A Spiking Neuron as Information Bottleneck
Neurons receive thousands of presynaptic input spike trains while emitting a single output spike train. This drastic dimensionality reduction suggests considering a neuron as a bottleneck for information transmission. Extending recent results, we propose a simple learning rule for the weights of spi...
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Published in | Neural computation Vol. 22; no. 8; pp. 1961 - 1992 |
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Main Authors | , |
Format | Journal Article |
Language | English |
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MIT Press
01.08.2010
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Abstract | Neurons receive thousands of presynaptic input spike trains while emitting a single output spike train. This drastic dimensionality reduction suggests considering a neuron as a bottleneck for information transmission. Extending recent results, we propose a simple learning rule for the weights of spiking neurons derived from the information bottleneck (IB) framework that minimizes the loss of relevant information transmitted in the output spike train. In the IB framework, relevance of information is defined with respect to contextual information, the latter entering the proposed learning rule as a “third” factor besides pre- and postsynaptic activities. This renders the theoretically motivated learning rule a plausible model for experimentally observed synaptic plasticity phenomena involving three factors. Furthermore, we show that the proposed IB learning rule allows spiking neurons to learn a predictive code, that is, to extract those parts of their input that are predictive for future input. |
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AbstractList | Neurons receive thousands of presynaptic input spike trains while emitting a single output spike train. This drastic dimensionality reduction suggests considering a neuron as a bottleneck for information transmission. Extending recent results, we propose a simple learning rule for the weights of spiking neurons derived from the information bottleneck (IB) framework that minimizes the loss of relevant information transmitted in the output spike train. In the IB framework, relevance of information is defined with respect to contextual information, the latter entering the proposed learning rule as a "third" factor besides pre- and postsynaptic activities. This renders the theoretically motivated learning rule a plausible model for experimentally observed synaptic plasticity phenomena involving three factors. Furthermore, we show that the proposed IB learning rule allows spiking neurons to learn a predictive code, that is, to extract those parts of their input that are predictive for future input. Neurons receive thousands of presynaptic input spike trains while emitting a single output spike train. This drastic dimensionality reduction suggests considering a neuron as a bottleneck for information transmission. Extending recent results, we propose a simple learning rule for the weights of spiking neurons derived from the information bottleneck (IB) framework that minimizes the loss of relevant information transmitted in the output spike train. In the IB framework, relevance of information is defined with respect to contextual information, the latter entering the proposed learning rule as a "third" factor besides pre- and postsynaptic activities. This renders the theoretically motivated learning rule a plausible model for experimentally observed synaptic plasticity phenomena involving three factors. Furthermore, we show that the proposed IB learning rule allows spiking neurons to learn a predictive code, that is, to extract those parts of their input that are predictive for future input. [PUBLICATION ABSTRACT] |
Author | Maass, Wolfgang Buesing, Lars |
Author_xml | – sequence: 1 givenname: Lars surname: Buesing fullname: Buesing, Lars email: lars@igi.tugraz.at organization: Institute for Theoretical Computer Science, Graz University of Technology, A-8010 Graz, Austria lars@igi.tugraz.at – sequence: 2 givenname: Wolfgang surname: Maass fullname: Maass, Wolfgang email: maass@igi.tugraz.at organization: Institute for Theoretical Computer Science, Graz University of Technology, A-8010 Graz, Austria maass@igi.tugraz.at |
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Keywords | Relevance Spiking neuron Neural computation Dimensionality Neuronal discharge Synaptic plasticity Neural network Relevant information Information transmission Information loss |
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SubjectTerms | Applied sciences Artificial intelligence Biological and medical sciences Bottlenecks Computer science; control theory; systems Exact sciences and technology Fundamental and applied biological sciences. Psychology General aspects Information processing Learning Learning - physiology Learning and adaptive systems Mathematics in biology. Statistical analysis. Models. Metrology. Data processing in biology (general aspects) Miscellaneous Models, Neurological Neuronal Plasticity - physiology Neurons Neurons - physiology |
Title | A Spiking Neuron as Information Bottleneck |
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