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A Change Detection Approach to Moving Object Detectionin Low Fame-Rate Video

机译:低帧速率视频移动物体检测的变化检测方法

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Moving object detection is of significant interest in temporal image analysis since it is a first step in many object identification and tracking applications. A key component in almost all moving object detection algorithms is a pixel-level classifier, where each pixel is predicted to be either part of a moving object or part of the background. In this paper we investigate a change detection approach to the pixel-level classification problem and evaluate its impact on moving object detection. The change detection approach that we investigate was previously applied to multi- and hyper-spectral datasets, where images were typically taken several days, or months apart. In this paper, we apply the approach to low-frame rate (1-2 frames per second) video datasets.
机译:移动物体检测对于时间图像分析具有显着兴趣,因为它是许多对象标识和跟踪应用中的第一步。几乎所有移动对象检测算法中的关键组件是像素级分类器,其中每个像素预测为移动对象或一部分的一部分。在本文中,我们调查了像素级分类问题的变化检测方法,并评估其对移动物体检测的影响。我们调查的变化检测方法先前应用于多频率和超光谱数据集,其中图像通常需要几天或几个月。在本文中,我们将方法应用于低帧速率(每秒1-2帧)视频数据集。

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