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A Spatio Temporal Texture Saliency Approach for Object Detection in Videos

机译:一种时空纹理显着性的视频目标检测方法

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Detecting what attracts human attention is one of the vital tasks for visual processing. Saliency detection finds out the location of foci of attention on an outstanding object in image/video sequences. However, temporal information in videos play major role in human visual perception in locating salient objects. This paper presents a novel approach to detect salient object in a video using spatio-temporal textural saliency which also includes temporal information, an important aspect in videos. In this work, the context driven static saliency extracted from Lab color space in XY plane is combined with the local phase quantization on three orthogonal planes (LPQ-TOP) driven dynamic saliency to detect the spatio-temporal saliency in videos. The dynamic saliency is obtained by fusing two temporal saliencies extracted from XT-plane and YT-plane using LPQ texture feature, which extracts the temporal salient region. This approach is evaluated on Benchmark dataset and the result shows that the proposed saliency approach yields promising performance.
机译:检测吸引人类注意力的内容是视觉处理的重要任务之一。显着性检测可以找到图像/视频序列中关注对象在突出对象上的位置。但是,视频中的时间信息在人类视觉感知中定位重要物体时起着重要作用。本文提出了一种使用时空纹理显着性检测视频中显着对象的新颖方法,其中还包括时间信息,这是视频中的重要方面。在这项工作中,从XY平面的Lab色彩空间提取的上下文驱动的静态显着度与三个正交平面上的局部相位量化(LPQ-TOP)驱动的动态显着度相结合,以检测视频中的时空显着性。动态显着性是通过使用LPQ纹理特征融合从XT平面和YT平面提取的两个时间显着性而获得的,从而提取了时间显着区域。在Benchmark数据集上对该方法进行了评估,结果表明所提出的显着性方法产生了有希望的性能。

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