Collaborative Research: CompCog: Achieving Analogical Reasoning via Human and Machine Learning
Collaborative Research: CompCog: Achieving Analogical Reasoning via Human and Machine Learning
批准号:
1827374
负责人:
Keith Holyoak
金额:
$47.7万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-08-15 至 2022-07-31
中文摘要
尽管人工智能最近取得了进展,但人类的创造性思维能力仍然是无与伦比的。智能机器可以使用海量数据来学习识别与学习到的例子相似的模式,但人们可以使用非常少量的数据来发现表面上非常不同的情况之间的深层相似之处(例如,工程师使用从白蚁丘改编的原理为建筑物设计了一种冷却系统)。这种类型的创造性思维依赖于类比:根据实体之间的关系发现和利用相似之处的能力,而不仅仅是表面上的。本研究旨在展示如何从例子中学习关系(以文本或图片的形式),然后用类比的方式进行推理。这项工作将机器学习的最新进展与更像人类的学习机制结合在一起。改进的类比模型将增加基于计算机的信息检索的能力,允许文本和图片作为检索线索,在大型数据库中搜索在关系结构中相似的项目。为该项目生成的大型类比数据集将公之于众。更灵活的搜索引擎将有助于工程设计等创造性任务的自动化。确定关系学习和类比推理的计算基础将通过提供更有效的学习机制来指导人工智能系统的发展。研究小组正在整合研究和教育活动,利用这个项目作为跨学科研究的培训机会,包括心理学、统计学、计算机科学和数学。这项研究将把先进的计算方法与人类关系学习和类比推理的行为实验相结合,使用文本和图片作为输入。这项工作是以学习和推理的认知理论为指导的,并利用了机器视觉领域的最新进展。该项目包括建立和验证多个类比问题数据库。将进行实验,以确定人类在各种任务中的表现水平。通过深度网络的大数据学习和通过贝叶斯建模的小数据学习的协同作用,将开发计算模型。模型将通过与人类基准进行比较来进行评估。通过解决自然输入中出现的问题,如文本和图片,将开发的模型将概括到人们在日常生活中遇到的情况。该奖项反映了NSF的法定使命,并通过使用基金会的智力优势和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Despite recent advances in artificial intelligence, humans remain unmatched in their ability to think creatively. Intelligent machines can use massive data to learn to identify patterns that are similar to learned examples, but people can use very small amounts of data to discover deep similarities between situations that are superficially very different (e.g., engineers have devised a cooling system for buildings using principles adapted from termite mounds). This type of creative thinking depends on analogy: the ability to find and exploit resemblances based on relations among entities, rather than solely on superficial appearances. The present investigation aims to show how relations can be learned from examples (in the form of either texts or pictures) and then used to reason by analogy. The work integrates recent advances in machine learning with more human-like learning mechanisms. Improved analogy models will increase the power of computer-based information retrieval, allowing both text and pictures to serve as retrieval cues to search large databases for items that are analogous in relational structure. The large analogy datasets generated for the project will be made publically available. More flexible search engines will help to automate creative tasks such as engineering design. Identifying the computational basis for relation learning and analogical reasoning will guide development of artificial intelligence systems by providing more efficient learning mechanisms. The research team is integrating research and education activities by using this project as a training opportunity in interdisciplinary research, encompassing psychology, statistics, computer science and mathematics. The research will integrate advanced computational approaches with behavioral experiments on human relation learning and analogical reasoning, using both texts and pictures as inputs. The work is guided by cognitive theory on learning and reasoning, and exploits recent advances in the field of machine vision. The project includes the creation and validation of multiple databases of analogy problems. Experiments will be performed to establish human performance levels in a variety of tasks. Computational models will be developed by synergizing big-data learning through deep networks with small-data learning through Bayesian modeling. Models will be evaluated by comparison with human benchmarks. By addressing issues that arise in reasoning from natural inputs such as texts and pictures, the models to be developed will generalize to situations that people encounter in their daily life.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
期刊论文(33)
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An Individual-Differences Approach to Poetic Metaphor: Impact of Aptness and Familiarity
诗歌隐喻的个体差异方法:恰当性和熟悉性的影响
DOI:
--
发表时间:
2022
期刊:
Metaphor and symbol
影响因子:
1.1
作者:
[Stamenković, D., Milenković, K., Ichien, N., Holyoak, K. J.]
通讯作者:
Holyoak, K. J.
DOI:
10.1037/xlm0001010
发表时间:
2021-07
期刊:
Journal of experimental psychology. Learning, memory, and cognition
影响因子:
--
作者:
[Nicholas Ichien;Hongjing Lu;K. Holyoak]
通讯作者:
Nicholas Ichien;Hongjing Lu;K. Holyoak
DOI:
10.1080/10926488.2020.1821203
发表时间:
2020-10
期刊:
Metaphor and Symbol
影响因子:
1.1
作者:
[Dusan Stamenkovic;Nicholas Ichien;K. Holyoak]
通讯作者:
Dusan Stamenkovic;Nicholas Ichien;K. Holyoak
Semantic and Visual Interference in Solving Pictorial Analogies
解决图像类比中的语义和视觉干扰
DOI:
--
发表时间:
2019
期刊:
Annual Meeting of the Cognitive Science Society
影响因子:
--
作者:
[Emily Wong, Guido F. Schauer, P. Gordon, K. Holyoak]
通讯作者:
K. Holyoak
Familial Guilt: A Cross-Society Comparison of Judgments of Collective Family Responsibility
家庭内疚:集体家庭责任判断的跨社会比较
DOI:
--
发表时间:
2022
期刊:
Proceedings of the 44th Annual Meeting of the Cognitive Science Society
影响因子:
--
作者:
[Lee, J., Holyoak, K. J.]
通讯作者:
Holyoak, K. J.
共 30 条
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Decision Processes in Judgments of Order and Relative Magnitude
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国内基金
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