论文标题
迈向低级人工通用情报的神经进化
Towards the Neuroevolution of Low-level Artificial General Intelligence
论文作者
论文摘要
在这项工作中,我们认为寻找人工通用情报(AGI)的范围应比人类水平的情报低得多。自然界中智能行为的环境是由于有机体与周围环境相互作用的情况,这种环境可能会随着时间的流逝而改变,并对有机体施加压力,以便学习新的行为或环境模型。我们的假设是,学习是通过解释代理在环境中作用时的感觉反馈而发生的。为此,需要一个身体和反应性环境。我们评估了一种进化的生物启发的人工神经网络的方法,该神经网络从名为“人工通用智能的神经进化”(Nagi)的环境反应中学习,这是一个低水平AGI的框架。这种方法允许使用自适应突触的随机插入尖峰神经网络的进化络合,该神经网络控制在可变环境中实例化的代理。这种配置使我们能够基准基准控制器的适应性和通用性。可变环境中所选的任务是食物觅食,逻辑门的仿真和货舱平衡。这三个任务通过相当小的网络拓扑成功解决,因此,它开辟了实验更复杂的任务和方案的可能性,其中课程学习是有益的。
In this work, we argue that the search for Artificial General Intelligence (AGI) should start from a much lower level than human-level intelligence. The circumstances of intelligent behavior in nature resulted from an organism interacting with its surrounding environment, which could change over time and exert pressure on the organism to allow for learning of new behaviors or environment models. Our hypothesis is that learning occurs through interpreting sensory feedback when an agent acts in an environment. For that to happen, a body and a reactive environment are needed. We evaluate a method to evolve a biologically-inspired artificial neural network that learns from environment reactions named Neuroevolution of Artificial General Intelligence (NAGI), a framework for low-level AGI. This method allows the evolutionary complexification of a randomly-initialized spiking neural network with adaptive synapses, which controls agents instantiated in mutable environments. Such a configuration allows us to benchmark the adaptivity and generality of the controllers. The chosen tasks in the mutable environments are food foraging, emulation of logic gates, and cart-pole balancing. The three tasks are successfully solved with rather small network topologies and therefore it opens up the possibility of experimenting with more complex tasks and scenarios where curriculum learning is beneficial.