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Feature Extraction and Correlation for Time-to-Impact Segmentation Using Log-Polar Images

机译:使用逻辑极性图像对时间到冲击分割的特征提取和相关性

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In this article we present a technique that allows high-speed movement analysis using the accurate displacement measurement given by the feature extraction and correlation method. Specially, we demonstrate that it is possible to use the time to impact computation for object segmentation. This segmentation allows the detection of objects at different distances. There are several methods to measure movement in front of a mobile vehicle (robot) equipped with a camera. Some methods detect movement from the analysis of the optical flow, while other methods detect movement from the displacement of objects or part of the objects (corners, edges, etc). Those methods based on the optical flow are suitable for high speed analysis (say 25 images per second) but they are not very accurate and treat the image as a whole, being it difficult to separate different objects in the scene. Those methods based on image feature extraction are good for object recognition and clustering, that can be more precise than other methods, but they usually require many calculations to yield a result, making it difficult to implement these methods in a navigation system of a robot or mobile vehicle.
机译:在本文中,我们介绍了一种技术,该技术允许使用特征提取和相关方法给出的精确位移测量来实现高速移动分析。特别是,我们证明可以使用时间来影响对象分割的计算。该分段允许在不同距离处检测物体。有几种方法可以在配备有相机的移动车辆(机器人)前测量运动。一些方法检测光流量分析的运动,而其他方法检测从物体的位移或物体的一部分(角落,边缘等)的移动。基于光学流量的这些方法适用于高速分析(例如每秒25张图像),但它们不是非常准确和整体的图像,难以在场景中分离不同的对象。基于图像特征提取的这些方法对于对象识别和聚类是良好的,这可以比其他方法更精确,但它们通常需要许多计算来产生结果,使得难以在机器人的导航系统中实现这些方法或者移动车辆。

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