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Scalable coding and link adaptation for machine-to-machine telecardiology : M2M 원격심전도를 위한 스케일러블 코딩 및 링크 적응기법

DC Field Value Language
dc.contributor.advisor신현식-
dc.contributor.author조용우-
dc.date.accessioned2017-07-13T07:19:39Z-
dc.date.available2017-07-13T07:19:39Z-
dc.date.issued2017-02-
dc.identifier.other000000141209-
dc.identifier.urihttps://hdl.handle.net/10371/119257-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 전기·컴퓨터공학부, 2017. 2. 신현식.-
dc.description.abstractMedical telemetry is one of the most demanding applications in recent wearable computing era. Telecardiology, which uses the power of telecommunications for the remote diagnosis and treatment of heart diseases, is one of the key telemetry applications that leverages IoT-based technologies to improve patient care. Based on recent advances in wearable sensors and telecommunication technologies, this thesis proposes a universal platform for wearable daily cardiac monitoring service.

First, we propose an adaptive framework for layered representation and transmission of ECG (electrocardiography) data that can accommodate a time-varying wireless channel on cellular networks. The representation, combined with the layer-based earliest deadline first (LB-EDF) scheduler, ensures that the perceptual quality of the reconstructed ECG signal does not degrade abruptly under severe channel conditions and that the available bandwidth is utilized efficiently. Simulation shows that the proposed approach significantly improves the perceptual quality of the ECG signal reconstructed at the remote monitoring station.

Then we extend the proposed adaptive framework to support time-critical medical applications. In fact, the use of wireless technologies has been avoided for medical situations that demand instantaneous cardiac monitoring because of their considerable and nondeterministic end-to-end latency. This thesis introduces a universal platform for machine-to-machine (M2M) telecardiology over cellular networks, along with a novel conservative modulation and coding scheme to minimize and stabilize the delay down to 10 ms of ultra-low latency level, incurred during the process of ECG transmission over a wireless medium while maintaining the desired level of ECG pattern quality required for improving the chance of its interpretation. Machine-type communication (MTC) system is adopted for the delivery of patient ECG data to benefit from its inherent reliability, pervasiveness, security, and performance of 4G long term evolution (LTE) technologies with reduced cost and enhanced coverage. Extensive evaluations indicate that the proposed system provides a sufficient level of service for medical-grade instantaneous ECG monitoring in significantly deteriorated channel conditions.
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dc.description.tableofcontents1.Introduction 1
1.1 Motivation and Objectives 1
1.2 Research Contributions 6
1.3 Orgranization of Thesis 8
2 Background and Related Works 10
2.1 ECG Generals 10
2.2 Wireless ECG 15
2.3 Wireless Medium for Telecardiology 20
2.3.1 Wireless Personal Area Networks 21
2.3.2 Wireless Local Area Networks 22
2.3.3 Cellular Networks 23
3 Scalable ECG Transmission over Cellular Networks 24
3.1 System Architecture 26
3.2 Scalable Representation of ECG Data 27
3.3 ARQ-Based Error Control Using LB-EDF 30
3.4 Performance of Wireless ECG Transmission 33
4 Conservative Modulation and Coding for Instantaneous ECG Monitoring over LTE MTC 37
4.1 Architecture of Universal M2M ECG Platform 39
4.2 Demand for Instantaneous Monitoring 43
4.3 System Requirements for Instantaneous Monitoring Services 45
4.3.1 Latency Requirements and Analysis 45
4.3.2 Presentation Requirements for Sufficient Clinical Accuracy 53
4.4 System Architecture for Instantaneous Wireless ECG Monitoring using LTE MTC 58
4.4.1 Spatio-Temporal Scalable Media Coding for ECG signal 60
4.4.2 Conservative Modulation and Coding to Provide Extra Protection for Higher Prioritized Scalable Layers 64
4.4.3 System Parameter Analysis 68
4.5 Performance Evaluation 72
4.5.1 Simulation Environment 72
4.5.2 Simulation Results 72
4.5.3 Service Level Adjustment 78
5 Conclusion 79
5.1 Summary 79
5.2 Future Research Directions 83
Bibliography 84
Abstract in Korean 103
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dc.formatapplication/pdf-
dc.format.extent4080906 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectElectrocardiography-
dc.subject3GPP Long Term Evolution Machine-Type Communications-
dc.subjectMachine-to-machine communications-
dc.subjectInternet of Things-
dc.subjectWearable sensors-
dc.subjectReal-time Systems-
dc.subjectScalable coding-
dc.subjectLink adaptation-
dc.subjectAdaptive modulation and coding-
dc.subjectUltra-low latency communication-
dc.subject.ddc621-
dc.titleScalable coding and link adaptation for machine-to-machine telecardiology-
dc.title.alternativeM2M 원격심전도를 위한 스케일러블 코딩 및 링크 적응기법-
dc.typeThesis-
dc.contributor.AlternativeAuthorYongwoo Cho-
dc.description.degreeDoctor-
dc.citation.pagesix, 104-
dc.contributor.affiliation공과대학 전기·컴퓨터공학부-
dc.date.awarded2017-02-
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