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Nurturing Promotes the Evolution of Generalized Supervised Learning

机译:培育促进广义监督学习的发展

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The ability to learn makes intelligent systems more adaptive. One approach to the development of learning algorithms is to evolve them using evolutionary algorithms. The evolution of learning is interesting as a practical matter because harnessing it may allow us to develop better artificial intelligence; it is also interesting from a theoretical perspective of understanding how the sophisticated learning seen in nature could have arisen. A potential obstacle to the evolution of learning when alternative behavioral strategies (e.g., instincts) can evolve is that learning individuals tend to exhibit ineffective behavior before effective behavior is learned. Nurturing, defined as one individual investing in the development of another individual with which it has an ongoing relationship, is often seen in nature in species that exhibit sophisticated learning behavior. It is hypothesized that nurturing may be able to increase the competitiveness of learning in an evolutionary environment by ameliorating the consequences of incorrect initial behavior. Here we expand upon a foundational work in the evolution of learning to also enable the evolution of instincts and then examine the strategies evolved with and without a nurturing condition in which individuals are not penalized for mistakes made during a learning period. It is found that nurturing promotes the evolution of generalized supervised learning in these environments.
机译:学习能力使智能系统更具适应性。开发学习算法的一种方法是使用进化算法对其进行进化。在实践中,学习的发展很有趣,因为利用它可能使我们能够开发出更好的人工智能。从理论角度理解自然界中复杂的学习是如何产生的,这也是很有趣的。当替代行为策略(例如本能)可以发展时,学习发展的潜在障碍是学习个体倾向于在学习有效行为之前表现出无效行为。在自然界中,表现出复杂的学习行为的物种通常会出现“培育”的定义,即将一个个体投资于与另一个体具有持续关系的另一个体的发展。据推测,通过改善错误的初始行为的后果,培养可能能够在进化的环境中提高学习的竞争力。在这里,我们在学习进化的基础工作上进行扩展,以使本能的进化成为可能,然后研究在有无养育条件下发展的策略,其中在养育条件下个人不会因学习期间的错误而受到惩罚。发现在这些环境中,培养促进了广义监督学习的发展。

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