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| Publications [#58156] of Miguel A. Medina
Papers Published
- Reich, Yoram and Medina, Miguel A. Jr. and Shieh, Tung-Ying and Jacobs, Timothy L., Modeling and debugging engineering decision procedures with machine learning,
Journal of Computing in Civil Engineering, vol. 10 no. 2
(1996),
pp. 157 - 166 [(ASCE)0887-3801(1996)10:2(157)]
(last updated on 2007/04/09)
Abstract: This paper reports on the use of machine learning programs for modeling existing engineering decision procedures. In this activity, different models of a decision procedure are constructed by using different machine learning programs as well as by varying their operational parameters and input. These models serve to focus on different aspects of the decision procedure thus improving its understandability, which, in turn, can assist in its evaluation and subsequent debugging. This important modeling role of machine learning programs is exemplified by modeling an existing decision procedure that is used by engineers when they need guidance in selecting among available techniques for modeling ground-water flow in a process of environmental decision making. This decision procedure was corrected and improved in the course of this work. The example demonstrates the practical utility of the modeling role of machine learning for engineering applications.
Keywords: Decision making;Computer simulation;Computer debugging;Computer software;Groundwater flow;Learning algorithms;Artificial intelligence;Data processing;
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