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- W4225346770 abstract "Atrial fibrillation (AF) is a common arrhythmia worldwide. The visual examination for electrocardiogram is the major diagnosis method, which is generally burdensome and inefficient. In this work, an improved bidirectional long short term memory (IB-LSTM) frame is specially designed for intelligence-based AF signals classification. Based on the existing B-LSTM architecture, a scale factor is installed into IB-LSTM network that enables the model system to effectively reallocate information representation and therefore learn better representation. After several pre-processing steps such as denoising, these results demonstrate consistent performance improvements with the accuracy of 98.2% and 97.5% against multiple existing approaches and lower computation costs than B-LSTM with the two public MIT-BIH AF and arrhythmia databases. The proposed IB-LSTM network is capable of trading off between model accuracy and computing resources. In particular, this research provides the first empirical exploration of redesign architecture of B-LSTM to alleviate high computation cost and information redundancy, which shows great prospects as efficient auxiliary tools for medical diagnosis." @default.
- W4225346770 created "2022-05-05" @default.
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- W4225346770 date "2022-07-01" @default.
- W4225346770 modified "2023-10-01" @default.
- W4225346770 title "A novel bidirectional LSTM network based on scale factor for atrial fibrillation signals classification" @default.
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- W4225346770 doi "https://doi.org/10.1016/j.bspc.2022.103663" @default.
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