people:chris_symonds:abstract_outcome
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- | ===== The Evolution of Parochial Altruism in Robust Computational | + | ===== The Evolution of Parochial Altruism in a Robust Computational |
+ | ===Revised Abstract=== | ||
+ | Computational models of biological evolution have shown that both parochial and altruistic behaviors increase the fitness of the host by working in concert rather than on their own beneficial merits. The benefits of these mutually reinforcing behaviors include better resources management within an in-group through the elimination of out-groups. We present new models that allow for the evolution of parochial altruism in a robust computational system that show whether the biological benefits gained from these behaviors can find a correlate effect on fitness in a robust-first environment. Wide variation in resource availability within this computational system can give rise to " | ||
- | ===Abstract=== | + | |
+ | ===Introduction? | ||
The paradigm of robust-first computing entails an infinitely scale-able environment in which elemental programs interact with each other to create emergent computational behaviors. The usefulness of such behaviors and the fitness of such elements can hold analogous properties to the system of biological evolution in the natural world. This paper will outline research that seeks to explore the evolution of parochial altruism in biological systems by modeling this behavior in a robust-first computational environment. We seek to determine whether the natural evolution of parochial altruism in the biological world, and the increased fitness that it brings, will find a correlate advantage to the elemental programs of robust-first computation, | The paradigm of robust-first computing entails an infinitely scale-able environment in which elemental programs interact with each other to create emergent computational behaviors. The usefulness of such behaviors and the fitness of such elements can hold analogous properties to the system of biological evolution in the natural world. This paper will outline research that seeks to explore the evolution of parochial altruism in biological systems by modeling this behavior in a robust-first computational environment. We seek to determine whether the natural evolution of parochial altruism in the biological world, and the increased fitness that it brings, will find a correlate advantage to the elemental programs of robust-first computation, | ||
people/chris_symonds/abstract_outcome.1412357702.txt.gz · Last modified: 2014/10/03 17:35 by csymonds