Computational Language Modeling and the Promise of in Silico Experimentation

Author:

Jain Shailee1ORCID,Vo Vy A.2,Wehbe Leila34,Huth Alexander G.15ORCID

Affiliation:

1. Department of Computer Science, University of Texas at Austin, Austin, TX, USA

2. Brain-Inspired Computing Lab, Intel Labs, Hillsboro, OR, USA

3. Machine Learning Department, Carnegie Mellon University, Pittsburgh, PA, USA

4. Neuroscience Institute, Carnegie Mellon University, Pittsburgh, PA, USA

5. Department of Neuroscience, University of Texas at Austin, Austin, TX, USA

Abstract

Abstract Language neuroscience currently relies on two major experimental paradigms: controlled experiments using carefully hand-designed stimuli, and natural stimulus experiments. These approaches have complementary advantages which allow them to address distinct aspects of the neurobiology of language, but each approach also comes with drawbacks. Here we discuss a third paradigm—in silico experimentation using deep learning-based encoding models—that has been enabled by recent advances in cognitive computational neuroscience. This paradigm promises to combine the interpretability of controlled experiments with the generalizability and broad scope of natural stimulus experiments. We show four examples of simulating language neuroscience experiments in silico and then discuss both the advantages and caveats of this approach.

Funder

Foundations of Language Fellowship, William Orr Dingwall Foundation

Burroughs Wellcome Fund

Intel Corporation

National Institute on Deafness and Other Communication Disorders

Publisher

MIT Press

Subject

Neurology,Linguistics and Language

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