A Framework for Determining the Big Five Personality Traits Using Machine Learning Classification through Graphology

Author:

Samsuryadi 1,Kurniawan Rudi23ORCID,Supardi Julian1,Sukemi 4,Mohamad Fatma Susilawati5

Affiliation:

1. Department of Informatics, Universitas Sriwijaya, Palembang 30129, Indonesia

2. Department of Engineering Science, Universitas Sriwijaya, Palembang 30129, Indonesia

3. Department of Computer System Engineering, Universitas Bina Insan, Lubuklinggau 31629, Indonesia

4. Department of Computer Engineering, Universitas Sriwijaya, Palembang 30129, Indonesia

5. Faculty of Informatics and Computing, Universiti Sultan Zainal Abidin, 22200 Besut, Terengganu, Malaysia

Abstract

Along with the progress of the times, the development of graphology has changed towards computerization. The fundamental problem in automated graphology is how to determine personality traits through digital handwriting using the principles of graphology. Although various models and approaches have been developed in research related to automated graphology, there are still obstacles to overcome such as the selection of preprocessing techniques and image processing algorithms to extract handwriting features and proper classification techniques to get maximum accuracy. Therefore, this study aims to design a reliable framework using image processing and machine learning approaches such as filtering, thresholding, and normalization to determine the personality traits through handwriting features. Then, handwriting features are classified according to the Big Five model. Experiments using the decision tree, SVM (kernel RBF), and KNN produced an accuracy above 99%. These results indicated that the proposed framework can be well applied to predict the personality of the Big Five model through handwriting analysis features.

Funder

Universitas Sriwijaya

Publisher

Hindawi Limited

Subject

Electrical and Electronic Engineering,General Computer Science,Signal Processing

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1. A survey on artificial intelligence-based approaches for personality analysis from handwritten documents;International Journal on Document Analysis and Recognition (IJDAR);2024-08-27

2. An Effective Personality Recognition Model Design using Generative Artificial Intelligence based Learning Principles;2024 International Conference on Computing and Data Science (ICCDS);2024-04-26

3. Empowering Health and Well-being: IoT-Driven Vital Signs Monitoring in Educational Institutions and Elderly Homes Using Machine Learning;International Journal of Electrical and Electronics Research;2024-03-28

4. An Extensive Evaluation of Handwriting Analysis Methods for Personality Prediction;2024 International Conference on Integrated Circuits and Communication Systems (ICICACS);2024-02-23

5. Personality Analysis Based on The Handwriting Shape using Integration of Image Processing and Machine Learning Algorithm;2023 7th International Conference on New Media Studies (CONMEDIA);2023-12-06

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