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Open AccessJournal ArticleDOI

A Hybrid Framework for Personality Prediction based on Fuzzy Neural Networks and Deep Neural Networks

TLDR
A hybrid framework based on Fuzzy Neural Networks (FNN), along with, Deep Neural networks (DNN) has been proposed that improves the accuracy of personality recognition by combining different FNN- classifiers with DNN-classifier in a proposed two-stage decision fusion scheme.
Abstract
In general, humans are very complex organisms, and therefore, research into their various dimensions and aspects, including personality, has become an attractive subject of research. With the advent of technology, the emergence of a new kind of communication in the context of social networks has also given a new form of social communication to humans, and the recognition and categorization of people in this new space have become a hot topic of research that has been challenged by many researchers. In this paper, considering the Big Five personality characteristics of individuals, first, categorization of related work is proposed, and then a hybrid framework based on Fuzzy Neural Networks (FNN), along with, Deep Neural Networks (DNN) has been proposed that improves the accuracy of personality recognition by combining different FNN-classifiers with DNN-classifier in a proposed two-stage decision fusion scheme. Finally, a simulation of the proposed approach is carried out. The proposed approach is using the structural features of Social Networks Analysis (SNA), along with a linguistic analysis (LA) feature extracted from the description of the activities of individuals and comparison with the previous similar researches. The results, well-illustrated the performance improvement of the proposed framework up to 83.2 % of average accuracy on myPersonality dataset.

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Citations
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Journal ArticleDOI

DENOVA: Predicting Five-Factor Model using Deep Learning based on ANOVA

TL;DR: A method is proposed, called DENOVA (DEep learning based on the ANOVA), which predicts FFM using deep learningbased on the Analysis of variance (ANOVA) of words, which outperforms the state-of-the-art methods in predicting FFM with respect to accuracy.
Journal ArticleDOI

Graphology analysis for detecting hexaco personality and character through handwriting images by using convolutional neural networks and particle swarm optimization methods

TL;DR: In this paper , a convolutional neural network model called GraphoNet is built and optimized using Particle Swarm Optimization (PSO) to optimize epoch, minibatch, and droupout parameters.
References
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Book ChapterDOI

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Journal ArticleDOI

Personality, Gender, and Age in the Language of Social Media: The Open-Vocabulary Approach

TL;DR: This represents the largest study, by an order of magnitude, of language and personality, and found striking variations in language with personality, gender, and age.
Journal ArticleDOI

Deep Learning-Based Document Modeling for Personality Detection from Text

TL;DR: This article presents a deep learning based method for determining the author's personality type from text: given a text, the presence or absence of the Big Five traits is detected in theAuthor's psychological profile, and the implementation is freely available for research purposes.
Journal ArticleDOI

Predicting the Big 5 personality traits from digital footprints on social media: A meta-analysis

TL;DR: Results show that the predictive power of digital footprints over personality traits is in line with the standard “correlational upper-limit” for behavior to predict personality, with correlations ranging from 0.29 (Agreeableness) to 0.40 (Extraversion).