Real-Time Processing for Weighted Pulse Decomposition of Photoplethysmography Signals Based on Interior Point Method in Wearable Devices for Hemodynamic State

Ting Jui Wong, Pei Yun Tsai

研究成果: 書貢獻/報告類型會議論文篇章同行評審

摘要

Waveform decomposition technique can be applied to analyze photoplethysmography (PPG) signals from wearable devices for revealing the latent property of hemodynamic state. Solving for the component waves is considered as a constrained nonlinear optimization problem. The interior point method is used with a refined step size during line search. Exact derivatives in Hessian matrix and gradient are adopted in this work to acquire precise results. Inter-dependency and intra-dependency of the derivatives are exploited to reduce 93.7% computation complexity with a storage of only 62 ingredients. The block LDL decomposition with Bunch Kaufman pivoting strategy that takes advantage of symmetry property of Hessian matrix is employed to handle the linear equations described for the step size. Both single-precision and double-precision arithmetic are supported. From the experimental results, failure rate of 1.93% and one-cycle processing time of 0.1s are achieved by our program, which outperforms the commercial solver and the real-time processing requirement can be satisfied to demonstrate its applicability in the wearable devices.

原文???core.languages.en_GB???
主出版物標題2023 Asia Pacific Signal and Information Processing Association Annual Summit and Conference, APSIPA ASC 2023
發行者Institute of Electrical and Electronics Engineers Inc.
頁面217-221
頁數5
ISBN(電子)9798350300673
DOIs
出版狀態已出版 - 2023
事件2023 Asia Pacific Signal and Information Processing Association Annual Summit and Conference, APSIPA ASC 2023 - Taipei, Taiwan
持續時間: 31 10月 20233 11月 2023

出版系列

名字2023 Asia Pacific Signal and Information Processing Association Annual Summit and Conference, APSIPA ASC 2023

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???event.eventtypes.event.conference???2023 Asia Pacific Signal and Information Processing Association Annual Summit and Conference, APSIPA ASC 2023
國家/地區Taiwan
城市Taipei
期間31/10/233/11/23

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