Predicting the laterality of temporal lobe epilepsy from PET, MRI, and DTI: A multimodal study
暂无分享,去创建一个
Brian Avants | Xiaosong He | Ashwini Sharan | Richard Gorniak | Scott Mintzer | Dorian Pustina | B. Avants | A. Sharan | S. Mintzer | M. Sperling | D. Pustina | G. Doucet | X. He | R. Gorniak | Xiaosong He | Paul Barnett | Michael Sperling | Gaelle Doucet | Joseph Tracy | Paul Barnett | J. Tracy | P. Barnett
[1] Sharon Chiang,et al. Computer‐automated focus lateralization of temporal lobe epilepsy using fMRI , 2015, Journal of magnetic resonance imaging : JMRI.
[2] Gavin P Winston,et al. The potential role of novel diffusion imaging techniques in the understanding and treatment of epilepsy. , 2015, Quantitative imaging in medicine and surgery.
[3] Leonardo Bonilha,et al. Quantitative MRI in refractory temporal lobe epilepsy: relationship with surgical outcomes. , 2015, Quantitative imaging in medicine and surgery.
[4] Satrajit S. Ghosh,et al. Prediction as a Humanitarian and Pragmatic Contribution from Human Cognitive Neuroscience , 2015, Neuron.
[5] Ashwini Sharan,et al. Increased microstructural white matter correlations in left, but not right, temporal lobe epilepsy , 2015, Human brain mapping.
[6] Hamid Soltanian-Zadeh,et al. Lateralization of temporal lobe epilepsy by multimodal multinomial hippocampal response-driven models , 2014, Journal of the Neurological Sciences.
[7] Pengfan Yang,et al. Long-term epilepsy surgery outcomes in patients with PET-positive, MRI-negative temporal lobe epilepsy , 2014, Epilepsy & Behavior.
[8] Rui Feng,et al. Surgical Treatment of MRI-Negative Temporal Lobe Epilepsy Based on PET: A Retrospective Cohort Study , 2014, Stereotactic and Functional Neurosurgery.
[9] Arno Klein,et al. Large-scale evaluation of ANTs and FreeSurfer cortical thickness measurements , 2014, NeuroImage.
[10] C. Skidmore,et al. Contralateral interictal spikes are related to tapetum damage in left temporal lobe epilepsy , 2014, Epilepsia.
[11] M. Sperling,et al. Distinct Types of White Matter Changes Are Observed after Anterior Temporal Lobectomy in Epilepsy , 2014, PloS one.
[12] Dewen Hu,et al. Decreased white matter integrity in mesial temporal lobe epilepsy: a machine learning approach , 2014, Neuroreport.
[13] Bruce R. Rosen,et al. Cortical surface-based analysis reduces bias and variance in kinetic modeling of brain PET data , 2014, NeuroImage.
[14] Edward F. Chang,et al. Rates and predictors of seizure freedom in resective epilepsy surgery: an update , 2014, Neurosurgical Review.
[15] Robert C. Knowlton,et al. Predictive value of hippocampal internal architecture asymmetry in temporal lobe epilepsy , 2013, Epilepsy Research.
[16] George Jallo,et al. The evaluation of FDG-PET imaging for epileptogenic focus localization in patients with MRI positive and MRI negative temporal lobe epilepsy , 2013, Neuroradiology.
[17] C. Bielza,et al. Machine Learning Approach for the Outcome Prediction of Temporal Lobe Epilepsy Surgery , 2013, PloS one.
[18] Wesley T. Kerr,et al. Computer-Aided Diagnosis and Localization of Lateralized Temporal Lobe Epilepsy Using Interictal FDG-PET , 2013, Front. Neurol..
[19] Paul A. Yushkevich,et al. Multi-Atlas Segmentation with Joint Label Fusion , 2013, IEEE Transactions on Pattern Analysis and Machine Intelligence.
[20] Carlo Pierpaoli,et al. Informed RESTORE: A method for robust estimation of diffusion tensor from low redundancy datasets in the presence of physiological noise artifacts , 2012, Magnetic resonance in medicine.
[21] Olivier Gevaert,et al. Prognostic PET 18F-FDG uptake imaging features are associated with major oncogenomic alterations in patients with resected non-small cell lung cancer. , 2012, Cancer research.
[22] Neda Bernasconi,et al. Spatial patterns of water diffusion along white matter tracts in temporal lobe epilepsy , 2012, Neurology.
[23] Ernesto Roldan-Valadez,et al. Secondary MRI-findings, volumetric and spectroscopic measurements in mesial temporal sclerosis: a multivariate discriminant analysis. , 2012, Swiss medical weekly.
[24] Steve S. Chung,et al. Neuropathological Study of Resected Cerebral Tissue from Patients with 3 Tesla MRI-Negative Refractory Epilepsy (P03.115) , 2012 .
[25] K. Ohtomo,et al. Usefulness of extent analysis for statistical parametric mapping with asymmetry index using inter-ictal FGD-PET in mesial temporal lobe epilepsy , 2012, Annals of Nuclear Medicine.
[26] M. Sperling,et al. Surgical outcome in PET‐positive, MRI‐negative patients with temporal lobe epilepsy , 2012, Epilepsia.
[27] John S. Duncan,et al. Automated MR image classification in temporal lobe epilepsy , 2012, NeuroImage.
[28] J. Téllez-Zenteno,et al. A Review of the Epidemiology of Temporal Lobe Epilepsy , 2011, Epilepsy research and treatment.
[29] Eric Halgren,et al. MRI analysis in temporal lobe epilepsy: Cortical thinning and white matter disruptions are related to side of seizure onset , 2011, Epilepsia.
[30] Didier Dormont,et al. Diffusion tensor imaging can localize the epileptogenic zone in nonlesional extra-temporal refractory epilepsies when [18F]FDG-PET is not contributive , 2011, Epilepsy Research.
[31] M. Brázdil,et al. “MRI-negative PET-positive” temporal lobe epilepsy: Invasive EEG findings, histopathology, and postoperative outcomes , 2011, Epilepsy & Behavior.
[32] S. Perlman,et al. Surgical decision making in temporal lobe epilepsy: A comparison of [18F]FDG-PET, MRI, and EEG , 2011, Epilepsy & Behavior.
[33] Neda Bernasconi,et al. Graph-theoretical analysis reveals disrupted small-world organization of cortical thickness correlation networks in temporal lobe epilepsy. , 2011, Cerebral cortex.
[34] Arno Klein,et al. A reproducible evaluation of ANTs similarity metric performance in brain image registration , 2011, NeuroImage.
[35] N. Costes,et al. Voxel-Based Analysis of Asymmetry Index Maps Increases the Specificity of 18F-MPPF PET Abnormalities for Localizing the Epileptogenic Zone in Temporal Lobe Epilepsies , 2010, Journal of Nuclear Medicine.
[36] Satrajit S. Ghosh,et al. Evaluation of volume-based and surface-based brain image registration methods , 2010, NeuroImage.
[37] Christian Bottomley,et al. Estimation of the burden of active and life-time epilepsy: A meta-analytic approach , 2010, Epilepsia.
[38] David M A Francis,et al. Surgical decision making , 2009, ANZ journal of surgery.
[39] E. Halgren,et al. Side Matters: Diffusion Tensor Imaging Tractography in Left and Right Temporal Lobe Epilepsy , 2009, American Journal of Neuroradiology.
[40] N. Roberts,et al. Voxel‐based morphometry of temporal lobe epilepsy: An introduction and review of the literature , 2008, Epilepsia.
[41] M. Sperling,et al. Are Depression and Cognitive Performance Related in Temporal Lobe Epilepsy? , 2007, Epilepsia.
[42] Agatha D. Lee,et al. Reduced neocortical thickness and complexity mapped in mesial temporal lobe epilepsy with hippocampal sclerosis. , 2007, Cerebral cortex.
[43] Mark W. Woolrich,et al. Probabilistic diffusion tractography with multiple fibre orientations: What can we gain? , 2007, NeuroImage.
[44] J J Halford,et al. Asymmetrical extra-hippocampal grey matter loss related to hippocampal atrophy in patients with medial temporal lobe epilepsy , 2006, Journal of Neurology, Neurosurgery & Psychiatry.
[45] Anders M. Dale,et al. An automated labeling system for subdividing the human cerebral cortex on MRI scans into gyral based regions of interest , 2006, NeuroImage.
[46] Hidetoshi Shimodaira,et al. Pvclust: an R package for assessing the uncertainty in hierarchical clustering , 2006, Bioinform..
[47] D. Louis Collins,et al. MR-based neurological disease classification methodology: Application to lateralization of seizure focus in temporal lobe epilepsy , 2006, NeuroImage.
[48] Otto Muzik,et al. Application of an objective method for localizing bilateral cortical FDG PET abnormalities to guide the resection of epileptic foci , 2005, IEEE Transactions on Biomedical Engineering.
[49] Derek K. Jones,et al. RESTORE: Robust estimation of tensors by outlier rejection , 2005, Magnetic resonance in medicine.
[50] E. Beghi,et al. Predictors of epilepsy surgery outcome: a meta-analysis , 2004, Epilepsy Research.
[51] A H Kaye,et al. MRI-negative PET-positive temporal lobe epilepsy: a distinct surgically remediable syndrome. , 2004, Brain : a journal of neurology.
[52] Dong Soo Lee,et al. Differential features of metabolic abnormalities between medial and lateral temporal lobe epilepsy: quantitative analysis of (18)F-FDG PET using SPM. , 2003, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[53] Dae Won Seo,et al. Extratemporal hypometabolism on FDG PET in temporal lobe epilepsy as a predictor of seizure outcome after temporal lobectomy , 2003, European Journal of Nuclear Medicine and Molecular Imaging.
[54] M Vapalahti,et al. [18F]FDG-PET reveals temporal hypometabolism in patients with temporal lobe epilepsy even when quantitative MRI and histopathological analysis show only mild hippocampal damage. , 2001, Archives of neurology.
[55] J. Engel. Mesial Temporal Lobe Epilepsy: What Have We Learned? , 2001, The Neuroscientist : a review journal bringing neurobiology, neurology and psychiatry.
[56] W H Theodore,et al. Hippocampal Volume and Glucose Metabolism in Temporal Lobe Epileptic Foci , 2001, Epilepsia.
[57] A M Dale,et al. Measuring the thickness of the human cerebral cortex from magnetic resonance images. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[58] P. Van Bogaert,et al. Statistical Parametric Mapping of Regional Glucose Metabolism in Mesial Temporal Lobe Epilepsy , 2000, NeuroImage.
[59] F Cendes,et al. Lateralization of Temporal Lobe Epilepsy (TLE) and Discrimination of TLE from Extra‐TLE Using Pattern Analysis of Magnetic Resonance Spectroscopic and Volumetric Data , 2000, Epilepsia.
[60] R. Gilmore,et al. Electroencephalographic, volumetric, and neuropsychological indicators of seizure focus lateralization in temporal lobe epilepsy. , 2000, Archives of neurology.
[61] R. Fisher,et al. Bilateral Temporal Hypometabolism in Epilepsy , 1998, Epilepsia.
[62] E. Ringelstein,et al. Measurement of Temporal Asymmetries of Glucose Consumption Using Linear Profiles: Reproducibility and Comparison with Visual Analysis , 1998, Nuklearmedizin.
[63] R. Robinson,et al. Visual and semiquantitative analysis of cortical FDG-PET scans in childhood epileptic encephalopathies. , 1997, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[64] M. Newton,et al. Hippocampal Atrophy Is Not a Major Determinant of Regional Hypometabolism in Temporal Lobe Epilepsy , 1997, Epilepsia.
[65] Ron Kohavi,et al. A Study of Cross-Validation and Bootstrap for Accuracy Estimation and Model Selection , 1995, IJCAI.
[66] G. E. Thomas. Resampling‐Based Multiple Testing: Examples and Methods for p‐Value Adjustment , 1994 .
[67] D. Firth. Bias reduction of maximum likelihood estimates , 1993 .
[68] S. S. Young,et al. Resampling-Based Multiple Testing: Examples and Methods for p-Value Adjustment , 1993 .
[69] C. A. Phillips,et al. A noninvasive protocol for anterior temporal lobectomy , 1992, Neurology.
[70] W H Theodore,et al. Effect of Valproate on Human Cerebral Glucose Metabolism , 1991, Epilepsia.
[71] SPECT and PET in Epilepsy , 1989, The Lancet.
[72] Zhengyu Jin,et al. Altered hemispheric symmetry found in left-sided mesial temporal lobe epilepsy with hippocampal sclerosis (MTLE/HS) but not found in right-sided MTLE/HS. , 2013, Magnetic resonance imaging.
[73] Chuong D. Hoang,et al. 1 Prognostic PET 18 F-FDG uptake imaging features are associated with major oncogenomic alterations in patients with resected non-small cell lung cancer , 2012 .
[74] J Nucl Med , 2010 .
[75] Jan Sijbers,et al. ExploreDTI: a graphical toolbox for processing, analyzing, and visualizing diffusion MR data , 2009 .
[76] Glenn Fung,et al. On the Dangers of Cross-Validation. An Experimental Evaluation , 2008, SDM.
[77] Sandrine Dudoit,et al. Multiple Testing Procedures: the multtest Package and Applications to Genomics , 2005 .
[78] Yongchao Ge. Resampling-based Multiple Testing for Microarray Data Analysis , 2003 .
[79] O Muzik,et al. Objective method for localization of cortical asymmetries using positron emission tomography to aid surgical resection of epileptic foci. , 1998, Computer aided surgery : official journal of the International Society for Computer Aided Surgery.
[80] C. Lewis,et al. Is It Reproducible , 1993 .
[81] Alan C. Evans,et al. NeuroImage: Clinical , 2022 .