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Optimizing the binary discriminant function in change detection applications

机译:在变更检测应用程序中优化二进制判别函数

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Binary discriminant functions are often used to identify changed area through time in remote sensing change detection studies. Traditionally, a single change-enhanced image has been used to optimize the binary discriminant function with a few (e.g., 5-10) discrete thresholds using a trial-and-error method. Im et al. [Im, J., Rhee, J., Jensen, J. R., & Hodgson, M. E. (2007). An automated binary change detection model using a calibration approach. Remote Sensing of Environment, 106, 89-105] developed an automated calibration model for optimizing the binary discriminant function by autonomously testing thousands of thresholds. However, the automated model may be time-consuming especially when multiple change-enhanced images are used as inputs together since the model is based on an exhaustive search technique. This paper describes the development of a computationally efficient search technique for identifying optimum threshold(s) in a remote sensing spectral search space. The new algorithm is based on "systematic searching." Two additional heuristic optimization algorithms (i.e., hill climbing, simulated annealing) were examined for comparison. A case study using QuickBird and IKONOS satellite imagery was performed to evaluate the effectiveness of the proposed algorithm. The proposed systematic search technique reduced the processing time required to identify the optimum binary discriminate function without decreasing accuracy. The other two optimizing search algorithms also reduced the processing time but failed to detect a global maxima for some spectral features. Published by Elsevier Inc.
机译:在遥感变化检测研究中,经常使用二进制判别函数来识别随时间变化的区域。传统上,已经使用试错法使用单个增强变化的图像来优化具有几个(例如5-10)个离散阈值的二进制判别函数。我等。 [Im,J.,Rhee,J.,Jensen,J. R.,&Hodgson,M. E.(2007)。使用校准方法的自动二进制变化检测模型。 [环境遥感,106,89-105]开发了一种自动校准模型,可通过自主测试数千个阈值来优化二进制判别函数。但是,由于该模型基于穷举搜索技术,因此自动模型可能很耗时,特别是当多个更改增强图像一起用作输入时。本文介绍了一种用于识别遥感光谱搜索空间中最佳阈值的计算有效搜索技术的发展。新算法基于“系统搜索”。为了进行比较,还检查了另外两种启发式优化算法(即爬山,模拟退火)。使用QuickBird和IKONOS卫星图像进行了案例研究,以评估所提出算法的有效性。所提出的系统搜索技术减少了识别最佳二进制区分函数所需的处理时间,而又不降低准确性。其他两种优化的搜索算法也减少了处理时间,但未能检测到某些光谱特征的全局最大值。由Elsevier Inc.发布

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