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Indicators and Criteria of Consciousness in Animals and Intelligent Machines: An Inside-Out Approach

机译:动物和智能机器的意识指标和标准:一种由内而外的方法

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摘要

In today’s society, it becomes increasingly important to assess which non-human and non-verbal beings possess consciousness. This review article aims to delineate criteria for consciousness especially in animals, while also taking into account intelligent artifacts. First, we circumscribe what we mean with “consciousness” and describe key features of subjective experience: qualitative richness, situatedness, intentionality and interpretation, integration and the combination of dynamic and stabilizing properties. We argue that consciousness has a biological function, which is to present the subject with a multimodal, situational survey of the surrounding world and body, subserving complex decision-making and goal-directed behavior. This survey reflects the brain’s capacity for internal modeling of external events underlying changes in sensory state. Next, we follow an inside-out approach: how can the features of conscious experience, correlating to mechanisms inside the brain, be logically coupled to externally observable (“outside”) properties? Instead of proposing criteria that would each define a “hard” threshold for consciousness, we outline six indicators: (i) goal-directed behavior and model-based learning; (ii) anatomic and physiological substrates for generating integrative multimodal representations; (iii) psychometrics and meta-cognition; (iv) episodic memory; (v) susceptibility to illusions and multistable perception; and (vi) specific visuospatial behaviors. Rather than emphasizing a particular indicator as being decisive, we propose that the consistency amongst these indicators can serve to assess consciousness in particular species. The integration of scores on the various indicators yields an overall, graded criterion for consciousness, somewhat comparable to the Glasgow Coma Scale for unresponsive patients. When considering theoretically derived measures of consciousness, it is argued that their validity should not be assessed on the basis of a single quantifiable measure, but requires cross-examination across multiple pieces of evidence, including the indicators proposed here. Current intelligent machines, including deep learning neural networks (DLNNs) and agile robots, are not indicated to be conscious yet. Instead of assessing machine consciousness by a brief Turing-type of test, evidence for it may gradually accumulate when we study machines ethologically and across time, considering multiple behaviors that require flexibility, improvisation, spontaneous problem-solving and the situational conspectus typically associated with conscious experience.
机译:在当今社会中,评估哪些非人类和非语言存在者具有意识变得越来越重要。这篇综述文章旨在描述意识标准,尤其是在动物中的意识标准,同时还考虑了智能制品。首先,我们界定“意识”的含义,并描述主观体验的关键特征:质的丰富性,位置性,意向性和解释性,动态性和稳定性的结合以及结合。我们认为意识具有生物学功能,即向受试者提供对周围世界和身体的多模式,情境调查,以支持复杂的决策和目标导向的行为。这项调查反映了大脑对外部状态进行内部建模的能力,这些内部事件是感觉状态变化的基础。接下来,我们采用一种由内而外的方法:与大脑内部机制相关的意识体验的特征如何在逻辑上与外部可观察(“外部”)属性耦合?我们没有提出分别定义意识的“硬”阈值的标准,而是概述了六个指标:(i)目标导向的行为和基于模型的学习; (ii)用于生成综合多峰表示的解剖和生理基质; (iii)心理计量学和元认知; (iv)情景记忆; (v)对幻象和多稳态感知的敏感性; (vi)特定的视觉空间行为。我们建议将这些指标之间的一致性用于评估特定物种的意识,而不是强调特定指标具有决定性。各项指标得分的综合得出意识的总体分级标准,与无反应患者的格拉斯哥昏迷量表有些相似。在考虑从理论上得出的意识测度时,有人认为,其有效性不应基于单一的可量化测度来评估,而需要对多个证据(包括此处提出的指标)进行交叉检验。目前还没有发现包括深度学习神经网络(DLNN)和敏捷机器人在内的当前智能机器。代替通过简短的图灵式测试来评估机器意识,当我们从道德和跨时间的角度研究机器时,考虑到需要灵活,即兴,自发解决问题的各种行为以及通常与意识相关的情境调查,可能会逐渐积累有关机器的意识的证据。经验。

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