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Why Is Artificial Intelligence Blamed More? Analysis of Faulting Artificial Intelligence for Self-Driving Car Accidents in Experimental Settings

机译:为什么人工智能归咎于更多?实验环境中自动驾驶汽车事故故障的人工智能分析

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摘要

This study conducted an experiment to test how the level of blame differs between an artificial intelligence (AI) and a human driver based on attribution theory and computers are social actors (CASA). It used a 2 (human vs. AI driver) x 2 (victim survived vs. victim died) x 2 (female vs. male driver) design. After reading a given scenario, participants (N = 284) were asked to assign a level of responsibility to the driver. The participants blamed drivers more when the driver was AI compared to when the driver was a human. Also, the higher level of blame was shown when the result was more severe. However, gender bias was found not to be significant when faulting drivers. These results indicate that the intention of blaming AI comes from the perception of dissimilarity and the seriousness of outcomes influences the level of blame. Implications of findings for applications and theory are discussed.
机译:本研究进行了一个实验,以测试人工智能(AI)与基于归因理论和计算机之间的人类驾驶员之间的责任程度如何是社交行为者(CASA)。它使用了2(人类与AI驱动程序)x 2(受害者存活与受害者死亡)x 2(女性与男性司机)设计。在阅读给定的方案之后,要求参与者(n = 284)向司机分配责任级别。当驾驶员是人类的时候,当驾驶员是驾驶员时,参与者将司机更加归咎于司机。此外,当结果更严重时,显示了更高水平的责任。然而,发现性别偏见在断层驾驶员时不会显着。这些结果表明,责备AI的意图来自不相似性的看法,结果的严重性影响了责任水平。讨论了对应用和理论的调查结果的影响。

著录项

  • 来源
  • 作者

    Hong J. W.;

  • 作者单位

    Univ Southern Calif Annenberg Sch Commun & Journalism Los Angeles CA 90007 USA;

  • 收录信息 美国《科学引文索引》(SCI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-19 01:19:32
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