Cortical integration of tactile inputs distributed across timescales.
The 2 matches · all tie a paragraph to a whole file, not to given lines: weak matches, whose lines are not tinted
- [1] § Methods › EEG recordings and preprocessing ↔ private/getreadyforanalysis.m, the whole file · a weak match · score 0.89 · pop_eegfiltnew, pop_interp, baseline corrected, spherical, EEGLAB, Eye
- [2] § Methods › EEG recordings and preprocessing ↔ private/rejecteyeblink.m, the whole file · a weak match · score 0.75 · pop subcomp, Eye blink, EEGLAB, ICA, filtered, channels
Paper
Loaded from Europe PMC by your browser, not stored by OSCR: doi.org · Europe PMC
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The authors' code
MATLAB · 79 lines · 2.2 KB · no license · 1 match
- function INEEG = getreadyforanalysis(INEEG,bandpassrange,eyeE,epochevent,epochwindow,baselinewindow,rejepoch)
- % To generate clean eeg data
- % --------------------------Usage-------------------------------------
- % fomula: INEEG = getreadyforanalysis(INEEG,bandpassrange,eyeE,epochevent,epochwindow,baselinewindow,rejepoch)
- % Input(s):
- % -INEEG: EEG struct from one participant;
- % -bandpassrange:like [1 45]Hz;
- % -eyeE: eye electrode, {'E5' 'E64'};
- % -epochevent: {'S 1' 'S 1' 'S 4'}
- % -epochwindow: [-0.2 0.3]S
- % -baselinewindow: [-200 -150]ms
- % -rejepoch: 0=no rejection; 1= reject trials >80 or <-80 uV
- % Output(s):
- % -INEEG struct
- % Requires:
- % -runICA
- % Will do:
- % -rejeact eyeblinks
- % -refiltering
- % -intepolate
- % -epoch
- % -re-reference
- % -remove baseline
- % -reject epoch
- % Author: Wenyu Wan(万文雨), Leiden Univeristy
- % Date: 08/03/2023
- % edited at 24/08/2023; 27/11/2023
- % remove blinks and modify EEG.event with only those events which are in 'passive movie condition'
- if ~isempty(eyeE)
- INEEG = rejecteyeblink(INEEG,eyeE);
- end
- %filtering
- if ~isempty(bandpassrange)
- INEEG = pop_eegfiltnew(INEEG, bandpassrange(1),bandpassrange(2));
- end
- % interpolate
- if ~isfield(INEEG,'Orignalchanlocs')
- load('Orignalchanlocs.mat');
- INEEG.Orignalchanlocs = Orignalchanlocs;
- end
- INEEG = pop_interp(INEEG,INEEG.Orignalchanlocs,'spherical');
- % remove unrelated channels
- if ~isempty(eyeE)
- INEEG = pop_select(INEEG,'nochannel',eyeE); %eyeE
- end
- % epoch, select epoch, and reject epoch according to the intervals
- if ~isempty(epochevent)
- INEEG = pop_epoch(INEEG,epochevent,epochwindow,'epochinfo','no');
- end
- %re-refernce
- INEEG = pop_reref (INEEG, [1:62], 'keepref', 'on');
- %baseline correction
- if ~isempty(baselinewindow)
- INEEG = pop_rmbase(INEEG, baselinewindow); %
- end
- % reject trails?
- if rejepoch==1
- [INEEG Indexes] = pop_eegthresh(INEEG, 1, [1:62], -80, 80, -0.2, 1, 0, 1);
- end
- % create INEEG.modepoch to store the epoch after running selectepoch
- if ~isempty(epochevent)
- INEEG = selectepoch (INEEG);
- end
- % check dataset
- INEEG = eeg_checkset(INEEG);
- end
getreadyforanalysis.m at commit cfa24ad, no license · at the source
Overview
- Cognitive Psychology Unit, Institute of Psychology, Leiden University, Leiden, The Netherlands
- Department of Psychology, University of Amsterdam, Amsterdam, The Netherlands
Abstract
Sensory experiences in the real world cut across timescales from milliseconds to seconds. Emerging evidence suggests that somatosensory processing is sensitive to the temporal structure of the stimuli in the sub-second scale, yet only a few select ranges within this scale have been studied. To process real-world information, the integration of tactile inputs must occur over a much broader temporal range. To address temporal integration across timescales, we studied scalp EEG signals from somatosensory cortex in response to a train of tactile stimuli presented to the fingertips with varying inter-stimulus intervals (ISIs) spanning hundreds of milliseconds to several seconds. We captured the variations in cortical signals as a function of the subsequent ISIs (next interval structure). We tracked cortical tactile processing through its early (<75 ms), intermediate (75 to 150 ms), and late stages (150 to 300 ms). We find that the early and late stages of cortical activity were sensitive to the previous ISI; EEG signals were suppressed with ISIs <500 ms and enhanced with longer ISIs, with this effect persisting even when ISIs were approximately 8 s. The intermediate stage of cortical activity was sensitive to both the previous and the penultimate ISIs. Our findings suggest that the specific somatosensory cortical processing stages integrate temporal structure across timescales to enable complex sensory experiences.
Reproduced under the paper's license (CC BY), from the paper cited above.
Repository
Its files are read in the Code ↔ Paper reader above, with 2 matches between paragraphs and lines of code.
CODELABCODELIB/JID_ERP_Tactile_2024
cfa24adc342ef4f0f5f6d4967216437b05e5c4b8, 18 June 2025Availability: 1 check, the latest on 30 September 2026: the link answers
- 30 September 2026: the link answers
33 files
- ANLJIDERPfigure1.m, MATLAB, 146 lines
- ANLJIDERPfigure2.m, MATLAB, 117 lines
- ANLkmeans.m, MATLAB, 110 lines
- ANLonesamplettest.m, MATLAB, 141 lines
- getANLbinerp.m, MATLAB, 84 lines
- getANLbinerpavg.m, MATLAB, 87 lines
- getANLbinerpavg_all.m, MATLAB, 60 lines
- getANLcleandata.m, MATLAB, 60 lines
- getANLerpavg.m, MATLAB, 77 lines
- getANLerpavg_all.m, MATLAB, 37 lines
- getANLerpmax_all.m, MATLAB, 23 lines
- getcorrplot_population.m
, MATLAB, 151 lines - main_nnmf.m, MATLAB, 78 lines
- main_nnmf_individual.m, MATLAB, 129 lines
- private/
NMFfigure_population.m , MATLAB, 85 lines - private/
choose_best_k.m , MATLAB, 33 lines - private/
constrainelectrode.m , MATLAB, 47 lines - private/
excludeparticipant.m , MATLAB, 28 lines - private/
getbinerp.m , MATLAB, 74 lines - private/
getbinerpavg.m , MATLAB, 54 lines - private/
getbinerpvideo.m , MATLAB, 109 lines - private/
getbinidx.m , MATLAB, 63 lines - private/
getintervaldynamics.m , MATLAB, 59 lines - private/
getmaxchan.m , MATLAB, 14 lines - private/
getpopolationvideo.m , MATLAB, 76 lines - private/
getreadyforanalysis.m , MATLAB, 79 lines, 1 match - private/
imagesc2.m , MATLAB, 17 lines - private/
nanzscore.m , MATLAB, 49 lines - private/
readme.m , MATLAB, 1 line - private/
rejecteyeblink.m , MATLAB, 34 lines, 1 match - private/
selectelectrode.m , MATLAB, 20 lines - private/
selectepoch.m , MATLAB, 51 lines - README.md, Text, 21 lines
The paper's code and data availability statement is in the Data section.
Tracing map
Proposed by the machine: these links were found in the paper and verified at the source, without human review. The map will receive a Zenodo DOI once one of the paper's authors has validated it with their ORCID.
What the map holds:
- 1 repository of the authors' code, each at its verified commit, with its license and how the link was found in the paper;
- 32 scripts, each with its path and the digest of its content;
- 2 matches between paragraphs of the paper and lines of the code (method lexical-v1);
- neither the text of the paper nor the code itself.
Its JSON (tracing-map.json) is deposited on Zenodo with its DOI once the map is validated.
Data
No dataset and no data link were found in the paper.
Data and Code Availability
Pseudo-anonymized MATLAB.mat file containing processed JIERP data is made available on dataverse.nl upon publication; The custom-written scripts used towards this report are shared on: 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, pages, dates, 3 authors, 5 keywords, 2 funders, 62 references.
Cite
This paper
Wan, W., Ridderinkhof, K. R., & Ghosh, A. (2026). Cortical integration of tactile inputs distributed across timescales. Imaging neuroscience (Cambridge, Mass.), 4, IMAG.a.1146. https://
BibTeX
@article{wan2026cortical
author = {Wan, Wenyu and Ridderinkhof, K Richard and Ghosh, Arko},
title = {{Cortical integration of tactile inputs distributed across timescales}},
journal = {Imaging neuroscience (Cambridge, Mass.)},
year = {2026},
month = mar,
volume = {4},
pages = {IMAG.a.1146},
publisher = {MIT Press},
issn = {2837-6056},
doi = {10.1162/
url = {https://
pmid = {41799681},
pmcid = {PMC12961305}
}
RIS
TY - JOUR
AU - Wan, Wenyu
AU - Ridderinkhof, K Richard
AU - Ghosh, Arko
TI - Cortical integration of tactile inputs distributed across timescales
T2 - Imaging neuroscience (Cambridge, Mass.)
J2 - Imaging Neurosci (Camb)
PY - 2026
DA - 2026/
VL - 4
SP - IMAG.a.1146
SN - 2837-6056
PB - MIT Press
DO - 10.1162/
UR - https://
LA - en
ER -
CSL-JSON
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"title": "Cortical integration of tactile inputs distributed across timescales",
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"author": [
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"family": "Wan",
"given": "Wenyu"
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}
],
"container-title-short":
"volume": "4",
"page": "IMAG.a.1146",
"DOI": "10.1162/
"PMID": "41799681",
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"ISSN": "2837-6056",
"publisher": "MIT Press",
"URL": "https://
"language": "en",
"issued": {
"date-parts": [
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]
}
}
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