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Analysis and Implementation of a Direct Phase Unwrapping Method for Displacement Measurement Using Self-Mixing Interferometry

机译:自混合干涉法测量位移的直接相位展开方法的分析与实现

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Self-mixing or optical feedback interferometry has been widely used for displacement and velocity measurement applications. For metric information retrieval with <; λ/2 precision, various phase unwrapping methods have been proposed. However, these are computationally heavy and require large number of hardware resources, thereby hindering the development of real-time, embedded solutions for large bandwidth applications. In this regard, a simple and efficient feedback phase retrieval algorithm, called consecutive samples-based unwrapping (CSU) is presented. Detailed analysis of its error performance has been conducted as a function of key optical feedback parameters. A theoretical study has also been conducted to explain as to why such good error performance is obtained for such a simple algorithm by establishing a linear relation between the modulated laser power signal and the laser phase in the absence of optical feedback for specific ranges of key optical feedback parameters. We applied CSU on various simulated and experimentally acquired signals using SMI for the retrieval of harmonic and arbitrary displacements and found out that CSU retrieves target displacement with a precision of about λ/10 while consuming much less time and hardware resources. The paper also presents FPGA based hardware design results of CSU and compares its performance with a traditional analytical phase unwrapping method in terms of maximum clock frequency, latency, and on-chip hardware resources. This hardware comparison strongly establishes the advantages of such a fast and computationally light algorithm, readily suitable for large bandwidth, embedded, and real-time sensing applications.
机译:自混合或光反馈干涉测量法已广泛用于位移和速度测量应用。用于使用<;的度量信息检索λ/ 2精度,已提出了各种相位解缠方法。然而,这些计算量很大并且需要大量的硬件资源,从而阻碍了针对大带宽应用的实时嵌入式解决方案的开发。在这方面,提出了一种简单有效的反馈相位检索算法,称为连续基于样本的展开(CSU)。已根据关键的光反馈参数对它的错误性能进行了详细分析。还进行了理论研究,以解释为什么对于这样一种简单的算法,通过在关键光学器件的特定范围内不存在光反馈的情况下,通过在已调制的激光功率信号和激光相位之间建立线性关系,来获得如此好的误差性能反馈参数。我们使用SMI将CSU应用到各种模拟和实验获得的信号上,以获取谐波和任意位移,并发现CSU以大约λ/ 10的精度检索目标位移,同时消耗更少的时间和硬件资源。本文还介绍了基于FPGA的CSU硬件设计结果,并在最大时钟频率,延迟和片上硬件资源方面将其性能与传统的分析相位展开方法进行了比较。这种硬件比较强有力地确立了这种快速且计算轻便的算法的优势,很容易适用于大带宽,嵌入式和实时感测应用。

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