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  1. NTU Theses and Dissertations Repository
  2. 電機資訊學院
  3. 光電工程學研究所
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/94631
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dc.contributor.advisor林晃巖zh_TW
dc.contributor.advisorHoang-Yan Linen
dc.contributor.author張宏毅zh_TW
dc.contributor.authorHung-I Changen
dc.date.accessioned2024-08-16T17:12:12Z-
dc.date.available2024-08-17-
dc.date.copyright2024-08-16-
dc.date.issued2024-
dc.date.submitted2024-08-13-
dc.identifier.citation[1] "Head-up display"Wikipedia
[2] Weihrauch, M., G. G. Meloeny, and T. C. Goesch. The first head up display introduced by general motors. No. 890288. SAE Technical Paper (1989)
[3] 胡祐銘. (2022). 全像投影之雙視距多色抬頭顯示器.
[4] Yasuhiro Takaki and Masahito Yokouchi, "Speckle-free and grayscale hologram reconstruction using time-multiplexing technique," Opt. Express 19, 7567-7579 (2011)
[5] 陳彥戎. (2023). 利用時間和空間多工降低AR-HUD之光斑.
[6] "全像術"科學online(2016)
[7] "Computer-generated holography"Wikipedia
[8] Gerchberg, Ralph W. "A practical algorithm for the determination of plane from image and diffraction pictures." Optik 35.2 (1972): 237-246.
[9] Chien-Yu Chen, Wu-Chun Li, Hsuan-Ting Chang, Chih-Hao Chuang, and Tsung-Jan Chang, "3-D modified Gerchberg–Saxton algorithm developed for panoramic computer-generated phase-only holographic display," J. Opt. Soc. Am. B 34, B42-B48 (2017)
[10] Tracy V.Wilson"How LCoS Works"howstuffworks(2006)
[11] Yeh, Pochi, and Claire Gu. Optics of liquid crystal displays. Vol. 67. John Wiley & Sons (2009)
[12] J. Goodman, Speckle phenomena in optics: theory and applications: Roberts & Co, 2007.
[13] Stijn Roelandt, Youri Meuret, Gordon Craggs, Guy Verschaffelt, Peter Janssens, and Hugo Thienpont, "Standardized speckle measurement method matched to human speckle perception in laser projection systems," Opt. Express 20, 8770-8783 (2012)
[14] Xin, L., Xiao, D., & Wang, Q. H. (2020). Method to suppress speckle noise using time multiplexing in phase‐only holographic display. Journal of the Society for Information Display, 28(7), 641-647.
[15] Makowski, Michal, et al. "Color image projection based on Fourier holograms." Optics letters 35.8 (2010): 1227-1229
[16] F. Riechert, “Speckle reduction in projection systems,” Ph.D. thesis (Karlsruhe Institute of Technology, 2009).
[17] Varley, J. (1988). Persistence of vision. Penguin.
[18] Zhentao Qin, Yuan Chen, Jinlei Zhang, Yi Huang, Peng Sun, and Zhenrong Zheng "Speckle reduction by macro-pixel separation based on double-phase holographic display", Proc. SPIE 11136, Optics and Photonics for Information Processing XIII, 1113606 (6 September 2019)
[19] Omel Mendoza-Yero, Gladys Mínguez-Vega, and Jesús Lancis, "Encoding complex fields by using a phase-only optical element," Opt. Lett. 39, 1740-1743 (2014)
[20] Nicholas George and Atul Jain, "Speckle Reduction Using Multiple Tones of Illumination," Appl. Opt. 12, 1202-1212 (1973)
[21] Tchvialeva, L., Markhvida, I., Zeng, H., McLean, D. I., Lui, H., & Lee, T. K. (2010). Surface roughness measurement by speckle contrast under the illumination of light with arbitrary spectral profile. Optics and Lasers in Engineering, 48(7-8), 774-778.
[22] Hirotaka Yamada, Kengo Moriyasu, Hiroto Sato, Hidekazu Hatanaka, and Kazuhisa Yamamoto, "Effect of brightness on speckle contrast and human speckle perception in laser projection systems," OSA Continuum 2, 349-357 (2019)
[23] Stijn Roelandt, Youri Meuret, An Jacobs, Koen Willaert, Peter Janssens, Hugo Thienpont, and Guy Verschaffelt, "Human speckle perception threshold for still images from a laser projection system," Opt. Express 22, 23965-23979 (2014)
[24] Lingli Wang, Theo Tschudi, Thorsteinn Halldórsson, and Pálmi R. Pétursson, "Speckle reduction in laser projection systems by diffractive optical elements," Appl. Opt. 37, 1770-1775 (1998)
[25] Victor Arrizón and David Sánchez-de-la-Llave, "Double-phase holograms implemented with phase-only spatial light modulators: performance evaluation and improvement," Appl. Opt. 41, 3436-3447 (2002)
[26] Kumar, V., Gupta, M., Dubey, A. K., Tayal, S., Singh, V., & Mehta, D. S. (2020). Design and development of laser speckle reduction device using waveguide diffuser and pyramidal cavity for projection imaging. Journal of Optics, 22(11), 115601.
[27] Ma, Qianli, and Chang-Qing Xu. "Wavelength blending with reduced speckle and improved color for laser projection." Optics and Lasers in Engineering 97 (2017): 27-33.
[28] Zalevsky, Zeev, David Mendlovic, and Rainer G. Dorsch. "Gerchberg–Saxton algorithm applied in the fractional Fourier or the Fresnel domain." Optics Letters 21.12 (1996): 842-844.
[29] Zhou, P., Bi, Y., Sun, M., Wang, H., Li, F., & Qi, Y. (2014). Image quality enhancement and computation acceleration of 3D holographic display using a symmetrical 3D GS algorithm. Applied optics, 53(27), G209-G213.
[30] Mukherjee, Saswata, et al. "Partially Coherent Double-Phase Holography in Visible Wavelength Using Meta-Optics." ACS Photonics 10.5 (2023): 1376-1381.
[31] Ting, C. H., Wakunami, K., Yamamoto, K., & Huang, Y. P. (2015, May). Reconstruct holographic 3D objects by double phase hologram. In Three-Dimensional Imaging, Visualization, and Display 2015 (Vol. 9495, pp. 182-187). SPIE.
[32] Shibukawa, A., Okamoto, A., Goto, Y., Honma, S., & Tomita, A. (2014). Digital phase conjugate mirror by parallel arrangement of two phase-only spatial light modulators. Optics express, 22(10), 11918-11929.
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dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/94631-
dc.description.abstract在探討基於LCoS(液晶矽)技術及全像多色投影技術實現的雙焦平面車載抬頭顯示器(Dual-focal-plane Multi-color Head Up Display with Holographic Imaging)的研究過程中,我們發現利用雷射作為光源會引起嚴重的光斑(speckle)現象,這一現象顯著降低了成像質量。光斑的存在不利於駕駛者迅速清晰地識別路況或查看儀表板資訊,進而對整體的駕駛體驗產生負面影響,。為了評估全像投影成像中光斑問題的程度,本篇碩士論文采用了光斑對比度(Speckle Contrast, SC)作為衡量標準,通過對光斑對比度數值的測量,我們能夠判斷全像影像的質量優劣。
在我們的系統中,全像圖像是以MGSA(modified Gerchberg–Saxton algorithm)生成的。生成的全相片為隨機相位,而我們進一步的修改了此演算法,使生成的全相片具有似棋盤式的互補雙相位(Complementary Dual-Phase),並結合上一個實驗所使用的時間多工和空間多工方法使我們的光斑對比度更有效降低,會在本文中做詳細的說明。
在本研究的光路系統設計中,我們採用紅綠藍雷射裝置及單面板LCoS來投影全像圖像至擴散器上。通過將LCoS與電腦連接,我們能夠控制雷射光與全像圖像的切換頻率,以實現同步。在光路中間位置設置了一個截波器(chopper),這樣做是為了在相對應的波長雷射光下,同時播放特定波長的全像圖像,從而達到時間多工的效果。為了捕捉這些投影圖像,我們使用了一台具有特定光圈大小的固定焦點相機。此外,我們設計了全像片,使得生成的全像影像被分割為左右兩側,分別對應紅色和綠色,經過LCoS投影後,一側展示綠色全像圖像,而另一側則展示紅色全像圖像。在光路的中心位置放置了一個分光鏡,用於重疊兩種不同顏色的全像圖像,實現空間多工效果。而最終達成以“互補式雙相位時間和空間多工”方法有效降低光斑對比度,並實現全彩效果。
經實驗量測後,我們最終可以得知,單色全像片的光斑對比度分別為:藍色為28.53%、綠色為22.80%、紅色為15.29%。先前實驗[1]中一般隨機相位的時間和空間多工光斑對比度為4.55%,而本實驗中所使用的“互補式雙相位時間和空間多工”光斑對比度為3.39%,能更有效地減少光斑現象。
zh_TW
dc.description.abstractIn the exploration of Dual-focal-plane Multi-color Head-Up Displays with Holographic Imaging based on LCoS (Liquid Crystal on Silicon) and holographic multi-color projection technologies, we discovered that using lasers as the light source induces a significant speckle phenomenon, which considerably degrades image quality. The presence of speckles adversely affects the driver's ability to quickly and clearly discern road conditions or dashboard information, thereby negatively impacting the overall driving experience. To assess the degree of the speckle problem in holographic projection imaging, this thesis adopts Speckle Contrast (SC) as a metric for evaluation, allowing us to determine the quality of holographic images by measuring the speckle contrast values.
In our system, holographic images are generated using the Modified Gerchberg–Saxton Algorithm (MGSA). Initially, the holograms produced had random phases. We have further refined this algorithm to create holograms with a checkerboard-like complementary dual-phase (Complementary Dual-Phase) pattern. This adaptation, combined with the time multiplexing and spatial multiplexing methods utilized in a prior experiment , has proven to reduce speckle contrast more effectively. This paper will provide a detailed explanation of this process.
In the optical system design of our study, we employed RGB laser devices and a single-panel LCoS to project holographic images onto a diffuser. By connecting the LCoS to a computer, we could control the switching frequency of the laser light and the holographic images to achieve synchronization. A chopper was placed in the middle of the optical path to simultaneously play holographic images of specific wavelengths with the corresponding wavelength laser light, achieving time multiplexing. A fixed-focus camera with a specific aperture size was used to capture these projected images. Additionally, we designed the holograms so that the generated holographic images were split into left and right sides, corresponding to red and green colors. After projection through the LCoS, one side displayed the green holographic image, and the other side displayed the red holographic image. A dichroic mirror was positioned in the center of the optical path to overlap the two different colored holographic images, achieving spatial multiplexing. Ultimately, the "Complementary Dual-Phase Time and Spatial Multiplexing" method was successfully employed to significantly reduce speckle contrast and achieve a full-color effect.
Experimental measurements revealed that the speckle contrast for monochromatic holograms was 28.53% for blue, 22.80% for green, and 15.29% for red. Compared to the speckle contrast of 4.55% achieved using the conventional method of random-phase time and spatial multiplexing in a previous experiment , the "Complementary Dual-Phase Time and Spatial Multiplexing" approach used in this experiment resulted in a speckle contrast of 3.39%, demonstrating a more effective reduction in speckle phenomena.
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dc.description.tableofcontents誌謝 i
摘要 ii
Abstract iii
目次 v
圖次 vii
表次 viii
第1章 緒論 1
1-1 研究背景 1
1-2 抬頭顯示器的演進 2
1-3 研究動機與目的 3
1-4 論文架構 5
第2章 全像投影系統 6
2-1 全像術原理(holography) 6
2-2 電腦生成全像術(computer generated holography,CGH) 7
2-2-1 電腦生成全像術理論與演算法 8
2-2-2 矽基液晶空間光調製器 10
2-2-3 LCoS-SLM原理 12
2-3 電腦全像投影實驗架構 15
第3章 光斑原理 16
3-1 光斑現象 16
3-1-1 光斑起源與原理 16
3-1-2 光斑的數學表示式 17
3-2 光斑對比度(Speckle Contrast) 19
3-3 減少光斑的原理和方式 22
3-3-1 減少光斑的原理 22
3-3-2 時間多工法(time multiplexing) 23
3-3-3 空間多工(spatial multiplexing) 23
第4章 實驗架構及設計 25
4-1 時間與空間多工實驗架構 27
4-2 全像圖設計 28
4-2-1 空間多工法的合成設計 28
4-2-2 時間多工的設計 30
4-2-3 實驗中各位置的全像圖成像 32
4-3 互補式雙相位全像片的原理與生成方式 33
4-3-1 互補式全像片的原理 33
4-3-2 互補式雙相位全像片的生成 35
第5章 實驗結果 38
5-1 隨機相位與互補式相位結果比較 39
5-1-1 時間多工結果的比較 46
5-1-2 結合空間多工混色結果比較 51
5-2 最終實驗結果比較 55
第6章 結論與未來展望 59
6-1 結論 59
6-2 未來展望 60
參考文獻 61
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dc.language.isozh_TW-
dc.subject互補式雙相位zh_TW
dc.subject時間多工zh_TW
dc.subject空間多工zh_TW
dc.subject抬頭顯示系統zh_TW
dc.subject光斑對比度zh_TW
dc.subject液晶覆矽zh_TW
dc.subject全像投影技術zh_TW
dc.subjectTime Multiplexingen
dc.subjectHead-Up Display Systemen
dc.subjectSpatial Multiplexingen
dc.subjectComplementary Dual-Phaseen
dc.subjectSpeckle Contrasten
dc.subjectLiquid Crystal on Silicon (LCoS)en
dc.subjectHolographic Projectionen
dc.title使用互補式雙相位時間和空間多工降低 AR-HUD之光斑zh_TW
dc.titleUsing Complementary Dual-Phase Time and Spatial Multiplexing to Reduce Speckle for Augmented Reality Head-Up Displayen
dc.typeThesis-
dc.date.schoolyear112-2-
dc.description.degree碩士-
dc.contributor.coadvisor曾雪峰zh_TW
dc.contributor.coadvisorSnow-H Tsengen
dc.contributor.oralexamcommittee林淇文;范姜冠旭zh_TW
dc.contributor.oralexamcommitteeChi-Wen Lin;Kuan-Hsu Fan Chiangen
dc.subject.keyword抬頭顯示系統,全像投影技術,液晶覆矽,光斑對比度,互補式雙相位,時間多工,空間多工,zh_TW
dc.subject.keywordHead-Up Display System,Holographic Projection,Liquid Crystal on Silicon (LCoS),Speckle Contrast,Complementary Dual-Phase,Time Multiplexing,Spatial Multiplexing,en
dc.relation.page62-
dc.identifier.doi10.6342/NTU202403898-
dc.rights.note同意授權(限校園內公開)-
dc.date.accepted2024-08-13-
dc.contributor.author-college電機資訊學院-
dc.contributor.author-dept光電工程學研究所-
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