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首页> 外文期刊>Environmental Monitoring and Assessment >Rapid monitoring of reclaimed farmland effects in coal mining subsidence area using a multi-spectral UAV platform
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Rapid monitoring of reclaimed farmland effects in coal mining subsidence area using a multi-spectral UAV platform

机译:利用多光谱UAV平台快速监测煤矿沉降区的再生农田效应

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摘要

In eastern China, coal mining has damaged a large amount of farmland, posing a great threat to food security. Backfilling with coal waste, fly ash, and sediments from rivers is an effective method to restore farmland. This study was conducted at the reclaimed area (RA) and the undisturbed area (UA) in Shandong Province, China. Soil and plant analyzer development (SPAD) of corn was selected as an indicator of crop growth. Multi-spectral data was obtained by the unmanned aerial vehicle equipped with a camera. By analyzing the correlation between SPAD and spectral bands, the common vegetation index is improved. Different regression methods were used to construct the SPAD inversion model. The distribution of corn SPAD was monitored to objectively evaluate reclamation technology. The results are as follows: (1) the vegetation index improved using the red-edge band has a higher correlation with SPAD, and the largest coefficient of determination (R-2) value is 0.779; (2) the optimum inversion model for both jointing stage (R-2 = 0.676) and milky stage (R-2 = 0.661) is the linear regression model; the optimum model for both tasseling stage (R-2 = 0.809) and filling stage (R-2 = 0.830) is the partial least squares regression model; (3) the SPAD inversion map of RA and UA obtained by the optimum model shows that the corn grown in RA is slightly better than in UA. This study realized the rapid and efficient monitoring of the reclamation effects based on multi-spectral imagery and verified the feasibility of backfilling reclamation with Yellow River sediment in coal mining subsidence areas.
机译:在中国东部,煤炭矿业已损害了大量农田,对粮食安全构成了很大的威胁。用煤矸石,粉煤灰和河流沉积物回填是恢复农田的有效方法。本研究在中国山东省的再生地区(RA)和未受干扰的地区(UA)进行。玉米土壤和植物分析仪开发(Spad)被选为作物生长的指标。通过配备有相机的无人空中车辆获得多光谱数据。通过分析SPAD和光谱带之间的相关性,普通植被指数得到改善。使用不同的回归方法来构建SPAD反转模型。监测玉米穗片的分布以客观地评估填海工艺。结果如下:(1)使用红边频带改善的植被指数具有较高的与SPAD相关,最大的确定系数(R-2)值为0.779; (2)连接阶段(R-2 = 0.676)和乳白阶段(R-2 = 0.661)的最佳反演模型是线性回归模型;旋转阶段(R-2 = 0.809)和填充阶段(R-2 = 0.830)的最佳模型是偏最小二乘回归模型; (3)由最佳模型获得的RA和UA的SPAD倒置图表明RA中生长的玉米略好于uA。本研究实现了基于多光谱图像的快速有效监测了煤矿沉降区黄河沉积物回填填充填回回收的可行性。

著录项

  • 来源
    《Environmental Monitoring and Assessment》 |2020年第7期|474.1-474.19|共19页
  • 作者单位

    China Univ Min & Technol Beijing Coll Geosci & Surveying Engn Beijing 100083 Peoples R China;

    China Univ Min & Technol Beijing Coll Geosci & Surveying Engn Beijing 100083 Peoples R China;

    Zhejiang Univ Dept Land Management Hangzhou 310058 Peoples R China;

    China Univ Min & Technol Beijing Coll Geosci & Surveying Engn Beijing 100083 Peoples R China;

    China Univ Min & Technol Beijing Coll Geosci & Surveying Engn Beijing 100083 Peoples R China;

    China Univ Min & Technol Beijing Coll Geosci & Surveying Engn Beijing 100083 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    UAV; Monitoring; Mining subsidence; Backfilling reclamation; SPAD; Red-edge band;

    机译:UAV;监测;矿业沉降;回填填写;剥片;红边频段;

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