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Titlebook: Bioinformatics Research and Applications; 17th International S Yanjie Wei,Min Li,Zhipeng Cai Conference proceedings 2021 Springer Nature Sw

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Claudio Campagna,Daniel Guevara in biological structure and functions. However, experimental identification of succinylation sites is time-consuming and laborious. Traditional technology cannot meet the rapid growth of the sequence data sets. Therefore, we proposed a new computational method named SuccSPred to predict succinylati
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Bioinformatics Research and Applications978-3-030-91415-8Series ISSN 0302-9743 Series E-ISSN 1611-3349
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0302-9743 nized in topical sections named: AI and disease; computational proteomics; biomedical imaging; drug screening and drug-drug interaction prediction; Biomedical data; sequencing data analysis..978-3-030-91414-1978-3-030-91415-8Series ISSN 0302-9743 Series E-ISSN 1611-3349
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Understanding AI Risks and Its Impacts function has been designed, which contains the long-term abnormal blood glucose as a penalty. The proposed model has been tested with a T1D simulator. The experimental results indicate that the introduced model is better at avoiding the blood glucose at a low level and keeping the patients on a longer duration of normal blood glucose level.
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Reinforcement Learning for Diabetes Blood Glucose Control with Meal Information function has been designed, which contains the long-term abnormal blood glucose as a penalty. The proposed model has been tested with a T1D simulator. The experimental results indicate that the introduced model is better at avoiding the blood glucose at a low level and keeping the patients on a longer duration of normal blood glucose level.
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