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A Map Reduce Scheme for Image Feature Extraction and Its Application to Man-made Object Detection

机译:一种地图将图像特征提取的方案及其应用于人为物体检测

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A fundamental challenge in image engineering is how to locate interested objects from high-resolution images with efficient detection performance. Several man-made objects detection approaches have been proposed while the majority of these methods are not truly timesaving and suffer low degree of detection precision. To address this issue, we propose a novel approach for man-made object detection in aerial image involving MapReduce scheme for large scale image analysis to support image feature extraction, which can be widely used to compute-intensive tasks in a highly parallel way, and texture feature extraction and clustering. Comprehensive experiments show that the parallel framework saves voluminous time for feature extraction with satisfied objects detection performance.
机译:图像工程中的一个根本挑战是如何从高分辨率图像找到感兴趣的对象,具有有效的检测性能。 已经提出了几种人造物体检测方法,而这些方法的大多数则不是真正的重点并遭受低程度的检测精度。 为了解决这个问题,我们提出了一种新的方法对人造对象检测的方法,涉及大规模图像分析的MapReduce方案,以支持图像特征提取,可以广泛地以高度平行的方式计算密集型任务,并且 纹理特征提取和聚类。 综合实验表明,并行框架通过满意的物体检测性能节省了特征提取的大量时间。

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