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Egocentric Basketball Motion Planning from a Single First-Person Image

机译:单一第一人称视角的以自我为中心的篮球运动计划

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We present a model that uses a single first-person image to generate an egocentric basketball motion sequence in the form of a 12D camera configuration trajectory, which encodes a player's 3D location and 3D head orientation throughout the sequence. To do this, we first introduce a future convolutional neural network (CNN) that predicts an initial sequence of 12D camera configurations, aiming to capture how real players move during a one-on-one basketball game. We also introduce a goal verifier network, which is trained to verify that a given camera configuration is consistent with the final goals of real one-on-one basketball players. Next, we propose an inverse synthesis procedure to synthesize a refined sequence of 12D camera configurations that (1) sufficiently matches the initial configurations predicted by the future CNN, while (2) maximizing the output of the goal verifier network. Finally, by following the trajectory resulting from the refined camera configuration sequence, we obtain the complete 12D motion sequence. Our model generates realistic basketball motion sequences that capture the goals of real players, outperforming standard deep learning approaches such as recurrent neural networks (RNNs), long short-term memory networks (LSTMs), and generative adversarial networks (GANs).
机译:我们提出了一个模型,该模型使用单个第一人称图像以12D相机配置轨迹的形式生成以自我为中心的篮球运动序列,该序列在整个序列中编码玩家的3D位置和3D头部方向。为此,我们首先引入一个未来的卷积神经网络(CNN),该网络可预测12D摄像头配置的初始序列,旨在捕获真实玩家在一对一篮球比赛中的运动方式。我们还引入了一个目标验证器网络,该网络经过训练以验证给定的摄像头配置是否与真实的一对一篮球运动员的最终目标一致。接下来,我们提出一种逆向合成程序,以合成经过精炼的12D摄像机配置序列,该序列应与(1)充分匹配未来CNN预测的初始配置,同时(2)最大化目标验证者网络的输出。最后,通过遵循由改进的摄像机配置序列产生的轨迹,我们可以获得完整的12D运动序列。我们的模型会生成逼真的篮球动作序列,以捕捉真实玩家的目标,其性能优于标准的深度学习方法,例如递归神经网络(RNN),长期短期记忆网络(LSTM)和生成对抗网络(GAN)。

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