分类人类:机器视觉的间接反向操作

L. Kronman
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引用次数: 0

摘要

分类是人性化的。分类也是机器视觉技术所做的。本文通过检查描绘机器视觉对人类进行分类时以及人类对机器的视觉数据集进行分类时存在偏见的艺术品,分析了人类和机器分类之间的控制论循环。我提出了“间接反向可操作性”一词——这是一个建立在Ingrid Hoelzl和Remi Marie的“反向可操作”概念基础上的概念——来描述分类人类和机器分类器如何在控制论信息循环中运行。间接反操作性通过我共同创建的两个项目来说明:艺术、游戏和叙事中的机器视觉数据库和艺术品《可疑行为》。通过对选定艺术品的“艺术审计”,对500件创意作品中分类的表现方式进行数据分析,并反思我自己在“可疑行为”项目中的艺术研究,本文直面了偏见何时以及如何通过机器视觉分类器引入和传播的假设,并使其复杂化。通过研究机器视觉偏见的文化概念,这些概念举例说明了人类如何操作机器,以及机器如何通过图像操作人类,本文为关键数据集研究的新兴领域提供了新的视角。
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CLASSIFYING HUMANS: THE INDIRECT REVERSE OPERATIVITY OF MACHINE VISION
Classifying is human. Classifying is also what machine vision technologies do. This article analyses the cybernetic loop between human and machine classification by examining artworks that depict instances of bias when machine vision is classifying humans and when humans classify visual datasets for machines. I propose the term ‘indirect reverse operativity’ – a concept built upon Ingrid Hoelzl’s and Remi Marie’s notion of ‘reverse operativity’ – to describe how classifying humans and machine classifiers operate in cybernetic information loops. Indirect reverse operativity is illustrated through two projects I have co-created: the Database of Machine Vision in Art, Games and Narrative and the artwork Suspicious Behavior. Through ‘artistic audits’ of selected artworks, a data analysis of how classification is represented in 500 creative works, and a reflection on my own artistic research in the Suspicious Behavior project, this article confronts and complicates assumptions of when and how bias is introduced into and propagates through machine vision classifiers. By examining cultural conceptions of machine vision bias which exemplify how humans operate machines and how machines operate humans through images, this article contributes fresh perspectives to the emerging field of critical dataset studies.
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来源期刊
Photographies
Photographies Arts and Humanities-Visual Arts and Performing Arts
CiteScore
0.30
自引率
0.00%
发文量
25
期刊最新文献
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