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  4. PsychFM: Predicting your next gamble
 
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PsychFM: Predicting your next gamble

Source
Proceedings of the International Joint Conference on Neural Networks
Date Issued
2020-07-01
Author(s)
Rajan, Prakash
Miyapuram, Krishna P.  
DOI
10.1109/IJCNN48605.2020.9207591
Abstract
There is a sudden surge to model human behavior due to its vast and diverse applications which includes modeling public policies, economic behavior and consumer behavior. Most of the human behavior itself can be modeled into a choice prediction problem. Prospect theory is a theoretical model that tries to explain the anomalies in choice prediction. These theories perform well in terms of explaining the anomalies but they lack precision. Since the behavior is person dependent, there is a need to build a model that predicts choices on a per-person basis. Looking on at the average persons choice may not necessarily throw light on a particular person's choice. Modeling the gambling problem on a per person basis will help in recommendation systems and related areas. A novel hybrid model namely psychological factorisation machine ( PsychFM ) has been proposed that involves concepts from machine learning as well as psychological theories. It outperforms the popular existing models namely random forest and factorisation machines for the benchmark dataset CPC-18. Finally, the efficacy of the proposed hybrid model has been verified by comparing with the existing models.
Publication link
https://arxiv.org/pdf/2007.01833
URI
https://d8.irins.org/handle/IITG2025/24098
Subjects
Choice prediction | Decision making under risk | Factorization machines | Human behavior modeling | Hybrid model | Random forest
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