Topics in Expert System Design: Methodologies and ToolsGiovanni Guida, Carlo Tasso North-Holland, 1989 - 441 pages Expert Systems are so far the most promising achievement of artificial intelligence research. Decision making, planning, design, control, supervision and diagnosis are areas where they are showing great potential. However, the establishment of expert system technology and its actual industrial impact are still limited by the lack of a sound, general and reliable design and construction methodology. |
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Page 125
... progress in the area of machine learning [ 9 ] opens a number of possibilities for improving knowledge acquisition methods for knowledge - based systems . Various experiments have demonstrated that it is possible to learn the decision ...
... progress in the area of machine learning [ 9 ] opens a number of possibilities for improving knowledge acquisition methods for knowledge - based systems . Various experiments have demonstrated that it is possible to learn the decision ...
Page 175
... progress in retrospective analysis of reasoning for major scientific discoveries [ 42 ] . The next step , of validating how experts apply theoretical knowledge in practical problem solving instances in a prescriptive manner is also a ...
... progress in retrospective analysis of reasoning for major scientific discoveries [ 42 ] . The next step , of validating how experts apply theoretical knowledge in practical problem solving instances in a prescriptive manner is also a ...
Page 196
... progress of the probability calculations . This is not only useful for debugging but is also of considerable assistance to the expert when developing an understanding of probabilities and their manipulation . A " What If " facility is ...
... progress of the probability calculations . This is not only useful for debugging but is also of considerable assistance to the expert when developing an understanding of probabilities and their manipulation . A " What If " facility is ...
Contents
From life cycle to development | 3 |
Choosing an expert system domain | 27 |
Tools and motivations | 47 |
Copyright | |
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abstract activities AI Magazine application approach Artificial Intelligence assessment attribute backward chaining behavior Breuker building cognitive complete components Computer concepts conceptual model construction context cycle decision defined described diagnosis domain expert domain knowledge environment example expert system development expert system evaluation expert system technology expertise facilities Figure formal function goal graphical heuristics identified implementation important inductive input instance integrated interaction interface interpretation models KADS KCML knowledge acquisition knowledge base Knowledge Craft knowledge elicitation knowledge engineer knowledge representation knowledge-based systems KRITON language layer LISP machine machine learning metaclasses methodology methods model-based reasoning MYCIN objects operations OPS5 output particular performance phase possible problem solving problem solving process produce programming Prolog protocol analysis prototype refinement relations reliability repertory grid represent requirements rule-based rules selection shells situations software engineering solution specific strategies target system task techniques types validity values