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Using Machine Learning to Study How Brains Represent Language Meaning: Tom M. Mitchell

Alter Lab

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Using Machine Learning to Study How Brains Represent Language Meaning: Tom M. Mitchell

948 просмотров · 8 лет назад
Alter Lab
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948 просмотров · 8 лет назад
February 16, 2018, Scientific Computing and Imaging (SCI) Institute Distinguished Seminar, University of Utah. https://alterlab.org/announcements/Mi... Abstract: How does the human brain use neural activity to create and represent meanings of words, phrases, sentences and stories? One way to study this question is to give people text to read, while scanning their brain. We have been doing such experiments with fMRI (1 mm spatial resolution) and MEG (1 msec time resolution) brain imaging, and developing novel machine learning approaches to analyzing this data. As a result, we have learned answers to questions such as “Are the neural encodings of word meaning the same in your brain and mine?,” “Are neural encodings of word meaning built out of recognizable subcomponents, or are they randomly different for each word?,” “What sequence of neurally encoded information flows through the brain during the half-second in which the brain comprehends a word?,” “How are meanings of multiple words combined when reading phrases, sentences, and stories?” This talk will summarize our machine learning approach, some of what we have learned, and newer questions we are currently studying. Biography: Tom M. Mitchell is the E. Fredkin University Professor at Carnegie Mellon University, where he founded the world’s first Machine Learning Department. His research uses machine learning to develop computers that are learning to read the web (http://rtw.ml.cmu.edu), and uses brain imaging to study how the human brain understands what it reads. He co-chaired the 2017 U.S. National Academy study on “Information Technology, Automation, and the U.S. Workforce,” and has testified to the U.S. Congressional Research Service, and the U.S. House Subcommittee on Veterans’ Affairs regarding potential uses and impacts of artificial intelligence. Mitchell is a member of the U.S. National Academy of Engineering, of the American Academy of Arts and Sciences, and a Fellow and Past President of the Association for the Advancement of Artificial Intelligence (AAAI).