Envisioning Information Access Systems: What Makes for Good Tools and a Healthy Web?

IF 2.6 4区 计算机科学 Q2 COMPUTER SCIENCE, INFORMATION SYSTEMS
Chirag Shah, Emily M. Bender
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Abstract

We observe a recent trend towards applying large language models (LLMs) in search and positioning them as effective information access systems. While the interfaces may look appealing and the apparent breadth of applicability is exciting, we are concerned that the field is rushing ahead with a technology without sufficient study of the uses it is meant to serve, how it would be used, and what its use would mean. We argue that it is important to reassert the central research focus of the field of information retrieval, because information access is not merely an application to be solved by the so-called ‘AI’ techniques du jour. Rather, it is a key human activity, with impacts on both individuals and society. As information scientists, we should be asking what do people and society want and need from information access systems and how do we design and build systems to meet those needs? With that goal, in this conceptual paper we investigate fundamental questions concerning information access from user and societal viewpoints. We revisit foundational work related to information behavior, information seeking, information retrieval, information filtering, and information access to resurface what we know about these fundamental questions and what may be missing. We then provide our conceptual framing about how we could fill this gap, focusing on methods as well as experimental and evaluation frameworks. We consider the Web as an information ecosystem and explore the ways in which synthetic media, produced by LLMs and otherwise, endangers that ecosystem. The primary goal of this conceptual paper is to shed light on what we still do not know about the potential impacts of LLM-based information access systems, how to advance our understanding of user behaviors, and where the next generations of students, scholars, and developers could fruitfully invest their energies.

设想信息获取系统:什么是好的工具和健康的网络?
我们注意到最近有一种趋势,即在搜索中应用大型语言模型(LLM),并将其定位为有效的信息访问系统。虽然界面看起来很吸引人,适用范围也很广,但我们担心的是,该领域正在匆忙推出一种技术,而没有对其用途、使用方式和意义进行充分研究。我们认为,重申信息检索领域的核心研究重点是非常重要的,因为信息获取并不仅仅是一种应用,可以通过所谓的 "人工智能 "技术来解决。相反,它是人类的一项重要活动,对个人和社会都有影响。作为信息科学家,我们应该问一问,人们和社会希望和需要从信息获取系统中获得什么,我们又该如何设计和构建系统来满足这些需求?本着这一目标,在这篇概念性论文中,我们从用户和社会的角度探讨了有关信息获取的基本问题。我们重温了与信息行为、信息搜索、信息检索、信息过滤和信息获取相关的基础性工作,以重现我们对这些基本问题的了解以及可能存在的缺失。然后,我们提供了如何填补这一空白的概念框架,重点是方法以及实验和评估框架。我们将网络视为一个信息生态系统,并探讨由 LLM 或其他方式制作的合成媒体如何危害该生态系统。这篇概念性论文的主要目的是阐明我们对基于 LLM 的信息访问系统的潜在影响还有哪些不了解的地方,如何增进我们对用户行为的了解,以及下一代学生、学者和开发人员可以在哪些方面投入精力,以取得丰硕成果。
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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来源期刊
ACM Transactions on the Web
ACM Transactions on the Web 工程技术-计算机:软件工程
CiteScore
4.90
自引率
0.00%
发文量
26
审稿时长
7.5 months
期刊介绍: Transactions on the Web (TWEB) is a journal publishing refereed articles reporting the results of research on Web content, applications, use, and related enabling technologies. Topics in the scope of TWEB include but are not limited to the following: Browsers and Web Interfaces; Electronic Commerce; Electronic Publishing; Hypertext and Hypermedia; Semantic Web; Web Engineering; Web Services; and Service-Oriented Computing XML. In addition, papers addressing the intersection of the following broader technologies with the Web are also in scope: Accessibility; Business Services Education; Knowledge Management and Representation; Mobility and pervasive computing; Performance and scalability; Recommender systems; Searching, Indexing, Classification, Retrieval and Querying, Data Mining and Analysis; Security and Privacy; and User Interfaces. Papers discussing specific Web technologies, applications, content generation and management and use are within scope. Also, papers describing novel applications of the web as well as papers on the underlying technologies are welcome.
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