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首页> 外文期刊>IEEE Transactions on Circuits and Systems for Video Technology >Mask-Pose Cascaded CNN for 2D Hand Pose Estimation From Single Color Image
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Mask-Pose Cascaded CNN for 2D Hand Pose Estimation From Single Color Image

机译:从单色图像进行2D手姿估计的遮罩级联CNN

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摘要

We present a cascaded convolutional neural network for 2D hand pose estimation from single in-the-wild RGB images. Inspired by the commonly used silhouette information in the generative pose estimation approaches, we build the cascaded network with two stages, including mask prediction stage as well as pose estimation stage. We find that the two stages network architecture for end-to-end training could benefit from each other for detecting the hand mask and 2D pose. To further improve the hand pose detection accuracy, we contribute a new RGB hand dataset named OneHand10K, which contains 10K RGB images. Each image contains one single hand. We manually obtain the segmented mask and labeled keypoints for guided learning. We hope that this dataset will be a benchmark and encourage more people to conduct research on this challenging topic. Experiments on the validation dataset have demonstrated the superior performance of the proposed cascaded convolutional neural network.
机译:我们提出了一种用于从单个野生RGB图像进行2D手姿势估计的级联卷积神经网络。受生成姿势估计方法中常用的轮廓信息的启发,我们构建了具有两个阶段的级联网络,包括蒙版预测阶段和姿势估计阶段。我们发现,用于端到端训练的两个阶段的网络体系结构可以从检测手罩和2D姿势中受益。为了进一步提高手部姿势检测的准确性,我们贡献了一个名为OneHand10K的新RGB手部数据集,其中包含10K RGB图像。每个图像包含一只手。我们手动获取分段的蒙版和标记的关键点,以进行指导学习。我们希望该数据集将成为基准,并鼓励更多的人对这个具有挑战性的话题进行研究。验证数据集上的实验证明了所提出的级联卷积神经网络的优越性能。

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