首页> 外文期刊>Arabian journal of geosciences >An effective hybrid classification approach using tasseled cap transformation (TCT) for improving classification of land use/land cover (LU/LC) in semi-arid region: a case study of Morva-Hadaf watershed, Gujarat, India
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An effective hybrid classification approach using tasseled cap transformation (TCT) for improving classification of land use/land cover (LU/LC) in semi-arid region: a case study of Morva-Hadaf watershed, Gujarat, India

机译:一种有效的混合分类方法,使用流线帽转换(TCT)改进半干旱地区的土地利用/土地覆被分类(LU / LC):以印度古吉拉特邦Morva-Hadaf流域为例

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摘要

In recent decades, the semi-arid Morva-Hadaf watershed from Gujarat, India, is experiencing rapid land use/land cover (LU/LC) changes due to watershed management measures. The accurate LU/LC mapping and change detection of these areas are crucial for impact assessment studies and also for policy making. Remote sensing (RS) is an efficient and cost-effective means of monitoring landscapes. One of the key challenges in the RS study is to improve the accuracy of classification, which is quite complicated in heterogeneous semi-arid regions because of spectral similarity among the different LU/LC features. To improve the classification accuracy, in the present study, the effectiveness of conventional supervised classification with only visual bands was enhanced using (1) supervised classification with only tasseled cap transformed (TCT) components and (2) hybrid classification with TCT components and ancillary topographical data of slope and aspect. The proposed hybrid classification approach has enhanced the classification accuracy significantly by 8.13 and 7.81 % for the year 1997 and 2011, respectively. The change detection using hybrid classification showed a significant increase in agricultural area from 593.62 to 713.01 km(2) and simultaneous decrease in the area under scrub forest/land with scrub class from 252.85 to 154.43 km(2). It has indicated an overall positive impact of watershed management measures in Morva-Hadaf watershed.
机译:近几十年来,由于分水岭的管理措施,来自印度古吉拉特邦的半干旱Morva-Hadaf流域正经历着快速的土地利用/土地覆被(LU / LC)变化。这些区域的精确LU / LC映射和变更检测对于影响评估研究以及政策制定至关重要。遥感(RS)是监视景观的一种有效且具有成本效益的手段。 RS研究中的关键挑战之一是提高分类的准确性,由于不同LU / LC特征之间的光谱相似性,在异构半干旱地区这是相当复杂的。为了提高分类准确度,在本研究中,使用(1)仅使用带穗帽变换(TCT)的成分进行监督分类,以及(2)使用TCT成分和辅助地形图进行混合分类,可以提高仅使用可视带的常规监督分类的有效性坡度和纵横比的数据。所提出的混合分类方法分别在1997年和2011年分别显着提高了分类准确率8.13%和7.81%。使用混合分类的变化检测显示,农业面积从593.62到713.01 km(2)显着增加,灌木丛中的灌木丛林/土地面积从252.85减少到154.43 km(2)。它表明了流域管理措施在Morva-Hadaf流域的总体积极影响。

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