Delve: A Dataset-Driven Scholarly Search and Analysis System

Uchenna Akujuobi, Xiangliang Zhang
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引用次数: 26

Abstract

Research and experimentation in various scientific fields are based on the observation, analysis and benchmarking on datasets. The advancement of research and development has thus, strengthened the importance of dataset access. However, without enough knowledge of relevant datasets, researchers usually have to go through a process which we term \manual dataset retrieval". With the accelerated rate of scholarly publications, manually finding the relevant dataset for a given research area based on its usage or popularity is increasingly becoming more and more difficult and tedious. In this paper, we present Delve, a web-based dataset retrieval and document analysis system. Unlike traditional academic search engines and dataset repositories, Delve is dataset driven and provides a medium for dataset retrieval based on the suitability or usage in a given field. It also visualizes dataset and document citation relationship, and enables users to analyze a scientific document by uploading its full PDF. In this paper, we first discuss the reasons why the scientific community needs a system like Delve. We then proceed to introduce its internal design and explain how Delve works and how it is beneficial to researchers of all levels
Delve:一个数据集驱动的学术搜索和分析系统
各个科学领域的研究和实验都是基于对数据集的观察、分析和基准测试。因此,研究和开发的进步加强了数据集访问的重要性。然而,如果没有足够的相关数据集知识,研究人员通常不得不经历一个我们称之为“手动数据集检索”的过程。随着学术论文发表速度的加快,根据某一研究领域的使用情况或流行程度,手动查找相关数据集变得越来越困难和繁琐。在本文中,我们提出Delve,一个基于web的数据集检索和文档分析系统。与传统的学术搜索引擎和数据集存储库不同,Delve是数据集驱动的,并根据给定领域的适用性或使用情况为数据集检索提供了一种媒介。它还可以可视化数据集和文献引用关系,并使用户能够通过上传完整的PDF来分析科学文献。在本文中,我们首先讨论了科学界需要Delve这样的系统的原因。然后我们继续介绍它的内部设计,并解释Delve是如何工作的,以及它如何对各级研究人员有益
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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