This book addresses the growing need for machine learning and data
mining in neuroscience. The book offers a basic overview of the
neuroscience, machine learning and the required math and
programming necessary to develop reliable working models. The
material is presented in a easy to follow user-friendly manner and
is replete with fully working machine learning code. Machine
Learning for Neuroscience: A Systematic Approach, tackles the needs
of neuroscience researchers and practitioners that have very little
training relevant to machine learning. The first section of the
book provides an overview of necessary topics in order to delve
into machine learning, including basic linear algebra and Python
programming. The second section provides an overview of
neuroscience and is directed to the computer science oriented
readers. The section covers neuroanatomy and physiology, cellular
neuroscience, neurological disorders and computational
neuroscience. The third section of the book then delves into how to
apply machine learning and data mining to neuroscience and provides
coverage of artificial neural networks (ANN), clustering, and
anomaly detection. The book contains fully working code examples
with downloadable working code. It also contains lab assignments
and quizzes, making it appropriate for use as a textbook. The
primary audience is neuroscience researchers who need to delve into
machine learning, programmers assigned neuroscience related machine
learning projects and students studying methods in computational
neuroscience.
General
Imprint: |
Taylor & Francis
|
Country of origin: |
United Kingdom |
Release date: |
July 2023 |
First published: |
2023 |
Authors: |
Chuck Easttom
|
Dimensions: |
234 x 156mm (L x W) |
Pages: |
290 |
ISBN-13: |
978-1-03-213672-1 |
Categories: |
Books
|
LSN: |
1-03-213672-3 |
Barcode: |
9781032136721 |
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