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Quantitative assessment of a haze suppression methodology for satellite imagery: effect on land cover classification performance

机译:卫星图像雾霾抑制方法的定量评估:对土地覆盖分类性能的影响

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A number of haze removal methods for satellite imagery have been described in the literature, but few papers have quantified their effectiveness within the context of a postprocessing applications scenario. The haze optimized transform (HOT) approach for visible-band correction is described, and its impact on classification performance is evaluated. Assessment is conducted at three levels: radiometric level of accuracy, improvement in interclass separability, and classification accuracy. Results obtained from hazy scenes and their dehazed counterparts are compared with those from reference or "benchmark" clear scenes. Radiometric analyses of pseudoinvariant features (dense forest stands) indicate that effective haze reduction can be realized for differential HOT response levels of up to 20 for Landsat Thematic Mapper scenes. This level of atmospheric contamination is severe enough to result in significant thematic class confusion, wherein visible-band radiances of vegetated areas are at levels normally associated with urban features under clear sky conditions.
机译:文献中已经描述了许多用于卫星图像的除雾方法,但是很少有论文在后处理应用场景的背景下量化了其有效性。描述了用于可见带校正的雾度优化变换(HOT)方法,并评估了其对分类性能的影响。评估从三个级别进行:辐射度级别的准确性,类间可分离性的改进以及分类准确性。将从朦胧的场景及其除雾的对应对象中获得的结果与参考或“基准”清晰场景中的结果进行比较。对伪不变特征(茂密的森林林分)的辐射分析表明,对于Landsat Thematic Mapper场景,高达20的差分HOT响应水平可以实现有效的雾度降低。大气污染的程度严重到足以引起严重的主题类混淆,其中植被区域的可见带辐射水平通常在晴朗的天空条件下与城市特征相关。

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