The effect of STDP temporal kernel structure on the learning dynamics of single excitatory and inhibitory synapses.

Spike-Timing Dependent Plasticity (STDP) is characterized by a wide range of temporal kernels. However, much of the theoretical work has focused on a specific kernel - the "temporally asymmetric Hebbian" learning rules. Previous studies linked excitatory STDP to positive feedback that can...

Full description

Bibliographic Details
Main Authors: Yotam Luz, Maoz Shamir
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4085044?pdf=render
_version_ 1811232947916767232
author Yotam Luz
Maoz Shamir
author_facet Yotam Luz
Maoz Shamir
author_sort Yotam Luz
collection DOAJ
description Spike-Timing Dependent Plasticity (STDP) is characterized by a wide range of temporal kernels. However, much of the theoretical work has focused on a specific kernel - the "temporally asymmetric Hebbian" learning rules. Previous studies linked excitatory STDP to positive feedback that can account for the emergence of response selectivity. Inhibitory plasticity was associated with negative feedback that can balance the excitatory and inhibitory inputs. Here we study the possible computational role of the temporal structure of the STDP. We represent the STDP as a superposition of two processes: potentiation and depression. This allows us to model a wide range of experimentally observed STDP kernels, from Hebbian to anti-Hebbian, by varying a single parameter. We investigate STDP dynamics of a single excitatory or inhibitory synapse in purely feed-forward architecture. We derive a mean-field-Fokker-Planck dynamics for the synaptic weight and analyze the effect of STDP structure on the fixed points of the mean field dynamics. We find a phase transition along the Hebbian to anti-Hebbian parameter from a phase that is characterized by a unimodal distribution of the synaptic weight, in which the STDP dynamics is governed by negative feedback, to a phase with positive feedback characterized by a bimodal distribution. The critical point of this transition depends on general properties of the STDP dynamics and not on the fine details. Namely, the dynamics is affected by the pre-post correlations only via a single number that quantifies its overlap with the STDP kernel. We find that by manipulating the STDP temporal kernel, negative feedback can be induced in excitatory synapses and positive feedback in inhibitory. Moreover, there is an exact symmetry between inhibitory and excitatory plasticity, i.e., for every STDP rule of inhibitory synapse there exists an STDP rule for excitatory synapse, such that their dynamics is identical.
first_indexed 2024-04-12T11:11:53Z
format Article
id doaj.art-076e1dbabe9c46c491abf7b987fb1cbc
institution Directory Open Access Journal
issn 1932-6203
language English
last_indexed 2024-04-12T11:11:53Z
publishDate 2014-01-01
publisher Public Library of Science (PLoS)
record_format Article
series PLoS ONE
spelling doaj.art-076e1dbabe9c46c491abf7b987fb1cbc2022-12-22T03:35:35ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-0197e10110910.1371/journal.pone.0101109The effect of STDP temporal kernel structure on the learning dynamics of single excitatory and inhibitory synapses.Yotam LuzMaoz ShamirSpike-Timing Dependent Plasticity (STDP) is characterized by a wide range of temporal kernels. However, much of the theoretical work has focused on a specific kernel - the "temporally asymmetric Hebbian" learning rules. Previous studies linked excitatory STDP to positive feedback that can account for the emergence of response selectivity. Inhibitory plasticity was associated with negative feedback that can balance the excitatory and inhibitory inputs. Here we study the possible computational role of the temporal structure of the STDP. We represent the STDP as a superposition of two processes: potentiation and depression. This allows us to model a wide range of experimentally observed STDP kernels, from Hebbian to anti-Hebbian, by varying a single parameter. We investigate STDP dynamics of a single excitatory or inhibitory synapse in purely feed-forward architecture. We derive a mean-field-Fokker-Planck dynamics for the synaptic weight and analyze the effect of STDP structure on the fixed points of the mean field dynamics. We find a phase transition along the Hebbian to anti-Hebbian parameter from a phase that is characterized by a unimodal distribution of the synaptic weight, in which the STDP dynamics is governed by negative feedback, to a phase with positive feedback characterized by a bimodal distribution. The critical point of this transition depends on general properties of the STDP dynamics and not on the fine details. Namely, the dynamics is affected by the pre-post correlations only via a single number that quantifies its overlap with the STDP kernel. We find that by manipulating the STDP temporal kernel, negative feedback can be induced in excitatory synapses and positive feedback in inhibitory. Moreover, there is an exact symmetry between inhibitory and excitatory plasticity, i.e., for every STDP rule of inhibitory synapse there exists an STDP rule for excitatory synapse, such that their dynamics is identical.http://europepmc.org/articles/PMC4085044?pdf=render
spellingShingle Yotam Luz
Maoz Shamir
The effect of STDP temporal kernel structure on the learning dynamics of single excitatory and inhibitory synapses.
PLoS ONE
title The effect of STDP temporal kernel structure on the learning dynamics of single excitatory and inhibitory synapses.
title_full The effect of STDP temporal kernel structure on the learning dynamics of single excitatory and inhibitory synapses.
title_fullStr The effect of STDP temporal kernel structure on the learning dynamics of single excitatory and inhibitory synapses.
title_full_unstemmed The effect of STDP temporal kernel structure on the learning dynamics of single excitatory and inhibitory synapses.
title_short The effect of STDP temporal kernel structure on the learning dynamics of single excitatory and inhibitory synapses.
title_sort effect of stdp temporal kernel structure on the learning dynamics of single excitatory and inhibitory synapses
url http://europepmc.org/articles/PMC4085044?pdf=render
work_keys_str_mv AT yotamluz theeffectofstdptemporalkernelstructureonthelearningdynamicsofsingleexcitatoryandinhibitorysynapses
AT maozshamir theeffectofstdptemporalkernelstructureonthelearningdynamicsofsingleexcitatoryandinhibitorysynapses
AT yotamluz effectofstdptemporalkernelstructureonthelearningdynamicsofsingleexcitatoryandinhibitorysynapses
AT maozshamir effectofstdptemporalkernelstructureonthelearningdynamicsofsingleexcitatoryandinhibitorysynapses