專業
王廷瑋教授長期投入生醫電子、穿戴式電子裝置、感測器系統、儀器量測、AIoT與智慧醫療應用等跨領域研究,其核心貢獻在於以電機電子工程技術開發新型生醫感測裝置與系統平台,並將電磁感應、電容式感測、被動式LC共振、類比前端電路、無線讀取器、軟性電子與訊號處理等電機工程核心技術,整合成可實際應用於人體健康監測之創新電子裝置。其研究並非單純以醫療應用為主軸,而是以電機電子裝置創新為本質,透過醫療與健康照護場域展現其技術價值與社會影響力。
王教授最具代表性的貢獻之一,是發展生醫渦流感測器(Biomedical Eddy Current Sensors, BECS)。有別於傳統穿戴式光學感測常受膚色、穿透深度、配戴條件影響,BECS以電磁感應與渦流量測作為核心機制,可進行非接觸式或低接觸負擔之心血管與心肺訊號量測。王教授進一步將此技術實作於多種穿戴式電子裝置,包括胸貼片、智慧手錶、戒指與頸貼片等形式,展現其在感測器設計、電磁耦合、訊號擷取、微型化系統整合與穿戴式儀器設計上的完整能力。
在BECS的基礎上,王教授進一步推進至無電池、無晶片之被動式LC感測網路。此一研究方向具有重要電機工程意義,因為未來大面積、多節點、長時間的人體感測系統,若每個感測節點都需配置電池、晶片與無線模組,將面臨重量、成本、充電、可靠度與維護等問題。王教授以被動式 LC共振、磁耦合與外部讀取器架構,將身體端感測節點設計為可無電池、無晶片運作,並把主動式電路、訊號讀取、電源管理與無線傳輸集中於外部可重複使用之讀取器。此設計不僅降低穿戴端系統複雜度,也提升電子裝置於長期監測與多點式感測情境中的實用性。
近期,王教授更進一步完成無電池、無晶片IoT智慧衣平台,可同步進行多部位血液動力學監測。此成果代表其研究已由單一穿戴式感測器,進展為人體感測網路與智慧衣電子系統。該平台可整合多個被動式生理感測節點,並透過外部讀取器與無線資料傳輸進行同步量測,展現其在電磁感測、系統整合、軟性電子、IoT 架構與多通道儀器量測方面的創新能力。這項成果亦已發表於 IEEE Internet of Things Journal,顯示其研究已獲得國際電機電子與IoT領域之肯定。
王教授的研究成果具有高度學術與轉譯價值。自2022年8月加入清華大學以來,他已以通訊作者身分在IEEE Internet of Things Journal、IEEE Transactions on Instrumentation and Measurement、Measurement等重要期刊論文,研究內容涵蓋穿戴式感測、非接觸式生理量測、智慧手錶、戒指式感測器、無電池感測網路、智慧衣、心肺監測、血壓量測與血管狀態評估等。這些成果不僅展現其提出原創感測機制的能力,更證明其能將電機電子概念落實為完整裝置、量測系統與可驗證之工程平台。
在智慧財產與工程轉譯方面,王教授已累積多件美國發明專利與台灣發明專利,內容涵蓋穿戴式感測模組、血管狀態量測裝置、生理感測貼片、渦流感應感測方法、心肺狀態量測、生理訊號擷取與無線感測系統等。
王教授的卓越表現亦獲得多項國內外重要肯定,包括國科會未來科技獎、國家新創獎、連續兩年獲得美國國家醫學院健康長壽大挑戰催化創新獎、教育部國際優秀人才獎、亞太醫工聯盟年輕學者獎,並於2025年晉升為IEEE Senior Member。並帶領學生榮獲2026年鴻海科技獎與旺宏金矽獎,顯示其研究兼具電機電子工程原創性、系統實作能力、國際能見度與轉譯應用潛力。整體而言,王廷瑋教授以電機工程為核心,建立了一條從新型感測原理、電子電路與儀器設計、穿戴式裝置實作,到智慧醫療應用的完整技術路線。
連結
榮譽
研究單位
經歷
特別標示 - 研究成果
期刊文章
LC Repeater-Inspired Battery-Free, Chipless, Flexible Body Sensor Network With Lightweight Reader
已發佈 13/02/2025
IEEE Transactions on Instrumentation and Measurement, 74
Body sensor network (BSN) is rapidly evolving in mobile health (m-health), enabling the monitoring of multiple physiological sites through interconnected wireless wearable devices for efficient health management. However, the extensive use of devices on the body often requires substantial batteries and IC chips, increasing system complexity, weight, and cost, thus limiting practical applications. We present a battery-free, chipless physiological sensor employing an on-body passive LC repeater to enhance magnetic coupling between a sensor reader and the biomedical target. The passive LC repeater, encapsulated in flexible thermoplastic polyurethane (TPU), integrates seamlessly with skin or clothing to capture contact and noncontact physiological signals, including heart, lung, carotid, radial, and even femoral signals using an external coil connected to a compact 2.1×2.3 cm, lightweight 7.8 g sensor reader, simplifying signal acquisition, and reducing the complexity of readout techniques compared to cumbersome vector network analyzers (VNAs). To demonstrate its robust performance, the skin-attached passive LC repeater was sprayed with water and fully immersed, yet the sensor reader, positioned 2 cm away, continued to successfully capture physiological signals. In conclusion, this study presents a battery-free, chipless BSN solution utilizing on-body passive LC circuitry characterized by a simple structure, lightweight design, and low cost, ideal for disposable skin electronics and smart clothing, offering superior wearable, unobtrusive, and long-term health monitoring solutions.
期刊文章
A Skin Tone Insensitive, Fully Integrated Smartwatch for Continuous Blood Pressure Measurement
已發佈 20/11/2024
IEEE Transactions on Instrumentation and Measurement, 74
Smartwatches commonly employ photoplethysmography (PPG) sensors for pulse measurement and health index computation, including heart rate (HR), blood pressure (BP), etc. However, PPG’s susceptibility to skin tone variations presents challenges to accuracy. This study presents a biomedical eddy current sensor (BECS)-based wristwatch that integrates a passive LC tank, inductance-to-digital converter ASIC, and wireless module fully embedded into the case back of the wristwatch. The BECS technology relies on magnetic coupling between the magnetic fields generated by the LC coil and the counteracting magnetic fields induced by wrist artery, enabling the measurement of resonant frequency variations in response to arterial pulse signals. To enhance pulse measurement sensitivity, the optimal operating resonant frequency was determined by implementing a capacitor array and measuring pulse signals by human measurement to derive personalized design parameters. The proposed BECS-based wristwatch demonstrates pulse signal measurement insensitivity to skin tone compared to PPG-based modalities, as validated among subjects with different Fitzpatrick skin types. Importantly, the personalized BP algorithm was implemented based on HR and modified normalized pulse volume (mNPV), both derived from the measured pulse signals. The BP performance demonstrates low mean absolute errors (MAE) of 3.18 ± 2.61 mmHg for systolic BP (SBP) and 3.64 ± 2.57 mmHg for diastolic BP (DBP) among ten subjects, meeting the Association for the Advancement of Medical Instrumentation (AAMI) standard below 5 ± 8 mmHg. The generalization of each personalized BP model was further verified through train-test split validation, with all results remaining within AAMI criteria. In conclusion, this study introduces a novel BECS-based wristwatch, highlighting its skin-tone friendliness and accurate BP monitoring, offering a promising alternative to optical modalities, thereby driving future smartwatch innovations.
期刊文章
Ring-Type Biomedical Eddy Current Sensor for Continuous Blood Pressure Monitoring
已發佈 28/08/2024
IEEE Transactions on Instrumentation and Measurement, 73
Continuous cuffless blood pressure (BP) sensors are evolving for long-term cardiovascular monitoring, especially in diagnostic and prognostic stages. The existing techniques rely on photoplethysmography (PPG) and bio-impedance that have limitations, such as sensitivity to skin tone and high skin-electrode contact impedance that would degrade physiological signals measurement. To this end, this study presents a novel wearable coil-based ring-type sensor utilizing the novel biomedical eddy current technique for continuous BP measurement. The LC-based ring sensor generates the AC magnetic fields along with the finger in parallel with the digital arteries, detecting the resonant frequency variations in response to real-time vessel pulsations. The proposed ring-type sensor is characterized by its compact form with a diameter of 2.42 cm and supporting wireless data transmission. To optimize personalized sensing, the various resonant frequencies on vessel pulse measurements were investigated by human trials. The novel ring sensor is employed for the estimation of BP, demonstrating high Pearson’s correlations (systolic BP (SBP): 0.88, diastolic BP (DBP): 0.80) and low mean absolute error (MAE) within 10 subjects (SBP: 3.64 ± 2.71 mmHg, DBP: 3.20 ± 2.66 mmHg), revealing the significant potential use of biomedical eddy current-based ring sensor for continuous, accurate, and comprehensive cardiovascular monitoring.
期刊文章
已發佈 13/05/2024
IEEE Transactions on Instrumentation and Measurement, 73
Continuous monitoring of heart rate (HR) and respiratory rate (RR) plays a pivotal role in evaluating cardiopulmonary coordination. Wearable technologies have empowered long-term monitoring of cardiopulmonary parameters across a spectrum of activities, including physical exercise, mental states, dietary habits, and the effects of pharmaceutical interventions. This study presents a wearable pocket-sized cardiopulmonary sensor based on biomedical eddy current sensing technology. The novel sensor utilizes the magnetic coupling between ac coil-produced magnetic fields and cardiopulmonary eddy current-induced counteracting magnetic fields to measure resonant frequency variation in response to synchronized cardiac and lung activities without skin contact. The proposed pocket-sized sensor is characterized by its compact form with a diameter of 4.53 cm and supporting wireless data transmission. Importantly, the influence of resonant frequencies on cardiopulmonary signals was investigated through capacitor adjustments, resulting in personalized optimization of measurement conditions. In practical applications, the effect of wide fabric thicknesses on measurement performance was assessed, demonstrating identifiable signals for allowing the determination of HR and RR. In real-life scenarios, HR and RR were measured during both resting and physical exercise conditions, effectively showcasing the potential of a single compact sensor to capture essential cardiorespiratory coordination (CRC) indicators. These findings provide strong validation for the novel sensor’s promising potential in the realm of wearable, long-term, all-in-one cardiopulmonary healthcare.
學歷
全球ID
指標
- 17 研究成果總檢視次數
- 4 檔案下載總次數
- 源自Web of Science
- 529 引用總次數
- 11 H-Index