声音(地理)
特征(语言学)
睡眠(系统调用)
计算机科学
模式识别(心理学)
人工智能
学习迁移
语音识别
声学
物理
哲学
语言学
操作系统
作者
Jing Luo,Haiqin Liu,Xing Gao,Bin Wang,Xiaobei Zhu,Yewen Shi,Xinhong Hei,Xiaoyong Ren
标识
DOI:10.1088/1361-6579/ab9e7b
摘要
Big data, deep learning and transfer learning can be successfully applied to improve diagnostic accuracy in OSA detection. The performance of the proposed approach is superior to that of traditional audio analysis technology. The proposed method significantly reduces difficulties in OSA detection and diagnosis, such that potential OSA patients can perform initial inspections by themselves at home.
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