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Robust RGBD Tracking via Weighted Convolution Operators

机译:通过加权卷积运算符进行强大的RGBD跟踪

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摘要

Discriminative Correlation Filter (DCF) based trackers achieve superior performance with continuous conceptual improvement in the tracking field. By now, traditional DCF based trackers suppose that the tracked target is rigid and could be represented by an axis-aligned rectangular box well. Those trackers suffer from object deformation, irregular object shape and partial occlusion where the target bounding box is filled with both target and background pixels. Recently, the depth information captured by the depth sensors offer complementary information to RGB data. Generally, depth information highlights the foreground target from the background, which mitigates the backgournd effect in the bounding box. In this paper, we propose to learn Weighted Convolution Operators (WCO) for robust RGBD tracking. First, WCO integrate deep features extracted from the RGB channels and hand-craft features extracted from the depth channel to enhance target representation. Second, a weight map is jointly derived from the depth and color information to highlight the foreground area. Each value on the weight map demonstrates the possibility of this pixel pertaining to the foreground area. Last, WCO is optimized with the Preconditioned Congugate Gradient (PCG) Method during correlation filter training. Our proposed WCO tracker achieves the top performance on the Princetion Tracking Benchmark (PTB), which demonstrates the validity of our RGBD tracking framework.
机译:基于识别的相关滤波器(DCF)跟踪器实现了卓越的性能,在跟踪领域的连续概念改进。到目前为止,基于传统的基于DCF的跟踪器假设跟踪的目标是刚性的,并且可以由轴对齐的矩形框表示。这些跟踪器遭受物体变形,不规则的物体形状和部分遮挡,其中目标边界盒用目标和背景像素填充。最近,深度传感器捕获的深度信息会提供对RGB数据的互补信息。通常,深度信息从背景中突出显示前景目标,这会使边界框中的基础效果降低。在本文中,我们建议为强大的RGBD跟踪学习加权卷积运营商(WCO)。首先,WCO集成了从RGB通道提取的深度特征和从深度通道提取的手工艺特征,以增强目标表示。其次,权重映射与深度和颜色信息共同衍生,以突出前景区域。重量图上的每个值都展示了与前景区域有关的该像素的可能性。最后,在相关滤波器训练期间,通过预处理的锥形梯度(PCG)方法优化WCO。我们所提出的WCO跟踪器实现了PralineTion跟踪基准(PTB)的最佳性能,这表明我们的RGBD跟踪框架的有效性。

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