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A new neural network based algorithm for identifying handwritten mathematical equations
17
Citations
9
References
2017
Year
Numerical AnalysisEngineeringMachine LearningStructural Pattern RecognitionNonlinear System IdentificationMomentum AlgorithmImage AnalysisPattern RecognitionNew Neural NetworkCharacter RecognitionEdge DetectionMachine VisionComputer EngineeringComputer ScienceStatistical Pattern RecognitionDeep LearningOptical Image RecognitionHandwritten Mathematical EquationsComputer VisionEvolving Neural NetworkCellular Neural NetworkComputational NeuroscienceNeuro-fuzzy SystemHandwritten DigitsPattern Recognition Application
Identification of handwritten digits, letters, mathematical symbols and complex structure expressions have captured a lot of concentration in the field of pattern recognition. Accuracy has been improved by considering the features like skew, entropy, kurtosis, standard deviation. In segmentation binarization, edge detection, morphological operation has been considered. The equations under various categories have been considered for experiment and achieved significant results. Latency, throughput and accuracy have been improved by using feed forward back propagation neural network with gradient descent with momentum algorithm and adaptive learning.
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