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Spatially Coherent Activation Maps for Electrocardiographic Imaging.

, , and . IEEE Trans. Biomed. Engineering, 64 (5): 1149-1156 (2017)

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Virtual Normal Bipolar and Laplacian Electrodes for Activation Map Construction in ECGi., , , , and . CinC, page 949-952. www.cinc.org, (2015)Do we need to enforce the homogeneous Neumann condition on the torso for solving the inverse electrographic problem?, , , , , and . CinC, www.cinc.org, (2016)VT Scan: Towards an Efficient Pipeline from Computed Tomography Images to Ventricular Tachycardia Ablation., , , , , and . FIMH, volume 10263 of Lecture Notes in Computer Science, page 271-279. Springer, (2017)Adaptive placement of the pseudo-boundaries improves the conditioning of the inverse problem., , , , , and . CinC, www.cinc.org, (2016)Application of an Inverse-Forward Approach to Derive the 12-lead ECG from Body Surface Potential Maps., , , , , and . CinC, www.cinc.org, (2017)Validation of Activation Recovery Interval in Structurally Normal Human Ventricles by Optical Mapping., , , , , , , , , and 1 other author(s). CinC, page 1-4. www.cinc.org, (2018)Local Conduction Velocity Mapping for Electrocardiographic Imaging., , , , , , , and . CinC, page 225-228. www.cinc.org, (2015)Fully Automated Electrophysiological Model Personalisation Framework from CT Imaging., , , , , and . FIMH, volume 11504 of Lecture Notes in Computer Science, page 325-333. Springer, (2019)Spatially Coherent Activation Maps for Electrocardiographic Imaging., , and . IEEE Trans. Biomed. Engineering, 64 (5): 1149-1156 (2017)Cardiac Propagation Pattern Mapping With Vector Field for Helping Tachyarrhythmias Diagnosis With Clinical Tridimensional Electro-Anatomical Mapping Tools., , , , , , , , , and 5 other author(s). IEEE Trans. Biomed. Engineering, 66 (2): 373-382 (2019)