构建AI可靠性数据仓库,解决研究数据匮乏问题
Bridging the Data Gap in AI Reliability Research and Establishing DR-AIR, a Comprehensive Data Repository for AI Reliability
- 系统梳理AI可靠性评估指标与数据采集方法
- 建立可公开访问的DR-AIR数据仓库,整合现有数据集
- 适合关注AI可信性、安全性的研究人员使用
人工智能技术迅速发展,但确保其可靠性对建立公众信任至关重要。这需要针对AI系统的可靠性数据进行建模与分析。当前学术界面临的主要挑战是缺乏现成可用的AI可靠性数据。为此,本文开展全面回顾,提出并建立DR-AIR——一个面向AI可靠性的综合性数据仓库。我们定义了关键评估指标与数据类型,并说明数据收集方法。同时,详细描述了现有数据集并提供示例。文中还介绍了DR-AIR仓库的搭建方式及其实际应用。该仓库为AI可靠性研究提供经过筛选的公开数据资源。我们相信这些工作将显著促进研究社区获取高质量数据,推动跨领域协作。最后呼吁研究者共同贡献和共享可靠性数据,以推进这一关键领域的研究。
原文摘要 · Abstract (English)
Artificial intelligence (AI) technology and systems have been advancing rapidly. However, ensuring the reliability of these systems is crucial for fostering public confidence in their use. This necessitates the modeling and analysis of reliability data specific to AI systems. A major challenge in AI reliability research, particularly for those in academia, is the lack of readily available AI reliability data. To address this gap, this paper focuses on conducting a comprehensive review of available AI reliability data and establishing DR-AIR: a data repository for AI reliability. Specifically, we introduce key measurements and data types for assessing AI reliability, along with the methodologies used to collect these data. We also provide a detailed description of the currently available datasets with illustrative examples. Furthermore, we outline the setup of the DR-AIR repository and demonstrate its practical applications. This repository provides easy access to datasets specifically curated for AI reliability research. We believe these efforts will significantly benefit the AI research community by facilitating access to valuable reliability data and promoting collaboration across various academic domains within AI. We conclude our paper with a call to action, encouraging the research community to contribute and share AI reliability data to further advance this critical field of study.
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