A Characterization of Land-use Changes in the Proximity of Mining Sites in India

Shivani A Mehta, Mayur Solanki, Aaditeshwar Seth
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Abstract

For a growing economy like India, most of its energy resources are obtained through extractive processes such as mining of coal and other minerals. Mining can however have many negative social and ecological impacts if it is not well regulated. Illegal mining or inadequate reclamation of abandoned mines can amplify these impacts, emphasizing the need to develop methods that can monitor changes in the land-use patterns in and around mining sites. We develop a method using machine learning on freely available satellite data to monitor the extent of mines, and augment it with outputs from land use and land cover classification, deforestation detection, and PM2.5 particulate matter estimation from remote sensing data to track land-use and ecological changes taking place in the proximity of mining sites. We provide evaluation results of our mining delineation classifier, a feasibility check of this suite of tools to monitor mining areas over a period of four years, and a temporal characterization study over 628 mines in India that were granted a clearance for operations during the period 2006 to 2012. We further use this suite of monitoring tools to compare socio-economic development and health indicators across mining and non-mining areas, across various states in India, to study whether extractive processes of mining benefit the immediate population in their neighbourhood.
印度矿区附近土地利用变化特征分析
对于印度这样一个不断增长的经济体来说,其大部分能源资源都是通过采掘过程获得的,比如开采煤炭和其他矿物。然而,采矿如果管理不善,可能会产生许多负面的社会和生态影响。非法采矿或对废弃矿山的开垦不足会扩大这些影响,强调需要制订方法,监测采矿场址内及其周围土地使用模式的变化。我们开发了一种基于免费卫星数据的机器学习方法来监测矿山的范围,并通过土地利用和土地覆盖分类、森林砍伐检测和PM2.5颗粒物质估算的遥感数据来增加其输出,以跟踪采矿地点附近发生的土地利用和生态变化。我们提供了我们的采矿圈定分类器的评估结果,该工具套件的可行性检查,用于监测矿区四年,以及对2006年至2012年期间获得运营许可的印度628个矿山的时间特征研究。我们进一步使用这套监测工具来比较印度各邦采矿区和非采矿区的社会经济发展和健康指标,以研究采矿过程是否使其邻近地区的直接人口受益。
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