Fully Digital Cosine Signal Driven Pulse Oximeter Without Bandpass Filter Based on Microcontroller

dc.contributor.authorPattana Kainan
dc.contributor.authorSupatsara Wiriyatanachit
dc.contributor.authorManussawee Rungkrae
dc.contributor.authorParamote Wardkein
dc.contributor.authorNoppadol Maneerat
dc.contributor.authorYannawit Wittayaphan
dc.contributor.authorKittithut Promkaew
dc.contributor.authorNarutrat Boonyasittisopon
dc.date.accessioned2026-05-08T19:23:00Z
dc.date.issued2022-4-20
dc.description.abstractABSTRACT In this research, almost fully digital microcontroller pulse oximeter processing by two frequencies of cosine wave-driven red and infrared light sources as well as direct recovering photoplethysmography (PPG) signals from FDM signal without bandpass filter with coherent amplitude demodulation is proposed. An ESP32 microcontroller is employed to generate two cosine waves with two difference equation algorithms instead of using the function of cosine from Arduino or C library language. Two frequency digital cosine wave signals are generated and converted to analog signals with D/A to drive two light sources while two digital cosine signals as mentioned above are recognized in order to use to be as two local oscillator cosine wave signals for recovery of two PPG signals with synchronous demodulation. The RED and IR PPG signals are later used to estimate blood oxygen saturation (SpO2). The experimental result shows that it works well with accuracy and precision of 99.4448% and 0.5551, respectively.
dc.identifier.doi10.1145/3535694.3535715
dc.identifier.urihttps://dspace.kmitl.ac.th/handle/123456789/18802
dc.subjectNon-Invasive Vital Sign Monitoring
dc.subjectECG Monitoring and Analysis
dc.subjectHeart Rate Variability and Autonomic Control
dc.titleFully Digital Cosine Signal Driven Pulse Oximeter Without Bandpass Filter Based on Microcontroller
dc.typeArticle

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