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Brain and Human Body Modeling : Computational Human Modeling at EMBC 2018 New Hb

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Last updated on 03 Feb, 2023 22:04:18 GMTView all revisionsView all revisions

Item specifics

Condition
New: A new, unread, unused book in perfect condition with no missing or damaged pages. See the ...
Narrative Type
Nonfiction
ISBN
9783030212926
Book Title
Brain and Human Body Modeling : Computational Human Modeling at Embc 2018
Publisher
Springer International Publishing A&G
Item Length
9.3 in
Publication Year
2019
Format
Hardcover
Language
English
Illustrator
Yes
Author
Marc Horner
Genre
Technology & Engineering
Topic
Electronics / Circuits / General, Microwaves, Biomedical
Item Weight
27.8 Oz
Item Width
6.1 in
Number of Pages
Xi, 402 Pages

About this product

Product Information

Chapter 1. SimNIBS 2.1: A Comprehensive Pipeline for Individualized Electric Field Modelling for Transcranial Brain Stimulation.- Chapter 2. Electric Field Modeling for Transcranial Magnetic Stimulation and Electroconvulsive Therapy.- Chapter 3. Estimates of Peak Electric Fields Induced by Transcranial Magnetic Stimulation in Pregnant Women as Patients or Operators Using an FEM Full-Body Model.- Chapter 4. Finite element modelling framework for electroconvulsive therapy and transcranial stimulation.- Chapter 5. Design and Analysis of a Whole Body Non-Contact Electromagnetic Subthreshold Stimulation Device with Field Modulation Targeting Nonspecific Neuropathic Pain.- Chapter 6. Insights from Computer Modeling: Analysis of Physical Characteristics of Glioblastoma in Patients Treated with Tumor Treating Fields.- Chapter 7. Simulating the Effect of 200 kHz AC Electric Fields on Tumor Cell Structures to Uncover the Mechanism of a Cancer.- Chapter 8. Investigating the connection between Tumor Treating Fields distribution in the brain and Glioblastoma patient outcomes. A simulation-based study utilizing a novel model creation technique.- Chapter 9. Advanced Multiparametric Imaging for Response Assessment to TTFields in Patients with Glioblastoma.- Chapter 10: Estimation of TTFields Intensity and Anisotropy with Singular Value Decomposition. A New and Comprehensive Method for Dosimetry of TTFields.- Chapter 11. The Bioelectric Circuitry of the Cell.- Chapter 12. Dose Coefficients for Use in Rapid Dose Estimation in Industrial Radiography Accidents.- Chapter 13. Brain Haemorrhage Detection Through SVM Classification of Electrical Impedance Tomography Measurements.- Chapter 14. Patient-specific RF safety assessment in MRI: progress in creating surface-based human head and shoulder models.- Chapter 15. Calculation of MRI RF-Induced Voltages for Implanted Medical Devices Using Computational Human Models.- Chapter 16. Effect of non-parallel applicator insertion on 2.45 GHz microwave ablation zone size and shape.- Chapter 17. A Robust Algorithm for Voxel-to-Polygon Mesh Phantom Conversion.- Chapter 18. FEM Human Body Model with Embedded Respiratory Cycles for Antenna and E&M Simulations.- Chapter 19. Radio Frequency Propagation Close to the Human Ear and Accurate Ear Canal Models.- Chapter 20. Water-content Electrical Property Tomography (wEPT) for mapping brain tissues' conductivity in the 200-1000 kHz range: Results of an animal study.

Product Identifiers

Publisher
Springer International Publishing A&G
ISBN-10
3030212920
ISBN-13
9783030212926
eBay Product ID (ePID)
24038598196

Product Key Features

Book Title
Brain and Human Body Modeling : Computational Human Modeling at Embc 2018
Number of Pages
Xi, 402 Pages
Language
English
Publication Year
2019
Topic
Electronics / Circuits / General, Microwaves, Biomedical
Illustrator
Yes
Genre
Technology & Engineering
Author
Marc Horner
Format
Hardcover

Dimensions

Item Weight
27.8 Oz
Item Length
9.3 in
Item Width
6.1 in

Additional Product Features

Number of Volumes
1 Vol.
Lc Classification Number
R856-857
Table of Content
Chapter 1. SimNIBS 2.1: A Comprehensive Pipeline for Individualized Electric Field Modelling for Transcranial Brain Stimulation.- Chapter 2. Electric Field Modeling for Transcranial Magnetic Stimulation and Electroconvulsive Therapy.- Chapter 3. Estimates of Peak Electric Fields Induced by Transcranial Magnetic Stimulation in Pregnant Women as Patients or Operators Using an FEM Full-Body Model.- Chapter 4. Finite element modelling framework for electroconvulsive therapy and transcranial stimulation.- Chapter 5. Design and Analysis of a Whole Body Non-Contact Electromagnetic Subthreshold Stimulation Device with Field Modulation Targeting Nonspecific Neuropathic Pain.- Chapter 6. Insights from Computer Modeling: Analysis of Physical Characteristics of Glioblastoma in Patients Treated with Tumor Treating Fields.- Chapter 7. Simulating the Effect of 200 kHz AC Electric Fields on Tumor Cell Structures to Uncover the Mechanism of a Cancer.- Chapter 8. Investigating the connection between Tumor Treating Fields distribution in the brain and Glioblastoma patient outcomes. A simulation-based study utilizing a novel model creation technique.- Chapter 9. Advanced Multiparametric Imaging for Response Assessment to TTFields in Patients with Glioblastoma.- Chapter 10: Estimation of TTFields Intensity and Anisotropy with Singular Value Decomposition. A New and Comprehensive Method for Dosimetry of TTFields.- Chapter 11. The Bioelectric Circuitry of the Cell.- Chapter 12. Dose Coefficients for Use in Rapid Dose Estimation in Industrial Radiography Accidents.- Chapter 13. Brain Haemorrhage Detection Through SVM Classification of Electrical Impedance Tomography Measurements.- Chapter 14. Patient-specific RF safety assessment in MRI: progress in creating surface-based human head and shoulder models.- Chapter 15. Calculation of MRI RF-Induced Voltages for Implanted Medical Devices Using Computational Human Models.- Chapter 16. Effect of non-parallel applicator insertion on 2.45 GHz microwave ablation zone size and shape.- Chapter 17. A Robust Algorithm for Voxel-to-Polygon Mesh Phantom Conversion.- Chapter 18. FEM Human Body Model with Embedded Respiratory Cycles for Antenna and E&M Simulations.- Chapter 19. Radio Frequency Propagation Close to the Human Ear and Accurate Ear Canal Models.- Chapter 20. Water-content Electrical Property Tomography (wEPT) for mapping brain tissues' conductivity in the 200-1000 kHz range: Results of an animal study.
Copyright Date
2019

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