Title of article
Modeling human reasoning about meta-information Original Research Article
Author/Authors
Sean L. Guarino، نويسنده , , Jonathan D. Pfautz، نويسنده , , Zach Cox، نويسنده , , Emilie Roth، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2009
Pages
13
From page
437
To page
449
Abstract
Information, as well as its qualifiers, or meta-information, forms the basis of human decision-making. Human behavior models (HBMs) therefore require the development of representations of both information and meta-information. However, while existing models and modeling approaches may include computational technologies that support meta-information analysis, they generally neglect its role in human reasoning. Herein, we describe the application of Bayesian belief networks to model how humans calculate, aggregate, and reason about meta-information when making decisions.
Keywords
Bayesian belief networks , Human behavior representations , Meta-information
Journal title
International Journal of Approximate Reasoning
Serial Year
2009
Journal title
International Journal of Approximate Reasoning
Record number
1182659
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