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Group Cost-Sensitive Boosting for Multi-Resolution Pedestrian Detection

机译:集团成本敏感的多分辨率行人检测升压

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As an important yet challenging problem in computer vision, pedestrian detection has achieved impressive progress in recent years. However, the significant performance decline with decreasing resolution is a major bottleneck of current state-of-the-art methods. For the popular boosting-based detectors, one of the main reasons is that low resolution samples, which are usually more difficult to detect than high resolution ones, are treated by equal costs in the boosting process, leading to the consequence that they are more easily being rejected in early stages and can hardly be recovered in late stages as false negatives. To address this problem, we propose in this paper a new multi-resolution detection approach based on a novel group cost-sensitive boosting algorithm, which extends the popular AdaBoost by exploring different costs for different resolution groups in the boosting process, and places more emphases on low resolution group in order to better handle detection of hard samples. The proposed approach is evaluated on the challenging Caltech pedestrian benchmark, and out-performs other state-of-the-art on different resolution-specific test sets.
机译:作为计算机愿景中的一个重要而有挑战性的问题,近年来的行人检测取得了令人印象深刻的进展。然而,随着决议减少的显着性能下降是当前最先进的方法的主要瓶颈。对于流行的基于升压的探测器,其中一个主要原因是低分辨率样本,通常更难以检测到高分辨率,通过升压过程中的成本相同,导致它们更容易的结果在早期阶段被拒绝,并且几乎不能在后期阶段作为假阴性恢复。为了解决这个问题,我们提出了一种基于新型组成本敏感促进算法的新型多分辨率检测方法,它通过探索升压过程中的不同分辨率组的不同成本扩展了流行的Adaboost,以及更多的重点在低分辨率组上,以更好地处理硬样品的检测。拟议的方法是在挑战的CALTECH行人基准中评估,并在不同分辨率特定的测试集中出售其他最先进的。

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