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Fast Simultaneous People Detection and Re-identification in a Single Shot Network

机译:快速同时的人检测和重新识别一次射门网络

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A traditional re-identification pipeline consists of a detection and re-identification step, i.e. a person detector is run on an input image to get a cutout which is then sent to a separate re-identification system. In this work we combine detection and re-identification into one single pass neural network. We propose an architecture that can do re-identification simultaneously with detection and classification. The effect of our modification has only a negligible impact on detection accuracy, and adds the calculation of re-identification vectors at virtually no cost.The resulting re-identification vector is strong enough to be used in speed sensitive applications which can benefit from an additional re-identification vector in addition to detection. We demonstrate this by using it as detection and re-identification input for a real-time person tracker. Moreover, unlike traditional detection + re-id pipelines our single-pass network's computational cost is not dependent on the number of people in the image.
机译:传统的重新识别管线包括检测和重新识别步骤,即人检测器在输入图像上运行,以获得剪切,然后将其发送到单独的重新识别系统。在这项工作中,我们将检测和重新识别结合到一个通过神经网络中。我们提出了一种架构,可以通过检测和分类同时重新识别。我们的修改的效果对检测准确性的影响差别局限性可忽略不计,并且在几乎没有成本下增加重新识别载体的计算。所得的重新识别载体足够强,可用于速度敏感的应用,这些应用可以受益于额外的速度除了检测外还重新识别载体。我们通过使用它作为实时人员跟踪器的检测和重新识别输入来证明这一点。此外,与传统检测+重新ID管道不同,我们的单通网络的计算成本不依赖于图像中的人数。

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