机器人科学家的自主科学发现。

Andrew Sparkes, Wayne Aubrey, Emma Byrne, Amanda Clare, Muhammed N Khan, Maria Liakata, Magdalena Markham, Jem Rowland, Larisa N Soldatova, Kenneth E Whelan, Michael Young, Ross D King
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引用次数: 132

摘要

我们回顾了自主科学发现的主要组成部分,以及它们如何导致机器人科学家的概念。这是一个使用人工智能技术来自动化科学发现过程的各个方面的系统:它从领域的计算机模型中生成假设,设计实验来测试这些假设,使用机器人系统运行物理实验,分析和解释结果数据,并重复这个循环。我们描述了我们的两个原型机器人科学家:亚当和夏娃。亚当最近通过鉴定酵母代谢途径中负责催化特定反应的12个基因,证明了这种系统的潜力。这项工作已经用逻辑详细地正式记录下来了。我们认为,科学报道需要完全正规化,而机器人科学家可以帮助实现这一目标。这将使科学信息更具可重复性和可重用性,并促进计算机在科学推理中的集成。我们相信,科学研究的物理和智力方面的更大程度的自动化对科学的未来至关重要。更大程度的自动化提高了实验的准确性和可靠性,加快了发现的步伐,并且与传统的实验室自动化一样,从人类科学家那里消除了繁琐和重复的任务。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Towards Robot Scientists for autonomous scientific discovery.

Towards Robot Scientists for autonomous scientific discovery.

Towards Robot Scientists for autonomous scientific discovery.

Towards Robot Scientists for autonomous scientific discovery.

We review the main components of autonomous scientific discovery, and how they lead to the concept of a Robot Scientist. This is a system which uses techniques from artificial intelligence to automate all aspects of the scientific discovery process: it generates hypotheses from a computer model of the domain, designs experiments to test these hypotheses, runs the physical experiments using robotic systems, analyses and interprets the resulting data, and repeats the cycle. We describe our two prototype Robot Scientists: Adam and Eve. Adam has recently proven the potential of such systems by identifying twelve genes responsible for catalysing specific reactions in the metabolic pathways of the yeast Saccharomyces cerevisiae. This work has been formally recorded in great detail using logic. We argue that the reporting of science needs to become fully formalised and that Robot Scientists can help achieve this. This will make scientific information more reproducible and reusable, and promote the integration of computers in scientific reasoning. We believe the greater automation of both the physical and intellectual aspects of scientific investigations to be essential to the future of science. Greater automation improves the accuracy and reliability of experiments, increases the pace of discovery and, in common with conventional laboratory automation, removes tedious and repetitive tasks from the human scientist.

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