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Towards Developmental AI: The paradox of ravenous intelligent agents

机译:朝向发展AI:贪婪智能代理人的悖论

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In spite of extraordinary achievements in specific tasks, nowadays intelligent agents are still striving for acquiring a truly ability to deal with many challenging human cognitive processes, especially when a mutable environment is involved. In the last few years, the progressive awareness on that critical issue has led to develop interesting bridging mechanisms between symbolic and sub-symbolic representations and to develop new theories to reduce the huge gap between most approaches to learning and reasoning. While the search for such a unified view of intelligent processes might still be an obliged path to follow in the years to come, in this paper, we claim that we are still trapped in the insidious paradox that feeding the agent with the available information, all at once, might be a major reason of failure when aspiring to achieve human-like cognitive capabilities. We claim that the children developmental path, as well as that of primates, mammals, and of most animals might not be primarily the outcome of biologic laws, but that it could be instead the consequence of a more general complexity principle, according to which the environmental information must properly be filtered out so as to focus attention on "easy tasks." We claim that this leads necessarily to stage-based developmental strategies that any intelligent agent must follow, regardless of its body.
机译:尽管有特定的任务中的非凡成就,但是现在智能代理仍在努力获得真正能够处理许多挑战人类认知过程的能力,特别是当涉及可变环境时。在过去的几年里,对批评问题的逐步意识导致象征性和亚象征性的表现之间的有趣桥接机制,并开展新的理论,以减少大多数学习和推理方法之间的巨大差距。虽然在本文中搜索了对智能流程的统一过程可能仍然是一个有义务的路径,但在本文中,我们声称我们仍然被困在喂食代理的阴险的悖论中,所有立刻可能是在抱负实现人类的认知能力时失败的主要原因。我们声称,儿童发育道,以及灵长类动物,哺乳动物和大多数动物的发展可能不会主要是生物学法的结果,但这可能是一个更一般的复杂性原则的结果,而是必须正确过滤环境信息,以便将注意力放在“简单的任务”上。我们声称这必须导致任何智能代理人必须遵循的基于阶段的发展策略,而不管其身体如何。

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