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Multi-view and multi-plane data fusion for effective pedestrian detection in intelligent visual surveillance

机译:多视图和多平面数据融合可在智能视觉监控中有效地检测行人

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摘要

For the robust detection of pedestrians in intelligent video surveillance, an approach to multi-view and multi-plane data fusion is proposed. Through the estimated homography, foreground regions are projected from multiple camera views to a reference view. To identify false-positive detections caused by foreground intersections of non-corresponding objects, the homographic transformations for a set of parallel planes, which are from the head plane to the ground, are applied. Multiple features including occupancy information and colour cues are extracted from such planes for joint decision-making. Experimental results on real world sequences have demonstrated the good performance of the proposed approach in pedestrian detection for intelligent visual surveillance.
机译:为了在智能视频监控中可靠地检测行人,提出了一种多视图和多平面数据融合的方法。通过估计的单应性,前景区域从多个相机视图投影到参考视图。为了识别由非对应对象的前景相交引起的假阳性检测,应用了一组从顶面到地面的平行平面的同形变换。从这些平面中提取包括占用信息和颜色提示的多个特征,以进行联合决策。在现实世界序列上的实验结果证明了该方法在行人检测中的良好性能,以实现智能视觉监控。

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