uri,href,identifier,doi,journal_identifier,journal_pages,journal_vol,notes,title,url,year
/article/10.1002/2015JG003132,https://data.globalchange.gov/article/10.1002/2015JG003132,10.1002/2015JG003132,10.1002/2015JG003132,journal-geophysical-research-biogeosciences,586-620,121,,"The atmospheric role in the Arctic water cycle: A review on processes, past and future changes, and their impacts",,2016
/article/10.1002/2015RG000493,https://data.globalchange.gov/article/10.1002/2015RG000493,10.1002/2015RG000493,10.1002/2015RG000493,reviews-geophysics,5-63,54,,"Observations, inferences, and mechanisms of the Atlantic Meridional Overturning Circulation: A review",,2016
/article/10.1002/2015RG000502,https://data.globalchange.gov/article/10.1002/2015RG000502,10.1002/2015RG000502,10.1002/2015RG000502,reviews-geophysics,64-92,54,,"Vertical land motion as a key to understanding sea level change and variability",,2016
/article/10.1002/2015RG000507,https://data.globalchange.gov/article/10.1002/2015RG000507,10.1002/2015RG000507,10.1002/2015RG000507,reviews-geophysics,240-272,54,,"Tidal river dynamics: Implications for deltas",,2016
/article/10.1002/2015WR017855,https://data.globalchange.gov/article/10.1002/2015WR017855,10.1002/2015WR017855,10.1002/2015WR017855,water-resources-research,227-245,52,,"Hedging the financial risk from water scarcity for Great Lakes shipping",,2016
/article/10.1002/2015WR018125,https://data.globalchange.gov/article/10.1002/2015WR018125,10.1002/2015WR018125,10.1002/2015WR018125,water-resources-research,4990-5007,52,,"Trends and sensitivities of low streamflow extremes to discharge timing and magnitude in Pacific Northwest mountain streams",,2016
/article/10.1002/2015WR018253,https://data.globalchange.gov/article/10.1002/2015WR018253,10.1002/2015WR018253,10.1002/2015WR018253,water-resources-research,6751-6768,52,,"A bottom‐up approach to identifying the maximum operational adaptive capacity of water resource systems to a changing climate",,2016
/article/10.1002/2015WR018457,https://data.globalchange.gov/article/10.1002/2015WR018457,10.1002/2015WR018457,10.1002/2015WR018457,water-resources-research,3888-3909,52,,"High-resolution modeling of coastal freshwater discharge and glacier mass balance in the Gulf of Alaska watershed",,2016
/article/10.1002/2016EF000362,https://data.globalchange.gov/article/10.1002/2016EF000362,10.1002/2016EF000362,10.1002/2016EF000362,earths-future,346-372,4,,"Tipping elements and climate–economic shocks: Pathways toward integrated assessment",,2016
/article/10.1002/2016EF000363,https://data.globalchange.gov/article/10.1002/2016EF000363,10.1002/2016EF000363,10.1002/2016EF000363,earths-future,440-464,4,,"The contribution of glacial isostatic adjustment to projections of sea-level change along the Atlantic and Gulf coasts of North America",,2016
/article/10.1002/2016EF000417,https://data.globalchange.gov/article/10.1002/2016EF000417,10.1002/2016EF000417,10.1002/2016EF000417,earths-future,472-482,4,,"The global warming hiatus: Slowdown or redistribution?",,2016
/article/10.1002/2016EF000450,https://data.globalchange.gov/article/10.1002/2016EF000450,10.1002/2016EF000450,10.1002/2016EF000450,earths-future,649-657,4,,"The rationale for accelerating regionally focused climate intervention research",,2016
/article/10.1002/2016EF000473,https://data.globalchange.gov/article/10.1002/2016EF000473,10.1002/2016EF000473,10.1002/2016EF000473,earths-future,877-892,5,,"Is current irrigation sustainable in the United States? An integrated assessment of climate change impact on water resources and irrigated crop yields",,2017
/article/10.1002/2016EF000479,https://data.globalchange.gov/article/10.1002/2016EF000479,10.1002/2016EF000479,10.1002/2016EF000479,earths-future,324-336,5,,"Hypsometric control on glacier mass balance sensitivity in Alaska and northwest Canada",,2017
/article/10.1002/2016EF000494,https://data.globalchange.gov/article/10.1002/2016EF000494,10.1002/2016EF000494,10.1002/2016EF000494,earths-future,214-223,5,,"Cumulative hazard: The case of nuisance flooding",,2017
/article/10.1002/2016EF000506,https://data.globalchange.gov/article/10.1002/2016EF000506,10.1002/2016EF000506,10.1002/2016EF000506,earths-future,449-462,5,,"Possible pathways and tensions in the food and water nexus",,2017
/article/10.1002/2016EF000511,https://data.globalchange.gov/article/10.1002/2016EF000511,10.1002/2016EF000511,10.1002/2016EF000511,earths-future,771-788,5,,"Synthesis of public water supply use in the United States: Spatio-temporal patterns and socio-economic controls",,2017
/article/10.1002/2016GB005406,https://data.globalchange.gov/article/10.1002/2016GB005406,10.1002/2016GB005406,10.1002/2016GB005406,global-biogeochemical-cycles,1356-1370,30,,"Rising atmospheric methane: 2007–2014 growth and isotopic shift",,2016
/article/10.1002/2016GB005485,https://data.globalchange.gov/article/10.1002/2016GB005485,10.1002/2016GB005485,10.1002/2016GB005485,global-biogeochemical-cycles,306-327,31,,"Two decades of Pacific anthropogenic carbon storage and ocean acidification along Global Ocean Ship-based Hydrographic Investigations Program sections P16 and P02",,2017
/article/10.1002/2016GB005528,https://data.globalchange.gov/article/10.1002/2016GB005528,10.1002/2016GB005528,10.1002/2016GB005528,global-biogeochemical-cycles,114-133,31,,"Avoidable impacts of ocean warming on marine primary production: Insights from the CESM ensembles",,2017
/article/10.1002/2016GC006582,https://data.globalchange.gov/article/10.1002/2016GC006582,10.1002/2016GC006582,10.1002/2016GC006582,geochemistry-geophysics-geosystems,4333-4353,17,,"Subsea ice-bearing permafrost on the U.S. Beaufort Margin: 2. Borehole constraints",,2016
/article/10.1002/2016GC006584,https://data.globalchange.gov/article/10.1002/2016GC006584,10.1002/2016GC006584,10.1002/2016GC006584,geochemistry-geophysics-geosystems,4354-4365,17,,"Subsea ice-bearing permafrost on the U.S. Beaufort Margin: 1. Minimum seaward extent defined from multichannel seismic reflection data",,2016
/article/10.1002/2016GH000018,https://data.globalchange.gov/article/10.1002/2016GH000018,10.1002/2016GH000018,10.1002/2016GH000018,geohealth,248-257,1,,"Potential rise in iron deficiency due to future anthropogenic carbon dioxide emissions",,2017
/article/10.1002/2016GH000033,https://data.globalchange.gov/article/10.1002/2016GH000033,10.1002/2016GH000033,10.1002/2016GH000033,geohealth,51-63,1,,"Relating coccidioidomycosis (valley fever) incidence to soil moisture conditions",,2017
/article/10.1002/2016GL067759,https://data.globalchange.gov/article/10.1002/2016GL067759,10.1002/2016GL067759,10.1002/2016GL067759,geophysical-research-letters,3150-3159,43,,"Ice mass loss in Greenland, the Gulf of Alaska, and the Canadian Archipelago: Seasonal cycles and decadal trends",,2016
/article/10.1002/2016GL067887,https://data.globalchange.gov/article/10.1002/2016GL067887,10.1002/2016GL067887,10.1002/2016GL067887,geophysical-research-letters,2827-2834,43,,"Santa Ana winds of Southern California: Their climatology, extremes, and behavior spanning six and a half decades",,2016
/article/10.1002/2016GL067978,https://data.globalchange.gov/article/10.1002/2016GL067978,10.1002/2016GL067978,10.1002/2016GL067978,geophysical-research-letters,2964-2973,43,,"Hydrometeorological characteristics of rain-on-snow events associated with atmospheric rivers",,2016
/article/10.1002/2016GL068015,https://data.globalchange.gov/article/10.1002/2016GL068015,10.1002/2016GL068015,10.1002/2016GL068015,geophysical-research-letters,3126-3133,43,,"Subsidence along the Atlantic Coast of North America: Insights from GPS and late Holocene relative sea level data",,2016
/article/10.1002/2016GL068070,https://data.globalchange.gov/article/10.1002/2016GL068070,10.1002/2016GL068070,10.1002/2016GL068070,geophysical-research-letters,4382-4390,43,,"Dominant flood generating mechanisms across the United States",,2016
/article/10.1002/2016GL068092,https://data.globalchange.gov/article/10.1002/2016GL068092,10.1002/2016GL068092,10.1002/2016GL068092,geophysical-research-letters,2801-2809,43,,"Future Arctic sea ice loss reduces severity of cold air outbreaks in midlatitudes",,2016
/article/10.1002/2016GL068172,https://data.globalchange.gov/article/10.1002/2016GL068172,10.1002/2016GL068172,10.1002/2016GL068172,geophysical-research-letters,2200-2208,43,,"Observed and projected decrease in Northern Hemisphere extratropical cyclone activity in summer and its impacts on maximum temperature",,2016
/article/10.1002/2016GL068999,https://data.globalchange.gov/article/10.1002/2016GL068999,10.1002/2016GL068999,10.1002/2016GL068999,geophysical-research-letters,4624-4631,43,,"Extensive release of methane from Arctic seabed west of Svalbard during summer 2014 does not influence the atmosphere",,2016
/article/10.1002/2016GL069024,https://data.globalchange.gov/article/10.1002/2016GL069024,10.1002/2016GL069024,10.1002/2016GL069024,geophysical-research-letters,5345-5352,43,,"What caused the recent “Warm Arctic, Cold Continents” trend pattern in winter temperatures?",,2016
/article/10.1002/2016GL069049,https://data.globalchange.gov/article/10.1002/2016GL069049,10.1002/2016GL069049,10.1002/2016GL069049,geophysical-research-letters,5143-5150,43,,"A scalable model for methane consumption in Arctic mineral soils",,2016
/article/10.1002/2016GL069079,https://data.globalchange.gov/article/10.1002/2016GL069079,10.1002/2016GL069079,10.1002/2016GL069079,geophysical-research-letters," 6571–6578",43,,"Space-based remote imaging spectroscopy of the Aliso Canyon CH4 superemitter",http://onlinelibrary.wiley.com/doi/10.1002/2016GL069079/full,2016
/article/10.1002/2016GL069102,https://data.globalchange.gov/article/10.1002/2016GL069102,10.1002/2016GL069102,10.1002/2016GL069102,geophysical-research-letters,5287-5294,43,,"An observational analysis: Tropical relative to Arctic influence on midlatitude weather in the era of Arctic amplification",,2016
/article/10.1002/2016GL069151,https://data.globalchange.gov/article/10.1002/2016GL069151,10.1002/2016GL069151,10.1002/2016GL069151,geophysical-research-letters,5385-5393,43,,"Seasonal and regional variations in extreme precipitation event frequency using CMIP5",,2016
/article/10.1002/2016GL069254,https://data.globalchange.gov/article/10.1002/2016GL069254,10.1002/2016GL069254,10.1002/2016GL069254,geophysical-research-letters,7520-7528,43,,"Climate variability and extremes, interacting with nitrogen storage, amplify eutrophication risk",,2016
/article/10.1002/2016GL069287,https://data.globalchange.gov/article/10.1002/2016GL069287,10.1002/2016GL069287,10.1002/2016GL069287,geophysical-research-letters,"8572–8579",43,,"Grounding line retreat of Pope, Smith, and Kohler Glaciers, West Antarctica, measured with Sentinel-1a radar interferometry data",,2016
/article/10.1002/2016GL069315,https://data.globalchange.gov/article/10.1002/2016GL069315,10.1002/2016GL069315,10.1002/2016GL069315,geophysical-research-letters,9720-9728,43,,"Sea ice decline and 21st century trans-Arctic shipping routes",,2016
/article/10.1002/2016GL069563,https://data.globalchange.gov/article/10.1002/2016GL069563,10.1002/2016GL069563,10.1002/2016GL069563,geophysical-research-letters,7133-7142,43,,"What would it take to achieve the Paris temperature targets?",,2016
/article/10.1002/2016GL069628,https://data.globalchange.gov/article/10.1002/2016GL069628,10.1002/2016GL069628,10.1002/2016GL069628,geophysical-research-letters,6528-6537,43,,"Century-scale causal relationships between global dry/wet conditions and the state of the Pacific and Atlantic Oceans",,2016
/article/10.1002/2016GL069690,https://data.globalchange.gov/article/10.1002/2016GL069690,10.1002/2016GL069690,10.1002/2016GL069690,geophysical-research-letters,8006-8016,43,,"Snowmelt rate dictates streamflow",,2016
/article/10.1002/2016GL069716,https://data.globalchange.gov/article/10.1002/2016GL069716,10.1002/2016GL069716,10.1002/2016GL069716,geophysical-research-letters,7072-7080,43,,"Impacts of the 2015–2016 El Niño on the California Current System: Early assessment and comparison to past events",,2016
/article/10.1002/2016GL069725,https://data.globalchange.gov/article/10.1002/2016GL069725,10.1002/2016GL069725,10.1002/2016GL069725,geophysical-research-letters,7250-7258,43,,"The response of high-impact blocking weather systems to climate change",,2016
/article/10.1002/2016GL069965,https://data.globalchange.gov/article/10.1002/2016GL069965,10.1002/2016GL069965,10.1002/2016GL069965,geophysical-research-letters,"10,980-10,988",43,,"Perspectives on the causes of exceptionally low 2015 snowpack in the western United States",,2016
/article/10.1002/2016GL070023,https://data.globalchange.gov/article/10.1002/2016GL070023,10.1002/2016GL070023,10.1002/2016GL070023,geophysical-research-letters,"10,366-10,376",43,,"An unprecedented coastwide toxic algal bloom linked to anomalous ocean conditions",,2016
/article/10.1002/2016GL070067,https://data.globalchange.gov/article/10.1002/2016GL070067,10.1002/2016GL070067,10.1002/2016GL070067,geophysical-research-letters,9113-9120,43,,"How predictable is the timing of a summer ice-free Arctic?",,2016
/article/10.1002/2016GL070122,https://data.globalchange.gov/article/10.1002/2016GL070122,10.1002/2016GL070122,10.1002/2016GL070122,geophysical-research-letters,8222-8229,43,,"Climate impacts of geoengineering in a delayed mitigation scenario",,2016
/article/10.1002/2016GL070241,https://data.globalchange.gov/article/10.1002/2016GL070241,10.1002/2016GL070241,10.1002/2016GL070241,geophysical-research-letters,"11,329-11,338",43,,"Assessing the relative effects of emissions, climate means, and variability on large water supply systems",,2016
/article/10.1002/2016GL070457,https://data.globalchange.gov/article/10.1002/2016GL070457,10.1002/2016GL070457,10.1002/2016GL070457,geophysical-research-letters,"12,252-12,260",43,,"Fate of the Atlantic Meridional Overturning Circulation: Strong decline under continued warming and Greenland melting",,2016
/article/10.1002/2016GL070470,https://data.globalchange.gov/article/10.1002/2016GL070470,10.1002/2016GL070470,10.1002/2016GL070470,geophysical-research-letters,8775-8782,43,,"Atmospheric river landfall-latitude changes in future climate simulations",,2016
/article/10.1002/2016GL070552,https://data.globalchange.gov/article/10.1002/2016GL070552,10.1002/2016GL070552,10.1002/2016GL070552,geophysical-research-letters,"10,403-10,411",43,,"Are long tide gauge records in the wrong place to measure global mean sea level rise?",,2016
/article/10.1002/2016GL070590,https://data.globalchange.gov/article/10.1002/2016GL070590,10.1002/2016GL070590,10.1002/2016GL070590,geophysical-research-letters,"10,232-10,239",43,,"Fragmented patterns of flood change across the United States",,2016
/article/10.1002/2016GL070817,https://data.globalchange.gov/article/10.1002/2016GL070817,10.1002/2016GL070817,10.1002/2016GL070817,geophysical-research-letters,"12,120–12,130",43,,"Multidecadal increases in the Yukon River Basin of chemical fluxes as indicators of changing flowpaths, groundwater, and permafrost",,2017
/article/10.1002/2016GL071020,https://data.globalchange.gov/article/10.1002/2016GL071020,10.1002/2016GL071020,10.1002/2016GL071020,geophysical-research-letters,1839-1847,44,,"The relative contribution of waves, tides, and nontidal residuals to extreme total water levels on U.S. West Coast sandy beaches",,2017
/article/10.1002/2016GL071199,https://data.globalchange.gov/article/10.1002/2016GL071199,10.1002/2016GL071199,10.1002/2016GL071199,geophysical-research-letters,"12,428-12,436",43,,"Recent trends in U.S. flood risk",,2016
/article/10.1002/2016GL071489,https://data.globalchange.gov/article/10.1002/2016GL071489,10.1002/2016GL071489,10.1002/2016GL071489,geophysical-research-letters,"12,146-12,154",43,,"The influence of declining sea ice on shipping activity in the Canadian arctic",,2016
/article/10.1002/2016GL071515,https://data.globalchange.gov/article/10.1002/2016GL071515,10.1002/2016GL071515,10.1002/2016GL071515,geophysical-research-letters,1848-1856,44,,"Why were the 2015/2016 and 1997/1998 extreme El Niños different?",,2017
/article/10.1002/2016GL071565,https://data.globalchange.gov/article/10.1002/2016GL071565,10.1002/2016GL071565,10.1002/2016GL071565,geophysical-research-letters,2911-2921,44,,"The role of natural variability in projections of climate change impacts on U.S. ozone pollution",,2017
/article/10.1002/2016GL071921,https://data.globalchange.gov/article/10.1002/2016GL071921,10.1002/2016GL071921,10.1002/2016GL071921,geophysical-research-letters,236-244,44,,"Divergent surface and total soil moisture projections under global warming",,2017
/article/10.1002/2016GL072010,https://data.globalchange.gov/article/10.1002/2016GL072010,10.1002/2016GL072010,10.1002/2016GL072010,geophysical-research-letters,1990-1997,44,,"Meteorological anomalies lead to elevated O3 in the western U.S. in June 2015",,2017
/article/10.1002/2016GL072012,https://data.globalchange.gov/article/10.1002/2016GL072012,10.1002/2016GL072012,10.1002/2016GL072012,geophysical-research-letters,1909-1918,44,,"A climate model projection weighting scheme accounting for performance and interdependence",,2017
/article/10.1002/2016GL072027,https://data.globalchange.gov/article/10.1002/2016GL072027,10.1002/2016GL072027,10.1002/2016GL072027,geophysical-research-letters,3184-3192,44,,"Contribution of temperature and precipitation anomalies to the California drought during 2012–2015",,2017
/article/10.1002/2016GL072104,https://data.globalchange.gov/article/10.1002/2016GL072104,10.1002/2016GL072104,10.1002/2016GL072104,geophysical-research-letters,2511-2518,44,,"Anthropogenic warming impacts on California snowpack during drought",,2017
/article/10.1002/2016JC011815,https://data.globalchange.gov/article/10.1002/2016JC011815,10.1002/2016JC011815,10.1002/2016JC011815,journal-geophysical-research-oceans,5084-5097,121,,"An ongoing shift in Pacific Ocean sea level",,2016
/article/10.1002/2016JD025141,https://data.globalchange.gov/article/10.1002/2016JD025141,10.1002/2016JD025141,10.1002/2016JD025141,journal-geophysical-research-atmospheres,"14,679-14,690",121,,"Estimating potential productivity cobenefits for crops and trees from reduced ozone with U.S. coal power plant carbon standards",,2016
/article/10.1002/2016JF004065,https://data.globalchange.gov/article/10.1002/2016JF004065,10.1002/2016JF004065,10.1002/2016JF004065,journal-geophysical-research-earth-surface,782-806,122,,"A model integrating longshore and cross-shore processes for predicting long-term shoreline response to climate change",https://agupubs.onlinelibrary.wiley.com/doi/abs/10.1002/2016JF004065,2017
/article/10.1002/2016RG000534,https://data.globalchange.gov/article/10.1002/2016RG000534,10.1002/2016RG000534,10.1002/2016RG000534,reviews-geophysics,126-168,55,,"The interaction of climate change and methane hydrates",,2017
/article/10.1002/2016WR018712,https://data.globalchange.gov/article/10.1002/2016WR018712,10.1002/2016WR018712,10.1002/2016WR018712,water-resources-research,3866-3880,52,,"Can PDSI inform extreme precipitation?: An exploration with a 500 year long paleoclimate reconstruction over the U.S",,2016
/article/10.1002/2016WR018718,https://data.globalchange.gov/article/10.1002/2016WR018718,10.1002/2016WR018718,10.1002/2016WR018718,water-resources-research,9470-9494,52,,"Panel regressions to estimate low-flow response to rainfall variability in ungaged basins",,2016
/article/10.1002/2016WR018771,https://data.globalchange.gov/article/10.1002/2016WR018771,10.1002/2016WR018771,10.1002/2016WR018771,water-resources-research,7327-7346,52,,"Cooperative drought adaptation: Integrating infrastructure development, conservation, and water transfers into adaptive policy pathways",,2016
/article/10.1002/2016WR018981,https://data.globalchange.gov/article/10.1002/2016WR018981,10.1002/2016WR018981,10.1002/2016WR018981,water-resources-research,8650-8667,52,,"Nonstationary decision model for flood risk decision scaling",,2016
/article/10.1002/2016WR019552,https://data.globalchange.gov/article/10.1002/2016WR019552,10.1002/2016WR019552,10.1002/2016WR019552,water-resources-research,2035-2050,53,,"Optimizing multiple reliable forward contracts for reservoir allocation using multitime scale streamflow forecasts",,2017
/article/10.1002/2016WR019632,https://data.globalchange.gov/article/10.1002/2016WR019632,10.1002/2016WR019632,10.1002/2016WR019632,water-resources-research,3047-3066,53,,"Multiscale temporal variability and regional patterns in 555 years of conterminous U.S. streamflow",,2017
/article/10.1002/2016WR019638,https://data.globalchange.gov/article/10.1002/2016WR019638,10.1002/2016WR019638,10.1002/2016WR019638,water-resources-research,2404-2418,53,,"The twenty-first century Colorado River hot drought and implications for the future",,2017
/article/10.1002/2016WR019676,https://data.globalchange.gov/article/10.1002/2016WR019676,10.1002/2016WR019676,10.1002/2016WR019676,water-resources-research,5469-5494,53,,"Predicting nonstationary flood frequencies: Evidence supports an updated stationarity thesis in the United States",,2017
/article/10.1002/2016WR019861,https://data.globalchange.gov/article/10.1002/2016WR019861,10.1002/2016WR019861,10.1002/2016WR019861,water-resources-research,2133-2148,53,,"Estimating the permanent loss of groundwater storage in the southern San Joaquin Valley, California",,2017
/article/10.1002/2016WR019905,https://data.globalchange.gov/article/10.1002/2016WR019905,10.1002/2016WR019905,10.1002/2016WR019905,water-resources-research,982-998,53,,"The future role of dams in the United States of America",,2017
/article/10.1002/2017EF000663,https://data.globalchange.gov/article/10.1002/2017EF000663,10.1002/2017EF000663,10.1002/2017EF000663,earths-future,1217-1233,5,,"Evolving understanding of Antarctic ice‐sheet physics and ambiguity in probabilistic sea‐level projections",,2017
/article/10.1002/2017GH000055,https://data.globalchange.gov/article/10.1002/2017GH000055,10.1002/2017GH000055,10.1002/2017GH000055,geohealth,80-92,1,,"Impacts of oak pollen on allergic asthma in the United States and potential influence of future climate change",,2017
/article/10.1002/2017GH000095,https://data.globalchange.gov/article/10.1002/2017GH000095,10.1002/2017GH000095,10.1002/2017GH000095,geohealth,6-24,2,,"Coccidioidomycosis dynamics in relation to climate in the southwestern United States",,2018
/article/10.1002/2017GL072845,https://data.globalchange.gov/article/10.1002/2017GL072845,10.1002/2017GL072845,10.1002/2017GL072845,geophysical-research-letters,5133-5141,44,,"Causes of accelerating sea level on the East Coast of North America",,2017
/article/10.1002/2017GL072901,https://data.globalchange.gov/article/10.1002/2017GL072901,10.1002/2017GL072901,10.1002/2017GL072901,geophysical-research-letters,5986-5993,44,,"Surging wildfire activity in a grassland biome",,2017
/article/10.1002/2017GL072931,https://data.globalchange.gov/article/10.1002/2017GL072931,10.1002/2017GL072931,10.1002/2017GL072931,geophysical-research-letters,4204-4213,44,,"Decadal dynamics and predictability of oxygen and subsurface tracers in the California Current System",,2017
/article/10.1002/2017GL072945,https://data.globalchange.gov/article/10.1002/2017GL072945,10.1002/2017GL072945,10.1002/2017GL072945,geophysical-research-letters,5044-5052,44,,"Emergent anthropogenic trends in California Current upwelling",,2017
/article/10.1002/2017GL072972,https://data.globalchange.gov/article/10.1002/2017GL072972,10.1002/2017GL072972,10.1002/2017GL072972,geophysical-research-letters,5590-5598,44,,"Role of the ocean's AMOC in setting the uptake efficiency of transient tracers",,2017
/article/10.1002/2017GL073077,https://data.globalchange.gov/article/10.1002/2017GL073077,10.1002/2017GL073077,10.1002/2017GL073077,geophysical-research-letters,3393-3401,44,,"High-impact hydrologic events and atmospheric rivers in California: An investigation using the NCEI Storm Events Database",,2017
/article/10.1002/2017GL073253,https://data.globalchange.gov/article/10.1002/2017GL073253,10.1002/2017GL073253,10.1002/2017GL073253,geophysical-research-letters,4124-4133,44,,"Assessing recent declines in Upper Rio Grande runoff efficiency from a paleoclimate perspective",,2017
/article/10.1002/2017GL073308,https://data.globalchange.gov/article/10.1002/2017GL073308,10.1002/2017GL073308,10.1002/2017GL073308,geophysical-research-letters,"3744–3751",44,,"New estimate of the current rate of sea level rise from a sea level budget approach",,2017
/article/10.1002/2017GL073333,https://data.globalchange.gov/article/10.1002/2017GL073333,10.1002/2017GL073333,10.1002/2017GL073333,geophysical-research-letters,4872-4879,44,,"How much groundwater did California's Central Valley lose during the 2012–2016 drought?",,2017
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/article/10.1002/2017GL075604,https://data.globalchange.gov/article/10.1002/2017GL075604,10.1002/2017GL075604,10.1002/2017GL075604,geophysical-research-letters,1586-1594,45,,"Twentieth century regional climate change during the summer in the central United States attributed to agricultural intensification",,2018
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