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a, b. (a) ATM was calculated by dedicated software for each of the 3 apical scan planes by averaging longitudinal myocardial motion (displacement) traces of 2 opposite apical regions of interest after inverting the data from the anterior, lateral, and anteroseptal sides, respectively. (ET-ejection time) (this part of the figure is from ‘reference 8,’ with permission of the authors). (b) We used dedicated MATLAB (The Math Works Inc., Natick, Massachusetts, USA)-based analysis software <t>(TVA</t> version 14.7, JU <t>Voigt,</t> <t>Leuven,</t> Belgium, with permission) for further post-processing. ATMloop was reconstructed by combining the curves of the three apical views (ATM4CV, ATM3CV, ATM2CV), with the assumption that they intersected at 60° angles. An ATMloop of 8.9 mm was calculated in a patient with radial dyssynchrony
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MathWorks Inc dedicated software
a, b. (a) ATM was calculated by dedicated software for each of the 3 apical scan planes by averaging longitudinal myocardial motion (displacement) traces of 2 opposite apical regions of interest after inverting the data from the anterior, lateral, and anteroseptal sides, respectively. (ET-ejection time) (this part of the figure is from ‘reference 8,’ with permission of the authors). (b) We used dedicated MATLAB (The Math Works Inc., Natick, Massachusetts, USA)-based analysis software <t>(TVA</t> version 14.7, JU <t>Voigt,</t> <t>Leuven,</t> Belgium, with permission) for further post-processing. ATMloop was reconstructed by combining the curves of the three apical views (ATM4CV, ATM3CV, ATM2CV), with the assumption that they intersected at 60° angles. An ATMloop of 8.9 mm was calculated in a patient with radial dyssynchrony
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a, b. (a) ATM was calculated by dedicated software for each of the 3 apical scan planes by averaging longitudinal myocardial motion (displacement) traces of 2 opposite apical regions of interest after inverting the data from the anterior, lateral, and anteroseptal sides, respectively. (ET-ejection time) (this part of the figure is from ‘reference 8,’ with permission of the authors). (b) We used dedicated MATLAB (The Math Works Inc., Natick, Massachusetts, USA)-based analysis software <t>(TVA</t> version 14.7, JU <t>Voigt,</t> <t>Leuven,</t> Belgium, with permission) for further post-processing. ATMloop was reconstructed by combining the curves of the three apical views (ATM4CV, ATM3CV, ATM2CV), with the assumption that they intersected at 60° angles. An ATMloop of 8.9 mm was calculated in a patient with radial dyssynchrony
R2015a, supplied by MathWorks Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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MathWorks Inc dedicated software matlab software
a, b. (a) ATM was calculated by dedicated software for each of the 3 apical scan planes by averaging longitudinal myocardial motion (displacement) traces of 2 opposite apical regions of interest after inverting the data from the anterior, lateral, and anteroseptal sides, respectively. (ET-ejection time) (this part of the figure is from ‘reference 8,’ with permission of the authors). (b) We used dedicated MATLAB (The Math Works Inc., Natick, Massachusetts, USA)-based analysis software <t>(TVA</t> version 14.7, JU <t>Voigt,</t> <t>Leuven,</t> Belgium, with permission) for further post-processing. ATMloop was reconstructed by combining the curves of the three apical views (ATM4CV, ATM3CV, ATM2CV), with the assumption that they intersected at 60° angles. An ATMloop of 8.9 mm was calculated in a patient with radial dyssynchrony
Dedicated Software Matlab Software, supplied by MathWorks Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Image Search Results


a, b. (a) ATM was calculated by dedicated software for each of the 3 apical scan planes by averaging longitudinal myocardial motion (displacement) traces of 2 opposite apical regions of interest after inverting the data from the anterior, lateral, and anteroseptal sides, respectively. (ET-ejection time) (this part of the figure is from ‘reference 8,’ with permission of the authors). (b) We used dedicated MATLAB (The Math Works Inc., Natick, Massachusetts, USA)-based analysis software (TVA version 14.7, JU Voigt, Leuven, Belgium, with permission) for further post-processing. ATMloop was reconstructed by combining the curves of the three apical views (ATM4CV, ATM3CV, ATM2CV), with the assumption that they intersected at 60° angles. An ATMloop of 8.9 mm was calculated in a patient with radial dyssynchrony

Journal: Anatolian Journal of Cardiology

Article Title: Apical transverse motion is associated with speckle-tracking radial dyssynchrony in patients with non-ischemic dilated cardiomyopathy

doi: 10.5152/akd.2014.5607

Figure Lengend Snippet: a, b. (a) ATM was calculated by dedicated software for each of the 3 apical scan planes by averaging longitudinal myocardial motion (displacement) traces of 2 opposite apical regions of interest after inverting the data from the anterior, lateral, and anteroseptal sides, respectively. (ET-ejection time) (this part of the figure is from ‘reference 8,’ with permission of the authors). (b) We used dedicated MATLAB (The Math Works Inc., Natick, Massachusetts, USA)-based analysis software (TVA version 14.7, JU Voigt, Leuven, Belgium, with permission) for further post-processing. ATMloop was reconstructed by combining the curves of the three apical views (ATM4CV, ATM3CV, ATM2CV), with the assumption that they intersected at 60° angles. An ATMloop of 8.9 mm was calculated in a patient with radial dyssynchrony

Article Snippet: We used a dedicated MATLAB (The Math Works Inc., Natick, Massachusetts, USA)-based analysis software (TVA version 14.7, JU Voigt, Leuven, Belgium, with permission) for further post-processing.

Techniques: Software