Abstract
Program behavior results from the interactions of instructions with data. In genetic programming, a substantial part of that behavior is not explicitly rewarded by fitness function, and thus emergent. This includes the intermediate memory states traversed by the executing programs. We argue that the potentially useful intermediate states can be detected and used to make evolutionary search more effective. © 2013 The Author(s).
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Krawiec, K. (2014). Genetic programming: Where meaning emerges from program code. Genetic Programming and Evolvable Machines, 15(1), 75–77. https://doi.org/10.1007/s10710-013-9200-2
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