OTHER
Competence-Preserving Retention of Learned Knowledge in Soar's Working and Procedural Memories
Nate Derbinsky, John E. Laird
- 发表年份
- 2012
- 引用次数
- 4
摘要
Effective management of learned knowledge is a challenge when modeling human-level behavior within complex, temporally extended tasks. This paper evaluates one approach to this problem: forgetting knowledge that is not in active use (as determined by base-level activation) and can likely be reconstructed if it becomes relevant. We apply this model for selective retention of learned knowledge to the working and procedural memories of Soar. When evaluated in simulated, robotic exploration and a competitive, multi-player game, these policies improve model reactivity and scaling while maintaining reasoning competence.
关键词
SoarCompetence (human resources)Computer sciencePsychologyWorking memoryKnowledge retentionCognitive scienceCognitive psychologyArtificial intelligenceCognition
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