Broadband synergy versus oscillatory redundancy in the visual cortex.
Paper
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The authors' code
MATLAB · 10 lines · 333 B · GPL-3.0
- function fmap = cpp_mex_default_function_map()
- fmap = struct( ...
- 'copnorm_slice', 'copnorm_slice_cpp', ...
- 'info_cc_slice', 'info_cc_slice_cpp', ...
- 'info_cc_multi', '', ...
- 'info_cc_slice_indexed', '', ...
- 'info_c1d_slice', '', ...
- 'info_cd_slice', 'info_cd_slice_cpp', ...
- 'info_dc_slice_bc', '');
- end
cpp_mex_default_function_map.m at commit cd5426b, under GPL-3.0 · at the source
Overview
- Department of Psychology, University of Cambridge, Cambridge, UK
- Department of Information and Communications Engineering, Institute of Science Tokyo, Yokohama, Japan
- Laboratory for Haptic Perception and Cognitive Physiology, RIKEN Brain Science Institute, Saitama, Japan
- Neuroscience Center, Helsinki Institute of Life Science, University of Helsinki, Helsinki, Finland
- The MARCS Institute for Brain, Behaviour, and Development, Western Sydney University, Sydney, NSW Australia
- Ernst Strüngmann Institute (ESI) for Neuroscience in Cooperation with Max Planck Society, Frankfurt am Main, Germany
- Department of Neurophysics, Donders Centre for Neuroscience, Radboud University Nijmegen, Nijmegen, The Netherlands
- Department of Physiology and Biomedical Engineering, Mayo Clinic, Rochester, MN USA
- Institute of Neuroscience and Psychology, University of Glasgow, Glasgow, UK
- CINPSI Neurocog, Faculty of Health Sciences, Universidad Católica del Maule, Talca, Chile
- Department of Clinical Neuroscience, Karolinska Institutet, Stockholm, Sweden
Abstract
The cortex generates diverse neural dynamics, ranging from broadband fluctuations to narrowband oscillations at specific frequencies. Here, we investigated whether broadband and oscillatory dynamics play different roles in the encoding and transmission of visual information. We used information-theoretical measures to dissociate neural signals sharing common information (i.e., redundancy) from signals encoding complementary information (i.e., synergy). We analyzed electrocorticography (ECoG) and local field potentials (LFP) in the visual cortex of human and non-human primates (macaque) to investigate the extent to which broadband signals (BB) and narrowband gamma (NBG) oscillations conveyed synergistic or redundant information about images. In both species, the information conveyed by BB signals was highly synergistic within and between visual areas. By contrast, the information carried by NBG was primarily redundant within and between the same visual areas. Finally, the information conveyed by BB signals emerged early after stimulus onset, while NBG sustained information at later time points. These results suggest a potential dual role of BB and NBG cortical dynamics in visual processing, with broadband dynamics supporting nonlinear pattern recognition and oscillations facilitating information maintenance across the cortex.
Reproduced under the paper's license (CC BY), from the paper cited above.
Repository
Its files are read in the Code ↔ Paper reader above.
robince/gcmi
cd5426bb4c6b7094858f37c3710a4ae9367f8ef1, 23 July 2026Availability: 1 check, the latest on 30 September 2026: the link answers
- 30 September 2026: the link answers
68 files
- benchmarks/
cpp_mex_default_function , MATLAB, 10 lines_map.m - benchmarks/
run_matlab_benchmarks.m , MATLAB, 798 lines - benchmarks/
run_python_benchmarks.py , Python, 392 lines - buildfile.m, MATLAB, 45 lines
- matlab/
Contents.m , MATLAB, 36 lines - matlab/
bias_cmi_ggg_bits.m , MATLAB, 23 lines - matlab/
bias_ent_g_bits.m , MATLAB, 23 lines - matlab/
bias_mi_gd_bits.m , MATLAB, 42 lines - matlab/
bias_mi_gg_bits.m , MATLAB, 14 lines - matlab/
cmi_ggg.m , MATLAB, 93 lines - matlab/
cmi_ggg_vec.m , MATLAB, 118 lines - matlab/
copnorm.m , MATLAB, 10 lines - matlab/
cpp_mex/ , C++, 25 linesmex/ copnorm_slice_cpp.cpp - matlab/
cpp_mex/ , C++, 32 linesmex/ gcmi_cpp_blas_probe.cpp - matlab/
cpp_mex/ , C++, 21 linesmex/ gcmi_cpp_omp_probe.cpp - matlab/
cpp_mex/ , C++, 16 linesmex/ gcmi_cpp_ping.cpp - matlab/
cpp_mex/ , C++, 34 linesmex/ gcmi_cpp_runtime_probe.c pp - matlab/
cpp_mex/ , C++, 33 linesmex/ info_cc_slice_cpp.cpp - matlab/
cpp_mex/ , C, 96 linesmex/ info_cc_slice_cpp_capi.c - matlab/
cpp_mex/ , C++, 29 linesmex/ info_cd_slice_cpp.cpp - matlab/
cpp_mex/ , C++, 105 linessrc/ copnorm_kernel.cpp - matlab/
cpp_mex/ , C++, 371 linessrc/ gcmi_kernels.cpp - matlab/
cpp_mex/ , C++, 36 linessrc/ info_cc_slice_bridge.cpp - matlab/
cpp_mex/ , MATLAB, 3 linestests/ run_gcmi_cpp_mex_smoke_t ests.m - matlab/
cpp_mex/ , MATLAB, 9 linestooling/ gcmi_cpp_mex_clean.m - matlab/
cpp_mex/ , MATLAB, 189 linestooling/ gcmi_cpp_mex_compile.m - matlab/
cpp_mex/ , MATLAB, 154 linestooling/ gcmi_cpp_mex_config.m - matlab/
cpp_mex/ , MATLAB, 17 linestooling/ gcmi_cpp_mex_package.m - matlab/
cpp_mex/ , MATLAB, 156 linestooling/ gcmi_cpp_mex_test.m - matlab/
ctransform.m , MATLAB, 8 lines - matlab/
ent_g.m , MATLAB, 42 lines - matlab/
gccmi_ccc.m , MATLAB, 56 lines - matlab/
gccmi_ccd.m , MATLAB, 73 lines - matlab/
gcmi_cc.m , MATLAB, 46 lines - matlab/
gcmi_mixture_cd.m , MATLAB, 66 lines - matlab/
gcmi_model_cd.m , MATLAB, 46 lines - matlab/
gcmi_version.m , MATLAB, 4 lines - matlab/
maxstar.m , MATLAB, 42 lines - matlab/
mi_gg.m , MATLAB, 71 lines - matlab/
mi_gg_vec.m , MATLAB, 129 lines - matlab/
mi_mixture_gd.m , MATLAB, 108 lines - matlab/
mi_mixture_gd_vec.m , MATLAB, 164 lines - matlab/
mi_model_gd.m , MATLAB, 82 lines - matlab/
mi_model_gd_vec.m , MATLAB, 156 lines - matlab/
tests/ , MATLAB, 3 linesContents.m - matlab/
tests/ , MATLAB, 255 linesrun_gcmi_regression_test s.m - matlab/
validate_discrete_labels , MATLAB, 35 lines.m - matlab/
vecchol.m , MATLAB, 74 lines - matlab_examples/
bias_demo.m , MATLAB, 37 lines - matlab_examples/
block_delay.m , MATLAB, 12 lines - matlab_examples/
block_index.m , MATLAB, 6 lines - matlab_examples/
continuous_meg.m , MATLAB, 229 lines - matlab_examples/
cpp_continuous_native.m , MATLAB, 150 lines - matlab_examples/
cpp_discrete_native.m , MATLAB, 155 lines - matlab_examples/
discrete_eeg.m , MATLAB, 122 lines - matlab_examples/
eeg_temporal_interaction , MATLAB, 269 lines.m - python/
gcmi.py , Python, 33 lines - python/
src/ , Python, 5 linesgcmi/ __init__.py - python/
src/ , Python, 926 linesgcmi/ _core.py - python/
src/ , Python, 95 linesgcmi/ _dispatch.py - python/
src/ , Python, 557 linesgcmi/ _numba.py - python/
src/ , Python, 41 linesgcmi/ _version.py - python/
tests/ , Python, 9 linesconftest.py - python/
tests/ , Python, 192 linestest_batch_kernels.py - python/
tests/ , Python, 304 linestest_gcmi.py - setup_gcmi.m, MATLAB, 78 lines
- LICENSE, License, 231 lines
- README.md, Text, 272 lines
Code availability
The MATLAB/
Reproduced under the paper's license (CC BY), from the paper cited above.
Tracing map
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Data
Datasets cited
Data availability
The original human data used in this study are publicly available at: https://
Reproduced under the paper's license (CC BY), from the paper cited above.
Versions
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Version 1, 30 September 2026: the first record
Recorded: type, language, journal, volume, issue, pages, dates, 10 authors, 2 keywords, 9 MeSH terms, 2 funders, 88 references.
Cite
This paper
Roberts, L., Äijälä, J., Burger, F., Uran, C., Jensen, M. A., Miller, K. J., Ince, R. A. A., Vinck, M., Hermes, D., & Canales-Johnson, A. (2026). Broadband synergy versus oscillatory redundancy in the visual cortex. Nature communications, 17(1), 5568. https://
BibTeX
@article{roberts2026broa
author = {Roberts, Louis and Äijälä, Juho and Burger, Florian and Uran, Cem and Jensen, Michael A and Miller, Kai J and Ince, Robin A A and Vinck, Martin and Hermes, Dora and Canales-Johnson, Andres},
title = {{Broadband synergy versus oscillatory redundancy in the visual cortex}},
journal = {Nature communications},
year = {2026},
month = apr,
volume = {17},
number = {1},
pages = {5568},
publisher = {Nature Publishing Group},
issn = {2041-1723},
doi = {10.1038/
url = {https://
pmid = {42049731},
pmcid = {PMC13294381}
}
RIS
TY - JOUR
AU - Roberts, Louis
AU - Äijälä, Juho
AU - Burger, Florian
AU - Uran, Cem
AU - Jensen, Michael A
AU - Miller, Kai J
AU - Ince, Robin A A
AU - Vinck, Martin
AU - Hermes, Dora
AU - Canales-Johnson, Andres
TI - Broadband synergy versus oscillatory redundancy in the visual cortex
T2 - Nature communications
J2 - Nat Commun
PY - 2026
DA - 2026/
VL - 17
IS - 1
SP - 5568
SN - 2041-1723
PB - Nature Publishing Group
DO - 10.1038/
UR - https://
LA - en
ER -
CSL-JSON
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