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Image Search Results
Journal: Heliyon
Article Title: Investigation of the relationship between contact lens design parameters and refractive changes in Ortho-K
doi: 10.1016/j.heliyon.2022.e11699
Figure Lengend Snippet: An example of a right eye of a 21-year-old male subject where the corneal pre (a) and post (b) Ortho-K wear tangential refractive power maps were determined by a custom-built MATLAB code.
Article Snippet: Tangential refractive power map of a 30 years male subject as calculated then smoothed by a
Techniques:
Journal: Heliyon
Article Title: Investigation of the relationship between contact lens design parameters and refractive changes in Ortho-K
doi: 10.1016/j.heliyon.2022.e11699
Figure Lengend Snippet: Tangential power map of left eye of a 30-year-old male subject (a) as measured by Medmont, (b) as calculated then smoothed by a custom-built MATLAB software code.
Article Snippet: Tangential refractive power map of a 30 years male subject as calculated then smoothed by a
Techniques: Software
Journal: Heliyon
Article Title: Investigation of the relationship between contact lens design parameters and refractive changes in Ortho-K
doi: 10.1016/j.heliyon.2022.e11699
Figure Lengend Snippet: Tangential refractive power map of a 30 years male subject as calculated then smoothed by a custom-built MATLAB software code with smoothing factor S = 0 to S = 1.1.
Article Snippet: Tangential refractive power map of a 30 years male subject as calculated then smoothed by a
Techniques: Software
Journal: Heliyon
Article Title: Investigation of the relationship between contact lens design parameters and refractive changes in Ortho-K
doi: 10.1016/j.heliyon.2022.e11699
Figure Lengend Snippet: Tangential refractive power map of a 30 years male subject as calculated then smoothed by a custom-built MATLAB software code with smoothing factor S = 1.2 to S = 2.3.
Article Snippet: Tangential refractive power map of a 30 years male subject as calculated then smoothed by a
Techniques: Software
Journal: Heliyon
Article Title: Investigation of the relationship between contact lens design parameters and refractive changes in Ortho-K
doi: 10.1016/j.heliyon.2022.e11699
Figure Lengend Snippet: Tangential refractive power map of a 30 years male subject as calculated then smoothed by a custom-built MATLAB software code with smoothing factor S = 2.4 to S = 3.5.
Article Snippet: Tangential refractive power map of a 30 years male subject as calculated then smoothed by a
Techniques: Software
Journal: Heliyon
Article Title: Investigation of the relationship between contact lens design parameters and refractive changes in Ortho-K
doi: 10.1016/j.heliyon.2022.e11699
Figure Lengend Snippet: Tangential refractive power map of a 30 years male subject as calculated then smoothed by a custom-built MATLAB software code with smoothing factor S = 3.6 to S = 4.7.
Article Snippet: Tangential refractive power map of a 30 years male subject as calculated then smoothed by a
Techniques: Software
Journal: Heliyon
Article Title: Investigation of the relationship between contact lens design parameters and refractive changes in Ortho-K
doi: 10.1016/j.heliyon.2022.e11699
Figure Lengend Snippet: Tangential refractive power map of a 30 years male subject as calculated then smoothed by a custom-built MATLAB software code with smoothing factor S = 4.8 to S = 5.9.
Article Snippet: Tangential refractive power map of a 30 years male subject as calculated then smoothed by a
Techniques: Software
Journal: Heliyon
Article Title: Investigation of the relationship between contact lens design parameters and refractive changes in Ortho-K
doi: 10.1016/j.heliyon.2022.e11699
Figure Lengend Snippet: Tangential refractive power map of a 30 years male subject as calculated then smoothed by a custom-built MATLAB software code with smoothing factor S = 6 to S = 28.
Article Snippet: Tangential refractive power map of a 30 years male subject as calculated then smoothed by a
Techniques: Software
Journal: Heliyon
Article Title: Investigation of the relationship between contact lens design parameters and refractive changes in Ortho-K
doi: 10.1016/j.heliyon.2022.e11699
Figure Lengend Snippet: Tangential refractive power map of a 30 years male subject as calculated then smoothed by a custom-built MATLAB software code with smoothing factor S = 30 to S = 140.
Article Snippet: Tangential refractive power map of a 30 years male subject as calculated then smoothed by a
Techniques: Software
Journal: bioRxiv
Article Title: Transient effects in corticospinal and reticulospinal tract excitability induced by motor skill and isometric resistance training
doi: 10.1101/2025.05.21.655351
Figure Lengend Snippet: ( a ) TMS was applied to the left motor cortex to elicit MEPs in the right tibialis anterior. ( b ) NeuroNavigation setup for hotspot targeting. A custom-built Neuronavigation software, using infrared camera-based motion capture markers, tracked the position and orientation of a double-cone coil to consistently target the tibialis anterior hotspot before and after each training session. ( c ) Average MEP responses at rest before and after training for a representative participant (MS004) illustrate increases in response amplitude following motor skill training. ( d ) Corresponding recruitment curve of ( c ). MEP amplitudes increased across multiple TMS intensities (100%, 150%, 180%, 200%) after training. ( e ) Percent change in MEP amplitude during pre-activation and rest conditions. The left panel shows percent changes in MEP amplitude during the pre-activation condition (15% dorsiflexion), and the right panel shows percent changes during rest. Both plots represent group-level responses across all participants following motor skill and isometric resistance training. ( f ) Training-induced changes across evaluation conditions. MEP amplitude increases following both training protocols during specific conditions. Asterisks above the bars denote post-hoc paired Bonferroni-corrected significance values for interactions between training types and evaluation conditions: *p < 0.05, **p < 0.01, *** p < 0.001, ‘n.s.’ p > 0.05. (Significant) ‘X’ markers below the plot in ( f ) indicate Bonferroni-corrected significant training effects within each condition of MEP percent change based on one-sample tests against µ = 0 (‘X’ p < 0.05, ‘XX’ p < 0.01, ‘n.s.’ p > 0.05).
Article Snippet: A
Techniques: Software, Activation Assay