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A Novel Method for Character Segmentation in Natural Scenes
作者姓名:徐立  戚飞虎  蒋人杰  朱凯华  吴国荣
作者单位:Dept. of Computer Science and Eng. Shanghai Jiaotong Univ.,Dept. of Computer Science and Eng. Shanghai Jiaotong Univ.,Dept. of Computer Science and Eng. Shanghai Jiaotong Univ.,Dept. of Computer Science and Eng. Shanghai Jiaotong Univ.,Dept. of Computer Science and Eng. Shanghai Jiaotong Univ.,Shanghai 200030 China,Shanghai 200030 China,Shanghai 200030 China,Shanghai 200030 China,Shanghai 200030 China
基金项目:PVS project from OMRON Corporation
摘    要:Introduction Nowadays the applications of scene text recog-nition are rapidly expanding with the developmentof portable digital imaging devices1]. However,character extraction from scene images has alwaysbeen a challenging problem due to complex back-ground, uneven illumination, shadows and noise ofimages2]. Besides, languages also impose anotherlevel of variation in text. Characters in such lan-guages as Chinese, Japanese and Korean are usual-ly composed of several strokes, which do not n…


A Novel Method for Character Segmentation in Natural Scenes
XU Li,QI Fei-hu,JIANG Ren-jie,ZHU Kai-hua,WU Guo-rong.A Novel Method for Character Segmentation in Natural Scenes[J].Journal of Shanghai Jiaotong university,2006,11(4).
Authors:XU Li  QI Fei-hu  JIANG Ren-jie  ZHU Kai-hua  WU Guo-rong
Institution:Dept. of Computer Science and Eng.,Shanghai Jiaotong Univ.,Shanghai 200030,China
Abstract:A new approach to extract and segment characters in natural scenes was proposed in this paper. First, a set of intrinsic features were calculated based on connected components (CCs) extracted by a non-linear Nilblack algorithm. Then, feature propagation was conducted for feature enhancement, under the constraint of the layout relations. Next, candidate CCs were fed into classifiers with the enhanced feature vector. At last, a model-based hierarchical merging (MHM) procedure was presented to obtain understandable characters. The proposed merging algorithm utilized the constraint of text lines for specific languages and dynamically merges CCs into characters.The whole algorithm was evaluated at both pixel level and character level, experimental results showed that the proposed method is effective in detecting scene characters with significant geometric variations, uneven illumination, extremely low contrast and cluttered background.
Keywords:character segmentation feature extraction model-based hierarchical merging (MHM)
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