[1]王 彤,易桂花,张廷斌,等.西南三江流域生境质量时空格局及其地形梯度效应[J].水土保持研究,2023,30(05):306-314.[doi:10.13869/j.cnki.rswc.2023.05.011.]
 WANG Tong,YI Guihua,ZHANG Tingbin,et al.Spatial and Temporal Pattern of Habitat Quality and Its Topographic Gradient Effect in the Three-River Basin of Southwest China[J].Research of Soil and Water Conservation,2023,30(05):306-314.[doi:10.13869/j.cnki.rswc.2023.05.011.]
点击复制

西南三江流域生境质量时空格局及其地形梯度效应

参考文献/References:

[1] Hall L S, Krausman P R, Morrison M L. The habitat concept and a plea for standard terminology[J]. Wildlife Society Bulletin, 1997:173-182.
[2] Li S, Dong B, Gao X, et al. Study on spatio-temporal evolution of habitat quality based on land-use change in Chongming Dongtan, China[J]. Environmental Earth Sciences, 2022,81(7):1-12.
[3] Sun X, Jiang Z, Liu F, et al. Monitoring spatio-temporal dynamics of habitat quality in Nansihu Lake basin, eastern China, from 1980 to 2015[J]. Ecological Indicators, 2019,102:716-723.
[4] He B, Chang J, Guo A, et al. Assessment of river basin habitat quality and its relationship with disturbance factors:A case study of the Tarim River Basin in Northwest China[J]. Journal of Arid Land, 2022,14(2):167-185.
[5] Garcia V D, Newbold T. Assessing the effects of land use on biodiversity in the world's drylands and Mediterranean environments[J]. Biodiversity and Conservation, 2020,29(2):393-408.
[6] Liu Y, Liu S, Wang F, et al. Responses of habitat quality and animal biodiversity to grazing activities on the Qinghai-Tibet Plateau[J]. Frontiers in Ecology and Evolution, 2021,9:68115
[7] Davison C W, Rahbek C, Morueta Holme N. Land-use change and biodiversity:Challenges for assembling evidence on the greatest threat to nature[J]. Global Change Biology, 2021,27(21):5414-5429.
[8] Hill S L L, Gonzalez R, Sanchez O K, et al. Worldwide impacts of past and projected future land-use change on local species richness and the Biodiversity Intactness Index[J]. Biorxiv, 2018:311787, DOI:10,1101/311787.
[9] Erb K, Kastner T, Plutzar C, et al. Unexpectedly large impact of forest management and grazing on global vegetation biomass[J]. Nature, 2018,553(7686):73-76.
[10] Diaz S, Settele J, Brondizio E S, et al. Pervasive human-driven decline of life on Earth points to the need for transformative change[J]. Science, 2019,366(6471):eaax3100.
[11] Daskalova G N, Myers S I H, Bjorkman A D, et al. Landscape-scale forest loss as a catalyst of population and biodiversity change[J]. Science, 2020,368(6497):1341-1347.
[12] 欧阳志云,郑华.生态系统服务的生态学机制研究进展[J].生态学报,2009,29(11):6183-6188.
[13] Bruckerhoff L A, Connell R K, Guinnip J P, et al. Harmony on the prairie?Grassland plant and animal community responses to variation in climate across land-use gradients[J]. Ecology, 2020,101(5):e02986.
[14] Tang F, Fu M, Wang L, et al. Dynamic evolution and scenario simulation of habitat quality under the impact of land-use change in the Huaihe River Economic Belt, China[J]. Plos One, 2021,16(4):e0249566.
[15] 周晓艳,何依依,黄欣,等.三峡库区生境质量的地形梯度效应及对土地利用变化的响应[J].农业工程学报,2021,37(11):259-267.
[16] 刘婷,邓伟,周渝,等.重庆市“一区两群”生境质量及其地形梯度分异[J].环境科学与技术,2020,43(11):227-236.
[17] Paraskevopoulou Z, Shamon H, Songer M, et al. Field surveys can improve predictions of habitat suitability for reintroductions:a swift fox case study[J]. Oryx, 2022,56(3):465-474.
[18] Venne S, Currie D J. Can habitat suitability estimated from maxEnt predict colonizations and extinctions[J]. Diversity and Distributions, 2021,27(5):873-886.
[19] Li M, Zhou Y, Xiao P, et al. Evolution of habitat quality and its topographic gradient effect in northwest Hubei Province from 2000 to 2020 based on the InVEST model[J]. Land, 2021,10(8):857. DOI:10.3390/land10080857.
[20] Randin C F, Ashcroft M B, Bolliger J, et al. Monitoring biodiversity in the Anthropocene using remote sensing in species distribution models[J]. Remote Sensing of Environment, 2020,239:111626.
[21] Mahecha M D, Gans F, Sippel S, et al. Detecting impacts of extreme events with ecological insitu monitoring networks[J]. Biogeosciences, 2017,14(18):4255-4277.
[22] Ibrahim S, Balzter H, Tansey K, et al. Estimating fractional cover of plant functional types in African savannah from harmonic analysis of MODIS time-series data[J]. International Journal of Remote Sensing, 2018,39(9):2718-2745.
[23] Xi H, Feng Q, Cheng W, et al. Spatiotemporal variations of Alxa national public welfare forest net primary productivity in northwest China and the response to climate change[J]. Ecohydrology, 2022,15(8):e2377.
[24] Wei P, Zhang T, Zhou X, et al. Reconstruction of snow depth data at moderate spatial resolution(1 km)from remotely sensed snow data and multiple optimized environmental factors:A case study over the qinghai-tibetan plateau[J]. Remote Sensing, 2021,13(4):657.
[25] Yang L, Shi L, Wei J, et al. Spatiotemporal evolution of ecological environment quality in arid areas based on the remote sensing ecological distance index:A case study of Yuyang district in Yulin city, China[J]. Open Geosciences, 2021,13(1):1701-1710.
[26] Lin Y P, Lin W C, Li H Y, et al. Integrating social values and ecosystem services in systematic conservation planning:A case study in Datuan Watershed[J]. Sustainability, 2017,9(5):718.
[27] 江伟康,吴隽宇.基于地区GDP和人口空间分布的粤港澳大湾区生境质量时空演变研究[J].生态学报,2021,41(5):1747-1757.
[28] Choudhary A, Deval K, Joshi P K. Study of habitat quality assessment using geospatial techniques in Keoladeo National Park, India[J]. Environmental Science and Pollution Research, 2021,28(11):14105-14114.
[29] Moreira M, Fonseca C, Vergilio M, et al. Spatial assessment of habitat conservation status in a Macaronesian island based on the InVEST model:a case study of Pico Island(Azores, Portugal)[J]. Land Use Policy, 2018,78:637-649.
[30] Gomes E, Inacio M, Bogdzevic K, et al. Future scenarios impact on land use change and habitat quality in Lithuania[J]. Environmental Research, 2021,197:111101.
[31] Wang B, Cheng W. Effects of land use/cover on regional habitat quality under different geomorphic types based on InVEST model[J]. Remote Sensing, 2022,14(5):1279.
[32] Zhang B, Ding W, Xu B, et al. Spatial characteristics of total phosphorus loads from different sources in the Lancang River Basin[J]. Science of the Total Environment, 2020,722:137863.
[33] Lin F, Wang Z, Luo Z, et al. Length‐weight relationships of four fish species from the lower reaches of the Nujiang River and its tributaries in China[J]. Journal of Applied Ichthyology, 2021,37(4):635-637.
[34] Guo X, Tang Y, Xu Y, et al. Using stable nitrogen and oxygen isotopes to identify nitrate sources in the Lancang River, upper Mekong[J]. Journal of Environmental Management, 2020,274:111197.
[35] Liu S, Wang C, Wang P, et al. Anthropogenic disturbances on distribution and sources of pharmaceuticals and personal care products throughout the Jinsha River Basin, China[J]. Environmental Research, 2021,198:110449.
[36] Bibi S, Song Q, Zhang Y, et al. Effects of climate change on terrestrial water storage and basin discharge in the lancang River Basin[J]. Journal of Hydrology:Regional Studies, 2021,37:100896.
[37] 张顾萍,陈国民,邵怀勇,等.近16年金沙江流域植被覆盖时空特征及其对气候的响应[J].长江流域资源与环境,2021,30(7):1638-1648.
[38] Zhang X, Liu L, Chen X, et al. GLC_FCS30:global land-cover product with fine classification system at 30 m using time-seriesLandsat imagery[J]. Earth System Science Data, 2021,13(6):2753-2776.
[39] Runfola D S M, Pontius R G. Measuring the temporal instability of land change using the Flow matrix[J]. International Journal of Geographical Information Science, 2013,27(9):1696-1716.
[40] Xiao P, Zhou Y, Li M, et al. Spatiotemporal patterns of habitat quality and its topographic gradient effects of Hubei Province based on the InVEST model[J]. Environment, Development and Sustainability, 2022:1-30.
[41] Akbari A, Pittman J, Feick R. Mapping the relative habitat quality values for the burrowing owls(Athene cunicularia)of the Canadian prairies using an innovative parameterization approach in the InVEST HQ module[J]. Environmental Management, 2021,68:310-328.
[42] Wu L, Sun C, Fan F. Estimating the characteristic spatiotemporal variation in habitat quality using the invest model: A case study from Guangdong-Hong Kong-Macao Greater Bay Area[J]. Remote Sensing, 2021,13(5):1008.
[43] 周婷,陈万旭,李江风,等.神农架林区人类活动与生境质量的空间关系[J].生态学报,2021,41(15):6134-6145.
[44] Song Y, Wang M, Sun X, et al. Quantitative assessment of the habitat quality dynamics in Yellow River Basin, China[J]. Environmental Monitoring and Assessment, 2021,193(9):1-17.
[45] 周启刚,王陶,刘栩位,等.三峡库区消落带生境质量时空演变特征及其地形梯度效应研究[J].地域研究与开发,2022,41(2):155-160.
[46] 贾磊,姚顺波,邓元杰,等.2000—2020年陕西秦巴山区生境质量时空演变及其地形梯度效应[J].长江流域资源与环境,2022,31(2):398-413.
[47] 冯雨雪,李广东.青藏高原城镇化与生态环境交互影响关系分析[J].地理学报,2020,75(7):1386-1405.
[48] 陈伟,耿涌,黄斌斌,等.西部欠发达地区生态经济系统能值分析:以青海省海西蒙古族藏族自治州为例[J].生态学报,2019,39(21):7904-7913.
[49] Ou Z, Zhu Q, Sun Y. Regional ecological security and diagnosis of obstacle factors in underdeveloped regions: a case study in Yunnan Province, China[J]. Journal of Mountain Science, 2017,14(5):870-884.
[50] Qian L, Chen J, Deng T, et al. Plant diversity in Yunnan: Current status and future directions[J]. Plant Diversity, 2020,42(4):281-291.
[51] 杜金霜,付晶莹,郝蒙蒙.基于生态网络效用的昭通市“三生空间”碳代谢分析[J].自然资源学报,2021,36(5):1208-1223.
[52] 杨婧媛,王小兰.资源型城市经济发展质量与生态环境压力脱钩关系研究:以攀枝花市为例[J].西安理工大学学报,2022,38(3):366-374.
[53] 聂选华.云南边疆民族地区生态文明建设可持续发展研究[J].昆明理工大学学报(社会科学版),2017,17(2):33-39.
[54] 李俊梅,付健梅,张晨子,等.云南重点生态功能区城市生态环境良性化评价指标体系构建与实证研究[J].生态经济,2019,35(11):84-90.
[55] Ye P, Zhang G, Wu J. Hotspots and conservation gaps:A case study of key higher plant species from Northwest Yunnan, China[J]. Global Ecology and Conservation, 2020,23:e01005.
[56] Zhang S, Gheyret G, Chi X, et al. Representativeness of threatened terrestrial vertebrates in nature reserves in China[J]. Biological Conservation, 2020,246:108599.
[57] 刘园,周勇,杜越天.基于InVEST模型的长江中游经济带生境质量的时空分异特征及其地形梯度效应[J].长江流域资源与环境,2019,28(10):2429-2440.
[58] Li Z, Cheng X, Han H. Analyzing land-use change scenarios for ecosystem services and their trade-offs in the ecological conservation area in Beijing, China[J]. International Journal of Environmental Research and Public Health, 2020,17(22):8632.
[59] Cai Z, Li W, Cao S. Driving factors for coordinating urbanization with conservation of the ecological environment in China[J]. Ambio, 2021,50(6):1269-1280.
[60] Chen S, Huang Q, Muttarak R, et al. Updating global urbanization projections under the Shared Socioeconomic Pathways[J]. Scientific Data, 2022,9(1):1-10.
[61] Li S, Zhao X, Pu J, et al. Optimize and control territorial spatial functional areas to improve the ecological stability and total environment in karst areas of Southwest China[J]. Land Use Policy, 2021,100:104940.
[62] Feng Y, He S, Li G. Interaction between urbanization and the eco-environment in the Pan-Third Pole region[J]. Science of the Total Environment, 2021,789:148011.
[63] Wan H Y, Cushman S A, Ganey J L. Improving habitat and connectivity model predictions with multi-scale resource selection functions from two geographic areas[J]. Landscape Ecology, 2019,34(3):503-519.
[64] Liu Z, Gan X, Dai W, et al. Construction of an ecological security pattern and the evaluation of corridor priority based on ESV and the “Importance-Connectivity” Index:A case study of Sichuan Province, China[J]. Sustainability, 2022,14(7):3985.

相似文献/References:

[1]巩杰,马学成,张玲玲,等.基于InVEST模型的甘肃白龙江流域生境质量时空分异[J].水土保持研究,2018,25(03):191.
 GONG Jie,MA Xuecheng,ZHANG Lingling,et al.Spatiotemporal Variation of Habitat Quality in Bailongjiang Watershed in Gansu Based on InVEST Model[J].Research of Soil and Water Conservation,2018,25(05):191.
[2]王志杰,柳书俊,喻理飞.草海流域景观结构与土壤保持功能时空动态特征[J].水土保持研究,2020,27(04):105.
 WANG Zhijie,LIU Shujun,YU Lifei.Characteristics of Temporal and Spatial Dynamic of Landscape Structure and Soil Conservation Function in Caohai Watershed[J].Research of Soil and Water Conservation,2020,27(05):105.
[3]和 娟,师学义,付扬军,等.汾河源头区域土地利用及生境质量时空演变的多情景模拟[J].水土保持研究,2020,27(05):250.
 HE Juan,SHI Xueyi,FU Yangjun,et al.Multi-Scenario Simulation of Spatiotemporal Evolution of Land Use and Habitat Quality in the Source Area of Fenhe River Basin[J].Research of Soil and Water Conservation,2020,27(05):250.
[4]高 敏,王 勇,高 洁,等.喀斯特地区退耕还林工程下生态系统服务变化与关系分析[J].水土保持研究,2020,27(02):276.
 GAO Min,WANG Yong,GAO Jie,et al.Analysis on Changes and Relationship of Ecosystem Services in Karst Area Under the Project of Returning Farmland to Forest[J].Research of Soil and Water Conservation,2020,27(05):276.
[5]张美丽,李 智,张益琛,等.基于生态安全格局的国土空间生态修复关键区域识别——以河北省阜平县为例[J].水土保持研究,2021,28(03):299.
 ZHANG Meili,LI Zhi,ZHANG Yichen,et al.Identification of Key Areas of Ecological Restoration of Land and Space Based on Ecological Security Pattern[J].Research of Soil and Water Conservation,2021,28(05):299.
[6]岳思羽,李怀恩,赵 丽.气候和土地利用变化对渭河流域水资源短缺的影响[J].水土保持研究,2021,28(05):95.
 YUE Siyu,LI Huaien,ZHAO Li.Impact of Climate and Land Use Changes on Water Scarcity in the Wei River Basin[J].Research of Soil and Water Conservation,2021,28(05):95.
[7]刘孟竹,张红娟,任贺宇,等.退耕还林背景下北方农牧交错带土壤保持功能时空变化[J].水土保持研究,2021,28(05):172.
 LIU Mengzhu,ZHANG Hongjuan,REN Heyu,et al.Spatiotemporal Variations of the Soil Conservation in the Agro-pastoral Ecotone of Northern China Under Grain for Green Program[J].Research of Soil and Water Conservation,2021,28(05):172.
[8]裴宏伟,刘孟竹,李雅丽,等.生态修复措施对干旱半干旱地区生态系统服务影响研究——以河北坝上地区为例[J].水土保持研究,2022,29(02):192.
 PEI Hongwei,LIU Mengzhu,LI Yali,et al.Impact of Ecological Restoration Measures on Ecosystem Services in Arid and Semi-arid Area[J].Research of Soil and Water Conservation,2022,29(05):192.
[9]李亚楠,多玲花,张 明.基于CA-Markov和InVEST模型的土地利用格局与生境质量时空演变及预测——以江西省南昌市为例[J].水土保持研究,2022,29(02):345.
 LI Yanan,DUO Linghua,ZHANG Ming.Evolution and Prediction of Land Use Pattern and Habitat Quality Based on CA-Markov and InVEST Model[J].Research of Soil and Water Conservation,2022,29(05):345.
[10]韩 晶,崔金芳,杨 威,等.基于InVEST模型的低山丘陵区土壤侵蚀变化与驱动因素分析[J].水土保持研究,2022,29(05):32.
 HAN Jing,CUI Jinfang,YANG Wei,et al.Analysis of Soil Erosion Change and Driving Factors in Low Hilly Areas Based on InVEST Model[J].Research of Soil and Water Conservation,2022,29(05):32.
[11]刘孟竹,张红娟,王彦芳,等.基于土地利用的北方农牧交错带生境质量研究[J].水土保持研究,2021,28(03):156.
 LIU Mengzhu,ZHANG Hongjuan,WANG Yanfang,et al.Characteristics of Habitat Quality in the Agro-pastoral Ecotone of Northern China Based on Land Uses[J].Research of Soil and Water Conservation,2021,28(05):156.
[12]郑启航,徐光来,刘永婷,等.基于InVEST和MGWR模型的安徽省生境质量评估及驱动[J].水土保持研究,2024,31(03):373.[doi:10.13869/j.cnki.rswc.2024.03.025]
 Zheng Qihang,Xu Guanglai,Liu Yongting,et al.Assessment and Driving of Habitat Quality in Anhui Province Based on InVEST and MGWR Models[J].Research of Soil and Water Conservation,2024,31(05):373.[doi:10.13869/j.cnki.rswc.2024.03.025]

备注/Memo

收稿日期:2022-06-23 修回日期:2022-07-18
资助项目:国家自然科学基金(41801099); 四川省科技计划项目软科学项目(2021JDR0170); 第二次青藏高原综合科学考察研究(2019QZKK0307)
第一作者:王彤(1998—),女,山西长治人,硕士研究生,研究方向为生态遥感。E-mail:wangtong@stu.cdut.edu.cn
通信作者:易桂花(1982—),女,四川南充人,教授,博士,从事环境遥感研究。E-mail:yigh@cdut.edu.cn

更新日期/Last Update: 2023-08-10