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A Performance Evaluation of Single and Multi-feature People Detection

机译:单特征和多特征人物检测的性能评估

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Over the years a number of powerful people detectors have been proposed. While it is standard to test complete detectors on publicly available datasets, it is often unclear how the different components (e.g. features and classifiers) of the respective detectors compare. Therefore, this paper contributes a systematic comparison of the most prominent and successful people detectors. Based on this evaluation we also propose a new detector that outperforms the state-of-art on the INRIA person dataset by combining multiple features.
机译:多年来,已经提出了许多功能强大的人员检测器。虽然在公开的数据集上测试完整的检测器是标准的,但通常不清楚各个检测器的不同组件(例如特征和分类器)如何进行比较。因此,本文有助于对最杰出和最成功的人员检测器进行系统的比较。基于此评估,我们还提出了一种新的检测器,该检测器通过组合多个特征,在INRIA人数据集上表现优于最新技术。

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