Workshop on Artificial Intelligence and the "Barrier of Meaning"
Workshop on Artificial Intelligence and the "Barrier of Meaning"
批准号:
1832717
负责人:
Melanie Mitchell
金额:
$2.01万
依托单位:
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:
2018-05-01 至 2019-04-30
中文摘要
该研讨会汇集了计算机科学,心理学,生物学,神经科学等领域的知名学者,以解决人工智能中的“理解”问题。 在本活动中,参与者将考虑先进的计算机系统拥有类似人类的理解力意味着什么,探索智能系统表现出这种理解力的必要性,并讨论使这些系统具有这种能力的方法。 多学科社区的参与将为我们如何定义,设计,实施和控制克服这一意义障碍的复杂系统开发新的和可操作的见解。 本次研讨会还将带来成果和后续活动,以促进人工智能教育和公众对当前人工智能状况的认识,包括其局限性和潜在的脆弱性。本次研讨会的方法是探索复杂系统如何从他们遇到的信息中提取意义。研讨会的参与者将参与关于在许多学科的复杂系统中“理解”或“提取意义”的功能和机制的问题,并特别关注人类理解的相关性,以创建可靠的,适应新情况的人工智能系统,并抵御对抗性攻击。 理解理解的本质和必要性仍然是人工智能研究中最深刻的智力挑战之一。研讨会的讨论将旨在澄清共同的问题,并确定可能的新途径来回答这些问题。组织者将发布技术和普通读者摘要,传达研讨会讨论的结果,这些讨论涉及不同学科中的理解或意义概念,以及这些现象如何与,或使,该奖项反映了NSF的法定使命,并被认为值得通过使用基金会的学术价值和更广泛的影响评审标准。
英文摘要
This workshop brings together eminent scholars in the fields of computer science, psychology, biology, neuroscience, and others to address the topic of "understanding" in artificial intelligence. In this activity, participants will consider what it would mean for advanced computer systems to possess human-like understanding, explore how necessary it is for intelligent systems to exhibit such understanding, and discuss approaches to imbuing these systems with such a capability. Engagement of a multidisciplinary community will develop new and actionable insight into how we define, design, implement, and control complex systems that overcome this barrier of meaning. The workshop will likely also lead to outcomes and follow-on activities to benefit AI education and public awareness regarding the state of current artificial intelligence, including its limitations and potential vulnerabilities.The approach in this workshop is to explore how complex systems extract meaning from the information they encounter. Workshop participants will engage questions about the function and mechanisms of "understanding" or "extracting meaning" in complex systems across many disciplines, and focus specifically on the relevance of human-like understanding for creating artificial intelligence systems that are reliable, adaptable to novel situations, and robust against adversarial attacks. Understanding the nature and necessity of understanding remains among the deepest intellectual challenges in AI research. Workshop discussions will be aimed at clarifying common questions and identifying possible novel pathways to answering these questions. Organizers will publish both technical and general-readership summaries communicating the results of the workshop discussions concerning the notions of understanding or meaning as phenomena in diverse disciplines, and how these phenomena relate to, or enable, the robustness that will be needed for safe and trustworthy AI in the real world.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.
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会议论文
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