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Machine Learning based Data Driven Diagnostic and Prognostic Approach for Laser Reliability Enhancement (2203.11728v1)
Published 19 Mar 2022 in eess.SP and cs.LG
Abstract: In this paper, a data-driven diagnostic and prognostic approach based on machine learning is proposed to detect laser failure modes and to predict the remaining useful life (RUL) of a laser during its operation. We present an architecture of the proposed cognitive predictive maintenance framework and demonstrate its effectiveness using synthetic data.