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SSD-6D: Making RGB-Based 3D Detection and 6D Pose Estimation Great Again

机译:SSD-6D:使基于RGB的3D检测和6D姿态估计再次变得伟大

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We present a novel method for detecting 3D model instances and estimating their 6D poses from RGB data in a single shot. To this end, we extend the popular SSD paradigm to cover the full 6D pose space and train on synthetic model data only. Our approach competes or surpasses current state-of-the-art methods that leverage RGB-D data on multiple challenging datasets. Furthermore, our method produces these results at around 10Hz, which is many times faster than the related methods. For the sake of reproducibility, we make our trained networks and detection code publicly available.
机译:我们提出了一种用于检测3D模型实例的新方法,并在单次拍摄中从RGB数据估计其6D姿势。为此,我们将流行的SSD范例扩展到仅涵盖完整的6D姿势空间和培训合成模型数据。我们的方法竞争或超越当前最先进的方法,从而利用RGB-D数据在多个具有挑战性的数据集上。此外,我们的方法在大约10Hz左右产生这些结果,这比相关方法速度速度多倍。为了再现性,我们将公开提供培训的网络和检测码。

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