FITTING-IMPROVED SNAKE WITH ROBUST POLYGON APPROXIMATION, ADAPTATION AND REFINEMENT
碩士 === 國立嘉義大學 === 資訊工程學系研究所 === 96 === In this paper, we propose a fitting-improved adaptive (FIA) snake (FIA-snake) adapted to various images’ segmentations in the noisy environment. The FIA-snake performs three stages: fast evenly-distributed initialization (object-area marking), FIA evolution, wh...
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ndltd-TW-096NCYU53920022016-05-18T04:13:13Z http://ndltd.ncl.edu.tw/handle/05219691808546500489 FITTING-IMPROVED SNAKE WITH ROBUST POLYGON APPROXIMATION, ADAPTATION AND REFINEMENT 透過強韌性多邊形逼近、適應與修正之處理,來完成吻合度改良之蛇狀形變套索 Chun-Chai Chang 張峻嘉 碩士 國立嘉義大學 資訊工程學系研究所 96 In this paper, we propose a fitting-improved adaptive (FIA) snake (FIA-snake) adapted to various images’ segmentations in the noisy environment. The FIA-snake performs three stages: fast evenly-distributed initialization (object-area marking), FIA evolution, which leads all the parameters of snake model to be automatically adaptive to the image in problem, and directional compensation evolution (DCE). The integrity of these three stages can make one part greatly elevate the effectiveness its subsequent one. Firstly, FIA-snake applies an estimation method with uncertainty minimization to compute the possible ranges of gradient magnitudes of object boundary for the snake initialization. The FIA evolution will adapt the weights of the snake force components according to their contributions in edge fitness, and simultaneously renormalize external and internal forces. After the first snake convergence, DCE identifies the unqualified snake fragments by block-based texture analysis and then repair them toward the object border by the modified internal force called directional compensation force (DCF). The simulation results demonstrate that FIA-snake can improve the performance of snake very much, and outperform Gradient Vector Flow (GVF) in noisy images. Din-Yuen Chan 章定遠 學位論文 ; thesis 42 en_US |
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碩士 === 國立嘉義大學 === 資訊工程學系研究所 === 96 === In this paper, we propose a fitting-improved adaptive (FIA) snake (FIA-snake) adapted to various images’ segmentations in the noisy environment. The FIA-snake performs three stages: fast evenly-distributed initialization (object-area marking), FIA evolution, which leads all the parameters of snake model to be automatically adaptive to the image in problem, and directional compensation evolution (DCE). The integrity of these three stages can make one part greatly elevate the effectiveness its subsequent one. Firstly, FIA-snake applies an estimation method with uncertainty minimization to compute the possible ranges of gradient magnitudes of object boundary for the snake initialization. The FIA evolution will adapt the weights of the snake force components according to their contributions in edge fitness, and simultaneously renormalize external and internal forces. After the first snake convergence, DCE identifies the unqualified snake fragments by block-based texture analysis and then repair them toward the object border by the modified internal force called directional compensation force (DCF). The simulation results demonstrate that FIA-snake can improve the performance of snake very much, and outperform Gradient Vector Flow (GVF) in noisy images.
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author2 |
Din-Yuen Chan |
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Din-Yuen Chan Chun-Chai Chang 張峻嘉 |
author |
Chun-Chai Chang 張峻嘉 |
spellingShingle |
Chun-Chai Chang 張峻嘉 FITTING-IMPROVED SNAKE WITH ROBUST POLYGON APPROXIMATION, ADAPTATION AND REFINEMENT |
author_sort |
Chun-Chai Chang |
title |
FITTING-IMPROVED SNAKE WITH ROBUST POLYGON APPROXIMATION, ADAPTATION AND REFINEMENT |
title_short |
FITTING-IMPROVED SNAKE WITH ROBUST POLYGON APPROXIMATION, ADAPTATION AND REFINEMENT |
title_full |
FITTING-IMPROVED SNAKE WITH ROBUST POLYGON APPROXIMATION, ADAPTATION AND REFINEMENT |
title_fullStr |
FITTING-IMPROVED SNAKE WITH ROBUST POLYGON APPROXIMATION, ADAPTATION AND REFINEMENT |
title_full_unstemmed |
FITTING-IMPROVED SNAKE WITH ROBUST POLYGON APPROXIMATION, ADAPTATION AND REFINEMENT |
title_sort |
fitting-improved snake with robust polygon approximation, adaptation and refinement |
url |
http://ndltd.ncl.edu.tw/handle/05219691808546500489 |
work_keys_str_mv |
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