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BECCA: Reintegrating AI for Natural World Interaction

机译:Becca:重新融入自然世界互动的AI

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Natural world interaction (NWI), the pursuit of arbitrary goals in unstructured physical environments, is an excellent motivating problem for the reintegration of artificial intelligence. It is the problem set that humans struggle to solve. At a minimum it entails perception, learning, planning, and control, and can also involve language and social behavior. An agent's fitness in NWI is achieved by being able to perform a wide variety of tasks, rather than being able to excel at one. In an attempt to address NWI, a brain-emulating cognition and control architecture (BECCA) was developed. It uses a combination of feature creation and model-based reinforcement learning to capture structure in the environment in order to maximize reward. BECCA avoids making common assumptions about its world, such as stationarity, determinism, and the Markov assumption. BECCA has been demonstrated performing a set of tasks which is non-trivially broad, including a vision-based robotics task. Current development activity is focused on applying BECCA to the problem of general Search and Retrieve, a representative natural world interaction task.
机译:自然界互动(NWI),追求非结构化物理环境中的任意目标,是人工智能重新融入的极好激励问题。人类努力解决的问题是问题。至少它需要感知,学习,规划和控制,也可以涉及语言和社会行为。 Agent在NWI中的健身是通过能够执行各种各样的任务,而不是能够在一个方面擅长。在尝试解决NWI,开发了脑仿真认知和控制架构(BECCA)。它使用特征创建和基于模型的强化学习的组合来捕获环境中的结构,以便最大化奖励。贝卡避免了对其世界的共同假设,例如平稳,决定论和马尔可夫的假设。 Becca已被证明执行一组非历史广泛的任务,包括基于视觉的机器人专业任务。目前的发展活动专注于将Becca应用于一般搜索和检索问题,代表自然界互动任务。

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  • 来源
    《AAAI Symposium》|2012年||共6页
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  • 作者

    Brandon Rohrer;

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  • 原文格式 PDF
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  • 中图分类 TP242-53;
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