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首页> 外文期刊>International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences >APPLICATION OF REMOTE SENSING AND GOOGLE EARTH ENGINE FOR MONITORING ENVIRONMENTAL DEGRADATION IN THE NILGIRI BIOSPHERE RESERVE AND ITS ECOSYSTEM OF WESTERN GHATS, INDIA
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APPLICATION OF REMOTE SENSING AND GOOGLE EARTH ENGINE FOR MONITORING ENVIRONMENTAL DEGRADATION IN THE NILGIRI BIOSPHERE RESERVE AND ITS ECOSYSTEM OF WESTERN GHATS, INDIA

机译:遥感与谷歌地球发动机在尼尔加里生物圈储备中监测环境下降及其西船,印度生态系统

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Biosphere Reserves are archetypal parts of natural and cultural landscapes encompassing over large area of different ecosystem, it represents bio-geographic zones of an region. Globally, the areas of biosphere reserve is shrinking and exploiting due to the extreme climatic condition, natural calamities and anthropogenic activities, which leads to environmental and land degradation. In this paper Nilgiri Biosphere Reserve (NBSR) area has been selected and it represents a biodiversity-rich ecosystem in the Western Ghats and includes two of the ten biogeographical provinces of India. Amongst the most insubstantial ecosystems in the world, the Nilgiri Biosphere Reserve is bearing the substance of climate change evident in increasingly unpredictable rainfall and higher temperatures during recent years. The region was mostly unscathed till two centuries ago, but has witnessed large-scale destruction ever since. In this scenario, a need of application of remote sensing and advance machine learning techniques to monitor environmental degradation and its ecosystem in NBSR is more essential. The objective of the present study is to develop satellite image classification techniques that can reliably to map forest cover and land use, and provide the basis for long-term monitoring. Advanced image classification techniques on the cloud-based platform Google Earth Engine (GEE) for mapping vegetation and land use types, and analyse their spatial distributions. To restore degraded ecosystems to their natural conditions through proper management and conservation practices. In order to understand the nature of environmental degradation and its ecosystem in Nilgiri Biosphere Reserve; following thematic criteria’s were grouped in to four major indicators such as Terrain Indicator (TI), Environmental Indicator (EI), Hydro-Meteorological Indicator (HMI) and Socio-Economic Indicator (SEI). The utilisation of remote sensing product of huge datasets and various data product in analysis and advanced machine learning algorithm through Google earth engine are indispensable. After extraction of all the thematic layers by using multi criteria decision and fuzzy linear member based weight and ranks were assigned and overlay in GIS environment at a common pixel size of 30 m. Based on the analysis the resultant layer has been classified into five environmental degraded classes i.e., very high, high, moderate, slight and no degradation. This study is help to identify the degradation and long term monitoring and suggest the appropriate conservation, management and policies, it is a time to implement and protect the Nilgiri biosphere reserves without hindering present stage of natural environment in a sustainable manner.
机译:生物圈储备是自然和文化景观的原型部分,包括不同生态系统的大面积,它代表了一个地区的生物地理区域。在全球范围内,由于极端气候条件,天然灾害和人为活动,生物圈储备的区域正在萎缩和利用,这导致环境和土地退化。在本文中,尼尔格里生物圈储备(NBSR)区域已被选中,它代表了西部止步区的生物多样性生态系统,包括印度十大生物地图中的两个。在世界上最不实际的生态系统中,尼尔吉里的生物圈储备在近年来越来越不可预测的降雨和较高的温度下,近年来的气候变化的实质。该地区大多是毫伤害直到两世纪前的,但自从此见证了大规模的破坏。在这种情况下,需要应用遥感和提前机器学习技术来监控环境退化及其在NBSR中的生态系统更为必要。本研究的目的是开发卫星图像分类技术,可以可靠地映射森林覆盖和土地利用,并为长期监测提供基础。用于云的平台Google地球发动机(Gee)的高级图像分类技术,用于映射植被和土地使用类型,并分析其空间分布。通过适当的管理和保护实践恢复退化的生态系统到他们的自然条件。为了了解环境降解的性质及其在尼尔吉里生物圈储备中的生态系统;遵循主题标准被分组为四个主要指标,如地形指标(TI),环境指标(EI),水流气象指标(HMI)和社会经济指标(SEI)。通过Google地球发动机在分析和先进的机器学习算法中利用巨大数据集和各种数据产品的遥感产品是必不可少的。通过使用多标准提取所有主题层之后,使用多标准决策和基于模糊的线性成员的权重和等级以30μm的公共像素大小分配并覆盖GIS环境。基于分析,所得层已被分为五个环境降级的类,即非常高,高,中等,轻微,没有降级。本研究有助于确定退化和长期监测,并建议采取适当的保护,管理和政策,是在不受可持续的方式妨碍自然环境的现阶段实施和保护尼利吉生物圈储备的时间。

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