首页> 外文会议>Asian conference on remote sensingACRS >IMPROVED CLASSIFICATION OF MODERATE RESOLUTION SATELLITE IMAGE USING BAND RATIO, NBAI AND PC TRANSFORM
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IMPROVED CLASSIFICATION OF MODERATE RESOLUTION SATELLITE IMAGE USING BAND RATIO, NBAI AND PC TRANSFORM

机译:利用带比,NBAI和PC变换改进了适度分辨率卫星图像的分类

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This study explored the technique of using band ratio (Band 4/Band 3 of Landsat ETM+), Normalized Built-up Area Index (NBAI) and Principal Component Transform (PC 4) as supplementary bands to aid in properly classifying pixels that are either built-up or soil (the two most confused classes) via the supervised Maximum Likelihood Classifier. The technique was applied to a test area located in the island of Negros, Philippines. The technique led to an improvement of 5.2% to the classification's over-all accuracy as compared to the image classification using only the six original bands of Landsat(l-5, 7). Moreover, the producer's and user's accuracies for built-up and soil classes are improved by a maximum increase of 4.6% and kappa coefficient by 8%. This made the image classification within the suggested minimum level of interpretation accuracy (85%) for land use/cover classes derived from remotely sensed data.
机译:本研究探索了使用频带比(Landsat ETM +的频带3 /频段3),标准化的内置区域索引(NBAI)和主成分变换(PC 4)作为补充频段,以帮助适当分类构建的像素通过监督的最大似然分类器 - up或土壤(两个最困惑的课程)。该技术应用于位于菲律宾岛黑人岛的测试区。与仅使用仅使用Landsat(L-5,7)的六个原始频段的图像分类相比,该技术的提高了5.2%的分类的超级精度。此外,生产者和用户的内置和土壤类别的准确性提高了8%的最大增加4.6%,kappa系数增加了8%。这使图像分类在源自远程感测数据中的土地使用/覆盖类的建议最小解释精度(85%)内。

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