行人再识别问题中背景抑制方法的研究
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TP391.4

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国家自然科学基金(61711530245)、上海市科学技术委员会重点项目(17511106802)资助


Research on background suppression in person re-identification
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    摘要:

    行人再识别是指,在不同时间空间下视角不重叠的摄像机视图中同一行人图像的匹配问题。行人再识别在视频监控方面具有重要的应用价值,是智能监控系统的重要基础。然而,由于摄像头性能不高、监控场景变化、行人的移动性等因素,在现阶段行人再识别存在图像分辨率低、光照背景变化、视角变化、姿态变化等诸多挑战。分析发现直接去除背景会在边界处引入新的梯度信息,从而使得行人再识别模型的性能变差。对此,提出了一种简易的、基于高斯加权的背景抑制方法,能有效抑制背景以提升行人再识别模型的性能。

    Abstract:

    Person re-identification is to match the same person’s images captured at different space and different time across non-overlapping camera views. Person re-identification has important application value in video surveillance and is an important basis for intelligent surveillance systems. However, due to factors such as low camera performance, monitoring scene changes and pedestrian mobility, at this stage person re-identification has many challenges such as low image resolution, illumination,background, viewpoint and pose changes. This paper analyzes that the direct removal of the background brings new gradient information at the boundary, which makes the performance of the person re-identification model worse. In this regard, it proposes a simple Gaussian weighting based background suppression method, which can effectively suppress the background and improve the performance of person recognition model.

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姚品,万旺根.行人再识别问题中背景抑制方法的研究[J].电子测量技术,2019,42(2):73-77

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  • 在线发布日期: 2021-07-08
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