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Detection of Human Echo Locator Waveform Using Gammatone Filter Processing

机译:使用伽马通滤波处理的人类回声定位器波形检测

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Human echolocation is a technique that is commonly used by blind persons to perceive their surroundings by analysing echo signals using an active signal (often tongue clicks). Over the years, studies into human echo location have explored vibrant disciplines, including the engineering perspective. The studies have been continuous and report on the human echo locator waveforms, which are individually unique, with the existence of multiple frequency components. However, possible explanations as to how blind people detect their own pair of transmitted and echo signals still remain vague. The detection process using the conventional matched filter has led to poor performance probably because the waveform consists of multiple frequency components. It was reported in a recent analysis that an ideal scheme for the detection of a human echo locator waveform click is possibly through the adoption of bio-inspired processing. Therefore, a similar detection mechanism based on a bio-inspired method incorporated with a gammatone filter was proposed in this paper for the transmitted-echo signal pair. The optimal detection output led to an ideal method for the detection of human echolocator signals. Furthermore, the need for alternative signal processing approaches for future man-made sensor systems has placed a demand on researchers to explore the perspectives in new fields of study. As such, the positive results explored in this paper can be beneficial for emerging concepts in new developments in the application of radar and sonar systems in the near future.
机译:人体回声定位是盲人通常使用的一种技术,通过使用活动信号(通常是舌头咔嗒声)分析回声信号来感知周围的环境。多年来,对人类回声定位的研究探索了充满活力的学科,包括工程学观点。这项研究是连续的,并且报告了人类回声定位器的波形,这些波形是独特的,并且存在多个频率分量。然而,关于盲人如何检测他们自己的一对发射和回声信号的可能解释仍然不清楚。使用常规匹配滤波器的检测过程可能导致性能不佳,这可能是因为波形由多个频率分量组成。据最近的一项分析报道,检测人类回声定位器波形咔嗒声的理想方案可能是采用生物启发处理技术。因此,本文针对发射回波信号对,提出了一种基于生物启发方法并结合了伽马通滤波器的检测机制。最佳的检测输出导致了一种理想的方法来检测人类回声定位器信号。此外,对于未来的人造传感器系统需要替代信号处理方法的需求,也要求研究人员探索新的研究领域中的观点。因此,本文探讨的积极成果可能会在不久的将来有益于雷达和声纳系统应用新发展中的新兴概念。

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