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博碩士論文 etd-0623120-154027 詳細資訊
Title page for etd-0623120-154027
論文名稱
Title
Wi-Fi為基礎之人體成像與生理監測
Wi-Fi-Based Imaging and Vital-Sign Monitoring of Humans
系所名稱
Department
畢業學年期
Year, semester
語文別
Language
學位類別
Degree
頁數
Number of pages
82
研究生
Author
指導教授
Advisor
召集委員
Convenor
口試委員
Advisory Committee
口試日期
Date of Exam
2020-07-17
繳交日期
Date of Submission
2020-07-23
關鍵字
Keywords
生理監測、分時多工、人體成像、數位波束成型、相位陣列、雷達成像、Wi-Fi雷達、都卜勒雷達
phased array, time-division multiplexing, human imaging, vital-sign monitoring, Wi-Fi radar, radar imaging, digital beamforming, Doppler radar
統計
Statistics
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中文摘要
本論文是使用環境中的Wi-Fi通訊波做為都卜勒雷達系統的發射訊號源,並結合IQ正交解調的接收機架構,去進行生理感測及人體成像的實驗。首先,針對雷達系統所使用的Wi-Fi通訊波做分析,由於其含有兩種正交的雜訊成分,分別為振幅調制(AM Noise)和相位調制雜訊(PM Noise),會造成雷達系統的感測性能不佳,為了改善因Wi-Fi雜訊引起的問題,可經由本實驗室提出的注入鎖定技術以及本論文提出的雙通道雜訊抵消法去抑制此兩種Wi-Fi雜訊,使得都卜勒訊號品質提升,進而能夠量測到人體的呼吸和心跳。
接下來為了進一步實現人體成像,除了使用本論文提出的兩種方法進行直流準位偏移校正,還會基於數位波束成型相位天線理論提出一演算法,其原理是當目標物位於不同角度時,每個接收通道會收到不同相位差的訊號,可以利用此相位差來推得最大回波能量的反射角度,經過乘上一個角度權重後,即可獲得能量分布圖,並以1T4R的一維數位波束成型實驗驗證其可行性。最後透過分時多工(Time-Division Multiplexing, TDM)的技術將系統提升為8T8R的二維數位波束成像雷達,然後藉由數位訊號處理的技術抑制旁波辦(Sidelobe)進而實現本論文的最終目標-人體成像。
關鍵字:都卜勒雷達、數位波束成型、相位陣列、雷達成像、Wi-Fi雷達、生理監測、人體成像、分時多工
Abstract
The aim of this thesis is to develop a passive Doppler radar based on a quadrature demodulation receiver architecture. The system uses a transmit signal of Wi-Fi and processes the echo signal of Wi-Fi to detect human vital signs and construct human images. At the beginning, two orthogonal Wi-Fi noise components, AM noise and PM noise, are analyzed because both noise components affect negatively on sensing performance of the system. To address this issue, this thesis proposes a dual-channel noise cancellation method for use in the afore-established injection-locking technique to reduce these two Wi-Fi noise components, and thereby improves the quality of Doppler signal to enable the detection of respiration and heart rates.
Next, to further construct human images, this thesis proposes two dc-offset calibration methods and a digital beamforming phased-array algorithm. The principle of digital beamforming is as follows: when the target is located at different azimuth angles, each receive channel receives an echo signal with different phases. The phase difference between receive channels can be used to derive the angle of maximum echo intensity. After applying an angular weight function, an energy distribution diagram can be obtained. Afterwards, this thesis conducts a 1T4R 1D digital beamforming experiment to verify the feasibility of the algorithm. Finally, this thesis uses the time-division multiplexing (TDM) technique to upgrade the system to an 8T8R 2D digital beamforming radar that can successfully construct human images after suppressing the sidelobes by digital signal processing.
Keywords: Doppler radar, digital beamforming, phased array, radar imaging, Wi-Fi radar, vital-sign monitoring, human imaging, time-division multiplexing.
目次 Table of Contents
論文審定書..................................................................................................................... i
論文公開授權書............................................................................................................ ii
誌謝.............................................................................................................................. iii
摘要............................................................................................................................... iv
Abstract .......................................................................................................................... v
目錄............................................................................................................................... vi
圖次............................................................................................................................... ix
表次.............................................................................................................................. xii
第一章 序論................................................................................................................ 1
1.1 研究背景與動機........................................................................................... 1
1.2 都卜勒雷達簡介與應用............................................................................... 2
1.3 二維波束成像簡介....................................................................................... 6
1.4 章節規劃....................................................................................................... 8
第二章 生理監測...................................................................................................... 10
2.1 前言............................................................................................................. 10
2.2 正交解調電路............................................................................................. 10
2.3 可行性評估實驗......................................................................................... 14
2.3.1 內部天線的增益問題與不同訊號源之比較.................................. 14
2.3.2 結論.................................................................................................. 17
2.4 應用於生理感測之開發............................................................................. 18
2.4.1 前言.................................................................................................. 18
2.4.2 雙通道雜訊抵消法與直流準位校正.............................................. 19
2.4.2.1 Wi-Fi訊號的分析與直流準位的校正 ................................ 19
2.4.2.2 雙通道雜訊抵消法的數學式與實驗步驟........................... 20
2.4.3 下行訊號源偵測模式...................................................................... 23
2.4.3.1 實驗系統設置....................................................................... 23
2.4.3.2 量測結果............................................................................... 26
2.4.4 上行訊號源偵測模式...................................................................... 27
2.4.4.1 實驗系統設置....................................................................... 27
2.4.4.2 利用上行訊號做訊號源之實驗結果................................... 30
2.4.5 上行訊號與下行訊號的比較.......................................................... 32
2.4.6 結合波束成型單人追蹤及生理徵象量測...................................... 33
2.4.6.1 實驗系統設置....................................................................... 33
2.4.6.2 量測結果............................................................................... 35
2.5 實驗討論..................................................................................................... 36
第三章 人體成像........................................................................................................ 37
3.1 前言............................................................................................................. 37
3.2 相位陣列簡介............................................................................................. 37
3.3 陣列天線設計............................................................................................. 40
3.4 訊號處理與校正程序................................................................................. 43
3.4.1 理論模型與模擬.............................................................................. 43
3.4.2 直流準位校正程序.......................................................................... 45
3.5 一維波束成型多人追蹤及生理感測......................................................... 48
3.5.1 實驗系統設置.................................................................................. 48
3.5.2 量測結果.......................................................................................... 51
3.6 二維波束成像及應用................................................................................. 54
3.6.1 一維波束成型到二維波束人體成像.............................................. 54
3.6.2 實驗系統設置.................................................................................. 55
3.6.3 雷達系統性能測量.......................................................................... 59
3.6.4 人體成像結果及應用...................................................................... 61
3.7 實驗討論與規格表..................................................................................... 62
第四章 結論.............................................................................................................. 63
參考文獻...................................................................................................................... 64
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