":"1309","endPage":"1324","ipdsId":"IP-110431","costCenters":[{"id":117,"text":"Alaska Science Center Biology WTEB","active":true,"usgs":true}],"links":[{"id":374005,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"country":"United States","otherGeospatial":"Coastal western Alaska","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"type\": \"Polygon\",\n        \"coordinates\": [\n          [\n            [\n              -158.37890625,\n              70.61261423801925\n            ],\n            [\n              -162.59765625,\n              70.4367988185464\n            ],\n            [\n              -166.81640625,\n              68.84766505841037\n            ],\n            [\n              -167.6953125,\n              66.51326044311185\n            ],\n            [\n              -167.87109375,\n              64.01449619484472\n            ],\n            [\n              -166.81640625,\n              61.60639637138628\n            ],\n            [\n              -166.11328125,\n              59.62332522313024\n            ],\n            [\n              -160.83984375,\n              57.98480801923985\n            ],\n            [\n              -167.87109375,\n              54.059387886623576\n            ],\n            [\n              -166.9921875,\n              52.696361078274485\n            ],\n            [\n              -151.171875,\n              56.07203547180089\n            ],\n            [\n              -154.3359375,\n              59.712097173322924\n            ],\n            [\n              -158.37890625,\n              70.61261423801925\n            ]\n          ]\n        ]\n      }\n    }\n  ]\n}","volume":"23","noUsgsAuthors":false,"publicationDate":"2020-01-02","publicationStatus":"PW","contributors":{"authors":[{"text":"Choi, Ryan T.","contributorId":205936,"corporation":false,"usgs":false,"family":"Choi","given":"Ryan","email":"","middleInitial":"T.","affiliations":[{"id":6682,"text":"Utah State University","active":true,"usgs":false}],"preferred":false,"id":787056,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Beard, Karen H.","contributorId":205934,"corporation":false,"usgs":false,"family":"Beard","given":"Karen","email":"","middleInitial":"H.","affiliations":[{"id":6682,"text":"Utah State University","active":true,"usgs":false}],"preferred":false,"id":787057,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Kelsey, Katherine","contributorId":224102,"corporation":false,"usgs":false,"family":"Kelsey","given":"Katherine","email":"","affiliations":[{"id":37194,"text":"University of Alaska Anchorage","active":true,"usgs":false}],"preferred":false,"id":787059,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Leffler, Joshua","contributorId":224101,"corporation":false,"usgs":false,"family":"Leffler","given":"Joshua","email":"","affiliations":[{"id":5089,"text":"South Dakota State University","active":true,"usgs":false}],"preferred":false,"id":787058,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Schmutz, Joel A. 0000-0002-6516-0836 jschmutz@usgs.gov","orcid":"https://orcid.org/0000-0002-6516-0836","contributorId":1805,"corporation":false,"usgs":true,"family":"Schmutz","given":"Joel","email":"jschmutz@usgs.gov","middleInitial":"A.","affiliations":[{"id":114,"text":"Alaska Science Center","active":true,"usgs":true},{"id":117,"text":"Alaska Science Center Biology WTEB","active":true,"usgs":true}],"preferred":true,"id":787060,"contributorType":{"id":1,"text":"Authors"},"rank":5},{"text":"Welker, Jeffrey","contributorId":214926,"corporation":false,"usgs":false,"family":"Welker","given":"Jeffrey","affiliations":[{"id":37194,"text":"University of Alaska Anchorage","active":true,"usgs":false}],"preferred":false,"id":787061,"contributorType":{"id":1,"text":"Authors"},"rank":6}]}}
,{"id":70260098,"text":"70260098 - 2020 - Goals and development of the Alaska Volcano Observatory Seismic Network and application to forecasting and detecting volcanic eruptions","interactions":[],"lastModifiedDate":"2024-10-30T22:23:31.538975","indexId":"70260098","displayToPublicDate":"2020-01-02T07:06:42","publicationYear":"2020","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":3372,"text":"Seismological Research Letters","onlineIssn":"1938-2057","printIssn":"0895-0695","active":true,"publicationSubtype":{"id":10}},"title":"Goals and development of the Alaska Volcano Observatory Seismic Network and application to forecasting and detecting volcanic eruptions","docAbstract":"<p>The Alaska Volcano Observatory (AVO) seismic network has been in operation since 1988 and during this time has grown from 29 to 217 seismic stations providing real-time monitoring of 32 active volcanoes in Alaska, as well as useful data for regional earthquake monitoring. Since 1988, AVO has detected 59 volcanic eruptions at Aleutian arc volcanoes, and 31 of these have been captured by local seismic instrumentation. As part of this monitoring effort, AVO has cataloged more than 120,000 earthquake hypocenters and magnitudes associated with volcanic processes throughout the arc. This high rate of volcanic activity provides an excellent opportunity to study seismicity associated with magmatic and eruptive processes and develop and refine analytical techniques to track volcanic seismicity and warn of hazardous eruptions. The network is currently undergoing an extensive upgrade, replacing aging short-period analog seismometers with digital broadband instruments. These are expected to improve AVO’s seismic capability and further facilitate other geophysical instrumentation such as continuous Global Positioning System receivers, infrasound sensors, and web cams.</p>","language":"English","publisher":"Seismological Society of America","doi":"10.1785/0220190216","usgsCitation":"Power, J., Haney, M.M., Botnick, S.M., Dixon, J.P., Fee, D., Kaufman, M., Ketner, D.M., Lyons, J.J., Parker, T., Paskievitch, J.F., Read, C., Searcy, C., Stihler, S.D., Tepp, G., and Wech, A., 2020, Goals and development of the Alaska Volcano Observatory Seismic Network and application to forecasting and detecting volcanic eruptions: Seismological Research Letters, v. 91, no. 2A, p. 647-659, https://doi.org/10.1785/0220190216.","productDescription":"13 p.","startPage":"647","endPage":"659","ipdsId":"IP-111065","costCenters":[{"id":617,"text":"Volcano Science Center","active":true,"usgs":true}],"links":[{"id":463242,"rank":1,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"volume":"91","issue":"2A","noUsgsAuthors":false,"publicationDate":"2020-01-02","publicationStatus":"PW","contributors":{"authors":[{"text":"Power, John 0000-0002-7233-4398","orcid":"https://orcid.org/0000-0002-7233-4398","contributorId":215240,"corporation":false,"usgs":true,"family":"Power","given":"John","affiliations":[{"id":617,"text":"Volcano Science Center","active":true,"usgs":true}],"preferred":true,"id":916974,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Haney, Matthew M. 0000-0003-3317-7884 mhaney@usgs.gov","orcid":"https://orcid.org/0000-0003-3317-7884","contributorId":172948,"corporation":false,"usgs":true,"family":"Haney","given":"Matthew","email":"mhaney@usgs.gov","middleInitial":"M.","affiliations":[{"id":615,"text":"Volcano Hazards Program","active":true,"usgs":true},{"id":617,"text":"Volcano Science Center","active":true,"usgs":true}],"preferred":true,"id":916975,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Botnick, Steven M 0000-0002-3284-9127","orcid":"https://orcid.org/0000-0002-3284-9127","contributorId":344718,"corporation":false,"usgs":true,"family":"Botnick","given":"Steven","email":"","middleInitial":"M","affiliations":[{"id":617,"text":"Volcano Science Center","active":true,"usgs":true}],"preferred":true,"id":916976,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Dixon, James P. 0000-0002-8478-9971 jpdixon@usgs.gov","orcid":"https://orcid.org/0000-0002-8478-9971","contributorId":3163,"corporation":false,"usgs":true,"family":"Dixon","given":"James","email":"jpdixon@usgs.gov","middleInitial":"P.","affiliations":[{"id":617,"text":"Volcano Science Center","active":true,"usgs":true}],"preferred":true,"id":916977,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Fee, David 0000-0002-0936-9977","orcid":"https://orcid.org/0000-0002-0936-9977","contributorId":267231,"corporation":false,"usgs":false,"family":"Fee","given":"David","affiliations":[{"id":13097,"text":"Geophysical Institute, University of Alaska Fairbanks","active":true,"usgs":false}],"preferred":false,"id":916978,"contributorType":{"id":1,"text":"Authors"},"rank":5},{"text":"Kaufman, Max","contributorId":140427,"corporation":false,"usgs":false,"family":"Kaufman","given":"Max","email":"","affiliations":[{"id":13493,"text":"UAFGI","active":true,"usgs":false}],"preferred":false,"id":916979,"contributorType":{"id":1,"text":"Authors"},"rank":6},{"text":"Ketner, Dane M. 0000-0002-1610-0773","orcid":"https://orcid.org/0000-0002-1610-0773","contributorId":217809,"corporation":false,"usgs":true,"family":"Ketner","given":"Dane","email":"","middleInitial":"M.","affiliations":[{"id":617,"text":"Volcano Science Center","active":true,"usgs":true}],"preferred":true,"id":916980,"contributorType":{"id":1,"text":"Authors"},"rank":7},{"text":"Lyons, John J. 0000-0001-5409-1698 jlyons@usgs.gov","orcid":"https://orcid.org/0000-0001-5409-1698","contributorId":5394,"corporation":false,"usgs":true,"family":"Lyons","given":"John","email":"jlyons@usgs.gov","middleInitial":"J.","affiliations":[{"id":615,"text":"Volcano Hazards Program","active":true,"usgs":true},{"id":617,"text":"Volcano Science Center","active":true,"usgs":true}],"preferred":true,"id":916981,"contributorType":{"id":1,"text":"Authors"},"rank":8},{"text":"Parker, Thomas 0000-0002-3006-5652 tparker@usgs.gov","orcid":"https://orcid.org/0000-0002-3006-5652","contributorId":215241,"corporation":false,"usgs":true,"family":"Parker","given":"Thomas","email":"tparker@usgs.gov","affiliations":[{"id":615,"text":"Volcano Hazards Program","active":true,"usgs":true},{"id":617,"text":"Volcano Science Center","active":true,"usgs":true}],"preferred":true,"id":916982,"contributorType":{"id":1,"text":"Authors"},"rank":9},{"text":"Paskievitch, John F. 0000-0003-3500-0177 jpaskie@usgs.gov","orcid":"https://orcid.org/0000-0003-3500-0177","contributorId":345580,"corporation":false,"usgs":true,"family":"Paskievitch","given":"John","email":"jpaskie@usgs.gov","middleInitial":"F.","affiliations":[{"id":617,"text":"Volcano Science Center","active":true,"usgs":true}],"preferred":true,"id":916983,"contributorType":{"id":1,"text":"Authors"},"rank":10},{"text":"Read, Cyrus 0000-0003-3259-4723 cread@usgs.gov","orcid":"https://orcid.org/0000-0003-3259-4723","contributorId":345581,"corporation":false,"usgs":true,"family":"Read","given":"Cyrus","email":"cread@usgs.gov","affiliations":[{"id":617,"text":"Volcano Science Center","active":true,"usgs":true}],"preferred":true,"id":916984,"contributorType":{"id":1,"text":"Authors"},"rank":11},{"text":"Searcy, Cheryl 0000-0002-9474-5754 csearcy@usgs.gov","orcid":"https://orcid.org/0000-0002-9474-5754","contributorId":345582,"corporation":false,"usgs":true,"family":"Searcy","given":"Cheryl","email":"csearcy@usgs.gov","affiliations":[{"id":617,"text":"Volcano Science Center","active":true,"usgs":true}],"preferred":true,"id":916985,"contributorType":{"id":1,"text":"Authors"},"rank":12},{"text":"Stihler, Scott D. 0000-0002-3585-7050","orcid":"https://orcid.org/0000-0002-3585-7050","contributorId":215242,"corporation":false,"usgs":false,"family":"Stihler","given":"Scott","email":"","middleInitial":"D.","affiliations":[{"id":39214,"text":"Alaska Volcano Observatory, UAFGI.","active":true,"usgs":false}],"preferred":false,"id":916986,"contributorType":{"id":1,"text":"Authors"},"rank":13},{"text":"Tepp, Gabrielle 0000-0001-5388-5138","orcid":"https://orcid.org/0000-0001-5388-5138","contributorId":206305,"corporation":false,"usgs":true,"family":"Tepp","given":"Gabrielle","email":"","affiliations":[{"id":617,"text":"Volcano Science Center","active":true,"usgs":true}],"preferred":true,"id":916987,"contributorType":{"id":1,"text":"Authors"},"rank":14},{"text":"Wech, Aaron 0000-0003-4983-1991","orcid":"https://orcid.org/0000-0003-4983-1991","contributorId":202561,"corporation":false,"usgs":true,"family":"Wech","given":"Aaron","affiliations":[{"id":617,"text":"Volcano Science Center","active":true,"usgs":true}],"preferred":true,"id":916988,"contributorType":{"id":1,"text":"Authors"},"rank":15}]}}
,{"id":70226609,"text":"70226609 - 2020 - Planktic foraminiferal test size and weight response to the late Pliocene environment","interactions":[],"lastModifiedDate":"2024-09-16T22:40:08.160059","indexId":"70226609","displayToPublicDate":"2020-01-02T07:05:08","publicationYear":"2020","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":5790,"text":"Paleoceanography and Paleoclimatology","active":true,"publicationSubtype":{"id":10}},"title":"Planktic foraminiferal test size and weight response to the late Pliocene environment","docAbstract":"<div class=\"article-section__content en main\"><p>Atmospheric carbon dioxide (<i>p</i>CO<sub>2</sub><sup>atm</sup>) is impacting the ocean and marine organisms directly via changes in carbonate chemistry and indirectly via a range of changes in physical parameters most dominantly temperature. To assess potential impacts of climate change on carbonate production in the open ocean, we measured size and weight of planktic foraminifers during the late Pliocene at<span>&nbsp;</span><i>p</i>CO<sub>2</sub><sup>atm</sup><span>&nbsp;</span>concentrations comparable to today and global temperatures 2 to 3 °C warmer. Size of all foraminifers was measured at Atlantic Ocean Deep Sea Drilling Project (DSDP) Site 610, Ocean Drilling Program (ODP) Site 999, and Integrated Ocean Drilling Program (IODP) Site U1313. Test size was smaller during the Pliocene than in modern assemblages under the same environmental conditions. During the cold marine isotope stage (MIS) M2, size increased at Site 999, potentially linked to intensified stratification of the surface ocean in response to the closure of the Central American Seaway. At Site U1313, test size tracks the warming throughout the late Pliocene. Size-normalized weight (SNW) of<span>&nbsp;</span><i>Globigerina bulloides</i><span>&nbsp;</span>at Site U1313 decreased during warmer temperature intervals. SNW of<span>&nbsp;</span><i>Globigerinoides ruber</i><span>&nbsp;</span>(white) at Site 999 displays high-frequency variability not correlated to temperature. Yet during the glacial period within MIS M2, test weight was higher during higher temperatures. Our results support studies in the modern ocean, which challenge the view that carbonate chemistry is the primary driver for calcification. To better understand processes driving changes in SNW, computer tomography was used to quantify calcite to volume ratios. During interglacial periods, lower calcite volume but higher test volume suggests less suitable conditions for calcification. As this signal is not evident in SNW, subtle changes in calcification might not be observed by the weight-based method.</p></div>","language":"English","publisher":"American Geophysical Union","doi":"10.1029/2019PA003738","usgsCitation":"Todd, C.L., Schmidt, D.N., Robinson, M., and de Schepper, S., 2020, Planktic foraminiferal test size and weight response to the late Pliocene environment: Paleoceanography and Paleoclimatology, v. 35, no. 1, e2019PA003738, 15 p., https://doi.org/10.1029/2019PA003738.","productDescription":"e2019PA003738, 15 p.","ipdsId":"IP-108561","costCenters":[{"id":40020,"text":"Florence Bascom Geoscience Center","active":true,"usgs":true}],"links":[{"id":458252,"rank":2,"type":{"id":40,"text":"Open Access Publisher Index Page"},"url":"https://doi.org/10.1029/2019pa003738","text":"Publisher Index Page"},{"id":392295,"rank":1,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"volume":"35","issue":"1","noUsgsAuthors":false,"publicationDate":"2020-01-21","publicationStatus":"PW","contributors":{"authors":[{"text":"Todd, Chloe L.","contributorId":269568,"corporation":false,"usgs":false,"family":"Todd","given":"Chloe","email":"","middleInitial":"L.","affiliations":[{"id":37322,"text":"University of Bristol","active":true,"usgs":false}],"preferred":false,"id":827456,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Schmidt, Daniela N.","contributorId":229010,"corporation":false,"usgs":false,"family":"Schmidt","given":"Daniela","email":"","middleInitial":"N.","affiliations":[],"preferred":false,"id":827457,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Robinson, Marci M. 0000-0002-9200-4097","orcid":"https://orcid.org/0000-0002-9200-4097","contributorId":261664,"corporation":false,"usgs":true,"family":"Robinson","given":"Marci M.","affiliations":[{"id":40020,"text":"Florence Bascom Geoscience Center","active":true,"usgs":true}],"preferred":true,"id":827458,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"de Schepper, S.","contributorId":269570,"corporation":false,"usgs":false,"family":"de Schepper","given":"S.","email":"","affiliations":[{"id":48640,"text":"Bjerknes Centre for Climate Research","active":true,"usgs":false}],"preferred":false,"id":827459,"contributorType":{"id":1,"text":"Authors"},"rank":4}]}}
,{"id":70208758,"text":"70208758 - 2020 - Evaluating social vulnerability indicators: Criteria and their application to the Social Vulnerability Index","interactions":[],"lastModifiedDate":"2020-03-02T06:24:10","indexId":"70208758","displayToPublicDate":"2020-01-02T06:40:23","publicationYear":"2020","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":2822,"text":"Natural Hazards","active":true,"publicationSubtype":{"id":10}},"title":"Evaluating social vulnerability indicators: Criteria and their application to the Social Vulnerability Index","docAbstract":"As a concept, social vulnerability describes combinations of social, cultural, economic,\npolitical, and institutional processes that shape socioeconomic differentials in the experience\nof and recovery from hazards. Quantitative measures of social vulnerability are\nwidely used in research and practice. In this paper, we establish criteria for the evaluation\nof social vulnerability indicators and apply those criteria to the most widely used measure\nof social vulnerability, the Social Vulnerability Index (SoVI). SoVI is a single quantitative\nindicator that purports to measure a place’s social vulnerability. We show that SoVI\nhas some critical shortcomings regarding theoretical and internal consistency. Specifically,\nmultiple SoVI-based measurements of the vulnerability of the same place, using the same\ndata, can yield strikingly different results. We also show that the SoVI is often misaligned\nwith theory; increases in variables that contribute to vulnerability, like the unemployment\nrate, often decrease vulnerability as measured by the SoVI. We caution against the use of\nthe index in policy making or other risk-reduction efforts, and we suggest ways to more\nreliably assess social vulnerability in practice.","language":"English","publisher":"Springer","doi":"10.1007/s11069-019-03820-z","usgsCitation":"Spielman, S., Tuccillo, J., Folch, D., Schweikert, A., Davies, R., Wood, N.J., and Tate, E., 2020, Evaluating social vulnerability indicators: Criteria and their application to the Social Vulnerability Index: Natural Hazards, v. 100, no. 1, p. 417-436, https://doi.org/10.1007/s11069-019-03820-z.","productDescription":"20 p.","startPage":"417","endPage":"436","ipdsId":"IP-113587","costCenters":[{"id":657,"text":"Western Geographic Science Center","active":true,"usgs":true}],"links":[{"id":372721,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"volume":"100","issue":"1","publishingServiceCenter":{"id":14,"text":"Menlo Park PSC"},"noUsgsAuthors":false,"publicationDate":"2020-01-02","publicationStatus":"PW","contributors":{"authors":[{"text":"Spielman, Seth","contributorId":146151,"corporation":false,"usgs":false,"family":"Spielman","given":"Seth","email":"","affiliations":[{"id":6713,"text":"University of Colorado, Boulder CO","active":true,"usgs":false}],"preferred":false,"id":783286,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Tuccillo, Joseph","contributorId":222828,"corporation":false,"usgs":false,"family":"Tuccillo","given":"Joseph","email":"","affiliations":[{"id":36627,"text":"University of Colorado, Boulder","active":true,"usgs":false}],"preferred":false,"id":783287,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Folch, David","contributorId":222829,"corporation":false,"usgs":false,"family":"Folch","given":"David","email":"","affiliations":[{"id":7092,"text":"Florida State University","active":true,"usgs":false}],"preferred":false,"id":783288,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Schweikert, Amy","contributorId":204479,"corporation":false,"usgs":false,"family":"Schweikert","given":"Amy","email":"","affiliations":[],"preferred":false,"id":783289,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Davies, Rebecca","contributorId":222830,"corporation":false,"usgs":false,"family":"Davies","given":"Rebecca","email":"","affiliations":[{"id":36627,"text":"University of Colorado, Boulder","active":true,"usgs":false}],"preferred":false,"id":783290,"contributorType":{"id":1,"text":"Authors"},"rank":5},{"text":"Wood, Nathan J. 0000-0002-6060-9729 nwood@usgs.gov","orcid":"https://orcid.org/0000-0002-6060-9729","contributorId":3347,"corporation":false,"usgs":true,"family":"Wood","given":"Nathan","email":"nwood@usgs.gov","middleInitial":"J.","affiliations":[{"id":657,"text":"Western Geographic Science Center","active":true,"usgs":true}],"preferred":true,"id":783285,"contributorType":{"id":1,"text":"Authors"},"rank":6},{"text":"Tate, Eric","contributorId":222831,"corporation":false,"usgs":false,"family":"Tate","given":"Eric","email":"","affiliations":[{"id":6768,"text":"University of Iowa","active":true,"usgs":false}],"preferred":false,"id":783291,"contributorType":{"id":1,"text":"Authors"},"rank":7}]}}
,{"id":70208492,"text":"70208492 - 2020 - Geographic and oceanographic influences on ferromanganese crust composition along a Pacific Ocean meridional transect, 14N to 14S","interactions":[],"lastModifiedDate":"2020-02-12T06:37:54","indexId":"70208492","displayToPublicDate":"2020-01-02T06:34:40","publicationYear":"2020","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":1757,"text":"Geochemistry, Geophysics, Geosystems","active":true,"publicationSubtype":{"id":10}},"title":"Geographic and oceanographic influences on ferromanganese crust composition along a Pacific Ocean meridional transect, 14N to 14S","docAbstract":"The major controls on the variability of ferromanganese (FeMn) crust composition have been generally described over the past 40 years; however, most compilation studies lack quantitative statistics and are limited to a small region of several seamounts or compare FeMn crusts from disparate areas of the global oceans. This study provides the ﬁrst detailed research to address the geographic and oceanographic controls of FeMn crust composition from a line of seamounts across 30° of latitude in the west central Paciﬁc. Element concentrations from the uppermost layer (<15 mm) of 57 FeMn crusts were evaluated for statistically signiﬁcant variance and correlation with a variety of oceanographic and geographic parameters. Manganese, Co, Ni, Mo, and Zn concentrations in crusts in this region are highly anticorrelated with seawater oxygen concentrations, suggesting oxygen as the dominant controlling factor for these elements. Iron instead correlates with water depth, which we attribute to increased carbonate ion concentration with increasing water depth. Silicon and Al content in crusts demonstrate a potential meridional variance of detrital inputs and sources in the region. Iron, Ba, and Mg are enriched in FeMn crusts below the equatorial upwelling zone which is related to biological productivity. Fluctuations in the four oceanographic and geographic parameters, seawater oxygen content, detrital input, surface productivity, and deep sources of iron, are robustly recorded by FeMn crusts. Modern measurements of these primary parameters, as well as paleoceanographic reconstructions, can be used to deﬁne regions of interest for FeMn crust exploration.","language":"English","publisher":"Wiley","doi":"10.1029/2019GC008716","usgsCitation":"Mizell, K., Hein, J.R., Lam, P.J., Koppers, A.A., and Staudigel, H., 2020, Geographic and oceanographic influences on ferromanganese crust composition along a Pacific Ocean meridional transect, 14N to 14S: Geochemistry, Geophysics, Geosystems, v. 21, no. 2, e2019GC008716, 19 p., https://doi.org/10.1029/2019GC008716.","productDescription":"e2019GC008716, 19 p.","ipdsId":"IP-111390","costCenters":[{"id":520,"text":"Pacific Coastal and Marine Science Center","active":true,"usgs":true}],"links":[{"id":458255,"rank":1,"type":{"id":40,"text":"Open Access Publisher Index Page"},"url":"https://doi.org/10.1029/2019gc008716","text":"Publisher Index Page"},{"id":437179,"rank":0,"type":{"id":30,"text":"Data Release"},"url":"https://doi.org/10.5066/P93YOXHY","text":"USGS data release","linkHelpText":"Sorbed-water (H2O-) corrected chemistry for ferromanganese crust samples from the western equatorial Pacific Ocean"},{"id":372251,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"volume":"21","issue":"2","publishingServiceCenter":{"id":14,"text":"Menlo Park PSC"},"noUsgsAuthors":false,"publicationDate":"2020-02-10","publicationStatus":"PW","contributors":{"authors":[{"text":"Mizell, Kira 0000-0002-5066-787X kmizell@usgs.gov","orcid":"https://orcid.org/0000-0002-5066-787X","contributorId":4914,"corporation":false,"usgs":true,"family":"Mizell","given":"Kira","email":"kmizell@usgs.gov","affiliations":[{"id":520,"text":"Pacific Coastal and Marine Science Center","active":true,"usgs":true}],"preferred":true,"id":782136,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Hein, James R. 0000-0002-5321-899X jhein@usgs.gov","orcid":"https://orcid.org/0000-0002-5321-899X","contributorId":140835,"corporation":false,"usgs":true,"family":"Hein","given":"James","email":"jhein@usgs.gov","middleInitial":"R.","affiliations":[{"id":520,"text":"Pacific Coastal and Marine Science Center","active":true,"usgs":true}],"preferred":true,"id":782137,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Lam, Phoebe J. 0000-0001-6609-698X","orcid":"https://orcid.org/0000-0001-6609-698X","contributorId":222434,"corporation":false,"usgs":false,"family":"Lam","given":"Phoebe","email":"","middleInitial":"J.","affiliations":[{"id":6949,"text":"University of California, Santa Cruz","active":true,"usgs":false}],"preferred":false,"id":782138,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Koppers, Anthony A.P. 0000-0002-8136-5372","orcid":"https://orcid.org/0000-0002-8136-5372","contributorId":222435,"corporation":false,"usgs":false,"family":"Koppers","given":"Anthony","email":"","middleInitial":"A.P.","affiliations":[{"id":6680,"text":"Oregon State University","active":true,"usgs":false}],"preferred":false,"id":782141,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Staudigel, Hubert","contributorId":213217,"corporation":false,"usgs":false,"family":"Staudigel","given":"Hubert","email":"","affiliations":[{"id":38724,"text":"Scripps Institution of Oceanography, University of California San Diego","active":true,"usgs":false}],"preferred":false,"id":782142,"contributorType":{"id":1,"text":"Authors"},"rank":5}]}}
,{"id":70208163,"text":"70208163 - 2020 - Carrying capacity of a population diffusing in a heterogeneous environment","interactions":[],"lastModifiedDate":"2020-01-31T06:12:34","indexId":"70208163","displayToPublicDate":"2020-01-01T19:33:44","publicationYear":"2020","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":2703,"text":"Mathematics and Computers in Modern Science - Acoustics and Music, Biology and Chemistry, Business and Economics","active":true,"publicationSubtype":{"id":10}},"title":"Carrying capacity of a population diffusing in a heterogeneous environment","docAbstract":"The carrying capacity of the environment for a population is one of the key concepts in ecology and it is incorporated in the growth term of reaction-diffusion equations describing populations in space. Analysis of reaction-diffusion models of populations in heterogeneous space have shown that, when the maximum growth rate and carrying capacity in a logistic growth function vary in space, conditions exist for which the total population size at equilibrium (i) exceeds the total population that which would occur in the absence of diffusion and (ii) exceeds that which would occur if the system were homogeneous and the total carrying capacity, computed as the integral over the local carrying capacities, was the same in the heterogeneous and homogeneous cases. We review here work over the past few years that has explained these apparently counter-intuitive results in terms of the way input of energy or another limiting resource (e.g., a nutrient) varies across the system. We report on both mathematical analysis and laboratory experiments confirming that total population size in a heterogeneous system with diffusion can exceed that in the system without diffusion. We further report, however, that when the resource of the population in question is explicitly modeled as a coupled variable, as in a reaction-diffusion chemostat model rather than a model with logistic growth, the total population in the heterogeneous system with diffusion cannot exceed the total population size in the corresponding homogeneous system in which the total carrying capacities are the same.","language":"English","publisher":"MDPI","doi":"10.3390/math8010049","usgsCitation":"DeAngelis, D., Zhang, B., Ni, W., and Wang, Y., 2020, Carrying capacity of a population diffusing in a heterogeneous environment: Mathematics and Computers in Modern Science - Acoustics and Music, Biology and Chemistry, Business and Economics, v. 8, no. 1, 49, 12 p., https://doi.org/10.3390/math8010049.","productDescription":"49, 12 p.","ipdsId":"IP-113695","costCenters":[{"id":17705,"text":"Wetland and Aquatic Research Center","active":true,"usgs":true}],"links":[{"id":458258,"rank":0,"type":{"id":40,"text":"Open Access Publisher Index Page"},"url":"https://doi.org/10.3390/math8010049","text":"Publisher Index Page"},{"id":371747,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"volume":"8","issue":"1","publishingServiceCenter":{"id":5,"text":"Lafayette PSC"},"noUsgsAuthors":false,"publicationDate":"2020-01-01","publicationStatus":"PW","contributors":{"authors":[{"text":"DeAngelis, Don 0000-0002-1570-4057","orcid":"https://orcid.org/0000-0002-1570-4057","contributorId":221947,"corporation":false,"usgs":true,"family":"DeAngelis","given":"Don","affiliations":[{"id":17705,"text":"Wetland and Aquatic Research Center","active":true,"usgs":true}],"preferred":true,"id":780777,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Zhang, Bo","contributorId":146526,"corporation":false,"usgs":false,"family":"Zhang","given":"Bo","email":"","affiliations":[{"id":16714,"text":"Dept. of Biology, University of Miami","active":true,"usgs":false}],"preferred":false,"id":780778,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Ni, Wei-Ming","contributorId":146528,"corporation":false,"usgs":false,"family":"Ni","given":"Wei-Ming","email":"","affiliations":[{"id":16716,"text":"University of Minnesota : East China Normal University","active":true,"usgs":false}],"preferred":false,"id":780779,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Wang, Yuanshi","contributorId":207814,"corporation":false,"usgs":false,"family":"Wang","given":"Yuanshi","email":"","affiliations":[{"id":37637,"text":"School of Mathematics and Computational Science Sun Yat-sen University","active":true,"usgs":false}],"preferred":false,"id":780780,"contributorType":{"id":1,"text":"Authors"},"rank":4}]}}
,{"id":70208425,"text":"70208425 - 2020 - Spatial and temporal dynamics of Pacific capelin Mallotus catervarius in the Gulf of Alaska: Implications for ecosystem-based fisheries management","interactions":[],"lastModifiedDate":"2020-03-11T15:24:50","indexId":"70208425","displayToPublicDate":"2020-01-01T18:04:24","publicationYear":"2020","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":2663,"text":"Marine Ecology Progress Series","active":true,"publicationSubtype":{"id":10}},"displayTitle":"Spatial and temporal dynamics of Pacific capelin <i>Mallotus catervarius</i> in the Gulf of Alaska: Implications for ecosystem-based fisheries management","title":"Spatial and temporal dynamics of Pacific capelin Mallotus catervarius in the Gulf of Alaska: Implications for ecosystem-based fisheries management","docAbstract":"<p><span>Pacific capelin&nbsp;</span><i>Mallotus catervarius</i><span>&nbsp;are planktivorous, small pelagic fish that serve an intermediate trophic role in marine food webs. Due to the lack of a directed fishery or monitoring of capelin in the Northeast Pacific, there is limited information on their distribution and abundance, and how spatio-temporal fluctuations in capelin density affects their availability as prey. To provide information on life history, spatial patterns, and population dynamics of capelin in the Gulf of Alaska (GOA), we modeled distributions of spawning habitat and larval dispersal, and synthesized spatially-indexed data from multiple, independent sources from 1996 to 2016. Potential capelin spawning areas were broadly distributed across the GOA. Models of larval drift show the GOA’s advective circulation patterns disperse capelin larvae over the continental shelf and upper slope, indicating potential connections between spawning areas and observed offshore distributions that are influenced by the location and timing of spawning. Spatial overlap in composite distributions of larval and age-1+ fish was used to identify core areas where capelin consistently occur and concentrate. Capelin primarily occupy shelf waters near the Kodiak Archipelago, and are patchily distributed across the GOA shelf and inshore waters. Interannual variations in abundance along with spatio-temporal differences in density indicates the availability of capelin to predators and monitoring surveys is highly variable in the GOA. We demonstrate that the limitations of individual data series can be compensated for by integrating multiple data sources to monitor fluctuations in distributions and abundance trends of an ecologically important species across a large marine ecosystem.</span></p>","language":"English","publisher":"Inter-Research Science Publisher","doi":"10.3354/meps13211","usgsCitation":"David W. McGowan, Goldstein, E., Arimitsu, M.L., Dreary, A., Ormseth, O., DeRobertis, A., Horne, J., Lauren Rogers, Wilson, M., Coyle, K., Holderied, K., Piatt, J.F., Stockhausen, W., and Stephani Zador, 2020, Spatial and temporal dynamics of Pacific capelin Mallotus catervarius in the Gulf of Alaska: Implications for ecosystem-based fisheries management: Marine Ecology Progress Series, v. 637, p. 117-140, https://doi.org/10.3354/meps13211.","productDescription":"24 p.","startPage":"117","endPage":"140","ipdsId":"IP-109292","costCenters":[{"id":116,"text":"Alaska Science Center Biology MFEB","active":true,"usgs":true}],"links":[{"id":458260,"rank":1,"type":{"id":41,"text":"Open Access External Repository Page"},"url":"https://repository.library.noaa.gov/view/noaa/54053","text":"External Repository"},{"id":437180,"rank":0,"type":{"id":30,"text":"Data Release"},"url":"https://doi.org/10.5066/P96XJDK3","text":"USGS data release","linkHelpText":"Inshore Catch Data for Capelin (Mallotus villosus) in the Gulf of Alaska 1996-2017"},{"id":372202,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"country":"United States","state":"Alaska","otherGeospatial":"Gulf of Alaska","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"type\": \"Polygon\",\n        \"coordinates\": [\n          [\n            [\n              -153.017578125,\n              55.52863052257191\n            ],\n            [\n              -134.912109375,\n              55.52863052257191\n            ],\n            [\n              -134.912109375,\n              59.93300042374631\n            ],\n            [\n              -153.017578125,\n              59.93300042374631\n            ],\n            [\n              -153.017578125,\n              55.52863052257191\n            ]\n          ]\n        ]\n      }\n    }\n  ]\n}","volume":"637","publishingServiceCenter":{"id":12,"text":"Tacoma PSC"},"noUsgsAuthors":false,"publicationStatus":"PW","contributors":{"authors":[{"text":"David W. McGowan","contributorId":222299,"corporation":false,"usgs":false,"family":"David W. 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,{"id":70211482,"text":"70211482 - 2020 - Nuisance Neonatives Guidelines for Assessing Range-Shifting Species","interactions":[],"lastModifiedDate":"2020-07-30T16:29:19.224609","indexId":"70211482","displayToPublicDate":"2020-01-01T11:24:57","publicationYear":"2020","noYear":false,"publicationType":{"id":18,"text":"Report"},"publicationSubtype":{"id":9,"text":"Other Report"},"title":"Nuisance Neonatives Guidelines for Assessing Range-Shifting Species","docAbstract":"<p><span>Native species will need to shift their ranges northward and upslope to keep pace with climate change in the Northeast U.S. However, this may cause some range-shifting species to have undesirable consequences in their expanded range. We provide a framework to identify the likelihood that a range-shifting species will become problematic and offer suggestions to minimize impacts from these species in the recipient habitat.</span></p>","language":"English","publisher":"Northeast RISCC Management","doi":"10.7275/8n20-kk32","usgsCitation":"Laginhas, B.B., Morelli, T.L., Barker-Plotkin, A., Beaury, E.M., Cousins, E., Joubran, S., Nelson, M., Talbot, S., and Bradley, B.A., 2020, Nuisance Neonatives Guidelines for Assessing Range-Shifting Species, 2 p., https://doi.org/10.7275/8n20-kk32.","productDescription":"2 p.","ipdsId":"IP-119418","costCenters":[{"id":5080,"text":"Northeast Climate Adaptation Science Center","active":true,"usgs":true}],"links":[{"id":376908,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"noUsgsAuthors":false,"publicationStatus":"PW","contributors":{"authors":[{"text":"Laginhas, Brittany B.","contributorId":236823,"corporation":false,"usgs":false,"family":"Laginhas","given":"Brittany","email":"","middleInitial":"B.","affiliations":[],"preferred":false,"id":794609,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Morelli, Toni Lyn 0000-0001-5865-5294 tmorelli@usgs.gov","orcid":"https://orcid.org/0000-0001-5865-5294","contributorId":197458,"corporation":false,"usgs":true,"family":"Morelli","given":"Toni","email":"tmorelli@usgs.gov","middleInitial":"Lyn","affiliations":[{"id":5080,"text":"Northeast Climate Adaptation Science Center","active":true,"usgs":true},{"id":411,"text":"National Climate Change and Wildlife Science Center","active":true,"usgs":true}],"preferred":true,"id":794249,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Barker-Plotkin, Audrey","contributorId":236892,"corporation":false,"usgs":false,"family":"Barker-Plotkin","given":"Audrey","email":"","affiliations":[],"preferred":false,"id":794610,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Beaury, Evelyn M.","contributorId":236820,"corporation":false,"usgs":false,"family":"Beaury","given":"Evelyn","email":"","middleInitial":"M.","affiliations":[],"preferred":false,"id":794611,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Cousins, Elsa","contributorId":236896,"corporation":false,"usgs":false,"family":"Cousins","given":"Elsa","email":"","affiliations":[],"preferred":false,"id":794612,"contributorType":{"id":1,"text":"Authors"},"rank":5},{"text":"Joubran, Sydni 0000-0002-8681-0084","orcid":"https://orcid.org/0000-0002-8681-0084","contributorId":206807,"corporation":false,"usgs":true,"family":"Joubran","given":"Sydni","email":"","affiliations":[{"id":324,"text":"Great Lakes Science Center","active":true,"usgs":true}],"preferred":true,"id":794613,"contributorType":{"id":1,"text":"Authors"},"rank":6},{"text":"Nelson, Michael","contributorId":236897,"corporation":false,"usgs":false,"family":"Nelson","given":"Michael","affiliations":[],"preferred":false,"id":794614,"contributorType":{"id":1,"text":"Authors"},"rank":7},{"text":"Talbot, Sam","contributorId":236891,"corporation":false,"usgs":false,"family":"Talbot","given":"Sam","email":"","affiliations":[],"preferred":false,"id":794615,"contributorType":{"id":1,"text":"Authors"},"rank":8},{"text":"Bradley, Bethany A.","contributorId":40117,"corporation":false,"usgs":true,"family":"Bradley","given":"Bethany","email":"","middleInitial":"A.","affiliations":[],"preferred":false,"id":794616,"contributorType":{"id":1,"text":"Authors"},"rank":9}]}}
,{"id":70243264,"text":"70243264 - 2020 - Looking forward, looking back: Building resilience today Training one report. International Arctic Research Center, Fairbanks, AK,  April 16-18, 2019","interactions":[],"lastModifiedDate":"2023-05-05T16:00:17.675689","indexId":"70243264","displayToPublicDate":"2020-01-01T10:57:50","publicationYear":"2020","noYear":false,"publicationType":{"id":18,"text":"Report"},"publicationSubtype":{"id":4,"text":"Other Government Series"},"title":"Looking forward, looking back: Building resilience today Training one report. 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,{"id":70228335,"text":"70228335 - 2020 - Avian community responses to management of vegetation and water levels in restored wetlands at the Humacao Nature Reserve, Puerto Rico","interactions":[],"lastModifiedDate":"2022-02-09T17:09:57.557067","indexId":"70228335","displayToPublicDate":"2020-01-01T10:56:14","publicationYear":"2020","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":5533,"text":"Caribbean Naturalist","onlineIssn":"2326-7119","active":true,"publicationSubtype":{"id":10}},"title":"Avian community responses to management of vegetation and water levels in restored wetlands at the Humacao Nature Reserve, Puerto Rico","docAbstract":"<p>Coastal wetlands of the Caribbean have been greatly reduced in area and quality, and information on wildlife responses to management is lacking. We applied wetland management practices (disking, control of water levels) in a site historically disturbed by<span>&nbsp;</span><i>Saccharum</i><span>&nbsp;</span>spp. (sugarcane) cultivation at the Humacao Nature Reserve, southeastern Puerto Rico, and evaluated avian community response. We conducted weekly bird surveys and nest searches on disked and non-disked plots within recently constructed impoundments. The avian community shifted from 16 upland dominated species pre-restoration, to 67 wetland-dependent species at the end of our study (2001–2002). Ordination analysis indicated avian guild use of plots varied with environmental variables. Bird species diversity was not influenced by treatment, month, or salinity levels but was influenced by water depth and vegetation cover. Bird abundance was influenced by water depth, but not by treatment, month, salinity or vegetation cover. Furthermore, water depths of 0.10–0.20 m and salinity of ≤15 ppt promoted habitat conditions suitable for a diverse wetland avian community. We located 268 nests of 8 wetland bird species and observed adults with young of various other waterbirds, including species of conservation concern such as<span>&nbsp;</span><i>Dendrocygna arborea</i><span>&nbsp;</span>(West Indian Whistling Duck) and<span>&nbsp;</span><i>Porzana flaviventer<span>&nbsp;</span></i>(Yellow-breasted Crake). Bird community responses suggest that management practices (i.e., soil disturbance and control of water levels) can improve wetland biodiversity in abandoned sugarcane fields of Puerto Rico. Moreover, these practices may benefit wetland biodiversity in other Caribbean islands with a similar history of land use and habitat degradation.</p>","language":"English","publisher":"Eagle Hill Foundation","usgsCitation":"Vilella, F., Cruz-Burgos, J., Kaminski, R.M., Murkin, H.R., Davis, J.B., Weitzel, S.L., and Vizcarra, F., 2020, Avian community responses to management of vegetation and water levels in restored wetlands at the Humacao Nature Reserve, Puerto Rico: Caribbean Naturalist, v. 72, p. 1-21.","productDescription":"21 p.","startPage":"1","endPage":"21","ipdsId":"IP-110559","costCenters":[{"id":198,"text":"Coop Res Unit Atlanta","active":true,"usgs":true}],"links":[{"id":395686,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"},{"id":395683,"rank":1,"type":{"id":15,"text":"Index Page"},"url":"https://www.eaglehill.us/CANAonline/CANA-access-pages/CANA-regular/CANA-072-Vilella.shtml"}],"country":"Puerto 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Brian hdavis@usgs.gov","contributorId":199997,"corporation":false,"usgs":false,"family":"Davis","given":"J.","email":"hdavis@usgs.gov","middleInitial":"Brian","affiliations":[],"preferred":false,"id":833816,"contributorType":{"id":1,"text":"Authors"},"rank":5},{"text":"Weitzel, Spencer L.","contributorId":275211,"corporation":false,"usgs":false,"family":"Weitzel","given":"Spencer","email":"","middleInitial":"L.","affiliations":[{"id":17848,"text":"Mississippi State University","active":true,"usgs":false}],"preferred":false,"id":833817,"contributorType":{"id":1,"text":"Authors"},"rank":6},{"text":"Vizcarra, Fernando","contributorId":275212,"corporation":false,"usgs":false,"family":"Vizcarra","given":"Fernando","email":"","affiliations":[{"id":17848,"text":"Mississippi State University","active":true,"usgs":false}],"preferred":false,"id":833818,"contributorType":{"id":1,"text":"Authors"},"rank":7}]}}
,{"id":70259299,"text":"70259299 - 2020 - Lassen Volcanic National Park","interactions":[],"lastModifiedDate":"2024-10-03T16:04:36.895678","indexId":"70259299","displayToPublicDate":"2020-01-01T10:53:55","publicationYear":"2020","noYear":false,"publicationType":{"id":5,"text":"Book chapter"},"publicationSubtype":{"id":24,"text":"Book Chapter"},"chapter":"39","title":"Lassen Volcanic National Park","docAbstract":"<p>No abstract available.</p>","largerWorkType":{"id":4,"text":"Book"},"largerWorkTitle":"Geology of National Parks","largerWorkSubtype":{"id":15,"text":"Monograph"},"language":"English","publisher":"Kendall Hunt","usgsCitation":"Hopson, R., and Clynne, M.A., 2020, Lassen Volcanic National Park, chap. 39 <i>of</i> Geology of National Parks, p. 667-692.","productDescription":"26 p.","startPage":"667","endPage":"692","ipdsId":"IP-066909","costCenters":[{"id":617,"text":"Volcano Science Center","active":true,"usgs":true}],"links":[{"id":462546,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"country":"United States","state":"California","otherGeospatial":"Lassen Volcanic National Park","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"coordinates\": [\n          [\n            [\n              -121.59696229336127,\n              40.58863026956337\n            ],\n            [\n              -121.59696229336127,\n              40.404865334429985\n            ],\n            [\n              -121.14026493645315,\n              40.404865334429985\n            ],\n            [\n              -121.14026493645315,\n              40.58863026956337\n            ],\n            [\n              -121.59696229336127,\n              40.58863026956337\n            ]\n          ]\n        ],\n        \"type\": \"Polygon\"\n      }\n    }\n  ]\n}","noUsgsAuthors":false,"publicationStatus":"PW","contributors":{"authors":[{"text":"Hopson, R.F.","contributorId":77379,"corporation":false,"usgs":true,"family":"Hopson","given":"R.F.","email":"","affiliations":[],"preferred":false,"id":914826,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Clynne, Michael A. 0000-0002-4220-2968 mclynne@usgs.gov","orcid":"https://orcid.org/0000-0002-4220-2968","contributorId":2032,"corporation":false,"usgs":true,"family":"Clynne","given":"Michael","email":"mclynne@usgs.gov","middleInitial":"A.","affiliations":[{"id":617,"text":"Volcano Science Center","active":true,"usgs":true}],"preferred":true,"id":914827,"contributorType":{"id":1,"text":"Authors"},"rank":2}]}}
,{"id":70243265,"text":"70243265 - 2020 - Looking forward, looking back: Building resilience today: Training two report: International Arctic Research Center, Fairbanks, Alaska,  January 28-30, 2020","interactions":[],"lastModifiedDate":"2023-05-05T15:54:09.531195","indexId":"70243265","displayToPublicDate":"2020-01-01T10:51:52","publicationYear":"2020","noYear":false,"publicationType":{"id":18,"text":"Report"},"publicationSubtype":{"id":4,"text":"Other Government Series"},"title":"Looking forward, looking back: Building resilience today: Training two report: International Arctic Research Center, Fairbanks, Alaska,  January 28-30, 2020","docAbstract":"The Looking Forward Looking Back: Building Resilience Today Training Two is the final training in a series of project engagement events with the partner communities of St. Michael, Kotlik, Kwigillingok, Quinhagak, and Iliamna. Training Two Report provides an overview of the activities and information presented during the training, which took place at the International Arctic Research Center in Fairbanks, Alaska January 28-30, 2020. Training One Report provides an introduction of the project, description of the project structure, and an overview of the activities and information covered in that training. Between Training One and Training Two, the project team traveled to, and worked individually with, each partner community to support the community teams with engaging their leadership and community members on climate issues and planning. This included identifying areas of concern, species of concern, and documenting community observations that could assist in further climate adaptation planning efforts.","language":"English","publisher":"Aleutian Pribilofs Islands Association","usgsCitation":"Chase, M., Heeringa, K., Littell, J., Toohey, R.C., and Tankersley, M., 2020, Looking forward, looking back: Building resilience today: Training two report: International Arctic Research Center, Fairbanks, Alaska,  January 28-30, 2020, 26 p.","productDescription":"26 p.","ipdsId":"IP-125014","costCenters":[{"id":49028,"text":"Alaska Climate Adaptation Science Center","active":true,"usgs":true}],"links":[{"id":416772,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"},{"id":416771,"rank":1,"type":{"id":11,"text":"Document"},"url":"https://akcasc.org/wp-content/uploads/2021/03/Training-2-report_2_3_2020.pdf","linkFileType":{"id":1,"text":"pdf"}}],"country":"United 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Fairbanks","active":true,"usgs":false}],"preferred":false,"id":871864,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Toohey, Ryan C. 0000-0001-8248-5045 rtoohey@usgs.gov","orcid":"https://orcid.org/0000-0001-8248-5045","contributorId":5674,"corporation":false,"usgs":true,"family":"Toohey","given":"Ryan","email":"rtoohey@usgs.gov","middleInitial":"C.","affiliations":[{"id":107,"text":"Alaska Climate Science Center","active":true,"usgs":true}],"preferred":true,"id":871865,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Tankersley, Molly","contributorId":304849,"corporation":false,"usgs":false,"family":"Tankersley","given":"Molly","email":"","affiliations":[{"id":66166,"text":"Alaska Climate Adaptation Science Center, Alaska Coastal Rainforest Research Center","active":true,"usgs":false}],"preferred":false,"id":871866,"contributorType":{"id":1,"text":"Authors"},"rank":5}]}}
,{"id":70228135,"text":"70228135 - 2020 - Coerced regimes: Management challenges in the Anthropocene","interactions":[],"lastModifiedDate":"2022-02-04T16:59:33.968363","indexId":"70228135","displayToPublicDate":"2020-01-01T10:51:12","publicationYear":"2020","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":1468,"text":"Ecology and Society","active":true,"publicationSubtype":{"id":10}},"title":"Coerced regimes: Management challenges in the Anthropocene","docAbstract":"<p><span>Management frequently creates system conditions that poorly mimic the conditions of a desirable self-organizing regime. Such management is ubiquitous across complex systems of people and nature and will likely intensify as these systems face rapid change. However, it is highly uncertain whether the costs (unintended consequences, including negative side effects) of management but also social dynamics can eventually outweigh benefits in the long term. We introduce the term “coerced regime” to conceptualize this management form and tie it into resilience theory. The concept encompasses proactive and reactive management to maintain desirable and mitigate undesirable regime conditions, respectively. A coerced regime can be quantified through a measure of the amount of management required to artificially maintain its desirable conditions. Coerced regimes comprise “ghosts” of self-sustaining desirable system regimes but ultimately become “dead regimes walking” when these regimes collapse as soon as management is discontinued. We demonstrate the broad application of coerced regimes using distinct complex systems of humans and nature (human subjects, aquatic and terrestrial environments, agriculture, and global climate). We discuss commonalities and differences between these examples to identify trade-offs between benefits and harms of management. The concept of coerced regimes can spur thinking and inform management about the duality of what we know and can envision versus what we do not know and therefore cannot envision: a pervasive sustainability conundrum as planet Earth swiftly moves toward a future without historical analogue</span></p>","language":"English","publisher":"Ecology and Society","doi":"10.5751/ES-11286-250104","usgsCitation":"Angeler, D.G., Chaffin, B.C., Sundstrom, S.M., Garmestani, A.S., Pope, K.L., Uden, D., Twidwell, D., and Allen, C.R., 2020, Coerced regimes: Management challenges in the Anthropocene: Ecology and Society, v. 25, no. 1, 4, 11 p., https://doi.org/10.5751/ES-11286-250104.","productDescription":"4, 11 p.","ipdsId":"IP-103511","costCenters":[{"id":198,"text":"Coop Res Unit Atlanta","active":true,"usgs":true}],"links":[{"id":458263,"rank":0,"type":{"id":40,"text":"Open Access Publisher Index Page"},"url":"https://doi.org/10.5751/es-11286-250104","text":"Publisher Index Page"},{"id":395443,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"volume":"25","issue":"1","noUsgsAuthors":false,"publicationStatus":"PW","contributors":{"authors":[{"text":"Angeler, D. G.","contributorId":273151,"corporation":false,"usgs":false,"family":"Angeler","given":"D.","email":"","middleInitial":"G.","affiliations":[{"id":56434,"text":"Swedish University of Agriculture Sciences","active":true,"usgs":false}],"preferred":false,"id":833187,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Chaffin, B. C.","contributorId":274648,"corporation":false,"usgs":false,"family":"Chaffin","given":"B.","email":"","middleInitial":"C.","affiliations":[{"id":36523,"text":"University of Montana","active":true,"usgs":false}],"preferred":false,"id":833188,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Sundstrom, S. M. 0000-0003-0823-8008","orcid":"https://orcid.org/0000-0003-0823-8008","contributorId":240691,"corporation":false,"usgs":false,"family":"Sundstrom","given":"S.","email":"","middleInitial":"M.","affiliations":[{"id":36892,"text":"University of Nebraska","active":true,"usgs":false}],"preferred":false,"id":833189,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Garmestani, A. S.","contributorId":240687,"corporation":false,"usgs":false,"family":"Garmestani","given":"A.","email":"","middleInitial":"S.","affiliations":[{"id":6914,"text":"U.S. Environmental Protection Agency","active":true,"usgs":false}],"preferred":false,"id":833190,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Pope, Kevin L. 0000-0003-1876-1687","orcid":"https://orcid.org/0000-0003-1876-1687","contributorId":270762,"corporation":false,"usgs":true,"family":"Pope","given":"Kevin","email":"","middleInitial":"L.","affiliations":[{"id":506,"text":"Office of the AD Ecosystems","active":true,"usgs":true},{"id":198,"text":"Coop Res Unit Atlanta","active":true,"usgs":true}],"preferred":true,"id":833191,"contributorType":{"id":1,"text":"Authors"},"rank":5},{"text":"Uden, D. R.","contributorId":217539,"corporation":false,"usgs":false,"family":"Uden","given":"D. R.","affiliations":[{"id":36892,"text":"University of Nebraska","active":true,"usgs":false}],"preferred":false,"id":833192,"contributorType":{"id":1,"text":"Authors"},"rank":6},{"text":"Twidwell, D.","contributorId":244285,"corporation":false,"usgs":false,"family":"Twidwell","given":"D.","affiliations":[{"id":36892,"text":"University of Nebraska","active":true,"usgs":false}],"preferred":false,"id":833193,"contributorType":{"id":1,"text":"Authors"},"rank":7},{"text":"Allen, Craig R. 0000-0001-8655-8272 allencr@usgs.gov","orcid":"https://orcid.org/0000-0001-8655-8272","contributorId":1979,"corporation":false,"usgs":true,"family":"Allen","given":"Craig","email":"allencr@usgs.gov","middleInitial":"R.","affiliations":[{"id":200,"text":"Coop Res Unit Seattle","active":true,"usgs":true},{"id":198,"text":"Coop Res Unit Atlanta","active":true,"usgs":true}],"preferred":true,"id":833194,"contributorType":{"id":1,"text":"Authors"},"rank":8}]}}
,{"id":70228137,"text":"70228137 - 2020 - Condition bias of decoy-harvested light geese during the conservation order","interactions":[],"lastModifiedDate":"2022-02-07T14:24:42.891997","indexId":"70228137","displayToPublicDate":"2020-01-01T10:50:24","publicationYear":"2020","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":2508,"text":"Journal of Wildlife Management","active":true,"publicationSubtype":{"id":10}},"title":"Condition bias of decoy-harvested light geese during the conservation order","docAbstract":"<div class=\"article-section__content en main\"><p>Evidence that decoy harvest techniques primarily remove individuals of poorer body condition is well established in short-lived duck species; however, there is limited support for condition bias in longer-lived waterfowl species, such as geese, where decoy harvest is considered primarily additive because of their high natural survival rates. We evaluated support for the harvest condition bias hypothesis of 2 long-lived waterfowl species, the lesser snow goose (<i>Anser caerulescens caerulescens</i>) and Ross's goose (<i>Anser rossii</i>). We used proximate analysis to quantify lipid and protein content of lesser snow and Ross's geese collected during the Light Goose Conservation Order (LGCO) in 2015 and 2016 during spring migration in Arkansas, Missouri, Nebraska, and South Dakota, USA. In each state, LGCO participants collected birds using traditional decoy techniques and we collected birds from the general population using jump-shooting tactics. Total body lipid content in both lesser snow and Ross's geese varied with age, region of harvest, and harvest type (decoy or jump-shooting). On average, adult lesser snow and Ross's geese harvested over decoys had 60 g and 41 g, respectively, fewer lipids than conspecifics collected using jump-shooting. We observed lower lipid reserves in decoy-shot geese in all 4 states sampled despite general gains in lipid reserves as migration chronology progressed. Our data support that the harvest condition bias extends to longer-lived waterfowl species and during a life-history event (spring migration) in which harvest is not normally observed. In the case of overabundant light geese, the disproportionate harvest of poorer-conditioned lesser snow and Ross's geese may serve as an additional challenge against any realized effects of harvest to reduce the population, in addition to extremely low harvest rates.</p></div>","language":"English","publisher":"Wiley","doi":"10.1002/jwmg.21770","usgsCitation":"Fowler, D.N., Webb, E.B., and Vrtiska, M.P., 2020, Condition bias of decoy-harvested light geese during the conservation order: Journal of Wildlife Management, v. 84, no. 1, p. 33-44, https://doi.org/10.1002/jwmg.21770.","productDescription":"12 p.","startPage":"33","endPage":"44","ipdsId":"IP-104969","costCenters":[{"id":198,"text":"Coop Res Unit Atlanta","active":true,"usgs":true}],"links":[{"id":395442,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"country":"United States","state":"Arkansas, Missouri, Nebraska, South Dakota","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"type\": \"Polygon\",\n        \"coordinates\": [\n          [\n            [\n              -92.0654296875,\n              34.57895241036948\n            ],\n            [\n              -90.626220703125,\n              34.57895241036948\n            ],\n            [\n              -90.626220703125,\n              35.567980458012094\n            ],\n            [\n              -92.0654296875,\n              35.567980458012094\n            ],\n            [\n              -92.0654296875,\n              34.57895241036948\n            ]\n          ]\n        ]\n      }\n    },\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"type\": \"Polygon\",\n        \"coordinates\": [\n          [\n            [\n              -95.38330078125,\n              38.950865400919994\n            ],\n            [\n              -93.50463867187499,\n              38.950865400919994\n            ],\n            [\n              -93.50463867187499,\n              39.884450178234395\n            ],\n            [\n              -95.38330078125,\n              39.884450178234395\n            ],\n            [\n              -95.38330078125,\n              38.950865400919994\n            ]\n          ]\n        ]\n      }\n    },\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"type\": \"Polygon\",\n        \"coordinates\": [\n          [\n            [\n              -98.1298828125,\n              40.01078714046552\n            ],\n            [\n              -95.943603515625,\n              40.01078714046552\n            ],\n            [\n              -95.943603515625,\n              41.04621681452063\n            ],\n            [\n              -98.1298828125,\n              41.04621681452063\n            ],\n            [\n              -98.1298828125,\n              40.01078714046552\n            ]\n          ]\n        ]\n      }\n    },\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"type\": \"Polygon\",\n        \"coordinates\": [\n          [\n            [\n              -99.0966796875,\n              43.8503744993026\n            ],\n            [\n              -97.0751953125,\n              43.8503744993026\n            ],\n            [\n              -97.0751953125,\n              45.19752230305682\n            ],\n            [\n              -99.0966796875,\n              45.19752230305682\n            ],\n            [\n              -99.0966796875,\n              43.8503744993026\n            ]\n          ]\n        ]\n      }\n    }\n  ]\n}","volume":"84","issue":"1","noUsgsAuthors":false,"publicationDate":"2019-10-24","publicationStatus":"PW","contributors":{"authors":[{"text":"Fowler, Drew N.","contributorId":205356,"corporation":false,"usgs":false,"family":"Fowler","given":"Drew","email":"","middleInitial":"N.","affiliations":[],"preferred":false,"id":833195,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Webb, Elisabeth B. 0000-0003-3851-6056 ewebb@usgs.gov","orcid":"https://orcid.org/0000-0003-3851-6056","contributorId":3981,"corporation":false,"usgs":true,"family":"Webb","given":"Elisabeth","email":"ewebb@usgs.gov","middleInitial":"B.","affiliations":[{"id":199,"text":"Coop Res Unit Leetown","active":true,"usgs":true}],"preferred":true,"id":833196,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Vrtiska, Mark P.","contributorId":54008,"corporation":false,"usgs":true,"family":"Vrtiska","given":"Mark","email":"","middleInitial":"P.","affiliations":[],"preferred":false,"id":833197,"contributorType":{"id":1,"text":"Authors"},"rank":3}]}}
,{"id":70243268,"text":"70243268 - 2020 - Looking forward, looking back: Building resilience today community report: Iliamna, AK","interactions":[],"lastModifiedDate":"2023-05-05T15:39:39.101588","indexId":"70243268","displayToPublicDate":"2020-01-01T10:37:04","publicationYear":"2020","noYear":false,"publicationType":{"id":18,"text":"Report"},"publicationSubtype":{"id":4,"text":"Other Government Series"},"title":"Looking forward, looking back: Building resilience today community report: Iliamna, AK","docAbstract":"The Alaska Climate Adaptation Science Center (AK CASC), in partnership with the Aleutian Pribilof Islands Association (APIA), designed the Looking Forward, Looking Back: Building Resilience Today project as a series of trainings and workshops with tribal community leadership and members to collaboratively develop the western science knowledge and Indigenous knowledge to assist with adaptation planning. The project had three phases related to its title and structure. The first and last phase included two training sessions held at the International Arctic Research Center in Fairbanks, Alaska at the beginning and near the end of the project. The project team also traveled to the partner communities and held a series of onsite events with community members to develop locally-relevant information and contextualize climate science tailored to the needs and conditions of each community. This report represents the community information shared during those onsite events. The Meeting Announcement included in this report shows the date and descrip- tion of the outreach event.\nTo support the community teams with engaging their leadership and community members on climate issues and planning, the project team visited each of the five communities, Iliamna, St. Michael, Kotlik, Kwigillingok and Quinhagak, and held a series of events. The purpose of these events were to: 1) facilitate mapping of a Traditional Use Area to refine an area for climate projections, 2) construct current and past seasonal Subsistence Calendars to identify important species and times of the year, 3) document Indigenous and local knowledge from current community members about environmental changes they have observed over their lifetimes, and 4) assist with documenting what the community perceived to be climate-related issues through photos and interviews. The agenda of the visits was co-produced with the community team. In each community, the community team and the project team hosted an open-to-the-public meeting\nand met with various groups. The community team advertised the meetings by posting community fliers, making announcements on the community radio, and reaching out to individuals that would contribute to the engagement discussions. Each community meeting focused on activities to develop the Traditional Use Area Mapping, the seasonal Subsistence Calendars and documenting observed environmental changes. Community members spent time at stations dedicated to each of these activities. The project team also met with various groups of individuals that included village corporation, tribal council, and city representatives where additional information about observed environmental changes was gathered.","language":"English","publisher":"Aleutian Pribilof Islands Association","usgsCitation":"Iliamna, C., Littell, J., Fresco, N., Toohey, R.C., and Chase, M., 2020, Looking forward, looking back: Building resilience today community report: Iliamna, AK, 50 p.","productDescription":"50 p.","ipdsId":"IP-120590","costCenters":[{"id":49028,"text":"Alaska Climate Adaptation Science Center","active":true,"usgs":true}],"links":[{"id":416770,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"},{"id":416769,"rank":1,"type":{"id":11,"text":"Document"},"url":"https://akcasc.org/wp-content/uploads/2021/03/Iliamna_Community-Report_1_19_21_1.pdf","linkFileType":{"id":1,"text":"pdf"}}],"country":"United States","state":"Alaska","city":"Iliamna","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"coordinates\": [\n          [\n            [\n              -153.19977707497338,\n              60.65917662392641\n            ],\n            [\n              -157.12808722214763,\n              60.65917662392641\n            ],\n            [\n              -157.12808722214763,\n              58.56354442684932\n            ],\n            [\n              -153.19977707497338,\n              58.56354442684932\n            ],\n            [\n              -153.19977707497338,\n              60.65917662392641\n            ]\n          ]\n        ],\n        \"type\": \"Polygon\"\n      }\n    }\n  ]\n}","noUsgsAuthors":false,"publicationStatus":"PW","contributors":{"authors":[{"text":"Iliamna, Community of","contributorId":304852,"corporation":false,"usgs":false,"family":"Iliamna","given":"Community of","email":"","affiliations":[{"id":66168,"text":"Native Village of Iliamna","active":true,"usgs":false}],"preferred":false,"id":871739,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Littell, Jeremy S. 0000-0002-5302-8280","orcid":"https://orcid.org/0000-0002-5302-8280","contributorId":205907,"corporation":false,"usgs":true,"family":"Littell","given":"Jeremy","middleInitial":"S.","affiliations":[{"id":107,"text":"Alaska Climate Science Center","active":true,"usgs":true}],"preferred":true,"id":871740,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Fresco, Nancy","contributorId":304853,"corporation":false,"usgs":false,"family":"Fresco","given":"Nancy","affiliations":[{"id":6752,"text":"University of Alaska Fairbanks","active":true,"usgs":false}],"preferred":false,"id":871741,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Toohey, Ryan C. 0000-0001-8248-5045 rtoohey@usgs.gov","orcid":"https://orcid.org/0000-0001-8248-5045","contributorId":5674,"corporation":false,"usgs":true,"family":"Toohey","given":"Ryan","email":"rtoohey@usgs.gov","middleInitial":"C.","affiliations":[{"id":107,"text":"Alaska Climate Science Center","active":true,"usgs":true}],"preferred":true,"id":871742,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Chase, Malinda","contributorId":304848,"corporation":false,"usgs":false,"family":"Chase","given":"Malinda","email":"","affiliations":[{"id":66165,"text":"Aleutian Pribilof Islands Association","active":true,"usgs":false}],"preferred":false,"id":871743,"contributorType":{"id":1,"text":"Authors"},"rank":5}]}}
,{"id":70243269,"text":"70243269 - 2020 - Looking forward, looking back: Building resilience today community report: St. Michael, AK","interactions":[],"lastModifiedDate":"2023-05-05T15:35:05.945942","indexId":"70243269","displayToPublicDate":"2020-01-01T10:30:15","publicationYear":"2020","noYear":false,"publicationType":{"id":18,"text":"Report"},"publicationSubtype":{"id":4,"text":"Other Government Series"},"title":"Looking forward, looking back: Building resilience today community report: St. Michael, AK","docAbstract":"The Alaska Climate Adaptation Science Center (AK CASC), in partnership with the Aleutian Pribilof Islands Association (APIA), designed the Looking Forward, Looking Back: Building Resilience Today (hereafter ‘BRT’) project as a series of trainings and workshops with tribal community leadership and members. The overarching goal of the project was\nto collaboratively develop the Indigenous knowledge and western science knowledge for adaptation planning. We worked with five community teams consisting of up to four leaders from communities that chose to participate in\nthe project: Iliamna, Kotlik, Kwigillingok, Quinhagak, and St. Michael. Community teams were developed through the application process and the project duration. Community teams were encouraged to have involvement from multiple governing bodies within the community that could include the Tribal Council, city government, and village corpora- tion. The project title, with its references to the future (Looking Forward), past (Looking Back), and present (Building Resilience Today), refers to the idea that adaptation planning relies on all three perspectives. Equally important, how- ever, is the dialogue to exchange past and present information, context, and what we expect in the future. According- ly, two training sessions held at the International Arctic Research Center in Fairbanks, Alaska at the beginning and near the end of the project were developed to provide community team interaction with each other and with university and federal science partners. The project team also traveled to the partner communities and held a series of onsite events with community members to document locally-relevant information and share climate science tailored to the needs and conditions of each community. This report represents the community information shared during those onsite events. The Meeting Announcement (page 5) shows the date and description of the outreach events.\nThe purpose of these events was to: 1) facilitate mapping of a Traditional Use Area to refine an area for climate pro- jections; 2) construct current and past seasonal Subsistence Calendars to identify important species and times of\nthe year; 3) document Indigenous and local knowledge from current community members about environmental changes they have observed over their lifetimes; and 4) assist with documenting what the community perceived to\nbe climate-related issues through photos and interviews. The agenda of the visits was co-produced with the commu- nity team. In each community, the community team and the project team co-hosted an open-to-the-public meeting and met with various groups. The community team advertised the meetings by posting community fliers, making announcements on the community radio, and reaching out to individuals that would contribute to the engagement discussions. Each community meeting focused on activities to develop seasonal Subsistence Calendars, map Tradition- al Use Areas, and document observed environmental changes. Community members spent time at stations dedicated to each of these activities working with project team members. The project team also met with various groups of indi- viduals that included village corporation, tribal council, and city representatives where additional information about observed environmental changes was gathered. This community report presents some of the information developed in these activities.","language":"English","publisher":"Aleutian Pribilof Islands Association","usgsCitation":"St. Michael, C., Littell, J., Fresco, N., Toohey, R.C., and Chase, M., 2020, Looking forward, looking back: Building resilience today community report: St. Michael, AK, 46 p.","productDescription":"46 p.","ipdsId":"IP-120591","costCenters":[{"id":49028,"text":"Alaska Climate Adaptation Science Center","active":true,"usgs":true}],"links":[{"id":416768,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"},{"id":416766,"rank":1,"type":{"id":11,"text":"Document"},"url":"https://akcasc.org/wp-content/uploads/2021/03/StMichael_Community-Report_1_15_21-1.pdf","linkFileType":{"id":1,"text":"pdf"}}],"country":"United States","state":"Alaska","city":"St. Michael","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"coordinates\": [\n          [\n            [\n              -160.43301856305254,\n              64.93703305551423\n            ],\n            [\n              -164.34632306624601,\n              64.93703305551423\n            ],\n            [\n              -164.34632306624601,\n              62.5458092981215\n            ],\n            [\n              -160.43301856305254,\n              62.5458092981215\n            ],\n            [\n              -160.43301856305254,\n              64.93703305551423\n            ]\n          ]\n        ],\n        \"type\": \"Polygon\"\n      }\n    }\n  ]\n}","noUsgsAuthors":false,"publicationStatus":"PW","contributors":{"authors":[{"text":"St. Michael, Community of","contributorId":304854,"corporation":false,"usgs":false,"family":"St. Michael","given":"Community of","email":"","affiliations":[{"id":66169,"text":"Native Village of St. Michael and St. Michael Village, City of St. Michael Council,","active":true,"usgs":false}],"preferred":false,"id":871744,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Littell, Jeremy S. 0000-0002-5302-8280","orcid":"https://orcid.org/0000-0002-5302-8280","contributorId":205907,"corporation":false,"usgs":true,"family":"Littell","given":"Jeremy","middleInitial":"S.","affiliations":[{"id":107,"text":"Alaska Climate Science Center","active":true,"usgs":true}],"preferred":true,"id":871745,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Fresco, Nancy","contributorId":304853,"corporation":false,"usgs":false,"family":"Fresco","given":"Nancy","affiliations":[{"id":6752,"text":"University of Alaska Fairbanks","active":true,"usgs":false}],"preferred":false,"id":871746,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Toohey, Ryan C. 0000-0001-8248-5045 rtoohey@usgs.gov","orcid":"https://orcid.org/0000-0001-8248-5045","contributorId":5674,"corporation":false,"usgs":true,"family":"Toohey","given":"Ryan","email":"rtoohey@usgs.gov","middleInitial":"C.","affiliations":[{"id":107,"text":"Alaska Climate Science Center","active":true,"usgs":true}],"preferred":true,"id":871747,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Chase, Malinda","contributorId":304848,"corporation":false,"usgs":false,"family":"Chase","given":"Malinda","email":"","affiliations":[{"id":66165,"text":"Aleutian Pribilof Islands Association","active":true,"usgs":false}],"preferred":false,"id":871748,"contributorType":{"id":1,"text":"Authors"},"rank":5}]}}
,{"id":70228784,"text":"70228784 - 2020 - Winter carry-over effects on spring body condition driven by agricultural subsidies to Lesser Snow Geese (Anser caersulscens caerulescens)","interactions":[],"lastModifiedDate":"2022-02-21T16:30:35.783872","indexId":"70228784","displayToPublicDate":"2020-01-01T10:22:51","publicationYear":"2020","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":947,"text":"Avian Conservation and Ecology","active":true,"publicationSubtype":{"id":10}},"displayTitle":"Winter carry-over effects on spring body condition driven by agricultural subsidies to Lesser Snow Geese (<i>Anser caersulscens caerulescens</i>)","title":"Winter carry-over effects on spring body condition driven by agricultural subsidies to Lesser Snow Geese (Anser caersulscens caerulescens)","docAbstract":"<p><span>Anthropogenic changes to landscapes associated with intensive agriculture often have deleterious effects on avian abundance. However, some species like the Lesser Snow Goose (</span><i>Anser caerulescens caerulescens</i><span>), can benefit from increases in agricultural crops on both wintering and migratory stopover sites. We investigated the influence of winter habitat use on spring body condition in Lesser Snow Goose, a species that has increased in population following expansion into agriculturally based winter habitats. We used stable isotope measurements of four elements (δ</span><sup>2</sup><span>H, δ</span><sup>13</sup><span>C, δ</span><sup>15</sup><span>N, and δ</span><sup>34</sup><span>S) to determine likely prior winter habitat use of snow geese collected during spring migration across Arkansas, Missouri, and Nebraska in 2016. We evaluated differences in body size, lipid, and protein reserves from individuals with isotope values that suggested winter habitat use in traditional coastal marsh and non-coastal /agriculture habitat. Inferred winter habitat influenced total body lipid levels in snow geese collected during spring migration. Adult and juvenile individuals inferred to have overwintered in coastal marsh (n = 60) had, on average, 33.4 g (95% Confidence Interval: 0.4 g, 66.4 g) less lipid than counterparts wintering in non-coastal / agricultural habitat (n = 77). Waterfowl foods found in marshes typically have low true metabolizable energy values as a consequence of their high fiber content, which likely increases daily consumption rates. Increased energy expenditure related to greater time spent foraging, paired with lower energetic rewards, may result in lower lipid reserves among geese using coastal marsh habitats compared to birds using agricultural landscapes. Consequently, carry-over effects based on winter habitat use could explain variation in lipid reserves among individuals during spring migration and may ultimately explain differential fitness rates or susceptibility to harvest. Our results have implications for the conservation and management of this species as historic wetland landscapes become more intensively converted and used for agricultural purposes.</span></p>","language":"English","publisher":"Resilience Alliance","doi":"10.5751/ACE-01743-150221","usgsCitation":"Fowler, D.N., Webb, E.B., Vrtiska, M.P., and Hobson, K., 2020, Winter carry-over effects on spring body condition driven by agricultural subsidies to Lesser Snow Geese (Anser caersulscens caerulescens): Avian Conservation and Ecology, v. 15, no. 2, p. 1-11, https://doi.org/10.5751/ACE-01743-150221.","productDescription":"21, 11 p.","startPage":"1","endPage":"11","ipdsId":"IP-114318","costCenters":[{"id":198,"text":"Coop Res Unit Atlanta","active":true,"usgs":true}],"links":[{"id":458267,"rank":0,"type":{"id":40,"text":"Open Access Publisher Index Page"},"url":"https://doi.org/10.5751/ace-01743-150221","text":"Publisher Index 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,{"id":70210724,"text":"70210724 - 2020 - Standardized guide to the examination and necropsy of the horseshoe crab using Limulus polyphemus as Limulidae prototype","interactions":[],"lastModifiedDate":"2020-06-22T11:52:39.534538","indexId":"70210724","displayToPublicDate":"2020-01-01T10:20:46","publicationYear":"2020","noYear":false,"publicationType":{"id":18,"text":"Report"},"publicationSubtype":{"id":1,"text":"Federal Government Series"},"seriesTitle":{"id":5883,"text":"Cooperator Report","active":true,"publicationSubtype":{"id":1}},"displayTitle":"Standardized Guide to the Examination and Necropsy of the Horseshoe Crab Using Limulus polyphemus as Limulidae Prototype","title":"Standardized guide to the examination and necropsy of the horseshoe crab using Limulus polyphemus as Limulidae prototype","docAbstract":"<p>The Atlantic, or American, horseshoe crab (L<i>imulus polyphemus</i>) has existed largely unchanged for over 100 million years. Millions of individuals are commonly observed ashore in spring and summer months during spawning events along the entire North American coastline expanding from the East to the Gulf coasts of the United States and Mexico. Other species can be found in the Indian and Pacific Ocean. The massive deposit of eggs in nearshore sand provides a critical source of food for endangered migrating birds, especially the Red Knot (<i>Calidruis canutus rufa</i>) in the Delaware Bay. Horseshoe crabs are also an important component of the sea turtle diet. In addition to the ecological importance, horseshoe crabs are used commercially for bait in eel and conch fisheries and for biomedical purposes in the production of Limulus Amebocyte Lysate (LAL) to detect bacterial toxins in injectable drugs and implantable devices. Commercial demands have led to population declines in some regions. Fisheries are regulated by state and the current International Union for Conservation of Nature (IUCN) listing for <i>L. polyphemus</i> is vulnerable. </p><p>A small number of individuals are housed in public aquaria for educational purposes. With growing interest in animal welfare, the health and stability of populations, and potential stressors that can contribute to decline , it is important to have clear and detailed descriptions of horseshoe crab anatomy and necropsy techniques. The purpose of this guide is to illustrate the normal anatomy and the step-by-step technique for dissection of horseshoe crabs. The contents are largely excerpts of the master’s thesis of artist, Katie (Bergdale) Roorda, which was based on photographs from C. Meteyer documenting the sequence and procedure used for necropsy dissection. </p>","language":"English","publisher":"Wildlife Disease Association","usgsCitation":"Roorda, K., Arnold, J., Meteyer, C., and Whitaker, B., 2020, Standardized guide to the examination and necropsy of the horseshoe crab using Limulus polyphemus as Limulidae prototype: Cooperator Report, 31 p.","productDescription":"31 p.","ipdsId":"IP-108910","costCenters":[{"id":456,"text":"National Wildlife Health Center","active":true,"usgs":true},{"id":34983,"text":"Contaminant Biology Program","active":true,"usgs":true}],"links":[{"id":375778,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"},{"id":375770,"type":{"id":15,"text":"Index Page"},"url":"https://zooquaticlab.com/file?filename=Limulus%20Necropsy%20Guide_%20July%202019.pdf&type=reference"}],"noUsgsAuthors":false,"publicationStatus":"PW","contributors":{"authors":[{"text":"Roorda, Katie","contributorId":225415,"corporation":false,"usgs":false,"family":"Roorda","given":"Katie","email":"","affiliations":[{"id":41102,"text":"John Hopkins University.","active":true,"usgs":false}],"preferred":false,"id":791116,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Arnold, Jill","contributorId":225416,"corporation":false,"usgs":false,"family":"Arnold","given":"Jill","email":"","affiliations":[{"id":41103,"text":"ZooQuatic Laboratory LLC1","active":true,"usgs":false}],"preferred":false,"id":791117,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Meteyer, Carol 0000-0002-4007-3410","orcid":"https://orcid.org/0000-0002-4007-3410","contributorId":207215,"corporation":false,"usgs":true,"family":"Meteyer","given":"Carol","affiliations":[{"id":456,"text":"National Wildlife Health Center","active":true,"usgs":true},{"id":34983,"text":"Contaminant Biology Program","active":true,"usgs":true}],"preferred":true,"id":791118,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Whitaker, Brent","contributorId":225417,"corporation":false,"usgs":false,"family":"Whitaker","given":"Brent","email":"","affiliations":[{"id":41104,"text":"National Aquarium of Baltimore","active":true,"usgs":false}],"preferred":false,"id":791119,"contributorType":{"id":1,"text":"Authors"},"rank":4}]}}
,{"id":70209045,"text":"70209045 - 2020 - Introduced species","interactions":[],"lastModifiedDate":"2021-01-26T16:21:46.693144","indexId":"70209045","displayToPublicDate":"2020-01-01T10:20:37","publicationYear":"2020","noYear":false,"publicationType":{"id":5,"text":"Book chapter"},"publicationSubtype":{"id":24,"text":"Book Chapter"},"title":"Introduced species","docAbstract":"<p>No abstract available.</p>","largerWorkType":{"id":4,"text":"Book"},"largerWorkTitle":"Snakes of Arizona","largerWorkSubtype":{"id":15,"text":"Monograph"},"language":"English","usgsCitation":"Joseph Mitchell, and Reed, R., 2020, Introduced species, chap. <i>of</i> Snakes of Arizona, 1 p.","productDescription":"1 p.","ipdsId":"IP-109764","costCenters":[{"id":291,"text":"Fort Collins Science Center","active":true,"usgs":true}],"links":[{"id":382597,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"country":"United 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 \"}}]}","publishingServiceCenter":{"id":2,"text":"Denver PSC"},"noUsgsAuthors":false,"publicationStatus":"PW","contributors":{"authors":[{"text":"Joseph Mitchell","contributorId":223227,"corporation":false,"usgs":false,"family":"Joseph Mitchell","affiliations":[{"id":34928,"text":"Independent Researcher","active":true,"usgs":false}],"preferred":false,"id":784619,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Reed, Robert 0000-0001-8349-6168 reedr@usgs.gov","orcid":"https://orcid.org/0000-0001-8349-6168","contributorId":152301,"corporation":false,"usgs":true,"family":"Reed","given":"Robert","email":"reedr@usgs.gov","affiliations":[{"id":291,"text":"Fort Collins Science Center","active":true,"usgs":true}],"preferred":true,"id":784618,"contributorType":{"id":1,"text":"Authors"},"rank":2}]}}
,{"id":70210527,"text":"70210527 - 2020 - Supporting the development and use of native plant materials for restoration on the Colorado Plateau (Fiscal Year 19 Report)","interactions":[],"lastModifiedDate":"2020-06-09T15:16:09.67503","indexId":"70210527","displayToPublicDate":"2020-01-01T10:15:38","publicationYear":"2020","noYear":false,"publicationType":{"id":18,"text":"Report"},"publicationSubtype":{"id":1,"text":"Federal Government Series"},"seriesTitle":{"id":5883,"text":"Cooperator Report","active":true,"publicationSubtype":{"id":1}},"title":"Supporting the development and use of native plant materials for restoration on the Colorado Plateau (Fiscal Year 19 Report)","docAbstract":"<p>A primary focus of the Bureau of Land Management’s (BLM’s) Colorado Plateau Native Plant Program (CPNPP) is to identify and develop appropriate native plant materials (NPMs) for current and future restoration projects. Multiple efforts have characterized the myriad challenges inherent in providing appropriate seed resources to enable effective, widespread restoration and have identified a broad suite of research activities to provide the information necessary to overcome those challenges (e.g., Plant Conservation Alliance 2015; Breed et al. 2018; Winkler et al. 2018). Many of the most complex information needs relate to identifying the appropriate sources of plant species that can successfully establish in dryland environments, like the Colorado Plateau, where low and highly variable precipitation is standard. Providing this information requires synergistic research efforts in which results from earlier investigations inform the design of subsequent investigations. The U.S. Geological Survey Southwest Biological Science Center’s (SBSC’s) research activities in FY19 followed an FY19 Statement of Work to support a research framework that is continually adapting based on the needs of the restoration community and results from previous investigations; the long-term research framework is outlined in the 2019-2023 5-Year Research Strategy (hereafter referred to as the 5-year plan). This research framework provides support for the National Seed Strategy for Rehabilitation and Restoration (Plant Conservation Alliance, 2015), Department of Interior Secretarial Order #3347 (Conservation Stewardship and Outdoor Recreation), and Department of Interior Leadership Priority #1 (Create a conservation stewardship legacy second only to Teddy Roosevelt). Research activities in FY19 centered on landscape genetics, collecting seeds in preparation for experimental common gardens, and planning and trials in support of experimental drought gardens. These activities were supported by three biological technicians, one of which was jointly funded by the Ecological Society of America for six pay periods. Most of the field-related activities, including plant trait measurement, seed/tissue collecting, and GRID (Germination for Restoration Information and Decision-making) experimental treatments at the Canyonlands Research Center near Moab, UT were assigned to these technicians. Contrary to the drought conditions the pervaded the Colorado Plateau in FY18, plentiful spring precipitation resulted in easily-collected plant tissue and seed collections. However, the cool and wet spring delayed the phenology of early blooming species, which caused difficulties for timing seed collecting. Furthermore, seed collecting for late blooming species was difficult because of lower than average monsoon precipitation. While Dr. Rob Massatti was the only scientist supported by the SBSC-CPNPP agreement in FY19, other scientists, including Drs. John Bradford, Seth Munson, Mike Duniway, Sasha Reed, and Daniel Winkler, spent a considerable amount of time providing expert guidance and support for individual projects. Work activities performed in support of each 5-year plan goal are discussed in turn.</p>","language":"English","publisher":"US Bureau of Land Management","usgsCitation":"Massatti, R., Winkler, D.E., Reed, S., Duniway, M.C., Munson, S.M., and Bradford, J., 2020, Supporting the development and use of native plant materials for restoration on the Colorado Plateau (Fiscal Year 19 Report): Cooperator Report, 15 p.","productDescription":"15 p.","ipdsId":"IP-117822","costCenters":[{"id":568,"text":"Southwest Biological Science Center","active":true,"usgs":true}],"links":[{"id":375467,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"},{"id":375465,"rank":1,"type":{"id":11,"text":"Document"},"url":"https://www.blm.gov/sites/blm.gov/files/uploads/nativeplants_ecoregions_USGS%20FY19%20Rpt.pdf"},{"id":375466,"rank":2,"type":{"id":15,"text":"Index 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0000-0002-8597-8619","orcid":"https://orcid.org/0000-0002-8597-8619","contributorId":205372,"corporation":false,"usgs":true,"family":"Reed","given":"Sasha C.","affiliations":[{"id":568,"text":"Southwest Biological Science Center","active":true,"usgs":true}],"preferred":true,"id":790528,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Duniway, Michael C. 0000-0002-9643-2785 mduniway@usgs.gov","orcid":"https://orcid.org/0000-0002-9643-2785","contributorId":4212,"corporation":false,"usgs":true,"family":"Duniway","given":"Michael","email":"mduniway@usgs.gov","middleInitial":"C.","affiliations":[{"id":568,"text":"Southwest Biological Science Center","active":true,"usgs":true}],"preferred":true,"id":790529,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Munson, Seth M. 0000-0002-2736-6374 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,{"id":70223693,"text":"70223693 - 2020 - Reconstruction of an early Permian, sublacustrine magmatic-hydrothermal system: Mount Carlton epithermal Au-Ag-Cu deposit, northeastern Australia","interactions":[],"lastModifiedDate":"2021-09-01T15:13:30.331799","indexId":"70223693","displayToPublicDate":"2020-01-01T10:07:33","publicationYear":"2020","noYear":false,"publicationType":{"id":2,"text":"Article"},"publicationSubtype":{"id":10,"text":"Journal Article"},"seriesTitle":{"id":1472,"text":"Economic Geology","active":true,"publicationSubtype":{"id":10}},"title":"Reconstruction of an early Permian, sublacustrine magmatic-hydrothermal system: Mount Carlton epithermal Au-Ag-Cu deposit, northeastern Australia","docAbstract":"<p><span>The Mt. Carlton Au-Ag-Cu deposit, northern Bowen basin, northeastern Australia, is an uncommon example of a sublacustrine hydrothermal system containing economic high-sulfidation epithermal mineralization. The deposit formed in the early Permian and comprises vein- and hydrothermal breccia-hosted Au-Cu mineralization within a massive rhyodacite porphyry (V2 open pit) and stratabound Ag-barite mineralization within volcano-lacustrine sedimentary rocks (A39 open pit). These orebodies are all associated with extensive advanced argillic alteration of the volcanic host rocks. Stable isotope data for disseminated alunite (</span><i>δ</i><sup>34</sup><span>S = 6.3–29.2‰;&nbsp;</span><i>δ</i><sup>18</sup><span>OSO</span><sub>4</sub><span>&nbsp;= –0.1 to 9.8‰;&nbsp;</span><i>δ</i><sup>18</sup><span>O</span><sub>OH</sub><span>&nbsp;= –15.3 to –3.4‰;&nbsp;</span><i>δ</i><span>D = –102 to –79‰) and pyrite (</span><i>δ</i><sup>34</sup><span>S = –8.8 to –2.7‰), and void-filling anhydrite (</span><i>δ</i><sup>34</sup><span>S = 17.2–19.2‰;&nbsp;</span><i>δ</i><sup>18</sup><span>O</span><sub>SO4</sub><span>&nbsp;= 1.8–5.7‰), suggest that early advanced argillic alteration formed within a magmatic-hydrothermal system. The ascending magmatic vapor (</span><i>δ</i><sup>34</sup><span>S</span><sub>ΣS</sub><span>&nbsp;≈ –1.3‰) was absorbed by meteoric water (~50–60% meteoric component), producing an acidic (pH ≈ 1) condensate that formed a silicic → quartz-alunite → quartz-dickite-kaolinite zoned alteration halo with increasing distance from feeder structures. The oxygen and hydrogen isotope compositions of alunite-forming fluids at Mt. Carlton are lighter than those documented at similar deposits elsewhere, probably due to the high paleolatitude (~S60°) of northeastern Australia in the early Permian. Veins of coarse-grained, banded plumose alunite (</span><i>δ</i><sup>34</sup><span>S = 0.4– 7.0‰;&nbsp;</span><i>δ</i><sup>18</sup><span>O</span><sub>SO4</sub><span>&nbsp;= 2.3–6.0‰;&nbsp;</span><i>δ</i><sup>18</sup><span>O</span><sub>OH</sub><span>&nbsp;= –10.3 to –2.9‰;&nbsp;</span><i>δ</i><span>D = –106 to –93‰) formed within feeder structures during the final stages of advanced argillic alteration. Epithermal mineralization was deposited subsequently, initially as fracture- and fissure-filling, Au-Cu–rich assemblages within feeder structures at depth. As the mineralizing fluids discharged into lakes, they produced syngenetic Ag-barite ore. Isotope data for ore-related sulfides and sulfosalts (</span><i>δ</i><sup>34</sup><span>S = –15.0 to –3.0‰) and barite (</span><i>δ</i><sup>34</sup><span>S = 22.3–23.8‰;&nbsp;</span><i>δ</i><sup>18</sup><span>O</span><sub>SO4</sub><span>&nbsp;= –0.2 to 1.3‰), and microthermometric data for primary fluid inclusions in barite (Th = 116°– 233°C; 0.0–1.7 wt % NaCl), are consistent with metal deposition at temperatures of ~200 ± 40°C (for Au-Cu mineralization in V2 pit) and ~150 ± 30°C (Ag mineralization in A39 pit) from a low-salinity, sulfur- and metal-rich magmatic-hydrothermal liquid that mixed with vapor-heated meteoric water. The mineralizing fluids initially had a high-sulfidation state, producing enargite-dominated ore with associated silicification of the early-altered wall rock. With time, the fluids evolved to an intermediate-sulfidation state, depositing sphalerite- and tennantite-dominated ore mineral assemblages. Void-filling massive dickite (</span><i>δ</i><sup>18</sup><span>O = –1.1 to 2.1‰;&nbsp;</span><i>δ</i><span>D = –121 to –103‰) with pyrite was deposited from an increasingly diluted magmatic-hydrothermal liquid (≥70% meteoric component) exsolved from a progressively degassed magma. Gypsum (</span><i>δ</i><sup>34</sup><span>S = 11.4–19.2‰;&nbsp;</span><i>δ</i><sup>18</sup><span>O</span><sub>SO4</sub><span>&nbsp;= 0.5–3.4‰) occurs in veins within postmineralization faults and fracture networks, likely derived from early anhydrite that was dissolved by circulating meteoric water during extensional deformation. This process may explain the apparent scarcity of hypogene anhydrite in lithocaps elsewhere. While the Mt. Carlton system is similar to those that form subaerial high-sulfidation epithermal deposits, it also shares several key characteristics with magmatic-hydrothermal systems that form base and precious metal mineralization in shallow-submarine volcanic arc and back-arc settings. The lacustrine paleosurface features documented at Mt. Carlton may be useful as exploration indicators for concealed epithermal mineralization in similar extensional terranes elsewhere.</span></p>","language":"English","publisher":"Society of Economic Geologists","doi":"10.5382/econgeo.4696","usgsCitation":"Sahlstrom, F., Chang, Z., Arribas , A., Dirks, P., Johnson, C.A., Huizenga, J., and Corral, I., 2020, Reconstruction of an early Permian, sublacustrine magmatic-hydrothermal system: Mount Carlton epithermal Au-Ag-Cu deposit, northeastern Australia: Economic Geology, v. 115, no. 1, p. 129-152, https://doi.org/10.5382/econgeo.4696.","productDescription":"24 p.","startPage":"129","endPage":"152","ipdsId":"IP-106958","costCenters":[{"id":35995,"text":"Geology, Geophysics, and Geochemistry Science Center","active":true,"usgs":true}],"links":[{"id":458270,"rank":0,"type":{"id":41,"text":"Open Access External Repository Page"},"url":"https://hdl.handle.net/10037/19232","text":"External Repository"},{"id":388735,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"}],"country":"Australia","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"type\": \"Polygon\",\n        \"coordinates\": [\n          [\n            [\n              143.525390625,\n              -23.362428593408826\n            ],\n            [\n              149.94140625,\n              -23.362428593408826\n            ],\n            [\n              149.94140625,\n              -14.221788628397585\n            ],\n            [\n              143.525390625,\n              -14.221788628397585\n            ],\n            [\n              143.525390625,\n              -23.362428593408826\n            ]\n          ]\n        ]\n      }\n    }\n  ]\n}","volume":"115","issue":"1","noUsgsAuthors":false,"publicationStatus":"PW","contributors":{"authors":[{"text":"Sahlstrom, Fredrik","contributorId":221543,"corporation":false,"usgs":false,"family":"Sahlstrom","given":"Fredrik","email":"","affiliations":[{"id":40403,"text":"James Cook University","active":true,"usgs":false}],"preferred":false,"id":822346,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Chang, Zhaoshan","contributorId":201393,"corporation":false,"usgs":false,"family":"Chang","given":"Zhaoshan","email":"","affiliations":[],"preferred":false,"id":822347,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Arribas , Antonio","contributorId":190234,"corporation":false,"usgs":false,"family":"Arribas ","given":"Antonio","affiliations":[],"preferred":false,"id":822348,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Dirks, Paul","contributorId":221544,"corporation":false,"usgs":false,"family":"Dirks","given":"Paul","email":"","affiliations":[{"id":40403,"text":"James Cook University","active":true,"usgs":false}],"preferred":false,"id":822349,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Johnson, Craig A. 0000-0002-1334-2996 cjohnso@usgs.gov","orcid":"https://orcid.org/0000-0002-1334-2996","contributorId":909,"corporation":false,"usgs":true,"family":"Johnson","given":"Craig","email":"cjohnso@usgs.gov","middleInitial":"A.","affiliations":[{"id":211,"text":"Crustal Geophysics and Geochemistry Science Center","active":true,"usgs":true},{"id":35995,"text":"Geology, Geophysics, and Geochemistry Science Center","active":true,"usgs":true},{"id":171,"text":"Central Mineral and Environmental Resources Science Center","active":true,"usgs":true}],"preferred":true,"id":822350,"contributorType":{"id":1,"text":"Authors"},"rank":5},{"text":"Huizenga, Jan M","contributorId":221545,"corporation":false,"usgs":false,"family":"Huizenga","given":"Jan M","affiliations":[{"id":40403,"text":"James Cook University","active":true,"usgs":false}],"preferred":false,"id":822351,"contributorType":{"id":1,"text":"Authors"},"rank":6},{"text":"Corral, Isaac","contributorId":177243,"corporation":false,"usgs":false,"family":"Corral","given":"Isaac","email":"","affiliations":[],"preferred":false,"id":822352,"contributorType":{"id":1,"text":"Authors"},"rank":7}]}}
,{"id":70243270,"text":"70243270 - 2020 - Looking forward, looking back: Building resilience today community report: Kwigillingok, AK","interactions":[],"lastModifiedDate":"2023-05-05T15:09:33.599026","indexId":"70243270","displayToPublicDate":"2020-01-01T10:04:38","publicationYear":"2020","noYear":false,"publicationType":{"id":18,"text":"Report"},"publicationSubtype":{"id":4,"text":"Other Government Series"},"title":"Looking forward, looking back: Building resilience today community report: Kwigillingok, AK","docAbstract":"The Alaska Climate Adaptation Science Center (AK CASC), in partnership with the Aleutian Pribilof Islands Association (APIA), designed the Looking Forward, Looking Back: Building Resilience Today (hereafter ‘BRT’) project as a series of trainings and workshops with tribal community leadership and members. The overarching goal of the project was\nto collaboratively develop the Indigenous knowledge and western science knowledge for adaptation planning. We worked with five community teams consisting of up to four leaders from communities that chose to participate in\nthe project: Iliamna, Kotlik, Kwigillingok, Quinhagak, and St. Michael. Community teams were developed through the application process and the project duration. Community teams were encouraged to have involvement from multiple governing bodies within the community that could include the Tribal Council, the city government, and the village corporation. The project title, with its references to the future (Looking Forward), past (Looking Back), and present (Building Resilience Today), refers to the idea that adaptation planning relies on all three perspectives. Equally import- ant, however, is the dialogue to exchange past and present information, context, and what we expect in the future. Ac- cordingly, two training sessions held at the International Arctic Research Center in Fairbanks, Alaska at the beginning and near the end of the project were developed to provide community team interaction with each other and with university and federal science partners. The project team also traveled to the partner communities and held a series of onsite events with community members to document locally-relevant information and share climate science tailored to the needs and conditions of each community. This report represents the community information shared during those onsite events. The Meeting Announcement (page 5) shows the date and description of the outreach events.\nThe purpose of these events was to: 1) facilitate mapping of a Traditional Use Area to refine an area for climate pro- jections; 2) construct current and past seasonal Subsistence Calendars to identify important species and times of\nthe year; 3) document Indigenous and local knowledge from current community members about environmental changes they have observed over their lifetimes; and 4) assist with documenting what the community perceived to\nbe climate-related issues through photos and interviews. The agenda of the visits was co-produced with the commu- nity team. In each community, the community team and the project team co-hosted an open-to-the-public meeting and met with various groups. The community team advertised the meetings by posting community fliers, making announcements on the community radio, and reaching out to individuals that would contribute to the engagement discussions. Each community meeting focused on activities to develop seasonal Subsistence Calendars, map Tradition- al Use Areas, and document observed environmental changes. Community members spent time at stations dedicated to each of these activities working with project team members. The project team also met with various groups of indi- viduals that included village corporation, tribal council, and city representatives where additional information about observed environmental changes was gathered. This community report presents some of the information developed in these activities.","language":"English","publisher":"Aleutian Pribilof Islands Association","usgsCitation":"Kwigillingok, C., Littell, J., Fresco, N., Toohey, R.C., and Chase, M., 2020, Looking forward, looking back: Building resilience today community report: Kwigillingok, AK, 49 p.","productDescription":"49 p.","ipdsId":"IP-120596","costCenters":[{"id":49028,"text":"Alaska Climate Adaptation Science Center","active":true,"usgs":true}],"links":[{"id":416764,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"},{"id":416763,"rank":1,"type":{"id":11,"text":"Document"},"url":"https://akcasc.org/wp-content/uploads/2021/03/Kwigillingok_Community-Report_1_15_21-1.pdf","linkFileType":{"id":1,"text":"pdf"}}],"country":"United States","state":"Alaska","city":"Kwigillingok","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"coordinates\": [\n          [\n            [\n              -158.3086310956916,\n              62.3676728718529\n            ],\n            [\n              -165.6212160234818,\n              62.3676728718529\n            ],\n            [\n              -165.6212160234818,\n              58.09749565016324\n            ],\n            [\n              -158.3086310956916,\n              58.09749565016324\n            ],\n            [\n              -158.3086310956916,\n              62.3676728718529\n            ]\n          ]\n        ],\n        \"type\": \"Polygon\"\n      }\n    }\n  ]\n}","noUsgsAuthors":false,"publicationStatus":"PW","contributors":{"authors":[{"text":"Kwigillingok, Community of","contributorId":304855,"corporation":false,"usgs":false,"family":"Kwigillingok","given":"Community of","email":"","affiliations":[{"id":66171,"text":"Native Village of Kwigillingok, Kwik Incorporated","active":true,"usgs":false}],"preferred":false,"id":871749,"contributorType":{"id":1,"text":"Authors"},"rank":1},{"text":"Littell, Jeremy S. 0000-0002-5302-8280","orcid":"https://orcid.org/0000-0002-5302-8280","contributorId":205907,"corporation":false,"usgs":true,"family":"Littell","given":"Jeremy","middleInitial":"S.","affiliations":[{"id":107,"text":"Alaska Climate Science Center","active":true,"usgs":true}],"preferred":true,"id":871750,"contributorType":{"id":1,"text":"Authors"},"rank":2},{"text":"Fresco, Nancy","contributorId":304853,"corporation":false,"usgs":false,"family":"Fresco","given":"Nancy","affiliations":[{"id":6752,"text":"University of Alaska Fairbanks","active":true,"usgs":false}],"preferred":false,"id":871751,"contributorType":{"id":1,"text":"Authors"},"rank":3},{"text":"Toohey, Ryan C. 0000-0001-8248-5045 rtoohey@usgs.gov","orcid":"https://orcid.org/0000-0001-8248-5045","contributorId":5674,"corporation":false,"usgs":true,"family":"Toohey","given":"Ryan","email":"rtoohey@usgs.gov","middleInitial":"C.","affiliations":[{"id":107,"text":"Alaska Climate Science Center","active":true,"usgs":true}],"preferred":true,"id":871752,"contributorType":{"id":1,"text":"Authors"},"rank":4},{"text":"Chase, Malinda","contributorId":304848,"corporation":false,"usgs":false,"family":"Chase","given":"Malinda","email":"","affiliations":[{"id":66165,"text":"Aleutian Pribilof Islands Association","active":true,"usgs":false}],"preferred":false,"id":871753,"contributorType":{"id":1,"text":"Authors"},"rank":5}]}}
,{"id":70216693,"text":"70216693 - 2020 - Improving predictions of water supply in the Rio Grande under changing climate conditions","interactions":[],"lastModifiedDate":"2021-02-18T16:04:26.417642","indexId":"70216693","displayToPublicDate":"2020-01-01T10:02:20","publicationYear":"2020","noYear":false,"publicationType":{"id":18,"text":"Report"},"publicationSubtype":{"id":1,"text":"Federal Government Series"},"seriesTitle":{"id":5883,"text":"Cooperator Report","active":true,"publicationSubtype":{"id":1}},"title":"Improving predictions of water supply in the Rio Grande under changing climate conditions","docAbstract":"This product is a case study summarizing the original work authored by David Gutzler, Shaleene Chavarria, and Nels Bjarke. The content will be part of a collection of Case Studies shared via the Collaborative Conservation and Adaptation Strategy Toolbox (CCAST). The research featured in this case study is an analysis of historical observations and climate models developed by the US Bureau of Reclamation.  The work aims to identify changes to streamflow predictability, assess future predictability, and inform the development of more reliable water supply outlooks essential for planning purposes in the Upper Rio Grande Basin.","language":"English","publisher":"CCAST","usgsCitation":"Casarez, I.R., 2020, Improving predictions of water supply in the Rio Grande under changing climate conditions: Cooperator Report, HTML Document.","productDescription":"HTML Document","ipdsId":"IP-123347","costCenters":[{"id":48595,"text":"Oklahoma-Texas Water Science Center","active":true,"usgs":true}],"links":[{"id":383316,"type":{"id":24,"text":"Thumbnail"},"url":"https://pubs.usgs.gov/thumbnails/outside_thumb.jpg"},{"id":383315,"rank":1,"type":{"id":15,"text":"Index Page"},"url":"https://usbr.maps.arcgis.com/apps/MapSeries/index.html?appid=e1174c82d65f4124872bb1fe1efa9c3b"}],"country":"United States","state":"Colorado, New Mexico","otherGeospatial":"Upper Rio Grande River","geographicExtents":"{\n  \"type\": \"FeatureCollection\",\n  \"features\": [\n    {\n      \"type\": \"Feature\",\n      \"properties\": {},\n      \"geometry\": {\n        \"type\": \"Polygon\",\n        \"coordinates\": [\n          [\n            [\n              -106.55639648437499,\n              36.155617833818525\n            ],\n            [\n              -104.96337890625,\n              36.155617833818525\n            ],\n            [\n              -104.96337890625,\n              37.75334401310656\n            ],\n            [\n              -106.55639648437499,\n              37.75334401310656\n            ],\n            [\n              -106.55639648437499,\n              36.155617833818525\n            ]\n          ]\n        ]\n      }\n    }\n  ]\n}","noUsgsAuthors":false,"publicationStatus":"PW","contributors":{"authors":[{"text":"Casarez, Ilana Renae 0000-0001-7690-3802","orcid":"https://orcid.org/0000-0001-7690-3802","contributorId":228961,"corporation":false,"usgs":true,"family":"Casarez","given":"Ilana","email":"","middleInitial":"Renae","affiliations":[{"id":583,"text":"Texas Water Science Center","active":true,"usgs":true}],"preferred":true,"id":805902,"contributorType":{"id":1,"text":"Authors"},"rank":1}]}}
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