参考文献/References:
[1] 姚檀栋, 陈发虎, 崔鹏, 等. 从青藏高原到第三极和泛第三极[J]. 中国科学院院刊, 2017, 32(9): 924-931. [YAO Tandong, CHEN Fahu, CUI Peng, et al. From Tibetan Plateau to third pole and pan-third pole [J]. Bulletin of Chinese Academy of Sciences, 2017, 32(9): 924-931] DOI: 10.16418/j.issn.1000-3045.2017.09.001
[2] PEKEL J F, COTTAM A, GORELICK N, et al. High-resolution mapping of global surface water and its long-term changes [J]. Nature, 2016, 540: 418-437. DOI: 10.1038/nature20584
[3] YAO Tandong, THOMPSON L, YANG Wei, et al. Different glacier status with atmospheric circulations in Tibetan Plateau and surroundings [J]. Nature Climate Change, 2012, 2(9): 663-667. DOI: 10.1038/NCLIMATE1580
[4] ZHANG Qiang, LIU Chunling, XU Chongyu, et al. Observed trends of annual maximum water level and streamflow during past 130 years in the Yangtze River basin, China [J]. Journal of Hydrology, 2006, 324(1-4): 255-265. DOI: 10.1016/j.jhydrol.2005.09.023
[5] 乔程, 骆剑承, 盛永伟, 等. 青藏高原湖泊古今变化的遥感分析——以达则错为例[J]. 湖泊科学, 2010, 22(1): 98-102. [QIAO Cheng, LUO Jiancheng, SHENG Yongwei, et al. Analysis on lake changes since ancient and modern ages using remote sensing in Dagze Co, Tibetan Plateau [J]. Journal of Lake Sciences, 2010, 22(1): 98-102] DOI: 10.18307/2010.0114
[6] 施雅风. 山地冰川与湖泊萎缩所指示的亚洲中部气候干暖化趋势与未来展望[J]. 地理学报, 1990, 57(1): 1-13. [SHI Yafeng. Glacier recession and lake shrinkage indicating the climatic warming and drying trend in central Asia [J]. Acta Geographica Sinica, 1990, 57(1): 1-13] DOI: 10.11821/xb199001001
[7] 陈军, 刘延昭, 曹立国, 等. 青藏高原湖泊变化遥感监测及水量平衡定量估算研究进展[J]. 冰川冻土, 2022, 44(4): 1203-1215. [CHEN Jun, LIU Yanzhao, CAO Liguo, et al. A review on the research of remote sensing monitoring of lake changes and quantitative estimation of lake water balance in Qinghai-Tibet Plateau [J]. Journal of Glaciology and Geocryology, 2022, 44(4): 1203-1215] DOI: 10.7522/j.issn.1000-0240.2022.0110
[8] 孙赫, 苏凤阁, 黄敬恒, 等. 第三极西风和季风主导流域源区降水呈现不同梯度特征[J]. 科学通报, 2020, 65(1): 91-104. [SUN He, SU Fengge, HUANG Jingheng, et al. Contrasting precipitation gradient characteristics between westerlies and monsoon dominated upstream river basins in the Third Pole [J]. Chinese Science Bulletin, 2020, 65(1): 91-104] DOI: 10.1360/TB-2019-0491
[9] 董斯扬, 薛娴, 尤全刚, 等. 近40年青藏高原湖泊面积变化遥感分析[J]. 湖泊科学, 2014, 26(4): 535-544. [DONG Siyang, XUE Xian, YOU Quangang, et al. Remote sensing monitoring of the lake area changes in the Qinghai-Tibet Plateau in recent 40 years [J]. Journal of Lake Sciences, 2014, 26(4): 535-544]DOI: 10.18307/2014.0407
[10] 朱立平, 张国庆, 杨瑞敏, 等. 青藏高原最近40年湖泊变化的主要表现与发展趋势[J]. 中国科学院院刊, 2019, 34(11): 1254-1263. [ZHU Liping, ZHANG Guoqing, YANG Ruimin, et al. Lake variations on Tibetan Plateau of recent 40 years and future changing tendency [J]. Bulletin of Chinese Academy of Sciences, 2019, 34(11): 1254-1263] DOI: 10.16418/j.issn.1000-3045.2019.11.008
[11] 朱立平, 彭萍, 张国庆, 等. 全球变化下青藏高原湖泊在地表水循环中的作用[J]. 湖泊科学, 2020, 32(3): 597-608. [ZHU Liping, PENG Ping, ZHANG Guoqing, et al. The role of Tibetan Plateau lakes in surface water cycle under global changes [J]. Journal of Lake Sciences, 2020, 32(3): 597-608] DOI: 10.18307/2020.0301
[12] BERRY P A M, GARLICK J D, FREEMAN J A, et al. Global inland water monitoring from multi-mission altimetry [J]. Geophysical Research Letters, 2005, 32(16): L16401. DOI:10.1029/2005GL022814
[13] 陈军, 柯长青, 汪永丰. 南极拉森北部冰架表面物质损失机制探讨[J]. 中国环境科学, 2018, 38(3): 1117-1125. [CHEN Jun, KE Changqing, WANG Yongfeng. Study on the surface mass loss mechanism of the northern Larsen ice shelf [J]. China Environmental Science, 2018, 38(3): 1117-1125] DOI: 10.19674/j.cnki.issn1000-6923.2018.0133
[14] MA Ronghua, DUAN Hongtao, HU Chuanmin, et al. A half-century of changes in China's lakes: Global warming or human influence?[J]. Geophysical Research Letter, 2010, 37(24): L24106. DOI: 10.1029/2010GL045514
[15] CRETAUX J F, JELINSKI W, CALMANT S, et al. SOLS: A lake database to monitor in the Near Real Time water level and storage variations from remote sensing data [J]. Advances in Space Research, 2011, 47(9): 1497-1507. DOI: 10.1016/j.asr.2011.01.004
[16] KLEINHERENBRINK M, LINDENBERGH R C, DITMAR P G. Monitoring of lake level changes on the Tibetan Plateau and Tian Shan by retracking Cryosat SARIn waveforms [J]. Journal of Hydrology, 2015, 521: 119-131. DOI: 10.1016/j.jhydrol.2014.11.063
[17] CUMING I G, WONG H F. Digital processing of synthetic aperture radar data [J]. Boston: Artech House, 2005: 20-30.
[18] JI Lei, ZHANG Li, WYLIE B. Analysis of dynamic thresholds for the normalized difference water index [J]. Photogrammetric Engineering and Remote Sensing, 2009, 75(11): 1307-1317. DOI: 10.14358/PERS.75.11.1307
[19] 罗竹, 刘凯, 张春亢, 等. DEM在湖泊水文变化研究中的应用进展[J]. 地球信息科学学报, 2020, 22(7): 1510-1521. [LUO Zhu, LIU Kai, ZHANG Chunkang, et al. Progress of the DEM application for studying lake hydrologic dynamics [J]. Journal of Geo-information Science, 2020, 22(7): 1510-1521] DOI: 10.12082/dqxxkx.2020.190538
[20] DUAN Zheng, BASTIAANSSEN W G M. Estimating water volume variations in lakes and reservoirs from four operational satellite altimetry databases and satellite imagery data [J]. Remote Sensing of Environment, 2013, 134: 403-416. DOI: 10.1016/j.rse.2013.03.010
[21] MEDINA C, GOMEZ-ENRI J, ALONSO J J, et al. Water volume variations in Lake Izabal(Guatemala)from in situ measurements and ENVISAT Radar Altimeter(RA-2)and Advanced Synthetic Aperture Radar(ASAR)data products [J]. Journal of Hydrology, 2010, 382(1-4): 34-48. DOI: 10.1016/j.jhydrol.2009.12.016
[22] BAUP F, FRAPPART F, MAUBANT J. Combining high-resolution satellite images and altimetry to estimate the volume of small lakes [J]. Hydrology and Earth System Sciences, 2014, 18(5): 2007-2020. DOI: 10.5194/hess-18-2007-2014
[23] 张洪源, 吴艳红, 刘衍君, 等. 近20年青海湖水量变化遥感分析[J]. 地理科学进展, 2018, 37(6): 823-832. [ZHANG Hongyuan, WU Yanhong, LIU Yanjun, et al. Water storage variation of the Qinghai Lake in recent decades based on satellite observation [J]. Progress in Geography, 2018, 37(6): 823-832] DOI: 10.18306/dlkxjz.2018.06.009
[24] 戴玉凤, 高杨, 张国庆, 等. 2003—2011年青藏高原佩枯错相对水量变化及其对气候变化的响应[J]. 冰川冻土, 2013, 35(3): 723-732. [DAI Yufeng, GAO Yang, ZHANG Guoqing, et al. Water volume change of the Paiku Co in the southern Tibetan Plateau and its response to climate change in 2003-2011 [J]. Jourmal of Glacology and Geocryology, 2013, 35(3): 723-732] DOI: 10.7522/j.issn.1000-0240.2013.0082
[25] 王文种, 黄对, 刘九夫, 等. 基于Landsat与Sentinel-3A卫星数据的当惹雍错1988—2018年湖泊水位—水量变化及归因[J]. 湖泊科学, 2020, 32(5): 1552-1563. [WANG Wenzhong, HUANG Dui, LIU Jiufu, et al. Patterns and causes of changes in water level and volume in Tangra Yumco from 1988 to 2018 based on Landsat images and Sentinel-3A synthetic aperture radar [J]. Journal of Lake Sciences, 2020, 32(5): 1552-1563] DOI: 10.18307/2020.0526
[26] 黄对, 王文种, 刘九夫, 等. 基于Sentinel-3A SRAL 2级产品的鄱阳湖水位评估与校准[J]. 水利水运工程学报, 2022(4): 1-10. [HUANG Dui, WANG Wenzhong, LIU Jiufu, et al. Evaluation and calibration of Sentinel-3A SRAL Level 2 product over Poyang Lake [J]. Hydro-Science and Engineering, 2022(4): 1-10] DOI: 10.12170/20210616005
[27] 娄燕寒, 廖静娟, 陈嘉明. Sentinel-3A卫星测高数据监测长江中下游河流水位变化[J]. 自然资源遥感, 2023, 35(3): 221-229. [LOU Yanhan, LIAO Jingjuan, CHEN Jiaming. Monitoring water level changes in the middle and lower reaches of the Yangtze River using Sentinel-3A satellite altimetry data [J]. Remote Sensing for Natural Resources, 2023, 35(3): 221-229] DOI: 10.6046/zrzyyg.2022239
[28] ZHANG Guoqing, LUO Wei, CHEN Wenfeng, et al. A robust but variable lake expansion on the Tibetan Plateau [J]. Science Bulletin, 2019, 64(18): 1306-1309. DOI: 10.1016/j.scib.2019.07.018
[29] 边多, 边巴次仁, 拉巴, 等. 1975—2008年西藏色林错湖面变化对气候变化的响应[J]. 地理学报, 2010, 65(3): 313-319. [BIAN Duo, BIAN Baciren, LA Ba, et al. The response of water level of Selin Co to climate change during 1975-2008 [J]. Acta Geographica Sinica, 2010, 65(3): 313-319] DOI: 10.11821/xb201003006
[30] COPPO P, RICCIARELLI B, BRANDANI F, et al. SLSTR: A high accuracy dual scan temperature radiometer for sea and land surface monitoring from space [J]. Journal of Modern Optics, 2010, 57(18): 1815-1830. DOI: 10.1080/09500340.2010.503010
[31] GAO Q, MAKHOUL E, ESCORIHUELA M, et al. Analysis of retrackers' performances and water level retrieval over the Ebro river basin using sentinel-3 [J]. Remote Sensing, 2019, 11(6): 718. DOI: 10.3390/rs11060718.
[32] DENG Xiaoli, FEATHERSTONE W E. A coastal retracking system for satellite radar altimeter waveforms: Application to ERS-2 around Australia [J]. Journal of Geophysical Research, 2006, 111(6): C06012. DOI: 10.1029/2005JC003039
[33] RABUS B, EINEDER M, ROTH A, et al. The shuttle radar topography mission—a new class of digital elevation models acquired by spaceborne radar [J]. ISPRS Journal of Photogrammetry and Remote Sensing, 2003, 57: 241-262. DOI: 10.1016/S0924-2716(02)00124-7
[34] 雷逍, 柯灵红, 雍斌, 等. 卫星雷达测高水位数据产品在中国区河流的监测精度评价[J]. 遥感技术与应用, 2022, 37(1): 61-72. [LEI Xiao, KE Linghong, YONG Bin, et al. Evaluation of river water level monitoring from satellite radar altimetry datasets over Chinese rivers [J]. Remote Sensing Technology and Application, 2022, 37(1): 61-72] DOI: 10.11873/j.issn.1004-0323.2022.1.0061
[35] 何云, 黄翀, 李贺, 等. 基于Sentinel-2A影像特征优选的随机森林土地覆盖分类[J]. 资源科学, 2019, 41(5): 992-1001. [HE Yun, HUANG Chong, LI He, et al. Land-cover classification of random forest based on Sentinel-2A image feature optimization [J]. Resources Science, 2019, 41(5): 992-1001] DOI: 10.18402/resci.2019.05.15
[36] 徐涵秋. 利用改进的归一化差异水体指数(MNDWI)提取水体信息的研究[J]. 遥感学报, 2005, 9(5): 589-595. [XU Hanqiu. A study on infomation extraction of water body with the Modified Normalized Difference Water Index(MNDWI)[J]. Journal of Remote Sensing, 2005, 9(5): 589-595] DOI: 10.3321/j.issn:1007-4619.2005.05.012
[37] 周鹏, 丁建丽, 王飞, 等. 植被覆盖地表土壤水分遥感反演[J]. 遥感学报, 2010, 14(5): 959-973. [ZHOU Peng, DING Jianli, WANG Fei, et al. Retrieval methods of soil water content in vegetation covering areas based on multi-source remote sensing data [J]. Journal of Remote Sensing, 2010, 14(5): 959-973] DOI: 10.11834/jrs.20100510
[38] LI Junpeng, HUA Changchun, YANG Yana, et al. Bayesian block structure sparse based T–S fuzzy modeling for dynamic prediction of hot metal silicon content in the blast furnace [J]. IEEE Transactions on Industrial Electronics, 2017, 65(6): 4933-4942. DOI: 4933-4942.10.1109/TIE.2017.2772141
[39] 张国庆. 青藏高原湖泊变化遥感监测及其对气候变化的响应研究进展[J]. 地理科学进展, 2018, 37(2): 214-223. [ZHANG Guoqing. Changes in lakes on the Tibetan Plateau observed from satellite data and their responses to climate variations [J]. Progress in Geography, 2018, 37(2): 214-223] DOI: 10.18306/dlkxjz.2018.02.004
[40] CAEL B B, HEATHCOTE A J, SEEKELL D A. The volume and mean depth of Earth's lakes [J]. Geophysical Research Letters, 2017, 44(1): 209-218. DOI: 10.1002/2016GL071378
[41] 王萌, 马冠一, 马利华, 等. 卫星定位误差椭球的几何特征研究[J]. 宇航学报, 2012, 33(11): 1593-1600. [WANG Meng, MA Guanyi, MA Lihua, et al. A study on geometric feature of error ellipsoid in satellite positioning systems [J]. Journal of Astronautics, 2012, 33(11): 1593-1600] DOI: 10.3873/j.issn.1000 1328.2012.11.006
[42] 杨磊, 周兴华, 徐全军, 等. 卫星高度计定标现状[J]. 遥感学报, 2019, 23(3): 392-407. [YANG Lei, ZHOU Xinghua, XU Quanjun, et al. Research status of satellite altimeter calibration [J]. Joumal of Remote Sensing, 2019, 23(3): 392-407] DOI: 10.11834/jrs.20198262
[43] SCHWATKE C, DETTMERING D, BOSCH W, et al. DAHITI-an innovative approach for estimating water level time series over inland waters using multi-mission satellite altimetry [J]. Hydrology and Earth System Sciences, 2015, 19(10): 4345-4364. DOI: 10.5194/hess-19-4345-2015
[44] YANG Ruimin, ZHU Liping, WANG Junbo, et al. Spatiotemporal variations in volume of closed lakes on the Tibetan Plateau and their climatic responses from 1976 to 2013 [J]. Climatic Change, 2017, 140(3-4): 621-633. DOI: 10.1007/s10584-016-1877-9
[45] BUERMANN W, ANDERSON B, TUCKER C J, et al. Interannual covariability in Northern Hemisphere air temperatures and greenness associated with El Niño-Southern Oscillation and the Arctic Oscillation [J]. Journal of Geophysical Research: Atmospheres, 2003, 108(D13): 4396. DOI: 10.1029/2002JD002630