Accelerating progress in Artificial General Intelligence: Choosing a benchmark for natural world interaction

B. Rohrer
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引用次数: 14

Abstract

Accelerating progress in Artificial General Intelligence: Choosing a benchmark for natural world interaction Measuring progress in the field of Artificial General Intelligence (AGI) can be difficult without commonly accepted methods of evaluation. An AGI benchmark would allow evaluation and comparison of the many computational intelligence algorithms that have been developed. In this paper I propose that a benchmark for natural world interaction would possess seven key characteristics: fitness, breadth, specificity, low cost, simplicity, range, and task focus. I also outline two benchmark examples that meet most of these criteria. In the first, the direction task, a human coach directs a machine to perform a novel task in an unfamiliar environment. The direction task is extremely broad, but may be idealistic. In the second, the AGI battery, AGI candidates are evaluated based on their performance on a collection of more specific tasks. The AGI battery is designed to be appropriate to the capabilities of currently existing systems. Both the direction task and the AGI battery would require further definition before implementing. The paper concludes with a description of a task that might be included in the AGI battery: the search and retrieve task.
加速人工智能的发展:为自然世界的相互作用选择一个基准
如果没有普遍接受的评估方法,衡量人工通用智能(AGI)领域的进展可能是困难的。AGI基准将允许对已经开发的许多计算智能算法进行评估和比较。在本文中,我提出自然世界交互的基准应该具有七个关键特征:适应性、广度、特异性、低成本、简单性、范围和任务焦点。我还概述了满足大多数这些标准的两个基准示例。在第一个任务中,指导任务是由人类教练指导机器在不熟悉的环境中执行一项新任务。方向任务极其宽泛,但可能过于理想化。在第二个AGI电池中,根据AGI候选人在一系列更具体任务上的表现对其进行评估。AGI电池被设计为适合当前现有系统的能力。在实施之前,方向任务和AGI电池都需要进一步定义。本文最后描述了一个可能包含在AGI电池中的任务:搜索和检索任务。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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