Publication | Closed Access
Text-independent writer identification using SIFT descriptor and contour-directional feature
38
Citations
13
References
2015
Year
Unknown Venue
Image AnalysisIcdar2013 DatasetData ScienceEngineeringPattern RecognitionSift DescriptorsBiometricsText RecognitionOptical Character RecognitionWriter IdentificationComputer ScienceDigital Writing TechnologiesSift DescriptorCharacter RecognitionDeep LearningText MiningDocument ProcessingComputer Vision
This paper presents a method for text-independent writer identification using SIFT descriptor and contour-directional feature (CDF). The proposed method contains two stages. In the first stage, a codebook of local texture patterns is constructed by clustering a set of SIFT descriptors extracted from images. Using this codebook, the occurrence histograms are calculated to determine the similarities between different images. For each image, we obtain a candidate list of reference images. The next stage is to refine the candidate list using the contour-directional feature and SIFT descriptor. The proposed method is evaluated with two datasets: the ICFHR2012-Latin dataset and the ICDAR2013 dataset. Experimental results show that the proposed method outperforms the state-of-the-art algorithms and archives the best performance.
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