EEG based personality prediction using genetic programming

Author:

Bhardwaj Harshit1ORCID,Tomar Pradeep1,Sakalle Aditi1,Bhardwaj Arpit2,Asthana Rishi3,Vidyarthi Ankit4

Affiliation:

1. Department of Computer Science and Engineering University School of Information and Communication Technology, Gautam Buddha University Greater Noida India

2. Department of Computer Science and Engineering SOET, BML Munjal University Gurugram India

3. Applied Sciences, SOET BML Munjal University Gurugram India

4. Department of CSE&IT Jaypee Institute of Information Technology Noida India

Abstract

AbstractThe reliable correlation between personality and brain signal ensures that inferences from cognitive processes can be achieved. This research aims primarily to predict one's personality using brain signals. On grounds of Psychology, the inference of personality in this work is performed on the basis of the Myers–Briggs Type Indicator (MBTI) personality inventory. Personality consists of different types of thinking, feeling and behavior patterns. EEG signals are produced when a person is exposed to situations or scenarios via visual information and experiences various emotions or sentiments. In this study, by evaluating brain waves while a person watches personality traits elicitation materials, the identification of the personality traits of an individual is done. The elicitation materials used for the collection of the dataset comprise approximately 50 videos with the pre‐defined personality of the dramatic personae and therefore, it is considered to be the ground truth for the experimental procedure of this work. For creating a dataset, sixty participants contributed and gave brain signals. The GP model with the proposed BSH crossover, known as the BSHGP model, is implemented. The maximum performance of the BSHGP model for a 10‐fold partition scheme is 84.34%.

Publisher

Wiley

Subject

Control and Systems Engineering,Electrical and Electronic Engineering,Mathematics (miscellaneous)

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