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Performing predefined tasks using the human-robot interaction on speech recognition for an industrial robot

机译:使用人体机器人交互对工业机器人进行语音识别进行预定义任务

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摘要

People who are not experts in robotics can easily implement complex robotic applications by using human-robot interaction (HRI). HPJ systems require many complex operations such as robot control, image processing, natural speech recognition, and decision making. In this study, interactive control with an industrial robot was performed by using speech recognition software in the Turkish language. The collected voice data were converted to text data by using automatic speech recognition module based on deep neural networks (DNN). The proposed DNN (p-DNN) was compared to classic classification algorithms. Converted text data was improved in another module to select the process to be applied. According to selected process, position data were defined using image processing. The determined position information was sent to the robot using a fuzzy controller. The developed HRI system was implemented on a KUKA KR Agilus KR6 R900 sixx robot manipulator. The word accuracy rate of the p-DNN model was measured as 90.37%. The developed image processing module and fuzzy controller worked with minimal errors. The contribution of this study is that an industrial robot is easily programming using this software by people who are not experts in robotics and know Turkish.
机译:不是机器人专家的人可以通过使用人机机器人互动(HRI)轻松实现复杂的机器人应用。 HPJ系统需要许多复杂的操作,如机器人控制,图像处理,自然语音识别和决策。在本研究中,通过在土耳其语中使用语音识别软件进行与工业机器人的交互式控制。通过使用基于深神经网络(DNN)的自动语音识别模块将收集的语音数据转换为文本数据。将所提出的DNN(P-DNN)与经典分类算法进行比较。在另一个模块中改进了转换的文本数据以选择要应用的进程。根据所选过程,使用图像处理定义位置数据。使用模糊控制器将所确定的位置信息发送到机器人。开发的HRI系统是在Kuka KR Agilus KR6 R900 Sixx机器人机械手上实施的。 P-DNN模型的字精度率测量为90.37%。开发的图像处理模块和模糊控制器以最小的错误工作。这项研究的贡献是,工业机器人通过机器人专家并知道土耳其语来轻松地使用该软件进行编程。

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