2023
DOI: 10.1186/s43591-023-00057-3
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Development of a machine learning-based method for the analysis of microplastics in environmental samples using µ-Raman spectroscopy

Abstract: This research project investigates the potential of machine learning for the analysis of microplastic Raman spectra in environmental samples. Based on a data set of > 64,000 Raman spectra (10.7% polymer spectra) from 47 environmental or waste water samples, two methods of deep learning (one single model and one model per class) with the Rectified Linear Unit function (ReLU) (hidden layer) as the activation function and the sigmoid function as the output layer were evaluated and compared to human-only annota… Show more

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