Towards a General-Purpose Belief Maintenance System
Brian Falkenhainer

TL;DR
This paper proposes a belief maintenance system that extends traditional truth maintenance systems to handle degrees of belief and probabilistic reasoning, aiming to better support flexible and uncertain AI applications.
Contribution
It introduces a belief maintenance system that incorporates probabilistic reasoning into truth maintenance frameworks, addressing the need for dynamic, flexible, and less probability-dependent AI systems.
Findings
Demonstrates how belief maintenance can manage uncertain information effectively.
Shows improved flexibility over static knowledge structures.
Provides a foundation for integrating probabilistic reasoning into AI knowledge management.
Abstract
There currently exists a gap between the theories proposed by the probability and uncertainty and the needs of Artificial Intelligence research. These theories primarily address the needs of expert systems, using knowledge structures which must be pre-compiled and remain static in structure during runtime. Many Al systems require the ability to dynamically add and remove parts of the current knowledge structure (e.g., in order to examine what the world would be like for different causal theories). This requires more flexibility than existing uncertainty systems display. In addition, many Al researchers are only interested in using "probabilities" as a means of obtaining an ordering, rather than attempting to derive an accurate probabilistic account of a situation. This indicates the need for systems which stress ease of use and don't require extensive probability information when one…
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Taxonomy
TopicsLogic, Reasoning, and Knowledge · Semantic Web and Ontologies · AI-based Problem Solving and Planning
