Beyond eloquence and onto centrality: a new paradigm in planning supratentorial neurosurgery
暂无分享,去创建一个
Robert G. Briggs | R. Briggs | Cameron E. Nix | M. Sughrue | S. Ahsan | K. Chendeb | Luke R. Fletcher | Ryan G. Jones | Arpan R Chakraborty | Christina C. Jacobs | Alison M. Lack | Daniel T. Griffin | C. Teo | Kassem Chendeb | Arpan R. Chakraborty
[1] Edward T. Bullmore,et al. Structural brain network of gifted children has a more integrated and versatile topology , 2019, Brain Structure and Function.
[2] Robert G. Briggs,et al. A Connectomic Atlas of the Human Cerebrum-Chapter 5: The Insula and Opercular Cortex. , 2018, Operative neurosurgery.
[3] Robert G. Briggs,et al. A Connectomic Atlas of the Human Cerebrum-Chapter 2: The Lateral Frontal Lobe. , 2018, Operative neurosurgery.
[4] Robert G. Briggs,et al. A Connectomic Atlas of the Human Cerebrum-Chapter 7: The Lateral Parietal Lobe. , 2018, Operative neurosurgery.
[5] Robert G. Briggs,et al. A Connectomic Atlas of the Human Cerebrum-Chapter 3: The Motor, Premotor, and Sensory Cortices. , 2018, Operative neurosurgery.
[6] Robert G. Briggs,et al. A Connectomic Atlas of the Human Cerebrum-Chapter 8: The Posterior Cingulate Cortex, Medial Parietal Lobe, and Parieto-Occipital Sulcus. , 2018, Operative neurosurgery.
[7] Robert G. Briggs,et al. A Connectomic Atlas of the Human Cerebrum-Chapter 6: The Temporal Lobe. , 2018, Operative neurosurgery.
[8] Robert G. Briggs,et al. A Connectomic Atlas of the Human Cerebrum-Chapter 4: The Medial Frontal Lobe, Anterior Cingulate Gyrus, and Orbitofrontal Cortex. , 2018, Operative neurosurgery.
[9] Robert G. Briggs,et al. A Connectomic Atlas of the Human Cerebrum-Chapter 1: Introduction, Methods, and Significance. , 2018, Operative neurosurgery.
[10] Robert G. Briggs,et al. A Connectomic Atlas of the Human Cerebrum-Chapter 9: The Occipital Lobe. , 2018, Operative neurosurgery.
[11] L. Parra,et al. Finding influential nodes for integration in brain networks using optimal percolation theory , 2018, Nature Communications.
[12] H. H. Hulshoff Pol,et al. Association between structural brain network efficiency and intelligence increases during adolescence , 2018, Human brain mapping.
[13] Thomas Wennekers,et al. From Structure to Activity: Using Centrality Measures to Predict Neuronal Activity , 2016, Int. J. Neural Syst..
[14] Arshad Zaman,et al. Pre-surgical mapping of eloquent cortex for paediatric epilepsy surgery candidates: Evidence from a review of advanced functional neuroimaging , 2017, Seizure.
[15] M. Klados,et al. Resting-State Functional Connectivity and Network Analysis of Cerebellum with Respect to IQ and Gender , 2017, Front. Hum. Neurosci..
[16] S. Lang,et al. Cognitive eloquence in neurosurgery: Insight from graph theoretical analysis of complex brain networks. , 2017, Medical hypotheses.
[17] Matthew F. Glasser,et al. The Human Connectome Project: Progress and Prospects , 2016, Cerebrum: the Dana Forum on Brain Science.
[18] Jesper Andersson,et al. A multi-modal parcellation of human cerebral cortex , 2016, Nature.
[19] Wiepke Cahn,et al. Structural Brain Connectivity as a Genetic Marker for Schizophrenia. , 2016, JAMA psychiatry.
[20] Enrico Zio,et al. Network reliability analysis based on percolation theory , 2015, Reliab. Eng. Syst. Saf..
[21] Albert Y. Zomaya,et al. The Pagerank-Index: Going beyond Citation Counts in Quantifying Scientific Impact of Researchers , 2015, PloS one.
[22] Hernán A. Makse,et al. Influence maximization in complex networks through optimal percolation , 2015, Nature.
[23] M. Modat,et al. Preventing visual field deficits from neurosurgery , 2014, Neurology.
[24] Jonas Richiardi,et al. Graph analysis of functional brain networks: practical issues in translational neuroscience , 2014, Philosophical Transactions of the Royal Society B: Biological Sciences.
[25] Aifeng Zhang,et al. Graph theory analysis of cortical-subcortical networks in late-life depression. , 2014, The American journal of geriatric psychiatry : official journal of the American Association for Geriatric Psychiatry.
[26] Melissa Lamar,et al. Association of brain network efficiency with aging, depression, and cognition. , 2014, The American journal of geriatric psychiatry : official journal of the American Association for Geriatric Psychiatry.
[27] Armin Scheurich,et al. Association of Structural Global Brain Network Properties with Intelligence in Normal Aging , 2014, PloS one.
[28] Paolo Maria Rossini,et al. Human brain networks in cognitive decline: a graph theoretical analysis of cortical connectivity from EEG data. , 2014, Journal of Alzheimer's disease : JAD.
[29] P. Rossini,et al. Human brain networks in physiological aging: a graph theoretical analysis of cortical connectivity from EEG data. , 2014, Journal of Alzheimer's disease : JAD.
[30] Fang-Cheng Yeh,et al. Diffusion MRI connectometry automatically reveals affected fiber pathways in individuals with chronic stroke☆ , 2013, NeuroImage: Clinical.
[31] Zhiyu Qian,et al. Reduced efficiency of functional brain network underlying intellectual decline in patients with low-grade glioma , 2013, Neuroscience Letters.
[32] M. Prokopenko,et al. Percolation Centrality: Quantifying Graph-Theoretic Impact of Nodes during Percolation in Networks , 2013, PloS one.
[33] Luciano Fadiga,et al. Low-grade glioma surgery in eloquent areas: volumetric analysis of extent of resection and its impact on overall survival. A single-institution experience in 190 patients: clinical article. , 2012, Journal of neurosurgery.
[34] Ludvic Zrinzo,et al. Pitfalls in precision stereotactic surgery , 2012, Surgical neurology international.
[35] M. Berger,et al. Analysis of the subcomponents and cortical terminations of the perisylvian superior longitudinal fasciculus: a fiber dissection and DTI tractography study , 2012, Brain Structure and Function.
[36] Fang-Cheng Yeh,et al. NTU-90: A high angular resolution brain atlas constructed by q-space diffeomorphic reconstruction , 2011, NeuroImage.
[37] Mitchel S Berger,et al. Functional mapping-guided resection of low-grade gliomas in eloquent areas of the brain: improvement of long-term survival. Clinical article. , 2011, Journal of neurosurgery.
[38] Heidi E Kirsch,et al. Resting functional connectivity in patients with brain tumors in eloquent areas , 2011, Annals of neurology.
[39] Reinhard Schneider,et al. Using graph theory to analyze biological networks , 2011, BioData Mining.
[40] Alireza Gharabaghi,et al. Resection of malignant brain tumors in eloquent cortical areas: a new multimodal approach combining 5-aminolevulinic acid and intraoperative monitoring. , 2010, Journal of neurosurgery.
[41] R. Turner,et al. Eigenvector Centrality Mapping for Analyzing Connectivity Patterns in fMRI Data of the Human Brain , 2010, PloS one.
[42]
Fang-Cheng Yeh,et al.
Generalized
[43] Nader Pouratian,et al. The reliability of neuroanatomy as a predictor of eloquence: a review. , 2010, Neurosurgical focus.
[44]
V. Wedeen,et al.
Generalized
[45] Kenneth Pugh,et al. Language lateralization in epilepsy patients: fMRI validated with the Wada procedure , 2009, Epilepsia.
[46] Alfredo Quinones-Hinojosa,et al. ASSOCIATION OF SURGICALLY ACQUIRED MOTOR AND LANGUAGE DEFICITS ON OVERALL SURVIVAL AFTER RESECTION OF GLIOBLASTOMA MULTIFORME , 2009, Neurosurgery.
[47] E. Chang,et al. SEIZURE CHARACTERISTICS AND CONTROL AFTER MICROSURGICAL RESECTION OF SUPRATENTORIAL CEREBRAL CAVERNOUS MALFORMATIONS , 2009, Neurosurgery.
[48] R. Kahn,et al. Efficiency of Functional Brain Networks and Intellectual Performance , 2009, The Journal of Neuroscience.
[49] Jun Li,et al. Brain Anatomical Network and Intelligence , 2009, NeuroImage.
[50] O. Sporns,et al. Complex brain networks: graph theoretical analysis of structural and functional systems , 2009, Nature Reviews Neuroscience.
[51] Jeremy D. Schmahmann,et al. Diffusion spectrum magnetic resonance imaging (DSI) tractography of crossing fibers , 2008, NeuroImage.
[52] M. Bernstein,et al. Outpatient brain tumor surgery: innovation in surgical neurooncology. , 2008, Journal of neurosurgery.
[53] Jerzy P. Szaflarski,et al. Comprehensive presurgical functional MRI language evaluation in adult patients with epilepsy , 2008, Epilepsy & Behavior.
[54] Masaru Tomita,et al. Proteins as networks: usefulness of graph theory in protein science. , 2008, Current protein & peptide science.
[55] Aric Hagberg,et al. Exploring Network Structure, Dynamics, and Function using NetworkX , 2008, Proceedings of the Python in Science Conference.
[56] O Mason,et al. Graph theory and networks in Biology. , 2006, IET systems biology.
[57] Danielle Smith Bassett,et al. Small-World Brain Networks , 2006, The Neuroscientist : a review journal bringing neurobiology, neurology and psychiatry.
[58] Olaf Sporns,et al. Mapping Information Flow in Sensorimotor Networks , 2006, PLoS Comput. Biol..
[59] E. Bullmore,et al. A Resilient, Low-Frequency, Small-World Human Brain Functional Network with Highly Connected Association Cortical Hubs , 2006, The Journal of Neuroscience.
[60] H. Duffau,et al. Usefulness of intraoperative electrical subcortical mapping during surgery for low-grade gliomas located within eloquent brain regions: functional results in a consecutive series of 103 patients. , 2003, Journal of neurosurgery.
[61] J. Kassubek,et al. Determination of hemisphere dominance for language: comparison of frontal and temporal fMRI activation with intracarotid amytal testing , 2002, Neuroradiology.
[62] Jon A. Mukand,et al. Incidence of Neurologic Deficits and Rehabilitation of Patients with Brain Tumors , 2001, American journal of physical medicine & rehabilitation.
[63] Rudolf Ahlswede,et al. Network information flow , 2000, IEEE Trans. Inf. Theory.
[64] Duncan J. Watts,et al. Collective dynamics of ‘small-world’ networks , 1998, Nature.
[65] R F Spetzler,et al. A proposed grading system for arteriovenous malformations. , 1986, Journal of neurosurgery.