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Object recognition and segmentation in videos by connecting heterogeneous visual features

机译:通过连接异类视觉特征对视频进行对象识别和分割

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We present an approach for model-free and instance-level object recognition and segmentation in cluttered scenes, based on heterogeneous visual features. The first contribution of this work addresses the description of the visual appearance of objects, by proposing the joint use of complementary features of different natures: on the one hand, a set of local descriptors based on interest points that have well-known interesting properties; on the other hand, a global descriptor based on a snake, providing a high-level description of the object shape. Our second contribution consists in efficiently structuring and connecting the visual features obtained, making possible the use of global descriptors without prior segmentation/detection. Our approach is compared to a classic one based on local descriptors only and is evaluated for video surveillance purposes over sequences involving 20 objects. We show that recognition is improved, and provides precise object segmentation, even with large occlusions. A real scenario of application to video surveillance of truck traffic validates the relevance of the approach.
机译:我们提出了一种基于异构视觉特征的在杂乱场景中无模型和实例级对象识别和分割的方法。这项工作的第一个贡献是通过提议共同使用不同性质的互补特征来解决对象的视觉外观描述:一方面,基于兴趣点的一组局部描述符具有众所周知的有趣特性;另一方面,基于蛇的全局描述符提供了对象形状的高级描述。我们的第二个贡献在于有效地构造和连接所获得的视觉特征,从而无需事先进行分割/检测就可以使用全局描述符。我们的方法与仅基于本地描述符的经典方法进行了比较,并针对涉及20个对象的序列进行了视频监控目的评估。我们证明识别能力得到了改善,即使有较大的遮挡,也能提供精确的对象分割。将其应用于卡车交通视频监控的真实场景验证了该方法的相关性。

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