The Idealized Brain : Uniting Philosophy of Science and Computational Neuroscience
Book Details
Format
Paperback / Softback
ISBN-10
0262054922
ISBN-13
9780262054928
Publisher
MIT Press Ltd
Imprint
MIT Press
Country of Manufacture
GB
Country of Publication
GB
Publication Date
Dec 15th, 2026
Print length
268 Pages
Weight
369 grams
Product Classification:
Society and culture: generalSociety & culture: general
Ksh 10,250.00
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A critical look at our modeling techniques, and what idealized modeling can tell us, if anything, about the mind and brain.
In The Idealized Brain, Michael Kirchhoff explores the challenges of using idealized modeling in computational neuroscience. The book spans work on neural coding, deep learning, machine learning, AI, philosophy of cognitive science, and philosophy of science.
The author addresses many of the epistemic uses and harms of idealization across multiple scales and paradigms—from early biophysical models, information theory, neural coding, and deep convolutional neural networks to explainable AI—highlighting connections that should have far-reaching consequences for both philosophy of cognitive science, methodology in computational neuroscience, and how we communicate the results of our research.
Kirchhoff argues that we need to place approximation methods such as idealization at the heart of our discussions in computational neuroscience, philosophy of neuroscience, philosophy of cognitive science, and philosophy of mind. Only then can we make progress to ensure that our interpretations of computational modeling of the mind and brain are robust and on a secure epistemic and metaphysical footing.
In The Idealized Brain, Michael Kirchhoff explores the challenges of using idealized modeling in computational neuroscience. The book spans work on neural coding, deep learning, machine learning, AI, philosophy of cognitive science, and philosophy of science.
The author addresses many of the epistemic uses and harms of idealization across multiple scales and paradigms—from early biophysical models, information theory, neural coding, and deep convolutional neural networks to explainable AI—highlighting connections that should have far-reaching consequences for both philosophy of cognitive science, methodology in computational neuroscience, and how we communicate the results of our research.
Kirchhoff argues that we need to place approximation methods such as idealization at the heart of our discussions in computational neuroscience, philosophy of neuroscience, philosophy of cognitive science, and philosophy of mind. Only then can we make progress to ensure that our interpretations of computational modeling of the mind and brain are robust and on a secure epistemic and metaphysical footing.
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