Papers101: Supporting the Discovery Process in the Literature Review Workflow for Novice Researchers

Kiroong Choe, Seokweon Jung, Seokhyeon Park, Hwajung Hong, Jinwook Seo
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引用次数: 10

Abstract

A literature review is a critical task in performing research. However, even browsing an academic database and choosing must-read items can be daunting for novice researchers. In this paper, we introduce Papers101, an interactive system that supports novice researchers’ discovery of papers relevant to their research topics. Prior to system design, we performed a formative study to investigate what difficul-ties novice researchers often face and how experienced researchers address them. We found that novice researchers have difficulty in identifying appropriate search terms, choosing which papers to read first, and ensuring whether they have examined enough candidates. In this work, we identified key requirements for the system dedicated to novices: prioritizing search results, unifying the contexts of multiple search results, and refining and validating the search queries. Accordingly, Papers101 provides an opinionated perspective on selecting important metadata among papers. It also visualizes how the priority among papers is developed along with the users’ knowledge discovery process. Finally, we demonstrate the potential usefulness of our system with the case study on the metadata collection of papers in visualization and HCI community.
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论文101:支持新手研究人员在文献综述工作流程中的发现过程
文献综述是进行研究的一项关键任务。然而,即使是浏览学术数据库和选择必读的文章,也会让研究新手望而生畏。在本文中,我们介绍Papers101,这是一个交互式系统,支持新手研究人员发现与他们的研究课题相关的论文。在系统设计之前,我们进行了一项形成性研究,以调查新手研究人员经常面临的困难以及经验丰富的研究人员如何解决这些困难。我们发现,研究新手在确定合适的搜索词、选择首先阅读哪些论文以及确保他们是否审查了足够多的候选论文方面存在困难。在这项工作中,我们确定了专门针对新手的系统的关键需求:搜索结果的优先级,统一多个搜索结果的上下文,以及精炼和验证搜索查询。因此,Papers101提供了一个在论文中选择重要元数据的观点。它还可视化了论文之间的优先级是如何随着用户的知识发现过程而发展的。最后,我们以可视化和人机交互社区的论文元数据收集为例,展示了我们的系统的潜在用途。
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