Adversarial inference: predictive minds in the attention economy.

IF 3.1 Q1 PSYCHOLOGY, BIOLOGICAL Neuroscience of Consciousness Pub Date : 2023-08-24 eCollection Date: 2023-01-01 DOI:10.1093/nc/niad019
Jelle Bruineberg
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Abstract

What is it about our current digital technologies that seemingly makes it difficult for users to attend to what matters to them? According to the dominant narrative in the literature on the "attention economy," a user's lack of attention is due to the large amounts of information available in their everyday environments. I will argue that information-abundance fails to account for some of the central manifestations of distraction, such as sudden urges to check a particular information-source in the absence of perceptual information. I will use active inference, and in particular models of action selection based on the minimization of expected free energy, to develop an alternative answer to the question about what makes it difficult to attend. Besides obvious adversarial forms of inference, in which algorithms build up models of users in order to keep them scrolling, I will show that active inference provides the tools to identify a number of problematic structural features of current digital technologies: they contain limitless sources of novelty, they can be navigated by very simple and effortless motor movements, and they offer their action possibilities everywhere and anytime independent of place or context. Moreover, recent models of motivated control show an intricate interplay between motivation and control that can explain sudden transitions in motivational state and the consequent alteration of the salience of actions. I conclude, therefore, that the challenges users encounter when engaging with digital technologies are less about information overload or inviting content, but more about the continuous availability of easily available possibilities for action.

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对抗性推理:注意力经济中的预测思维。
我们当前的数字技术是什么让用户很难关注对他们来说重要的事情?根据文献中关于“注意力经济”的主流叙事,用户缺乏注意力是由于他们的日常环境中有大量可用信息。我认为,信息丰富并不能解释分心的一些核心表现,比如在缺乏感知信息的情况下突然冲动检查特定的信息源。我将使用主动推理,特别是基于预期自由能最小化的行动选择模型,来开发一个替代答案,来回答是什么让人难以参与的问题。除了明显的对抗性推理形式,即算法建立用户模型以保持用户滚动之外,我将展示主动推理提供了识别当前数字技术的一些有问题的结构特征的工具:它们包含无限的新颖性来源,可以通过非常简单和毫不费力的运动来导航,他们随时随地提供行动的可能性,而不受地点或环境的影响。此外,最近的动机控制模型显示了动机和控制之间复杂的相互作用,这可以解释动机状态的突然转变以及随之而来的行动显著性的改变。因此,我得出的结论是,用户在使用数字技术时遇到的挑战与其说是信息过载或邀请内容,不如说是持续提供容易获得的行动可能性。
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来源期刊
Neuroscience of Consciousness
Neuroscience of Consciousness Psychology-Clinical Psychology
CiteScore
6.90
自引率
2.40%
发文量
16
审稿时长
19 weeks
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