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Smart ring resonator–based sensor for multicomponent chemical analysis via machine learning 被引量:3

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摘要 We demonstrate a smart sensor for label-free multicomponent chemical analysis using a single label-free ring resonator to acquire the entire resonant spectrum of the mixture and a neural network model to predict the composition for multicomponent analysis. The smart sensor shows a high prediction accuracy with a low rootmean-squared error ranging only from 0.13 to 2.28 mg/m L. The predicted concentrations of each component in the testing dataset almost all fall within the 95% prediction bands. With its simple label-free detection strategy and high accuracy, the smart sensor promises great potential for multicomponent analysis applications in many fields.
出处 《Photonics Research》 SCIE EI CAS CSCD 2021年第2期I0031-I0037,共7页 光子学研究(英文版)
基金 National Research Foundation Singapore(PUB-1804-0082,NRF-CRP13-2014-01) Ministry of Education—Singapore(MOE2017-T3-1-001)。
关键词 SMART NEURAL SMART
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