An Exploring Study on Building Affective Artificial Intelligence by Neural-Symbolic Computing (Extended Abstract)

Jonathan C.H. Tong, Yung-Fong Hsu, C. Liau
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Abstract

This short paper is the status report of a project in progress. We aim to model human-like agents' decision-making behaviors under risks with neural-symbolic approach. Our model integrates the learning, reasoning, and emotional aspects of an agent and takes the dual process thinking into consideration when the agent is making a decision. The model construction is based on real behavioral and brain imaging data collected in a lottery gambling experiment. We present the model architecture including its main modules and the interactions between them.
利用神经符号计算构建情感人工智能的探索研究(扩展摘要)
这篇短文是一个进行中项目的现状报告。我们的目标是用神经符号方法模拟类人代理在风险下的决策行为。我们的模型整合了代理的学习、推理和情感等方面,并在代理做出决策时考虑了双重过程思维。模型的构建基于在彩票赌博实验中收集到的真实行为和脑成像数据。我们介绍了模型架构,包括其主要模块和模块之间的交互。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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