請用此 Handle URI 來引用此文件:
http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/101676完整後設資料紀錄
| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 李翔傑 | zh_TW |
| dc.contributor.advisor | Hsiang-Chieh Lee | en |
| dc.contributor.author | 蔡昀典 | zh_TW |
| dc.contributor.author | Yun-Tien Tsai | en |
| dc.date.accessioned | 2026-02-26T16:37:34Z | - |
| dc.date.available | 2026-02-27 | - |
| dc.date.copyright | 2026-02-26 | - |
| dc.date.issued | 2025 | - |
| dc.date.submitted | 2026-02-02 | - |
| dc.identifier.citation | Thilo Gambichler, et al. "Optical coherence tomography in dermatology: technical and clinical aspects." Archives of dermatological research 303 (2011): 457-473.
Thilo Gambichler, et al. "Applications of optical coherence tomography in dermatology." Journal of dermatological science 40.2 (2005): 85-94. Yasushi Shimada, et al. "Application of optical coherence tomography (OCT) for diagnosis of caries, cracks, and defects of restorations." Current oral health reports 2 (2015): 73-80. Bill W. Colston, et al. "Dental oct." Optics express 3.6 (1998): 230-238. Ahmed M. Hagag, et al. "Optical coherence tomography angiography: technical principles and clinical applications in ophthalmology." Taiwan journal of ophthalmology 7.3 (2017): 115-129. Suhail Alam, et al. "Clinical application of rapid serial Fourier-domain optical coherence tomography for macular imaging." Ophthalmology 113.8 (2006): 1425-1431. Osama MA Ibrahim, et al. "Application of visante optical coherence tomography tear meniscus height measurement in the diagnosis of dry eye disease." Ophthalmology 117.10 (2010): 1923-1929. Kim S, et al. "Design and implementation of a low-cost, portable OCT system. " Biomed Opt Express. 2018 Feb 20;9(3):1232-1243. doi: 10.1364/BOE.9.001232. PMID: 29541516; PMCID: PMC5846526. D. Seong, et al. "Development of Single-Board Computer-Based Temperature-Insensitive Compact Optical Coherence Tomography for Versatile Applications," in IEEE Transactions on Instrumentation and Measurement, vol. 73, pp. 1-9, 2024, Art no. 4504609, doi: 10.1109/TIM.2024.3381658. Dsouza R, et al. "Economical and compact briefcase spectral-domain optical coherence tomography system for primary care and point-of-care applications. " J Biomed Opt. 2018 Sep;23(9):1-11. doi: 10.1117/1.JBO.23.9.096003. PMID: 30251484; PMCID: PMC6170142. Wang, W., et al. "High-Performance, Low-Cost Optical Coherence Tomography System Using a Jetson Orin Nano for Real-Time Control and Image Processing. " Translational Vision Science & Technology, 14(3), 24. Ge Song, et al. "A review of low-cost and portable optical coherence tomography."Progress in Biomedical Engineering 3.3 (2021): 032002. Cho, H., et al. "Development of raspberry Pi single-board computer architecture based ultra-compact optical coherence tomography. " Optics and Lasers in Engineering, 2022. 148: p. 106754. "Arduino Uno Rev3" https://store.arduino.cc/products/arduino-uno-rev3 "Raspberry-pi-3-model-b-plus" https://www.raspberrypi.com/products/raspberry-pi-3-model-b-plus/ "LattePanda 3 Delta" https://docs.lattepanda.com/#single-board-computer-overview XU, Jiashu. Comparison and Application of FPGA and ASIC in Digital System Design. In: Proceedings of the International Conference on Decision Science & Management. 2024. p. 216-220 "NVIDIA Jetson Xavier" https://www.nvidia.com/en-us/autonomous-machines/embedded-systems/jetson-xavier-series/ Izatt et al. "Theory of optical coherence tomography, in Optical Coherence Tomography: Technology and Applications." 2008, Springer. p. 47-72. De Boer et al. "Improved signal-to-noise ratio in spectral-domain compared with time-domain optical coherence tomography." Optics letters, 2003. 28(21): p.2067-2069. Leitgeb et al. "Performance of fourier domain vs. time domain optical coherence tomography. Optics express, 2003. 11(8): p.889-894. Potsaid et al. "Ultrahigh speed 1050nm swept source/Fourier domain OCT retinal and anterior segment imaging at 100,000 to 400,000 axial scans per second. Optics express, 2010. 18(19): p. 20029-20048. Wojtkowski, et al. "Ultrahigh-resolution, high-speed, Fourier domain optical coherence tomography and methods for dispersion compensation." Optics express, 2004. 12(11): p. 2404-2422. Choma, et al. "Sensitivity advantage of swept source and Fourier domain optical coherence tomography. " Optics express, 2003. 11(18): p. 2183-2189. C. Pearl, "Designing Voice User Interfaces: Principles of Conversational Experiences." Sebastopol, CA, USA : O'Reilly Media, 2016. "MFC——程式設計框架和基礎 - CSDN部落格" https://blog.csdn.net/qq_37596943/article/details/148167877. "C++MFC應用程式框架類結構層次 - CSDN部落格" https://blog.csdn.net/weixin_47046708/article/details/135776918. "WPF(Windows Presentation Foundation)與C#基礎知識詳解 - CSDN部落格" https://blog.csdn.net/m0_44975814/article/details/146507936. "【Java圖形介面開發全攻略】:從零開始,打造高性能Swing與現代JavaFX應用" https://wenku.csdn.net/column/6gz525fv2w. "QT入門看這一篇就夠(詳解含qt源碼) - CSDN部落格" https://blog.csdn.net/arv002/article/details/133785137. "Qt和其它GUI庫的對比 - CSDN部落格" https://blog.csdn.net/ccc369639963/article/details/122639001. "三層架構(UI、BLL、DAL) - CSDN部落格" https://blog.csdn.net/xiaoyu_alive/article/details/123624671. "3D SKIN VIEWER" https://opxiontech.com/#/MainPlatform/home. Chau Yee Ng et al. "In vivo identification of skin photodamage induced by fractional CO2 and picosecond Nd: YAG lasers with optical coherence tomography." Diagnostics 12.4 (2022): 822. 阮星翔,「以現場可程式化邏輯閘陣列實作光學同調斷層掃描術之成像引擎」,國立臺灣大學光電工程學研究所碩士論文(2024). 施昶安,「現場可程式化邏輯閘陣列應用於光學同調斷層掃描系統之訊號控制模組」,國立臺灣大學光電工程學研究所碩士論文(2023). "CYUSB3KIT-003" https://www.infineon.com/cms/en/product/evaluation-boards/cyusb3kit-003/. "Getting Started with EZ-USB® FX3™" https://www.infineon.com/dgdl/Infineon-AN75705_Getting_Started_with_EZ-USB_FX3-ApplicationNotes-v11_00-EN.pdf?fileId=8ac78c8c7cdc391c017d073989df5e15. "Overview of the Relationship Between Jetpack and Jetson" https://wiki.seeedstudio.com/overview_of_the_relationship_between_jetpack_and_jetson/. “Big Endian和Little Endian詳解 - CSDN部落格” https://blog.csdn.net/waitingbb123/article/details/80504093 鄭兆翔,「基於生成是U-Net模型對於皮膚光學同調斷層掃描成像的量化分析演算法之開發」,國立臺灣大學光電工程學研究所碩士論文(2024) | - |
| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/101676 | - |
| dc.description.abstract | 光學同調斷層掃描術(Optical coherence tomography, OCT)做為一種高解析度且非侵入式的成像技術,現今已被廣泛應用於眼科、皮膚科以及齒科等醫療診斷領域,提供組織微結構的即時觀察,對精準診斷至關重要。然而傳統OCT設備因成本高昂與體積龐大,應用受限於大型醫療中心,難以普及至小型醫療機構。為提升可攜性與降低成本,手持式OCT系統成為研究焦點。為提升可攜性與降低建置成本,手持式OCT系統近年成為研究焦點。雖有研究採用如Raspberry Pi與Intel NUC等單板電腦進行系統控制與訊號處理,但OCT高頻寬資料的即時處理對硬體效能要求極高,仍普遍存在運算能力不足、功耗過高及整合困難等問題,需更高效的硬體架構來克服這些限制。
本研究延續本實驗室先前開發之基於現場可程式化邏輯閘陣列(Field programmable gate array, FPGA)的OCT處理架構,結合芯聖科技(OPXION Technology, Inc.)所開發之手持式皮膚掃描儀,進行OCT掃描與影像處理,並進一步於NVIDIA Jetson Xavier NX平台上開發具備即時預覽、三維資料擷取與量化分析功能之圖形化使用者介面(Graphical User Interface, GUI)。其中FPGA專責影像處理與傳輸,發揮其高速且低延遲之硬體優勢。Jetson則負責圖形化介面與深度學習分析,善用其圖形處理器(Graphics processing unit, GPU)與機器學習之運算能力。透過兩者分工協作,大幅提升系統整體效能與即時性,亦保留後續擴充之彈性。 本系統以Qt為開發框架,設計了兩種主要操作模式,分別對應於即時顯示與完整三維資料擷取,並以多執行緒方式確保介面穩定與資料同步性。傳輸介面採用通用序列匯流排(Universal serial bus, USB) 3.0串接USB控制器模組,接收資料後進行動態記憶體緩衝與管理,並提供使用者瀏覽、儲存與後續分析之介面。此外亦為FPGA回傳之32位元浮點格式資料進行資料轉換,將系統實作資料解析與強度映射流程,考量位元序對資料正確性的影響,設計自定轉換函式,確保接收資料能正確對應至灰階影像,供使用者觀測OCT水平及垂直切面影像。而後亦設計測試樣本驗證資料格式處理正確性,並進行影像品質指標評估,以量化強度轉換對視覺細節之保留程度,驗證本系統之穩定性與準確性。整體系統介面操作簡易,適合應用於攜帶式OCT裝置,提供偏鄉基礎醫療應用。 | zh_TW |
| dc.description.abstract | Optical coherence tomography (OCT), as a high-resolution and non-invasive imaging technique, has been widely applied in medical diagnostic fields such as ophthalmology, dermatology, and dentistry. It enables real-time observation of tissue microstructures, which is crucial for accurate diagnosis. However, conventional OCT systems are often limited to large medical centers due to their high cost and bulky size, making them difficult to adopt in smaller clinics. To improve portability and reduce costs, handheld OCT systems have become a key research focus in recent years. Although some studies have utilized single-board computers like Raspberry Pi and Intel NUC for system control and signal processing, the real-time processing of OCT’s high-bandwidth data imposes demanding requirements on hardware performance. Common challenges still include insufficient computing power, high power consumption, and integration difficulties. Therefore, a more efficient hardware architecture is needed to overcome these limitations.
This study builds upon a previously developed Optical Coherence Tomography (OCT) processing architecture based on a Field-Programmable Gate Array (FPGA) by our laboratory. It integrates a handheld skin scanner developed by OPXION Technology, Inc. to perform OCT scanning and image processing. Furthermore, a graphical user interface (GUI) was developed on the NVIDIA Jetson Xavier NX platform, providing real-time preview, 3D data acquisition, and quantitative analysis capabilities. In this system, the FPGA is dedicated to image processing and data transmission, leveraging its advantages of high speed and low latency. The Jetson handles the GUI and deep learning-based analysis, utilizing its Graphics Processing Unit (GPU) and machine learning computational power. Through this division of labor, the system achieves significantly enhanced overall performance and real-time responsiveness, while also maintaining flexibility for future expansion. The system is developed using the Qt framework and features two primary operating modes: real-time display and full 3D data acquisition. A multi-threaded architecture ensures interface stability and data synchronization. The data transmission interface utilizes USB 3.0, which connects to a USB controller module. Upon receiving data, the system performs dynamic memory buffering and management, providing users with functions for viewing, saving, and further analysis. To handle the 32-bit floating-point data returned from the FPGA, custom data conversion functions were implemented. These functions account for byte order (endianness) to ensure correct mapping of received data into grayscale images, allowing users to observe both horizontal and vertical OCT cross-sectional images. Test samples were designed to verify the correctness of data format processing, and image quality metrics were evaluated to quantify the preservation of visual detail during intensity conversion, thereby validating the system’s stability and accuracy. The overall interface is user-friendly and well-suited for portable OCT applications, making it ideal for use in primary care in resource-limited settings. | en |
| dc.description.provenance | Submitted by admin ntu (admin@lib.ntu.edu.tw) on 2026-02-26T16:37:34Z No. of bitstreams: 0 | en |
| dc.description.provenance | Made available in DSpace on 2026-02-26T16:37:34Z (GMT). No. of bitstreams: 0 | en |
| dc.description.tableofcontents | 論文口試委員審定書 i
謝辭 ii 中文摘要 iii ABSTRACT v 目次 vii 表次 x 圖次 xi Chapter 1 緒論 1 1.1 可攜式光學同調斷層掃描系統之發展 1 1.2 運算平台介紹 5 1.2.1 單晶片處理器 6 1.2.2 現場可程式化邏輯閘陣列(Field Programmable Gate Array, FPGA) 7 1.2.3 邊緣運算電腦NVIDIA Jetson platform 8 1.3 研究動機 9 1.4 論文範疇 9 Chapter 2 光學同調斷層掃描術(Optical coherence tomography, OCT) 10 2.1 光學同調斷層掃描術介紹 10 2.2 光學同調斷層掃描術之原理 10 2.2.1 低同調干涉術 10 2.2.2 軸向解析度 14 2.2.3 橫向解析度 14 2.3 光學同調斷層掃描術之發展 15 2.3.1 時域式光學同調斷層掃描術(Time-domain OCT, TD-OCT) 15 2.3.2 頻域式光學同調斷層掃描術(Spectral-domain OCT, SD-OCT) 16 2.3.3 掃頻式光學同調斷層掃描術(Swept-source OCT, SS-OCT) 16 Chapter 3 使用者介面開發技術介紹 18 3.1 使用者介面基礎概念 18 3.2 各類使用者介面開發平台比較 19 3.2.1 MFC(Microsoft Foundation Classes) 19 3.2.2 C# 20 3.2.3 Java 21 3.2.4 Qt 22 3.3 介面操作流程 23 Chapter 4 實驗架構及方法 26 4.1 手持式光學同調斷層皮膚掃描儀架構 26 4.2 基於FPGA之可攜式OCT整體系統架構 27 4.3 Cypress EZ-USB FX3介面設計 29 4.4 NVIDIA Jetson電腦環境設定 33 4.5 使用者介面與控制邏輯設計 34 4.5.1 介面設計 35 4.5.2 控制邏輯設計 37 4.5.3 資料修正與處理 40 Chapter 5 實驗結果與討論 45 5.1 使用者介面整合驗證與操作結果 45 5.2 資料正確性驗證與浮點轉換影響分析 46 5.3 系統延遲與硬體使用率觀察 48 Chapter 6 結論與未來展望 52 6.1 結論 52 6.2 未來展望 53 參考文獻 55 | - |
| dc.language.iso | zh_TW | - |
| dc.subject | 光學同調斷層掃描術 | - |
| dc.subject | 使用者介面 | - |
| dc.subject | 偏鄉醫療 | - |
| dc.subject | 可攜式OCT | - |
| dc.subject | 初級醫療 | - |
| dc.subject | 可程式化邏輯閘陣列 | - |
| dc.subject | 邊緣運算 | - |
| dc.subject | 人工智慧 | - |
| dc.subject | Optical Coherence Tomography | - |
| dc.subject | Graphical User Interface | - |
| dc.subject | Rural Healthcare | - |
| dc.subject | Portable OCT | - |
| dc.subject | Primary Care | - |
| dc.subject | FPGA | - |
| dc.subject | Edge Computing | - |
| dc.subject | AI | - |
| dc.title | 基於嵌入式平台之可攜式光學同調斷層掃描系統之整合設計與實作 | zh_TW |
| dc.title | Design and Implementation of an Embedded Platform-Based Portable OCT System Integration | en |
| dc.type | Thesis | - |
| dc.date.schoolyear | 114-1 | - |
| dc.description.degree | 碩士 | - |
| dc.contributor.oralexamcommittee | 蔡睿哲;李正匡;王義閔;楊家驤 | zh_TW |
| dc.contributor.oralexamcommittee | Jui-Che Tsai;Cheng-Kuang Lee;Yih-Ming Wang;Chia-Hsiang Yang | en |
| dc.subject.keyword | 光學同調斷層掃描術,使用者介面偏鄉醫療可攜式OCT初級醫療可程式化邏輯閘陣列邊緣運算人工智慧 | zh_TW |
| dc.subject.keyword | Optical Coherence Tomography,Graphical User InterfaceRural HealthcarePortable OCTPrimary CareFPGAEdge ComputingAI | en |
| dc.relation.page | 59 | - |
| dc.identifier.doi | 10.6342/NTU202600444 | - |
| dc.rights.note | 未授權 | - |
| dc.date.accepted | 2026-02-03 | - |
| dc.contributor.author-college | 電機資訊學院 | - |
| dc.contributor.author-dept | 光電工程學研究所 | - |
| dc.date.embargo-lift | N/A | - |
| 顯示於系所單位: | 光電工程學研究所 | |
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