Clustering writing styles with a self-organizing map
نویسنده
چکیده
This work shows how a Self-Organizing Map (SOM) can be applied in the analysis of different handwriting styles. The analyzed handwriting samples have been collected in on-line fashion with special writing equipments such as pressure sensitive tablets. The handwriting style of an individual subject is represented by a vector, components of which reflect the tendencies of the writer to use certain prototypical styles for isolated alphanumeric characters. This study shows that correlations between different writing styles, both character-wise and writer-wise can be found. Clusters of different personal writing styles can be found by studying the U-matrix viasualization of the SOM trained with data collected from over 700 subjects. An examination of the component planes of the SOM reveals some interesting correlations between the prototypical character styles.
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تاریخ انتشار 2002