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Proposal of an adaptive vision-based attentive tracker for human intended actions

机译:适用于人类预期行动的自适应视觉术追踪器的提案

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Recent advances in vision technology lead to the establishment of non-verbal communication channels from human behaviors toward understanding their intention. An Adaptive Vision-based Attentive Tracker (A VA T) is proposed for isolating such human intended actions from the ordinary walking behavior. The algorithm which drives the attentive tracker is divided into two sub-processes: one is for modeling the movement of human body parts as the environment using HMMs (Hidden Markov Models), and the other is for learning the model of the tracker's action using a TD algorithm (Temporal Difference Algorithm). In the paper, we describe in detail the integration of the two sub-processes and finally show an experimental result of isolating the human sign action during his natural walking motion for demonstrating the feasibility of our proposal. Identification of the sign context determines the action of the tracker with the simulated rewards supplied.
机译:视觉技术的最新进展导致从人类行为建立非口头沟通渠道,了解他们的意图。提出了一种基于视觉的基于视觉的细节跟踪器(VA T),用于从普通的行走行为中隔离这样的人类预期的动作。驱动分级跟踪器的算法分为两个子进程:一个是使用HMMS(隐藏马尔可夫模型)为环境建模人体部件的运动,另一个用于使用A学习跟踪器动作的模型TD算法(时间差算法)。在本文中,我们详细描述了两个子过程的整合,最后显示了在他的自然行走运动中隔离人体标志动作的实验结果,以证明我们提案的可行性。标识符号上下文使用所提供的模拟奖励来确定跟踪器的操作。

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