分数傅里叶变换:一种改进普适移动机器人多模态通信的新工具

C. Szász, E. Dulf
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引用次数: 1

摘要

众所周知,多模态是人机通信中非常常见的任务。人类对话也被认为是多模式的,世界范围内进行了大量的研究来设计新的机器人系统,其中嵌入了越来越多的智能,用于人类手势或语音识别能力的增强。提出了一种基于分数傅里叶变换的普适移动机器人多模态通信能力改进策略。基于NI SbRIO-9631原型机器人的标准配置,采用特殊的硬件架构,测试并实现了一种新的语音信号识别算法。实验证明,具有这些附加语音信号分析能力的普适移动机器人在其环境中表现出更强的智能和协作能力,显著提高了人机多模态通信。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fractional Fourier transform: A novel tool for multimodal communication improvement of pervasive mobile robots
As it is well known, multimodality is a very common task in human-robot communication. Human conversation is also considered multimodal, and a great amount of research is done worldwide to engineer novel robotic systems, with more and more intelligence for human gestures or speech recognition abilities enhancements embedded within them. This paper presents a Fractional Fourier transform-based strategy for multimodal communication abilities improvement of pervasive mobile robots. Using a special hardware architecture, based on the standard configuration of the NI SbRIO-9631 prototype robot, a novel voice signals recognition algorithm has been tested and implemented. The experiments prove that the pervasive mobile robot endowed with these additional voice signals analyzing abilities displays more intelligence and cooperativeness in its environment significantly improving human-robot multimodal communication.
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