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Incorporating spatio-temporal mid-level features in a region segmentation algorithm for video sequences

机译:在视频序列的区域分割算法中纳入时空中级特征

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Segmentation algorithms traditionally employ low-level features to divide images into different regions that show a certain degree of homogeneity. However, low-level features, spatial or temporal, are not always reliable when processing real-world video sequences, because of issues like illuminations or complex backgrounds. Furthermore, real world objects can be composed of different regions with heterogeneous features. Although the inclusion of motion can mitigate some of these effects, many problems are still present. This paper proposes the utilization of some spatio-temporal mid-level features that are related, on the one hand, to geometric properties of real objects and, on the other, to well-known motion patterns. Specifically, the proposed algorithm uses a mid-level module that controls the subsequent segmentation using these kinds of features. Some experiments and evaluations show that the inclusion of mid-level features can help to obtain perceptually more meaningful segmentations, thus resulting in regions that are closer to semantic concepts.
机译:传统上,分割算法采用低级特征将图像划分为显示一定程度同质性的不同区域。但是,由于诸如照明或复杂背景之类的问题,处理现实世界的视频序列时,低级功能(时空的或时空的)并不总是可靠的。此外,现实世界的对象可以由具有异构特征的不同区域组成。尽管包含运动可以减轻其中的一些影响,但仍然存在许多问题。本文提出了一些时空中层特征的利用,这些特征一方面与真实物体的几何特性有关,另一方面与众所周知的运动模式有关。具体而言,所提出的算法使用一个中级模块,该模块使用这些类型的功能来控制后续的细分。一些实验和评估表明,包含中级特征可以帮助获得在感知上更有意义的分割,从而产生更接近语义概念的区域。

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