Structural-functional model of a parallel-hierarchical optical network as a systematic tool for artificial intelligence methods
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The article discusses the challenges of real-time data processing and analyzes various methods used to solve them, with a focus on image processing. It points out the limitations of existing methods and argues for the need to use more effective and modern technologies, proposing parallel-hierarchical networks as a promising solution. The article provides a detailed description of the structural-functional model of this type of network, which involves cyclically transforming the input data matrix using a \"common part\" criterion and an array evolution operator until a set of individual elements is formed. The proposed model is expected to improve real-time image recognition and can potentially be applied to other fields by using the \"common part\" criterion.
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Tymchenko L., Kokriatska N., Tverdomed V., Pavlov S., Bondarenko Z., Vitiuk A., Didenko Yu., Semenova L., Zhuk D., Sawicki D., Amirgaliyev Ye., Smailova S. Structural-functional model of a parallel-hierarchical optical network as a systematic tool for artificial intelligence methods. Proc. of SPIE. Optical Fibers and Their Applications Lublin, Poland, 2023. 2023. Vol. 12985. 129850H1-6. DOI: https://doi.org/10.1117/12.3023445.