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研究生:洪瑞宏
研究生(外文):Rui-Hong Hong
論文名稱:基於機器學習之H.266/VVC快速編碼演算法
論文名稱(外文):Fast Coding Algorithm Based On Machine Learning for H.266/VVC
指導教授:陳美娟陳美娟引用關係
指導教授(外文):Mei-Juan Chen
口試委員:高立人翁若敏
口試委員(外文):Lih-Jen KauRo-Min Weng
口試日期:2019-05-27
學位類別:碩士
校院名稱:國立東華大學
系所名稱:電機工程學系
學門:工程學門
學類:電資工程學類
論文種類:學術論文
論文出版年:2019
畢業學年度:107
語文別:中文
論文頁數:94
中文關鍵詞:視訊影像編碼機器學習
外文關鍵詞:Video CodingMachine LearningH.266/VVC
相關次數:
  • 被引用被引用:0
  • 點閱點閱:286
  • 評分評分:
  • 下載下載:1
  • 收藏至我的研究室書目清單書目收藏:1
下一代視訊編碼標準H.266/VVC基於H.265/HEVC的四元樹(Quad-tree)切割方式,又新增了MTT(Multi-Type Tree)的架構,使編碼單位(Coding Unit)的分割更加靈活,但也因此使計算量大幅增加,所以如何加速編碼是非常重要的議題。本論文提出一個基於機器學習之畫面間快速編碼演算法,省略多餘的MTT切割模式,以及調整移動估計的搜尋範圍。實驗結果顯示本論文所提演算法在Random-access的架構下,平均可節省24.60%的編碼時間,且BD-rate只有增加0.35%,在節省計算量的同時仍保有良好的視訊品質。
The next generation video coding standard H.266/VVC based on the quad-tree structure of coding unit(CU) of H.265/HEVC incorporates the multi-type tree(MTT) structure, which makes the CU segmentation more flexible but also significantly increases the computation complexity. How to speed up the encoding is a very important issue. This thesis proposes the fast algorithm by skipping the redundant MTT split mode based on machine learning method, and also reduces the search range of motion estimation. The experimental results show that the proposed algorithm can save 24.60% encoding time on average, and BD-rate is only increased 0.35% under random-access configuration. The proposed algorithm saves the computation time while maintaining good video quality.
第一章 緒論 13
第二章 畫面間編碼之文獻回顧 33
第三章 所提出的畫面間編碼快速演算法 39
第四章 實驗結果 65
第五章 結論與未來展望 82
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