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Pith Integrity · Reference Change Desk · events-only

Reference changes

See every place this corpus cites a work that was later retracted, corrected, withdrawn, or placed under expression of concern: exact quote, event source, and what happened next. No model judges the citation.

A notice on this page means a citing paper's bibliography includes a work with a published scholarly-record event. It is not a judgment on the citing paper.

Scoped to citing paper 2506.21886 · clear

01Events with corpus notices

02One-hop citation notices (secondary index)

Correction Crossref Open
Transcutaneous Interference Spinal Cord Stimulation: Leadfield-Based Pareto Optimization of Electrode Montages for Improved Focality

cites Howell, S · ref [34] · event 2015-04-07 · 2506.21886 · event page · DOI 10.1371/journal.pone.0114938

Raw extraction · bibliography line

B. Howell, S. P. Lad, W. M. Grill, and J. C. Glorioso, ‘Evaluation of intradural stimulation efficiency and selectivity in a computational model of spinal cord stimulation’, PLoS One, vol. 9, no. 12, Dec. 2014, doi: 10.1371/journal.pone.0114938
Correction Crossref Open
Transcutaneous Interference Spinal Cord Stimulation: Leadfield-Based Pareto Optimization of Electrode Montages for Improved Focality

cites 10.1063/5.0163264 · ref [36] · event 2023-11-22 · 2506.21886 · event page · DOI 10.1063/5.0163264

Raw extraction · bibliography line

J. G. Troughton, Y. O. Ansong Snr, N. Duobaite, and C. M. Proctor, ‘Finite element analysis of electric field distribution during direct current stimulation of the spinal cord: Implications for device design’, APL Bioeng, vol. 7, no. 4, Dec. 2023, doi: 10.1063/5.0163264
Correction Retraction Watch Open
Transcutaneous Interference Spinal Cord Stimulation: Leadfield-Based Pareto Optimization of Electrode Montages for Improved Focality

cites 10.1093/brain/awu038 · ref [10] · 2506.21886 · event page · DOI 10.1093/brain/awu038

Raw extraction · bibliography line

C. A. Angeli, V. R. Edgerton, Y. P. Gerasimenko, and S. J. Harkema, ‘Altering spinal cord excitability enables voluntary movements after chronic complete paralysis in humans’, Brain, vol. 137, no. 5, pp. 1394 –1409, May 2014, doi: 10.1093/brain/awu038