題名: DEFORMED SHAPE RETRIEVAL BASED ON THE HIDDEN MARKOV MODEL
作者: Chang, Fa-Shyang
Chen, Shu-Yuan
關鍵字: deformed shape retireval
shape matching
hidden Markov model (HMM)
non-rigid deformation
similarity measure
content-based retrieval
期刊名/會議名稱: 1998 ICS會議
摘要: A new deformed shape retrieval method based on the hidden Markov model (HMM) is proposed in this paper. Shape features as well as statisical and contextual information are incorporated into the HMM to derive probability values. Then, the probability values can be considered matching scores to retrieve similar shapes. The proposed method is translation, rotation and scale invariant. In addition, it is robust to various non-rigid deformations such as perspective, shear, occlusion and monlinear distortions. The advantages are accomplished by the strategies we adopt. First, the proposed shape features are translation, rotation and scale invariant. Secondly, th flexibility of shape matching can be increased since the HMM is high tolerance to noise and distortion. Henceforth, non-rigid deformation can be coped with. Finally, although the HMM is computation intensive, only few high-level shape features are necessary for shpae representation, thus, the computation efficiency is satisfactory. Our method has been applied on two databases: geometry and character. The experimental results prove the effectiveness, robustness and practicability of the proposed approach.
日期: 2006-10-18T15:27:53Z
分類:1998年 ICS 國際計算機會議

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