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Attribute-based Person Retrieval and Search in Video Sequences

机译:基于属性的人员检索并在视频序列中搜索

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The search for persons based on their visual appearance is an important task of modern surveillance systems which can be supported by automatic person re-identification approaches. However, such approaches are generally image-based and thus require a query image as input. In cases where only a witness description is available the task turns into a cross-modal text-to-image search problem which requires specialized approaches. In this work we describe an approach for person search in video data based purely on attribute witness descriptions. We first develop an ensemble of classifiers for robust attribute classification. We then extend the approach to full person search by combining it with a person detector. Given an initial high-confidence match in the video we use temporal information to explore and return full person tracks. We evaluate our approach on the AVSS 2018 Soft Biometric Retrieval Challenge dataset. Our approach manages to find the correct person at rank-1 in 71.79% of all cases.
机译:根据他们的视觉外观搜索人员是现代监控系统的重要任务,可以通过自动人员重新识别方法来支持。然而,这种方法通常是基于图像的,因此需要查询图像作为输入。在只有证人描述的情况下,任务将成为一个跨模型文本到图像搜索问题,这需要专门的方法。在这项工作中,我们描述了一种在纯粹基于属性见证描述的视频数据中搜索的方法。我们首先开发一个用于鲁棒属性分类的分类器的集合。然后,我们通过将其与人探测器组合来扩展到全人搜索的方法。鉴于视频中的初始高度置信度匹配,我们使用时间信息来探索并返回全人轨道。我们评估我们在AVSS 2018软生物识别检索挑战数据集上的方法。我们的方法管理在所有案例的71.79 %的排名中找到正确的人。

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