| Models |
1. |
3D model of the olfactory bulb (Migliore et al. 2014)
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2. |
3D olfactory bulb: operators (Migliore et al, 2015)
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3. |
A Model Circuit of Thalamocortical Convergence (Behuret et al. 2013)
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4. |
A model for focal seizure onset, propagation, evolution, and progression (Liou et al 2020)
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5. |
A Moth MGC Model-A HH network with quantitative rate reduction (Buckley & Nowotny 2011)
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6. |
A multilayer cortical model to study seizure propagation across microdomains (Basu et al. 2015)
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7. |
A network model of tail withdrawal in Aplysia (White et al 1993)
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8. |
A simulation method for the firing sequences of motor units (Jiang et al 2006)
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9. |
A single column thalamocortical network model (Traub et al 2005)
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10. |
A unified thalamic model of multiple distinct oscillations (Li, Henriquez and Fröhlich 2017)
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11. |
Activity patterns in a subthalamopallidal network of the basal ganglia model (Terman et al 2002)
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12. |
Alpha rhythm in vitro visual cortex (Traub et al 2020)
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13. |
Axonal gap junctions produce fast oscillations in cerebellar Purkinje cells (Traub et al. 2008)
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14. |
Basal ganglia-thalamic network model for deep brain stimulation (So et al. 2012)
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15. |
Biophysically realistic neural modeling of the MEG mu rhythm (Jones et al. 2009)
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16. |
Burst induced synaptic plasticity in Apysia sensorimotor neurons (Phares et al 2003)
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17. |
Ca+/HCN channel-dependent persistent activity in multiscale model of neocortex (Neymotin et al 2016)
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18. |
CA1 network model: interneuron contributions to epileptic deficits (Shuman et al 2020)
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19. |
CA1 pyramidal cell: reconstructed axonal arbor and failures at weak gap junctions (Vladimirov 2011)
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20. |
Changes of ionic concentrations during seizure transitions (Gentiletti et al. 2016)
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21. |
Collection of simulated data from a thalamocortical network model (Glabska, Chintaluri, Wojcik 2017)
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22. |
Competing oscillator 5-cell circuit and Parameterscape plotting (Gutierrez et al. 2013)
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23. |
Computational analysis of NN activity and spatial reach of sharp wave-ripples (Canakci et al 2017)
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24. |
Computational aspects of feedback in neural circuits (Maass et al 2006)
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25. |
Computational Model of a Central Pattern Generator (Cataldo et al 2006)
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26. |
Computer model of clonazepam's effect in thalamic slice (Lytton 1997)
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27. |
Conductance-based model of Layer-4 in the barrel cortex (Argaman et Golomb 2017)
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28. |
Cortex-Basal Ganglia-Thalamus network model (Kumaravelu et al. 2016)
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29. |
Cortical Basal Ganglia Network Model during Closed-loop DBS (Fleming et al 2020)
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30. |
Current Dipole in Laminar Neocortex (Lee et al. 2013)
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31. |
Deconstruction of cortical evoked potentials generated by subthalamic DBS (Kumaravelu et al 2018)
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32. |
Decorrelation in the developing visual thalamus (Tikidji-Hamburyan et al, accepted)
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33. |
Dentate Gyrus Feed-forward inhibition (Ferrante et al. 2009)
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34. |
Dentate gyrus network model (Santhakumar et al 2005)
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35. |
Dentate gyrus network model (Tejada et al 2014)
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36. |
Dynamic cortical interlaminar interactions (Carracedo et al. 2013)
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37. |
Effects of increasing CREB on storage and recall processes in a CA1 network (Bianchi et al. 2014)
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38. |
Electrically-coupled Retzius neurons (Vazquez et al. 2009)
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39. |
Electrodecrements in in vitro model of infantile spasms (Traub et al 2020)
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40. |
Engaging distinct oscillatory neocortical circuits (Vierling-Claassen et al. 2010)
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41. |
Epilepsy may be caused by very small functional changes in ion channels (Thomas et al. 2009)
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42. |
Escape response latency in the Giant Fiber System of Drosophila melanogastor (Augustin et al 2019)
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43. |
Failure of Deep Brain Stimulation in a basal ganglia neuronal network model (Dovzhenok et al. 2013)
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44. |
Fast oscillations in inhibitory networks (Maex, De Schutter 2003)
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45. |
Feedforward heteroassociative network with HH dynamics (Lytton 1998)
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46. |
Gamma and theta rythms in biophysical models of hippocampus circuits (Kopell et al. 2011)
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47. |
Gamma genesis in the basolateral amygdala (Feng et al 2019)
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48. |
Gamma oscillations in hippocampal interneuron networks (Bartos et al 2002)
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49. |
Gamma oscillations in hippocampal interneuron networks (Wang, Buzsaki 1996)
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50. |
Gap-junction coupled network activity depends on coupled dendrites diameter (Gansert et al. 2007)
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51. |
Gating of steering signals through phasic modulation of reticulospinal neurons (Kozlov et al. 2014)
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52. |
Grid cell oscillatory interference with noisy network oscillators (Zilli and Hasselmo 2010)
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53. |
H-currents effect on the fluctuation of gamma/beta oscillations (Avella-Gonzalez et al., 2015)
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54. |
Half-center oscillator database of leech heart interneuron model (Doloc-Mihu & Calabrese 2011)
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55. |
High frequency oscillations in a hippocampal computational model (Stacey et al. 2009)
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56. |
High frequency stimulation of the Subthalamic Nucleus (Rubin and Terman 2004)
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57. |
Hippocampal basket cell gap junction network dynamics (Saraga et al. 2006)
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58. |
Hippocampal CA1 NN with spontaneous theta, gamma: full scale & network clamp (Bezaire et al 2016)
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59. |
Hippocampal CA3 network and circadian regulation (Stanley et al. 2013)
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60. |
Hippocampus temporo-septal engram shift model (Lytton 1999)
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61. |
Homeostatic mechanisms may shape oscillatory modulations (Peterson & Voytek 2020)
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62. |
Homosynaptic plasticity in the tail withdrawal circuit (TWC) of Aplysia (Baxter and Byrne 2006)
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63. |
Human L5 Cortical Circuit (Guet-McCreight)
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64. |
Human layer 2/3 cortical microcircuits in health and depression (Yao et al, 2022)
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65. |
Ih tunes oscillations in an In Silico CA3 model (Neymotin et al. 2013)
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66. |
Information-processing in lamina-specific cortical microcircuits (Haeusler and Maass 2006)
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67. |
Investigation of different targets in deep brain stimulation for Parkinson`s (Pirini et al. 2009)
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68. |
Irregular spiking in NMDA-driven prefrontal cortex neurons (Durstewitz and Gabriel 2006)
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69. |
Ketamine disrupts theta modulation of gamma in a computer model of hippocampus (Neymotin et al 2011)
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70. |
KInNeSS : a modular framework for computational neuroscience (Versace et al. 2008)
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71. |
L4 cortical barrel NN model receiving thalamic input during whisking or touch (Gutnisky et al. 2017)
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72. |
Large scale model of the olfactory bulb (Yu et al., 2013)
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73. |
Lateral dendrodenditic inhibition in the Olfactory Bulb (David et al. 2008)
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74. |
Leech Heart (HE) Motor Neuron conductances contributions to NN activity (Lamb & Calabrese 2013)
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75. |
Leech heart interneuron network model (Hill et al 2001, 2002)
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76. |
Levodopa-Induced Toxicity in Parkinson's Disease (Muddapu et al, 2022)
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77. |
LIP and FEF rhythmic attention model (Aussel et al. 2023)
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78. |
Lobster STG pyloric network model with calcium sensor (Gunay & Prinz 2010) (Prinz et al. 2004)
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79. |
Long time windows from theta modulated inhib. in entorhinal–hippo. loop (Cutsuridis & Poirazi 2015)
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80. |
MEC PV-positive fast-spiking interneuron network generates theta-nested fast oscillations
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81. |
Mechanisms of very fast oscillations in axon networks coupled by gap junctions (Munro, Borgers 2010)
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82. |
MEG of Somatosensory Neocortex (Jones et al. 2007)
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83. |
Model of arrhythmias in a cardiac cells network (Casaleggio et al. 2014)
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84. |
Model of long range transmission of gamma oscillation (Murray 2007)
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85. |
Model of the cerebellar granular network (Sudhakar et al 2017)
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86. |
Modelling platform of the cochlear nucleus and other auditory circuits (Manis & Compagnola 2018)
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87. |
Modulation of septo-hippocampal theta activity by GABAA receptors (Hajos et al. 2004)
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88. |
Multiplication by NMDA receptors in Direction Selective Ganglion cells (Poleg-Polsky & Diamond 2016)
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89. |
Muscle spindle feedback circuit (Moraud et al, 2016)
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90. |
Na channel mutations in the dentate gyrus (Thomas et al. 2009)
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91. |
Neocort. pyramidal cells subthreshold somatic voltage controls spike propagation (Munro Kopell 2012)
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92. |
Network model of the granular layer of the cerebellar cortex (Maex, De Schutter 1998)
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93. |
Network model with neocortical architecture (Anderson et al 2007,2012; Azhar et al 2012)
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94. |
Network recruitment to coherent oscillations in a hippocampal model (Stacey et al. 2011)
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95. |
NMDAR & GABAB/KIR Give Bistable Dendrites: Working Memory & Sequence Readout (Sanders et al., 2013)
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96. |
Normal ripples, abnormal ripples, and fast ripples in a hippocampal model (Fink et al. 2015)
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97. |
Olfactory bulb cluster formation (Migliore et al. 2010)
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98. |
Olfactory bulb mitral and granule cell column formation (Migliore et al. 2007)
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99. |
Olfactory bulb mitral and granule cell: dendrodendritic microcircuits (Migliore and Shepherd 2008)
|
100. |
Olfactory bulb mitral cell gap junction NN model: burst firing and synchrony (O`Connor et al. 2012)
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101. |
Olfactory bulb mitral cell: synchronization by gap junctions (Migliore et al 2005)
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102. |
Olfactory Bulb Network (Davison et al 2003)
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103. |
Olfactory bulb network model of gamma oscillations (Bathellier et al. 2006; Lagier et al. 2007)
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104. |
Olfactory Computations in Mitral-Granule cell circuits (Migliore & McTavish 2013)
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105. |
Parallel odor processing by mitral and middle tufted cells in the OB (Cavarretta et al 2016, 2018)
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106. |
Parametric computation and persistent gamma in a cortical model (Chambers et al. 2012)
|
107. |
Persistent synchronized bursting activity in cortical tissues (Golomb et al 2005)
|
108. |
Principles of Computational Modelling in Neuroscience (Book) (Sterratt et al. 2011)
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109. |
Pyramidal neuron, fast, regular, and irregular spiking interneurons (Konstantoudaki et al 2014)
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110. |
Rapid desynchronization of an electrically coupled Golgi cell network (Vervaeke et al. 2010)
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111. |
Regulation of a slow STG rhythm (Nadim et al 1998)
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112. |
Response properties of neocort. neurons to temporally modulated noisy inputs (Koendgen et al. 2008)
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113. |
Self-organized olfactory pattern recognition (Kaplan & Lansner 2014)
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114. |
Sensory-evoked responses of L5 pyramidal tract neurons (Egger et al 2020)
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115. |
Simulated cortical color opponent receptive fields self-organize via STDP (Eguchi et al., 2014)
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116. |
Simulations of oscillations in piriform cortex (Wilson & Bower 1992)
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117. |
Single compartment Dorsal Lateral Medium Spiny Neuron w/ NMDA and AMPA (Biddell and Johnson 2013)
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118. |
Single E-I oscillating network with amplitude modulation (Avella Gonzalez et al. 2012)
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119. |
Small world networks of Type I and Type II Excitable Neurons (Bogaard et al. 2009)
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120. |
Software for teaching neurophysiology of neuronal circuits (Grisham et al. 2008)
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121. |
Spike burst-pause dynamics of Purkinje cells regulate sensorimotor adaptation (Luque et al 2019)
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122. |
Spikes,synchrony,and attentive learning by laminar thalamocort. circuits (Grossberg & Versace 2007)
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123. |
State-dependent rhythmogenesis in a half-center locomotor CPG (Ausborn et al 2017)
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124. |
STDP promotes synchrony of inhibitory networks in the presence of heterogeneity (Talathi et al 2008)
|
125. |
Structure-dynamics relationships in bursting neuronal networks revealed (Mäki-Marttunen et al. 2013)
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126. |
Studies of stimulus parameters for seizure disruption using NN simulations (Anderson et al. 2007)
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127. |
Study of augmented Rubin and Terman 2004 deep brain stim. model in Parkinsons (Pascual et al. 2006)
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128. |
Synaptic gating at axonal branches, and sharp-wave ripples with replay (Vladimirov et al. 2013)
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129. |
Synaptic information transfer in computer models of neocortical columns (Neymotin et al. 2010)
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130. |
Synchronization by D4 dopamine receptor-mediated phospholipid methylation (Kuznetsova, Deth 2008)
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131. |
Synchrony by synapse location (McTavish et al. 2012)
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132. |
Systematic integration of data into multi-scale models of mouse primary V1 (Billeh et al 2020)
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133. |
Thalamic transformation of pallidal input (Hadipour-Niktarash 2006)
|
134. |
The microcircuits of striatum in silico (Hjorth et al 2020)
|
135. |
The origin of different spike and wave-like events (Hall et al 2017)
|
136. |
Theta-gamma phase amplitude coupling in a hippocampal CA1 microcircuit (Ponzi et al. 2023)
|
137. |
Turtle visual cortex model (Nenadic et al. 2003, Wang et al. 2005, Wang et al. 2006)
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138. |
Unbalanced peptidergic inhibition in superficial cortex underlies seizure activity (Hall et al 2015)
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139. |
Visual physiology of the layer 4 cortical circuit in silico (Arkhipov et al 2018)
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