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Natural Action Recognition Using Invariant 3D Motion Encoding

机译:使用不变3D运动编码的自然动作识别

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We investigate the recognition of actions "in the wild" using 3D motion information. The lack of control over (and knowledge of) the camera configuration, exacerbates this already challenging task, by introducing systematic projective inconsistencies between 3D motion fields, hugely increasing intra-class variance. By introducing a robust, sequence based, stereo calibration technique, we reduce these inconsistencies from fully projective to a simple similarity transform. We then introduce motion encoding techniques which provide the necessary scale invariance, along with additional invariances to changes in camera viewpoint. On the recent Hollywood 3D natural action recognition dataset, we show improvements of 40% over previous state-of-the-art techniques based on implicit motion encoding. We also demonstrate that our robust sequence calibration simplifies the task of recognising actions, leading to recognition rates 2.5 times those for the same technique without calibration. In addition, the sequence calibrations are made available.
机译:我们使用3D动作信息调查对“野外”行动的认识。通过在3D运动场之间引入系统的投影不一致,缺乏对阶级的不一致,缺乏控制(和知识),加剧了这种已经具有挑战性的任务。通过引入稳健的序列,立体声校准技术,我们将这些不一致从完全投影到简单的相似性转换。然后,我们引入运动编码技术,其提供必要的秤不变性,以及相机视点的变化的额外修正。在最近的好莱坞3D自然动作识别数据集上,我们基于隐式运动编码显示以前的最先进技术的提高40%。我们还表明我们的稳健序列校准简化了识别操作的任务,导致识别率2.5倍,而在没有校准的情况下的技术。此外,序列校准是可用的。

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