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Assessment of vegetation cover changes and the contributing factors in the Al-Ahsa Oasis using Normalized Difference Vegetation Index(NDVI)
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作者 Walid CHOUARI 《Regional Sustainability》 2024年第1期42-53,共12页
The abandonment of date palm grove of the former Al-Ahsa Oasis in the eastern region of Saudi Arabia has resulted in the conversion of delicate agricultural area into urban area.The current state of the oasis is influ... The abandonment of date palm grove of the former Al-Ahsa Oasis in the eastern region of Saudi Arabia has resulted in the conversion of delicate agricultural area into urban area.The current state of the oasis is influenced by both expansion and degradation factors.Therefore,it is important to study the spatiotemporal variation of vegetation cover for the sustainable management of oasis resources.This study used Landsat satellite images in 1987,2002,and 2021 to monitor the spatiotemporal variation of vegetation cover in the Al-Ahsa Oasis,applied multi-temporal Normalized Difference Vegetation Index(NDVI)data spanning from 1987 to 2021 to assess environmental and spatiotemporal variations that have occurred in the Al-Ahsa Oasis,and investigated the factors influencing these variation.This study reveals that there is a significant improvement in the ecological environment of the oasis during 1987–2021,with increase of NDVI values being higher than 0.10.In 2021,the highest NDVI value is generally above 0.70,while the lowest value remains largely unchanged.However,there is a remarkable increase in NDVI values between 0.20 and 0.30.The area of low NDVI values(0.00–0.20)has remained almost stable,but the region with high NDVI values(above 0.70)expands during 1987–2021.Furthermore,this study finds that in 1987–2002,the increase of vegetation cover is most notable in the northern region of the study area,whereas from 2002 to 2021,the increase of vegetation cover is mainly concentrated in the northern and southern regions of the study area.From 1987 to 2021,NDVI values exhibit the most pronounced variation,with a significant increase in the“green”zone(characterized by NDVI values exceeding 0.40),indicating a substantial enhancement in the ecological environment of the oasis.The NDVI classification is validated through 50 ground validation points in the study area,demonstrating a mean accuracy of 92.00%in the detection of vegetation cover.In general,both the user’s and producer’s accuracies of NDVI classification are extremely high in 1987,2002,and 2021.Finally,this study suggests that environmental authorities should strengthen their overall forestry project arrangements to combat sand encroachment and enhance the ecological environment of the Al-Ahsa Oasis. 展开更多
关键词 normalized Difference vegetation index(ndvi) vegetation cover Ecological environment Land use and land cover(LULC) Urban expansion Al-Ahsa Oasis
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Retrospective analysis of two northern California wild-land fires via Landsat five satellite imagery and Normalized Difference Vegetation Index (NDVI) 被引量:1
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作者 Bennett Sall Michael W. Jenkins James Pushnik 《Open Journal of Ecology》 2013年第4期311-323,共13页
Wild-land fires are a dynamic and destructive force in natural ecosystems. In recent decades, fire disturbances have increased concerns and awareness over significant economic loss and landscape change. The focus of t... Wild-land fires are a dynamic and destructive force in natural ecosystems. In recent decades, fire disturbances have increased concerns and awareness over significant economic loss and landscape change. The focus of this research was to study two northern California wild-land fires: Butte Humboldt Complex and Butte Lightning Complex of 2008 and assessment of vegetation recovery after the fires via ground based measurements and utilization of Landsat 5 imagery and analysis software to assess landscape change. Multi-temporal and burn severity dynamics and assessment through satellite imagery were used to visually ascertain levels of landscape change, under two temporal scales. Visual interpretation indicated noticeable levels of landscape change and relevant insight into the magnitude and impact of both wild-land fires. Normalized Burn Ratio (NBR) and delta NBR (DNBR) data allowed for quantitative analysis of burn severity levels. DNBR results indicate low severity and low re-growth for Butte Humboldt Complex “burned center” subplots. In contrast, DNBR values for Butte Lightning Complex “burned center” subplots indicated low-moderate burn severity levels. 展开更多
关键词 Wild-Land Fire BURN Severity vegetation Recovery normalized Difference VEGETATIVE index (ndvi) normalized BURN Ratio (NBR)
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Interannual Variability of the Normalized Difference Vegetation Index on the Tibetan Plateau and Its Relationship with Climate Change 被引量:25
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作者 周定文 范广洲 +3 位作者 黄荣辉 方之芳 刘雅勤 李洪权 《Advances in Atmospheric Sciences》 SCIE CAS CSCD 2007年第3期474-484,共11页
The Qinghai-Xizang Plateau, or Tibetan Plateau, is a sensitive region for climate change, where the manifestation of global warming is particularly noticeable. The wide climate variability in this region significantly... The Qinghai-Xizang Plateau, or Tibetan Plateau, is a sensitive region for climate change, where the manifestation of global warming is particularly noticeable. The wide climate variability in this region significantly affects the local land ecosystem and could consequently lead to notable vegetation changes. In this paper, the interannual variations of the plateau vegetation are investigated using a 21-year normalized difference vegetation index (NDVI) dataset to quantify the consequences of climate warming for the regional ecosystem and its interactions. The results show that vegetation coverage is best in the eastern and southern plateau regions and deteriorates toward the west and north. On the whole, vegetation activity demonstrates a gradual enhancement in an oscillatory manner during 1982-2002. The temporal variation also exhibits striking regional differences: an increasing trend is most apparent in the west, south, north and southeast, whereas a decreasing trend is present along the southern plateau boundary and in the central-east region. Covariance analysis between the NDVI and surface temperature/precipitation suggests that vegetation change is closely related to climate change. However, the controlling physical processes vary geographically. In the west and east, vegetation variability is found to be driven predominantly by temperature, with the impact of precipitation being of secondary importance. In the central plateau, however, temperature and precipitation factors are equally important in modulating the interannual vegetation variability. 展开更多
关键词 Tibetan Plateau normalized difference vegetation index ndvi ECOSYSTEM climate change interannual variability
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基于NDVI和SIF的云南植被变化及预测研究
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作者 张琳 朱大明 +2 位作者 韩杨 姜昀呈 周鹏 《环境监测管理与技术》 北大核心 2025年第1期28-35,共8页
选取生物多样性热点地区云南省作为研究区,对归一化差异植被指数(NDVI)和日光诱导叶绿素荧光(SIF)数据进行监测和预测,揭示两者在监测植被变化中的差异性和互补性,通过相关性分析探讨云南省植被驱动机制,并采用BP神经网络模型和CA-Marko... 选取生物多样性热点地区云南省作为研究区,对归一化差异植被指数(NDVI)和日光诱导叶绿素荧光(SIF)数据进行监测和预测,揭示两者在监测植被变化中的差异性和互补性,通过相关性分析探讨云南省植被驱动机制,并采用BP神经网络模型和CA-Markov模型对云南省植被变化进行时空预测。结果表明:时间上,NDVI和SIF均呈上升趋势;空间上,在较高植被覆盖地区SIF存在饱和现象。SIF在地形复杂区域对植被的响应更为准确。NDVI和SIF均与气象因子呈正相关,NDVI对温度更敏感,SIF对相对湿度更敏感。时序预测上,2020—2025年NDVI和SIF呈下降趋势;空间预测上,NDVI高和SIF较高类型区域减少。 展开更多
关键词 归一化差异植被指数 日光诱导叶绿素荧光 植被变化 驱动机制 时空预测 云南省
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Impact of climate and human activity on NDVI of various vegetation types in the Three-River Source Region, China
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作者 LU Qing KANG Haili +2 位作者 ZHANG Fuqing XIA Yuanping YAN Bing 《Journal of Arid Land》 SCIE CSCD 2024年第8期1080-1097,共18页
The Three-River Source Region(TRSR)in China holds a vital position and exhibits an irreplaceable strategic importance in ecological preservation at the national level.On the basis of an in-depth study of the vegetatio... The Three-River Source Region(TRSR)in China holds a vital position and exhibits an irreplaceable strategic importance in ecological preservation at the national level.On the basis of an in-depth study of the vegetation evolution in the TRSR from 2000 to 2022,we conducted a detailed analysis of the feedback mechanism of vegetation growth to climate change and human activity for different vegetation types.During the growing season,the spatiotemporal variations of normalized difference vegetation index(NDVI)for different vegetation types in the TRSR were analyzed using the Moderate Resolution Imaging Spectroradiometer(MODIS)-NDVI data and meteorological data from 2000 to 2022.In addition,the response characteristics of vegetation to temperature,precipitation,and human activity were assessed using trend analysis,partial correlation analysis,and residual analysis.Results indicated that,after in-depth research,from 2000 to 2022,the TRSR's average NDVI during the growing season was 0.3482.The preliminary ranking of the average NDVI for different vegetation types was as follows:shrubland(0.5762)>forest(0.5443)>meadow(0.4219)>highland vegetation(0.2223)>steppe(0.2159).The NDVI during the growing season exhibited a fluctuating growth trend,with an average growth rate of 0.0018/10a(P<0.01).Notably,forests displayed a significant development trend throughout the growing season,possessing the fastest rate of change in NDVI(0.0028/10a).Moreover,the upward trends in NDVI for forests and steppes exhibited extensive spatial distributions,with significant increases accounting for 95.23%and 93.80%,respectively.The sensitivity to precipitation was significantly enhanced in other vegetation types other than highland vegetation.By contrast,steppes,meadows,and highland vegetation demonstrated relatively high vulnerability to temperature fluctuations.A further detailed analysis revealed that climate change had a significant positive impact on the TRSR from 2000 to 2022,particularly in its northwestern areas,accounting for 85.05%of the total area.Meanwhile,human activity played a notable positive role in the southwestern and southeastern areas of the TRSR,covering 62.65%of the total area.Therefore,climate change had a significantly higher impact on NDVI during the growing season in the TRSR than human activity. 展开更多
关键词 growing season normalized difference vegetation index(ndvi) highland vegetation trend analysis partial correlation analysis residual analysis contribution rate
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中亚干旱区植被NDVI时空变化及其区域对比研究
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作者 张汝菡 宫雨生 谈明洪 《环境科学研究》 北大核心 2025年第1期90-100,共11页
植被在生态系统中扮演着重要的角色,归一化植被指数(Normalized Difference Vegetation Index,NDVI)是反映植被变化的重要指标。为阐明中亚干旱区(中亚五国和中国新疆地区)植被NDVI时空演变规律及其影响因素的差异,本研究基于谷歌地球引... 植被在生态系统中扮演着重要的角色,归一化植被指数(Normalized Difference Vegetation Index,NDVI)是反映植被变化的重要指标。为阐明中亚干旱区(中亚五国和中国新疆地区)植被NDVI时空演变规律及其影响因素的差异,本研究基于谷歌地球引擎(Google Earth Engine,GEE),利用2000−2020年植被生长季间MODIS NDVI产品计算逐年平均归一化植被指数(NDVI),采用Sen′s斜率、Mann-Kendall检验,分析中亚干旱区植被NDVI的时空变化;同时结合遥感数据、气象数据和土地利用等数据,构建多元线性回归模型,探索影响NDVI变化的驱动因素。结果表明:①2000−2020年中亚干旱区植被NDVI整体上呈现波动上升趋势,中国新疆地区植被NDVI整体增长速率为2.9×10^(−3)a^(−1),远高于中亚五国总体增长速率(0.6×10^(−3)a^(−1))。②从NDVI变化空间分布来看,中亚五国植被变化趋势空间分布较为分散,植被NDVI改善区域面积占比为25.9%,退化区域面积占比为8.78%;中国新疆地区植被变化呈现出明显的空间集聚效应,改善区域集中在绿洲和主要农业区,植被改善区域面积占比为37.72%,植被退化区域面积仅占0.46%。③植被NDVI受到气候、地形及人类活动要素的多重影响。气温升高抑制中亚干旱区植被生长,降水量增加利于植被生长,高程显著影响植被生长,人类合理利用土地及灌溉设施投入对于植被恢复具有积极作用。研究显示,中亚五国与中国新疆地区植被变化存在明显差异,中国新疆地区植被改善情况明显优于中亚五国。植被NDVI变化受到自然因素和人类活动共同影响,需要综合考虑区域异质性与多重影响因素的协同作用。 展开更多
关键词 中亚干旱区 归一化植被指数(ndvi) 区域差异 时空动态 谷歌地球引擎(GEE)
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Drought trend analysis in a semi-arid area of Iraq based on Normalized Difference Vegetation Index, Normalized Difference Water Index and Standardized Precipitation Index 被引量:1
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作者 Ayad M F AL-QURAISHI Heman A GAZNAYEE Mattia CRESPI 《Journal of Arid Land》 SCIE CSCD 2021年第4期413-430,共18页
Drought was a severe recurring phenomenon in Iraq over the past two decades due to climate change despite the fact that Iraq has been one of the most water-rich countries in the Middle East in the past.The Iraqi Kurdi... Drought was a severe recurring phenomenon in Iraq over the past two decades due to climate change despite the fact that Iraq has been one of the most water-rich countries in the Middle East in the past.The Iraqi Kurdistan Region(IKR)is located in the north of Iraq,which has also suffered from extreme drought.In this study,the drought severity status in Sulaimaniyah Province,one of four provinces of the IKR,was investigated for the years from 1998 to 2017.Thus,Landsat time series dataset,including 40 images,were downloaded and used in this study.The Normalized Difference Vegetation Index(NDVI)and the Normalized Difference Water Index(NDWI)were utilized as spectral-based drought indices and the Standardized Precipitation Index(SPI)was employed as a meteorological-based drought index,to assess the drought severity and analyse the changes of vegetative cover and water bodies.The study area experienced precipitation deficiency and severe drought in 1999,2000,2008,2009,and 2012.Study findings also revealed a drop in the vegetative cover by 33.3%in the year 2000.Furthermore,the most significant shrinkage in water bodies was observed in the Lake Darbandikhan(LDK),which lost 40.5%of its total surface area in 2009.The statistical analyses revealed that precipitation was significantly positively correlated with the SPI and the surface area of the LDK(correlation coefficients of 0.92 and 0.72,respectively).The relationship between SPI and NDVI-based vegetation cover was positive but not significant.Low precipitation did not always correspond to vegetative drought;the delay of the effect of precipitation on NDVI was one year. 展开更多
关键词 climate change DROUGHT normalized Difference vegetation index(ndvi) normalized Difference Water index(NDWI) Standardized Precipitation index(SPI) delay effect
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耦合NDVI与纹理时序特征的地块作物遥感分类
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作者 史洁宁 吴田军 +3 位作者 黄启厅 骆剑承 任应超 徐欣雨 《南方农业学报》 北大核心 2025年第1期29-40,共12页
【目的】充分挖掘遥感影像的时间和空间信息,准确识别地块作物类型,为作物类型空间分布制图、产量估计及农业生产决策等提供可靠的数据支持。【方法】以Google Earth影像为参考,获得美国加利福尼亚州金斯县完整的地块边界,利用多时相Sen... 【目的】充分挖掘遥感影像的时间和空间信息,准确识别地块作物类型,为作物类型空间分布制图、产量估计及农业生产决策等提供可靠的数据支持。【方法】以Google Earth影像为参考,获得美国加利福尼亚州金斯县完整的地块边界,利用多时相Sentinel-2影像构建地块归一化植被指数(NDVI)时间序列和时间—纹理二维表征图作为分类特征,NDVI时间序列捕捉作物生长的物候变化,时间—纹理二维表征图捕捉空间特征随时间的动态变化,进而使用卷积神经网络(CNN)+长短时记忆网络(LSTM)双流架构来联合时间和空间特征实现农田作物的准确识别。【结果】与仅使用NDVI时序的传统方法相比,纳入纹理时序后的方法明显提高分类精度,随机森林的分类精度由0.89提升至0.93,支持向量机的分类精度由0.88提升至0.93,表明加入空间特征的纹理时序能有效提升作物分类能力;而使用CNN+LSTM双流架构分类模型进行地块作物分类的总体精度达0.95,特别是葡萄和冬小麦的分类精度提升效果明显,F_(1)分别提升至0.90和0.92,表明相较于传统的分类器,使用CNN+LSTM双流架构可实现更精准的地块作物识别。【建议】在种植结构复杂、农作物生长习性相近的地区进行地块作物遥感分类时,考虑将纹理时序特征纳入分类体系,并使用CNN+LSTM双流架构分别捕捉作物生长的时间和空间特征。这种综合应用时间和空间信息的方法,能提升地块作物分类的准确度。 展开更多
关键词 作物分布 地块尺度 归一化植被指数(ndvi) 时间序列 空间纹理特征 CNN+LSTM双流架构
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Spatio-Temporal Analysis of Vegetation Cover in Char Fasson and Galachipa Upazila of Bangladesh (1994-2024) Using Landsat Imagery
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作者 Khaled Jubair Shabab MD. Mahmudul Hasan Shahed +2 位作者 Maria Binta Malek MD. Ashraful Habib Md Shahedur Rashid 《Journal of Geographic Information System》 2025年第1期66-79,共14页
This research aims to analyse the spatio-temporal changes of vegetation cover in coastal regions of Char Fasson and Galachipa Upazila, Bangladesh for a period of 30 years (1994-2024) based on Landsat satellite imagery... This research aims to analyse the spatio-temporal changes of vegetation cover in coastal regions of Char Fasson and Galachipa Upazila, Bangladesh for a period of 30 years (1994-2024) based on Landsat satellite imagery and NDVI. Through the evaluation of NDVI this paper classifies vegetation as no water/bare vegetation, slightly densed vegetation, moderately densed vegetation, and highly densed vegetation. The findings reveal significant fluctuations in vegetation cover: from 1994 to 2004, there has been an increase in vegetation density implying that afforestation has created more moderate and highly densed vegetation out of density vegetation. However, between 2004 and 2014, vegetation cover decreased because some cyclones, like Sidr and Aila, affected the coastal forest of Bangladesh. Other attempts to afforestation supported improved coverage from vegetation between 2014 and 2024. These findings provide clear evidence of the sustainable benefits of coastal afforestation in the reduction of coastal erosion and storm surges that affect vegetation and coasts. Knowledge gained in this research is highly useful to the environmental planners on recommendations for sustainable land uses and preservation to build up ecological stability in Bangladesh weak coastal areas. 展开更多
关键词 ndvi (normalized Difference vegetation index) Remote Sensing in vegetation Monitoring Delta Cue Technique Coastal Management Cyclone Impact on vegetation
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基于无人机多光谱NDVI值估测玉米产量
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作者 张磊 姚梦瑶 +8 位作者 刘志刚 李娟 杨洋 蔡大润 陈果 李波 李晓荣 陈勋基 翟云龙 《新疆农业科学》 CAS CSCD 北大核心 2024年第4期845-851,共7页
【目的】研究基于UAS-8无人机采集数据,运用归一化植被指数(Normalized Difference Vegetation Index)模型估测玉米产量,为大田无人机多光谱预测玉米产量提供理论依据。【方法】以新疆18份春播玉米为研究对象,获取开花期多光谱图像,经... 【目的】研究基于UAS-8无人机采集数据,运用归一化植被指数(Normalized Difference Vegetation Index)模型估测玉米产量,为大田无人机多光谱预测玉米产量提供理论依据。【方法】以新疆18份春播玉米为研究对象,获取开花期多光谱图像,经过辐射校正、大气校正、建立掩膜、提取NDVI图,计算植被覆盖率,得到区光谱反射率和归一化植被指数实际数值,将NDVI值与田间实测产量值进行模型拟合。【结果】幂函数Y=23411.46-10997.99/X(R^(2)=0.4886),二次函数为Y=39003.00-117963.03X+103130.25X 2(R^(2)=0.562),正反比函数(Inverse Proportional Function)为Y 2=2840.5 X/(1-X)(R^(2)=0.495),利用偏最小二乘回归(Partial Least Squares Regression),其线性函数Y=24458.22X-9620.55(R^(2)=0.521)。【结论】在数值0.5~0.8区间,NDVI与玉米产量具有较高的相关性,线性函数方程NDVI值可预测玉米的产量。 展开更多
关键词 玉米 产量 归一化植被指数(ndvi) 偏最小二乘回归(PLSR)
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高寒气候区生长季NDVI与昼夜不对称增温的Copula分析
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作者 李忠良 何光鑫 李勋 《大气科学学报》 CSCD 北大核心 2024年第3期407-424,共18页
利用1982—2016年的青海地区归一化植被指数和气象数据,基于马尔科夫链蒙特卡罗的Copula函数方法,深入探索昼夜增温不对称性与植被活动之间的复杂关系,揭示了昼夜增温和NDVI之间的联合概率分布及其季节性差异。研究结果表明,昼夜增温与N... 利用1982—2016年的青海地区归一化植被指数和气象数据,基于马尔科夫链蒙特卡罗的Copula函数方法,深入探索昼夜增温不对称性与植被活动之间的复杂关系,揭示了昼夜增温和NDVI之间的联合概率分布及其季节性差异。研究结果表明,昼夜增温与NDVI之间的关系在不同季节呈现显著差异。尤其在秋季,昼夜增温对NDVI的影响最为显著,其次是夏季和春季。通过Copula函数模型,发现昼夜增温与NDVI在特定温度区间内呈现正相关,表明适宜的温度条件下昼夜增温对植被生长具有促进作用。然而,当昼夜增温超过某一阈值时,其对NDVI的促进作用转变为抑制作用,从而限制了植被的生长。同时,还揭示了重现期与昼夜增温及NDVI之间的关系。在较低的重现期下,昼夜增温与NDVI的联合概率较高,表明在这些条件下,植被生长良好的情况出现的频率较高。反之,较高的重现期对应于昼夜增温与NDVI较低的联合概率,表明植被生长受到抑制。本研究通过Copula函数提供了一个全新的视角来理解昼夜增温与植被动态之间的相互作用,强调了气温变化对植被生长影响的复杂性。 展开更多
关键词 昼夜增温 归一化植被指数(ndvi) 非对称性增温 COPULA 重现期
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2000—2021年渭河流域NDVI变化及其影响因素
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作者 封建民 刘宇峰 +1 位作者 郭玲霞 文琦 《湖北农业科学》 2024年第5期22-29,共8页
渭河流域是黄河中游重要的生态涵养地,同时也是黄土高原水土流失的典型区域,监测该地区植被生长变化趋势,并分析其与气候变化和人类活动的关系,对科学评估区域生态建设成效、黄土高原植被恢复和生态修复具有重要意义。基于2000—2021年... 渭河流域是黄河中游重要的生态涵养地,同时也是黄土高原水土流失的典型区域,监测该地区植被生长变化趋势,并分析其与气候变化和人类活动的关系,对科学评估区域生态建设成效、黄土高原植被恢复和生态修复具有重要意义。基于2000—2021年归一化植被指数(NDVI)、气温、降水量、人口密度、土地利用数据,分析了渭河流域NDVI的时空变化特征,探究了气候变化和人类活动对NDVI变化趋势的影响。结果表明,2000—2021年,渭河流域植被生长季NDVI呈增加趋势,全区年平均增速为0.004。年际尺度上,NDVI与年平均降水量呈正相关关系,与年平均气温的相关性不显著;月尺度上,NDVI与4月和8月的气温、降水量均呈正相关关系,与7月气温呈弱的负相关关系。人口密度变化与NDVI变化趋势呈负相关,流域人口密度的减小有利于植被的恢复和改善。土地利用类型内部变化是植被NDVI变化的主要原因。NDVI显著减少区NDVI的减少趋势主要由关中平原耕地NDVI的减少引起,NDVI显著增加区NDVI的增加趋势主要由草地、林地以及黄土丘陵区、黄土残塬区耕地NDVI的增加引起。 展开更多
关键词 归一化植被指数(ndvi) 气候 人口密度 土地利用 渭河流域
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基于Sentinel-2A NDVI时间序列数据和随机森林方法的高山冷凉蔬菜识别
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作者 马强 任元龙 +1 位作者 李浩 王晓卓 《现代信息科技》 2024年第19期164-167,174,共5页
该研究基于Sentinel-2A卫星的归一化差值植被指数(NDVI)时间序列数据,结合随机森林(RF)分类方法,对高山冷凉蔬菜种植区域进行精准识别与分类。以西吉县为研究区,利用2023年覆盖高山冷凉蔬菜全生育期的Sentinel-2A遥感数据,构建10 m高空... 该研究基于Sentinel-2A卫星的归一化差值植被指数(NDVI)时间序列数据,结合随机森林(RF)分类方法,对高山冷凉蔬菜种植区域进行精准识别与分类。以西吉县为研究区,利用2023年覆盖高山冷凉蔬菜全生育期的Sentinel-2A遥感数据,构建10 m高空间分辨率的NDVI时间序列数据,结合田间实测数据,使用RF分类方法对高山冷凉蔬菜进行识别分类。结果表明文章提出的方法在高山冷凉蔬菜种植区域识别中表现出了较高的精度和稳定性,总体精度达93.52%,Kappa系数为0.89。 展开更多
关键词 Sentinel-2A 归一化差值植被指数(ndvi) 随机森林(RF) 高山冷凉蔬菜识别
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基于绿视率和NDVI的城市街道景观分析与优化研究 被引量:1
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作者 苏雷 陈伟峰 +2 位作者 李俊英 周燕 樊磊 《西北林学院学报》 CSCD 北大核心 2024年第2期256-264,共9页
街道景观空间对市民健康和城市风貌具有重要影响。既往研究中常以归一化植被指数(NDVI)和绿视率(GVI)来分别代表二维和三维的绿色指标,但对二者的指标相关性研究甚少。采用基于深度学习的图像语义分割方法分析百度街景计算代表性街道的G... 街道景观空间对市民健康和城市风貌具有重要影响。既往研究中常以归一化植被指数(NDVI)和绿视率(GVI)来分别代表二维和三维的绿色指标,但对二者的指标相关性研究甚少。采用基于深度学习的图像语义分割方法分析百度街景计算代表性街道的GVI,利用GF-1卫星数据计算NDVI,比较分析城市街道的GVI和NDVI指标特征及相关性。结果表明,1)中山市中心城区各代表街道GVI指标参差不齐,从8.06%到36.00%,其中石岐街道兴中道GVI最高;2)各街道观测点的NDVI均值随着缓冲区尺度的增加也随之呈现出不同变化,NDVI均值具有强烈的尺度敏感性;3)50 m GVI和DNVI均值的皮尔逊相关系数最高,达到0.832。在此基础上分析街道景观存在的不足并给出优化建议,为城市街景评估、空间优化、景观提升提供参考。 展开更多
关键词 绿视率(GVI) 街景地图 归一化植被指数(ndvi) 深度学习 景观优化
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Vegetation Index Reconstruction and Linkage with Drought for the Source Region of the Yangtze River Based on Tree-ring Data 被引量:1
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作者 LI Jinjian WANG Shu +2 位作者 QIN Ningsheng LIU Xisheng JIN Liya 《Chinese Geographical Science》 SCIE CSCD 2021年第4期684-695,共12页
Variations in vegetation are closely related to climate change, but understanding of their characteristics and causes remains limited. As a typical semi-humid and semi-arid cold plateau region, it is important to unde... Variations in vegetation are closely related to climate change, but understanding of their characteristics and causes remains limited. As a typical semi-humid and semi-arid cold plateau region, it is important to understand the knowledge of long term Normalized Difference Vegetation Index(NDVI) variations and find the potential causes in the source region of the Yangtze River. Based on four tree-ring width chronologies, the regional mean NDVI for July and August spanning the period 1665–2013 was reconstructed using a regression model, and it explained 43.9% of the total variance during the period 1981–2013. In decadal, the reconstructed NDVI showed eight growth stages(1754–1764, 1766–1783, 1794–1811, 1828–1838, 1843–1855, 1862–1873, 1897–1909, and 1932–1945)and four degradation stages(1679–1698, 1726–1753, 1910–1923, and 1988–2000). And based on wavelet analysis, significant cycles of2–3 yr and 3–8 yr were identified. In additional, there was a significant positive correlation between the NDVI and the Palmer Drought Severity Index(PDSI) during the past 349 yr, and they were mainly in phase. However, according to the results of correlation analysis between different grades of drought/wet and NDVI, there was significant asymmetry in extreme drought years and extreme wet years. In extreme drought years, NDVI was positively correlated with PDSI, and in extreme wet years they were negatively correlated. 展开更多
关键词 normalized Difference vegetation index(ndvi) RECONSTRUCTION dendrochronology tree ring Source Region of the Yangtze River
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Response of vegetation variation to climate change and human activities in the Shiyang River Basin of China during 2001-2022 被引量:1
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作者 SUN Chao BAI Xuelian +2 位作者 WANG Xinping ZHAO Wenzhi WEI Lemin 《Journal of Arid Land》 SCIE CSCD 2024年第8期1044-1061,共18页
Understanding the response of vegetation variation to climate change and human activities is critical for addressing future conflicts between humans and the environment,and maintaining ecosystem stability.Here,we aime... Understanding the response of vegetation variation to climate change and human activities is critical for addressing future conflicts between humans and the environment,and maintaining ecosystem stability.Here,we aimed to identify the determining factors of vegetation variation and explore the sensitivity of vegetation to temperature(SVT)and the sensitivity of vegetation to precipitation(SVP)in the Shiyang River Basin(SYRB)of China during 2001-2022.The climate data from climatic research unit(CRU),vegetation index data from Moderate Resolution Imaging Spectroradiometer(MODIS),and land use data from Landsat images were used to analyze the spatial-temporal changes in vegetation indices,climate,and land use in the SYRB and its sub-basins(i.e.,upstream,midstream,and downstream basins)during 2001-2022.Linear regression analysis and correlation analysis were used to explore the SVT and SVP,revealing the driving factors of vegetation variation.Significant increasing trends(P<0.05)were detected for the enhanced vegetation index(EVI)and normalized difference vegetation index(NDVI)in the SYRB during 2001-2022,with most regions(84%)experiencing significant variation in vegetation,and land use change was determined as the dominant factor of vegetation variation.Non-significant decreasing trends were detected in the SVT and SVP of the SYRB during 2001-2022.There were spatial differences in vegetation variation,SVT,and SVP.Although NDVI and EVI exhibited increasing trends in the upstream,midstream,and downstream basins,the change slope in the downstream basin was lower than those in the upstream and midstream basins,the SVT in the upstream basin was higher than those in the midstream and downstream basins,and the SVP in the downstream basin was lower than those in the upstream and midstream basins.Temperature and precipitation changes controlled vegetation variation in the upstream and midstream basins while human activities(land use change)dominated vegetation variation in the downstream basin.We concluded that there is a spatial heterogeneity in the response of vegetation variation to climate change and human activities across different sub-basins of the SYRB.These findings can enhance our understanding of the relationship among vegetation variation,climate change,and human activities,and provide a reference for addressing future conflicts between humans and the environment in the arid inland river basins. 展开更多
关键词 vegetation variation climate change land use change normalized difference vegetation index(ndvi) enhanced vegetation index(EVI) Shiyang River Basin
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Drivers,Trends,and Patterns of Changing Vegetation-greenness in Nansha Islands,China from 2016 to 2022 被引量:1
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作者 TANG Jiasheng FU Dongjie +2 位作者 SU Fenzhen YU Hao WANG Xinhui 《Chinese Geographical Science》 SCIE CSCD 2024年第4期662-673,共12页
Changes in vegetation status generally also represents changes in the ecological health of islands and reefs(IRs).However,studies are limited of drivers and trends of vegetation change of Nansha Islands,China and how ... Changes in vegetation status generally also represents changes in the ecological health of islands and reefs(IRs).However,studies are limited of drivers and trends of vegetation change of Nansha Islands,China and how they relate to climate change and human activities.To resolve this limitation,we studied changes to the Normalized Difference Vegetation Index(NDVI)vegetation-greenness index for 22 IRs of Nansha Islands during normal and extreme conditions.Trends of vegetation greenness were analyzed using Sen's slope and Mann-Kendall test at two spatial scales(pixel and island),and driving factor analyses were performed by time-lagged partial correlation analyses.These were related to impacts from human activities and climatic factors under normal(temperature,precipitation,radiation,and Normalized Difference Built-up Index(NDBI))and extreme conditions(wind speed and latitude of IRs)from 2016 to 2022.Results showed:1)among the 22 IRs,NDVI increased/decreased significantly in 15/4 IRs,respectively.Huayang Reef had the highest NDVI change-rate(0.48%/mon),and Zhongye Island had the lowest(–0.29%/mon).Local spatial patterns were in one of two forms:dotted-form,and degradation in banded-form.2)Under normal conditions,human activities(characterized by NDBI)had higher impacts on vegetation-greenness than other factors.3)Under extreme conditions,wind speed(R^(2)=0.2337,P<0.05)and latitude(R^(2)=0.2769,P<0.05)provided limited explanation for changes from typhoon events.Our results provide scientific support for the sustainable development of Nansha Islands and the United Nations‘Ocean Decade’initiative. 展开更多
关键词 island and reefs(IRs) normalized Difference vegetation index(ndvi) vegetation-greenness change-rate Sen's slope Nansha Islands China
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1961-2020年黄河流域干燥度时空变化及其对植被NDVI的影响
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作者 申露婷 姬兴杰 +2 位作者 朱业玉 田宏伟 刘美 《气象与环境学报》 2024年第3期106-114,共9页
基于黄河流域224个气象站点1961—2020年气象数据和2000—2020年MODIS的归一化植被指数(NDVI)数据,分析干燥度时空分布规律及其对NDVI的影响。结果表明:1961—2020年黄河流域年平均干燥度气候倾向率为-0.03·(10 a)^(-1),其多年平... 基于黄河流域224个气象站点1961—2020年气象数据和2000—2020年MODIS的归一化植被指数(NDVI)数据,分析干燥度时空分布规律及其对NDVI的影响。结果表明:1961—2020年黄河流域年平均干燥度气候倾向率为-0.03·(10 a)^(-1),其多年平均值为2.56;从各站变化的区域分布看,黄河流域北部站点变化以下降为主(52.2%),中部以南站点以上升为主(41.5%)。在空间上,黄河流域干燥度总体呈西北高、东南低,表现为上游(3.74)>中游(1.99)>下游(1.74),上游地区包含干旱亚区、半干旱亚区和半湿润亚区,中游和下游地区大多为半湿润亚区。逐步回归分析显示,干燥度主要受降水量的影响,大部分地区年均干燥度减少是由太阳总辐射减少、降水量增加和气温降低造成的。2000—2020年黄河流域NDVI平均值为0.30,在空间上整体呈东南高、西北低,上游较小、下游最高;与干燥度呈极显著负相关(r=-0.52,P<0.01,n=224),特别是在上中游地区。 展开更多
关键词 黄河流域 干燥度 归一化植被指数(ndvi)
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Monitoring vegetation drought in the nine major river basins of China based on a new developed Vegetation Drought Condition Index
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作者 ZHAO Lili LI Lusheng +4 位作者 LI Yanbin ZHONG Huayu ZHANG Fang ZHU Junzhen DING Yibo 《Journal of Arid Land》 SCIE CSCD 2023年第12期1421-1438,共18页
The effect of global climate change on vegetation growth is variable.Timely and effective monitoring of vegetation drought is crucial for understanding its dynamics and mitigation,and even regional protection of ecolo... The effect of global climate change on vegetation growth is variable.Timely and effective monitoring of vegetation drought is crucial for understanding its dynamics and mitigation,and even regional protection of ecological environments.In this study,we constructed a new drought index(i.e.,Vegetation Drought Condition Index(VDCI))based on precipitation,potential evapotranspiration,soil moisture and Normalized Difference Vegetation Index(NDVI)data,to monitor vegetation drought in the nine major river basins(including the Songhua River and Liaohe River Basin,Haihe River Basin,Yellow River Basin,Huaihe River Basin,Yangtze River Basin,Southeast River Basin,Pearl River Basin,Southwest River Basin and Continental River Basin)in China at 1-month–12-month(T1–T12)time scales.We used the Pearson's correlation coefficients to assess the relationships between the drought indices(the developed VDCI and traditional drought indices including the Standardized Precipitation Evapotranspiration Index(SPEI),Standardized Soil Moisture Index(SSMI)and Self-calibrating Palmer Drought Severity Index(scPDSI))and the NDVI at T1–T12 time scales,and to estimate and compare the lag times of vegetation response to drought among different drought indices.The results showed that precipitation and potential evapotranspiration have positive and major influences on vegetation in the nine major river basins at T1–T6 time scales.Soil moisture shows a lower degree of negative influence on vegetation in different river basins at multiple time scales.Potential evapotranspiration shows a higher degree of positive influence on vegetation,and it acts as the primary influencing factor with higher area proportion at multiple time scales in different river basins.The VDCI has a stronger relationship with the NDVI in the Songhua River and Liaohe River Basin,Haihe River Basin,Yellow River Basin,Huaihe River Basin and Yangtze River Basin at T1–T4 time scales.In general,the VDCI is more sensitive(with shorter lag time of vegetation response to drought)than the traditional drought indices(SPEI,scPDSI and SSMI)in monitoring vegetation drought,and thus it could be applied to monitor short-term vegetation drought.The VDCI developed in the study can reveal the law of unclear mechanisms between vegetation and climate,and can be applied in other fields of vegetation drought monitoring with complex mechanisms. 展开更多
关键词 vegetation drought vegetation Drought Condition index(VDCI) normalized Difference vegetation index(ndvi) vegetation dynamics climate change China
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双因子协同驱动近21年三峡库区NDVI时空演变
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作者 戚海梅 郑培龙 +3 位作者 王云琦 王佳妮 李成 张晓明 《水土保持学报》 CSCD 北大核心 2024年第6期224-233,共10页
[目的]为明确三峡库区植被时空演变特征,定量分析植被与气候、地形及人类活动等各影响因子的关系。[方法]基于归一化植被指数(NDVI)数据,采用Theil-Sen Median趋势分析、Mann-Kendall显著性检验、Hurst指数分析、地理探测器模型等方法,... [目的]为明确三峡库区植被时空演变特征,定量分析植被与气候、地形及人类活动等各影响因子的关系。[方法]基于归一化植被指数(NDVI)数据,采用Theil-Sen Median趋势分析、Mann-Kendall显著性检验、Hurst指数分析、地理探测器模型等方法,探究2000—2020年三峡库区NDVI时空分布特征及其驱动机制。[结果](1)三峡库区2000—2020年NDVI变化整体呈上升趋势,平均变化率2.89×10^(-3)/a,NDVI值呈由西南向东北递增的规律。(2)高程、人口密度和地表温度等因子较好地解释了NDVI的可变性,解释力均>0.4。(3)高程与夜间灯光是三峡库区NDVI的主导交互因子,q值为0.641,交互结果呈非线性加强或双因子协同加强,双因子对NDVI变化的解释力始终大于单因子对NDVI变化的解释力。[结论]研究结果为三峡库区生态环境保护政策的制定及生态可持续发展等提供科学支撑。 展开更多
关键词 三峡库区 ndvi 时空分布 地理探测器 驱动机制
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