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author:

Ma, B. (Ma, B..) [1] | Tan, S. (Tan, S..) [2] | Yang, M. (Yang, M..) [3] | Huang, J. (Huang, J..) [4] | Wu, Z. (Wu, Z..) [5] | Li, S. (Li, S..) [6] | Benton, R. (Benton, R..) [7] | Li, D. (Li, D..) [8] | Huang, Y. (Huang, Y..) [9] | Kasukurthi, M.V. (Kasukurthi, M.V..) [10] | Lin, J. (Lin, J..) [11] | Borchert, G.M. (Borchert, G.M..) [12]

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Scopus

Abstract:

Obstructive sleep apnea syndrome (OSAS) is a breathing disorder presenting during sleep. Although polysomnography (PSG) is the gold standard to diagnose OSAS, it is an expensive method that is quite complicated to use. Worse, it takes a long time between testing and getting a diagnosis from PSG. Thus, we have designed an algorithm aimed at diagnosing OSAS in a more efficient manner. First, blood oxygen saturation (SpO2) data are processed to obtain statistical features, which are then trained to establish a classification model based on a support vector machine (SVM) strategy; the resulting SVM model performs the diagnosis of OSAS. Furthermore, in order to allow remote diagnosis, we combine our algorithm with a monitoring system. To achieve this, physiological data are collected from a smart phone and then uploaded to the SVM model in the cloud. Once processed, a diagnosis report is returned to the smart phone. A preliminary evaluation of our algorithm based on real-world data is extremely promising as we find its accuracy, sensitivity, and specificity to be 90.2%, 87.6%, and 94.1%, respectively. © 2019 IEEE.

Keyword:

OSAS; Sleep Apnea; SpO2; SVM

Community:

  • [ 1 ] [Ma, B.]Qilu University of Technology, Shandong Academy of Science, Shandong Provincial Key Laboratory of Computer Networks, Jinan, China
  • [ 2 ] [Tan, S.]School of Computing, University of South Alabama, Mobile, AL, United States
  • [ 3 ] [Yang, M.]Qilu University of Technology, Shandong Academy of Science, Shandong Provincial Key Laboratory of Computer Networks, Jinan, China
  • [ 4 ] [Huang, J.]School of Computing, University of South Alabama, Mobile, AL, United States
  • [ 5 ] [Wu, Z.]School of Computing, University of South Alabama, Mobile, AL, United States
  • [ 6 ] [Li, S.]School of Computing, University of South Alabama, Mobile, AL, United States
  • [ 7 ] [Benton, R.]School of Computing, University of South Alabama, Mobile, AL, United States
  • [ 8 ] [Li, D.]School of Computing, University of South Alabama, Mobile, AL, United States
  • [ 9 ] [Huang, Y.]School of Computing, University of South Alabama, Mobile, AL, United States
  • [ 10 ] [Kasukurthi, M.V.]College of Allied Health Professions, University of South Alabama, Mobile, AL, United States
  • [ 11 ] [Lin, J.]Ocean School, Fuzhou University, Fuzhou, China
  • [ 12 ] [Borchert, G.M.]Qilu University of Technology, Shandong Academy of Science, Shandong Provincial Key Laboratory of Computer Networks, Jinan, China

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Source :

Proceedings - 2019 IEEE International Conference on Bioinformatics and Biomedicine, BIBM 2019

Year: 2019

Page: 1556-1560

Language: English

Cited Count:

WoS CC Cited Count:

SCOPUS Cited Count: 9

ESI Highly Cited Papers on the List: 0 Unfold All

WanFang Cited Count:

Chinese Cited Count:

30 Days PV: 2

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