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AN ACTION GENERATION MODEL BY USING TIME SERIES PREDICTION AND ITS APPLICATION TO ROBOT NAVIGATION

机译:时间序列预测的动作生成模型及其在机器人导航中的应用

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摘要

This paper proposes an action generation model which consists of many motor primitive modules. The motor primitive modules output motor commands based on sensory information. Complicated behavior is generated by sequentially switching the modules. The model also has a prediction unit. This unit predicts which module will be used for current action generation. We have confirmed the effectiveness of the model by applying it to a robot navigation task simulation, and have investigated the influence of the prediction on the action generation.
机译:本文提出了一个由许多电机基本模块组成的动作生成模型。电机基本模块基于感觉信息输出电机命令。通过顺序切换模块会产生复杂的行为。该模型还具有预测单元。该单元预测哪个模块将用于当前动作生成。通过将其应用于机器人导航任务仿真,我们已经确认了该模型的有效性,并研究了预测对动作生成的影响。

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