Publication | Closed Access
Online Handwritten Shape Recognition Using Segmental Hidden Markov Models
64
Citations
26
References
2007
Year
Asian CharactersMachine LearningEngineeringStatistical Shape AnalysisHandwritingBiometricsGeometric ShapesShape AnalysisImage AnalysisPattern RecognitionText RecognitionCharacter RecognitionGeometric ModelingMachine VisionOptical Character RecognitionComputer ScienceComputer VisionNatural SciencesNew Approach
We investigate a new approach for online handwritten shape recognition. Interesting features of this approach include learning without manual tuning, learning from very few training samples, incremental learning of characters, and adaptation to the user-specific needs. The proposed system can deal with two-dimensional graphical shapes such as Latin and Asian characters, command gestures, symbols, small drawings, and geometric shapes. It can be used as a building block for a series of recognition tasks with many applications.
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