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(2) In future presentations of the research findings, in addition to the course project website and public presentations, your real name and personal information will not appear in this research report. If you are interested in the research results, we can provide you with an executive summary after the study is completed.
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Uedu Open / Introduction to Neural Networks
9.641J

Introduction to Neural Networks

Prof. Sebastian Seung | Spring 2005
Science & Math Biology Cognitive Science Neuroscience Science
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CC BY-NC-SA 4.0
課程簡介
This course explores the organization of synaptic connectivity as the basis of neural computation and learning. Perceptrons and dynamical theories of recurrent networks including amplifiers, attractors, and hybrid computation are covered. Additional topics include backpropagation and Hebbian learning, as well as models of perception, motor control, memory, and neural development.
Course Information
SourceMIT 開放式課程
科系Brain and Cognitive Sciences
LanguageEnglish
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