
As an Amazon Associate and affiliate partner, Menrva Books earns from qualifying purchases. Learn more
Neural network research often builds on the fiction that neurons are simple linear threshold units, completely neglecting the highly dynamic and complex nature of synapses, dendrites, and voltage-dependent ionic currents. Biophysics of Computation: Information Processing in Single Neurons challenges this notion, using richly detailed experimental and theoretical findings from cellular biophysics to explain the repertoire of computational functions available to single neurons. The author shows how individual nerve cells can multiply, integrate, or delay synaptic inputs and how information can be encoded in the voltage across the membrane, in the intracellular calcium concentration, or in the timing of individual spikes.Key topics covered include the linear cable equation; cable theory as applied to passive dendritic trees and dendritic spines; chemical and electrical synapses and how to treat them from a computational point of view; nonlinear interactions of synaptic input in passive and active dendritic trees; the Hodgkin-Huxley model of action potential generation and propagation; phase space analysis; linking stochastic ionic channels to membrane-dependent currents; calcium and potassium currents and their role in information processing; the role of diffusion, buffering and binding of calcium, and other messenger systems in information processing and storage; short- and long-term models of synaptic plasticity; simplified models of single cells; stochastic aspects of neuronal firing; the nature of the neuronal code; and unconventional models of sub-cellular computation.Biophysics of Computation: Information Processing in Single Neurons serves as an ideal text for advanced undergraduate and graduate courses in cellular biophysics, computational neuroscience, and neural networks, and will appeal to students and professionals in neuroscience, electrical and computer engineering, and physics.
This text investigates the computational capacity of individual neurons by moving beyond simplified linear models to analyze the complex biophysical mechanisms governing synaptic and dendritic activity. Christof Koch, a prominent researcher in the field, synthesizes experimental data and theoretical frameworks to demonstrate how single nerve cells perform sophisticated information processing. The book argues that the intricate dynamics of ionic currents, membrane voltages, and intracellular signaling are fundamental to understanding how the brain encodes and computes information.
What You Will Find
Scope Limits
Experts recognize this work as a foundational text for graduate-level study in computational neuroscience due to its rigorous integration of biological detail and mathematical modeling. Readers frequently note the high density of the prose, which requires a strong background in physics and mathematics to fully comprehend the presented theories.
Page Count:
576
Publication Date:
2004-01-01
Publisher:
Oxford University Press
ISBN-10:
0190292857
ISBN-13:
9780190292850