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Related Concept Videos

Learning Disabilities01:25

Learning Disabilities

261
Learning disabilities are cognitive disorders caused by neurological impairments that affect cognitive functions like language and reading, without indicating overall intellectual or developmental challenges. These disabilities differ from global intellectual or developmental disabilities as they are limited to distinct cognitive functions. Common learning disabilities include dysgraphia, dyslexia, and dyscalculia, each of which impacts unique aspects of learning.
Dyslexia
Dyslexia is a...
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Related Experiment Video

Updated: Aug 27, 2025

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Dysgraphia disorder forecasting and classification technique using intelligent deep learning approaches.

A Devi1, G Kavya2

  • 1Research Scholar, Anna University, India; IFET College of Engineering, Villupuram, India.

Progress in Neuro-Psychopharmacology & Biological Psychiatry
|October 1, 2022
PubMed
Summary
This summary is machine-generated.

This study introduces a new method using handwriting analysis to detect dysgraphia (a learning disability affecting writing) in children. The Kekre-Discrete Cosine Transform with Deep Transfer Learning (K-DCT-DTL) achieved 99.75% accuracy, significantly improving early identification.

Keywords:
And transfer learningDeep learningDetection accuracyDysgraphiaLearning disabilityMathematical model

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Area of Science:

  • Neuroscience
  • Developmental Psychology
  • Computer Science

Background:

  • Dysgraphia is a learning disability impacting writing abilities, often challenging to diagnose early in childhood.
  • Early identification of dysgraphia is crucial for timely intervention and support.
  • Existing methods for dysgraphia detection may lack sufficient accuracy or rely on complex assessments.

Purpose of the Study:

  • To develop and evaluate a novel, highly accurate method for detecting dysgraphia in children using handwriting analysis.
  • To leverage deep transfer learning and a specialized mathematical model for feature extraction and classification.
  • To compare the proposed method's efficacy against traditional machine learning and deep learning approaches.

Main Methods:

  • Handwriting and geometric features were extracted from images using the Kekre-Discrete Cosine Transform (K-DCT).
  • Deep transfer learning was employed for effective feature learning and dysgraphia identification.
  • The proposed Kekre-Discrete Cosine Transform with Deep Transfer Learning (K-DCT-DTL) approach was implemented and tested.

Main Results:

  • The K-DCT-DTL approach demonstrated a high accuracy rate of 99.75% in detecting dysgraphia from handwritten images.
  • The proposed method significantly outperformed existing machine learning and deep learning techniques in accuracy.
  • Handwritten image analysis proved effective for identifying children with dysgraphia.

Conclusions:

  • The K-DCT-DTL method offers a highly efficient and accurate solution for the early detection of dysgraphia.
  • This approach shows significant potential for improving diagnostic capabilities in developmental learning disorders.
  • Utilizing handwritten drawings provides a viable and effective pathway for identifying dysgraphia in pediatric populations.