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首页> 外文期刊>IEEE Geoscience and Remote Sensing Letters >A Spatio–Temporal Pixel-Swapping Algorithm for Subpixel Land Cover Mapping
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A Spatio–Temporal Pixel-Swapping Algorithm for Subpixel Land Cover Mapping

机译:亚像素土地覆被映射的时空像素交换算法

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The aim of this letter is to present a spatio–temporal pixel-swapping algorithm (STPSA), based on conventional pixel-swapping algorithms (PSAs), in which both spatial and temporal contextual information from previous land cover maps or observed samples are well integrated and utilized to improve subpixel mapping accuracy. Unlike conventional pixel-swapping algorithms, STPSA is capable of utilizing prior information, which was previously ignored, to predict the attractiveness based on pairs of subpixels. This algorithm involves three main steps and operates in an iterative manner: 1) it predicts the maximum and minimum attractiveness of each pair of pixels; 2) ranks the swapping scores based on the attractiveness of all the pairs; and 3) swaps the locations of the pair of pixels with a maximum score to increase the objective function. Experiments with actual satellite images have demonstrated that the proposed algorithm performs better than other algorithms. In comparison, the proposed STPSA's better performance is due to the fact that prior information used in other algorithms is restricted to a percentage level rather than the real subpixel level.
机译:这封信的目的是提出一种基于常规像素交换算法(PSA)的时空像素交换算法(STPSA),该算法将先前土地覆盖图或观察到的样本的时空上下文信息很好地整合在一起并用于提高子像素映射精度。与传统的像素交换算法不同,STPSA能够利用先前被忽略的先验信息来基于子像素对预测吸引力。该算法涉及三个主要步骤,并且以迭代方式进行操作:1)预测每对像素的最大和最小吸引力; 2)根据所有对的吸引力对交换分数进行排名; 3)以最大分数交换像素对的位置以增加目标函数。通过实际卫星图像的实验表明,该算法的性能优于其他算法。相比之下,拟议的STPSA更好的性能是由于以下事实:在其他算法中使用的先验信息被限制在百分比级别而不是实际子像素级别。

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