Publication | Closed Access
Handwritten digit recognition: applications of neural network chips and automatic learning
472
Citations
11
References
1989
Year
Local Template MatchingHandwritten Digit RecognitionImage AnalysisMachine LearningEngineeringPattern RecognitionText RecognitionBiometricsComputer EngineeringFeature ExtractionComputer ScienceClassifier SystemStatistical Pattern RecognitionCharacter RecognitionAutomatic LearningNeural Network ChipsOptical Image RecognitionPattern Recognition Application
Two novel methods for achieving handwritten digit recognition are described. The first method is based on a neural network chip that performs line thinning and feature extraction using local template matching. The second method is implemented on a digital signal processor and makes extensive use of constrained automatic learning. Experimental results obtained using isolated handwritten digits taken from postal zip codes, a rather difficult data set, are reported and discussed.< <ETX xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">></ETX>
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