Deep learning in optical metrology: a review
Глубокое обучение в оптической метрологии: обзор
2022-02-23
SCID: 54.1/kk39ffz7
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deep learningfringe denoisingoptical metrologyphase retrievalphase unwrapping
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Abstract (AI)
With the advances in scientific foundations and technological implementations, optical metrology has become versatile problem-solving backbones in manufacturing, fundamental research, and engineering applications, such as quality control, nondestructive testing, experimental mechanics, and biomedicine. In recent years, deep learning, a subfield of machine learning, is emerging as a powerful tool to address problems by learning from data, largely driven by the availability of massive datasets, enhanced computational power, fast data storage, and novel training algorithms for the deep neural network. It is currently promoting increased interests and gaining extensive attention for its utilization in the field of optical metrology. Unlike the traditional "physics-based" approach, deep-learning-enabled optical metrology is a kind of "data-driven" approach, which has already provided numerous alternative solutions to many challenging problems in this field with better performances. In this review, we present an overview of the current status and the latest progress of deep-learning technologies in the field of optical metrology. We first briefly introduce both traditional image-processing algorithms in optical metrology and the basic concepts of deep learning, followed by a comprehensive review of its applications in various optical metrology tasks, such as fringe denoising, phase retrieval, phase unwrapping, subset correlation, and error compensation. The open challenges faced by the current deep-learning approach in optical metrology are then discussed. Finally, the directions for future research are outlined.
Key Findings
1
Applications reviewed include fringe denoising, phase retrieval, phase unwrapping, subset correlation, and error compensation.
2
Deep learning is emerging as a data-driven alternative to traditional physics-based methods in optical metrology.
3
Deep-learning-enabled optical metrology has provided alternative solutions with improved performance for challenging measurement problems.
4
The review synthesizes current progress and identifies open challenges and future research directions for deep learning in optical metrology.
Research Object
Application of deep learning methods in optical metrology
Research Subject
the applications, performance, current challenges, and future directions of deep-learning technologies across optical metrology tasks
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2022-02-23
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