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Evolution and prioritization of survival strategies for a simulated robot in Xpilot

机译:Xpilot中模拟机器人的生存策略的进化与优先级

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Simulated evolution by the use of genetic algorithms (GA) is presented as the solution to a two-faceted problem: the challenge for an autonomous agent to learn the reactive component of multiple survival strategies, while simultaneously determining the relative importance of these strategies as the agent encounters changing multivariate obstacles. The agent's ultimate purpose is to prolong its survival; it must learn to navigate its space avoiding obstacles while engaged in combat with an opposing agent. The GA learned rule-based controller significantly improved the agent's survivability in the hostile Xpilot environment.
机译:通过使用遗传算法(GA)的模拟演化作为双面问题的解决方案:自主剂学习多重生存策略的反应成分的挑战,同时确定这些策略的相对重要性代理遇到改变多变量障碍物。代理人的最终目的是延长其生存;它必须学会导航其空间避免与对立剂一起参与作战时的障碍物。 GA学制基于规则的控制器显着提高了敌对Xpilot环境中的代理人的生存能力。

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