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July 1, 1992Journal of Experimental & Theoretical Artificial Intelligence323 citations

High-level perception, representation, and analogy: A critique of artificial intelligence methodology

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DCDavid J. ChalmersRFRobert M. FrenchDHDouglas R. Hofstadter

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Abstract

High-level perception—the process of making sense of complex data at an abstract, conceptual level—is fundamental to human cognition. Through high-level perception, chaotic environmental stimuli are organized into mental representations that are used throughout cognitive processing. Much work in traditional artificial intelligence has ignored the process of high-level perception, by starting with hand-coded representations. In this paper, we argue that this dismissal of perceptual processes leads to distorted models of human cognition. We examine some existing artificial-intelligence models—notably BACON, a model of scientific discovery, and the Structure-Mapping Engine, a model of analogical thought—-and argue that these are flawed precisely because they downplay the role of high-level perception. Further, we argue that perceptual processes cannot be separated from other cognitive processes even in principle,and therefore that traditional artificial-intelligence models cannot be defended by supposing the existence of a ‘representation module’ that supplies representations ready-made. Finally, we describe a model of high-level perception and analogical thought in which perceptual processing is integrated with analogical mapping, leading to the flexible build-up of representations appropriate to a given context.

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Cite This Study

Chalmers et al. (1992) studied this question.

synapsesocial.com/papers/6a73240863e5df1b64a0ba2chttps://doi.org/10.1080/09528139208953747
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