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Meal and Physical Activity Detection from Free-living Data for Discovering Disturbance Patterns to Glucose Levels in People with Diabetes.

Mohammad Reza AskariMudassir RashidXiaoyu SunMert SevilAndrew ShahidehpourKeigo KawajiAli Cinar
Published in: BioMedInformatics (2022)
RNNs with LSTM and 1D convolution layers and bidirectional LSTM with 1D convolution layers provide accurate personalized information about the daily routines of individuals. Significance: Capturing daily behavior patterns enables more accurate future BGC predictions in AID systems and improves BGC regulation.
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