WATERSHED ALGORITHM BASED SEGMENTATION FOR HANDWRITTEN TEXT IDENTIFICATION
In this paper we develop a system for writer identification which involves four processing steps like preprocessing, segmentation, feature extraction and writer identification using neural network. In the preprocessing phase the handwritten text is subjected to slant removal process for segmentation...
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Published in | ICTACT journal on image and video processing Vol. 4; no. 3; pp. 767 - 772 |
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Main Authors | , , |
Format | Journal Article |
Language | English |
Published |
ICT Academy of Tamil Nadu
01.02.2014
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Subjects | |
Online Access | Get full text |
ISSN | 0976-9099 0976-9102 |
DOI | 10.21917/ijivp.2014.0111 |
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Abstract | In this paper we develop a system for writer identification which involves four processing steps like preprocessing, segmentation, feature extraction and writer identification using neural network. In the preprocessing phase the handwritten text is subjected to slant removal process for segmentation and feature extraction. After this step the text image enters into the process of noise removal and gray level conversion. The preprocessed image is further segmented by using morphological watershed algorithm, where the text lines are segmented into single words and then into single letters. The segmented image is feature extracted by Daubechies’5/3 integer wavelet transform to reduce training complexity [1, 6]. This process is lossless and reversible [10], [14]. These extracted features are given as input to our neural network for writer identification process and a target image is selected for each training process in the 2-layer neural network. With the several trained output data obtained from different target help in text identification. It is a multilingual text analysis which provides simple and efficient text segmentation. |
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AbstractList | In this paper we develop a system for writer identification which involves four processing steps like preprocessing, segmentation, feature extraction and writer identification using neural network. In the preprocessing phase the handwritten text is subjected to slant removal process for segmentation and feature extraction. After this step the text image enters into the process of noise removal and gray level conversion. The preprocessed image is further segmented by using morphological watershed algorithm, where the text lines are segmented into single words and then into single letters. The segmented image is feature extracted by Daubechies’5/3 integer wavelet transform to reduce training complexity [1, 6]. This process is lossless and reversible [10], [14]. These extracted features are given as input to our neural network for writer identification process and a target image is selected for each training process in the 2-layer neural network. With the several trained output data obtained from different target help in text identification. It is a multilingual text analysis which provides simple and efficient text segmentation. |
Author | P, Mathivanan P, Maran B, Ganesamoorthy |
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CitedBy_id | crossref_primary_10_1080_23270012_2024_2306628 crossref_primary_10_15406_iratj_2017_01_00042 crossref_primary_10_1080_02564602_2018_1475266 crossref_primary_10_1007_s12652_020_02201_w crossref_primary_10_1007_s13369_018_3365_1 crossref_primary_10_1016_j_aeue_2016_11_007 |
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SubjectTerms | Daubechies’5/3 Integer-to-Integer Wavelet Transform Morphological Watershed Algorithm Neural Network Slant Correction |
Title | WATERSHED ALGORITHM BASED SEGMENTATION FOR HANDWRITTEN TEXT IDENTIFICATION |
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