Handbook of Biomedical Imaging: Methodologies and Clinical Research

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This book explains the process of computer assisted biomedical image analysis diagnosis through mathematical modeling and inference of image-based bio-markers. It covers five crucial thematic areas: methodologies, statistical and physiological models, biomedical perception, clinical biomarkers, and emerging modalities and domains.

The dominant state-of-the-art methodologies for content extraction and interpretation of medical images include fuzzy methods, level set methods, kernel methods, and geometric deformable models. The models and techniques discussed are used in the diagnosis, planning, control and follow-up of medical procedures. Throughout the book, challenges and limitations are explored along with new research directions.

Handbook of Biomedical Imaging offers a unique guide to the entire chain of biomedical imaging, explaining how image formation is done and how the most appropriate techniques are used to address demands and diagnoses. Radiologists, research scientists, senior undergraduate and graduate students in health sciences and engineering, and university professors will find this to be an exceptional reference.

Author(s): Nikos Paragios, James Duncan, Nicholas Ayache (eds.)
Edition: 1
Publisher: Springer US
Year: 2015

Language: English
Pages: 511
Tags: Computer Imaging, Vision, Pattern Recognition and Graphics; Imaging / Radiology

Front Matter....Pages i-vii
Front Matter....Pages 1-1
Object Segmentation and Markov Random Fields....Pages 3-23
Fuzzy methods in medical imaging....Pages 25-44
Curve Propagation, Level Set Methods and Grouping....Pages 45-62
Kernel Methods in Medical Imaging....Pages 63-81
Geometric Deformable Models....Pages 83-104
Active Shape and Appearance Models....Pages 105-122
Front Matter....Pages 123-123
Statistical Atlases....Pages 125-145
Statistical Computing on Non-Linear Spaces for Computational Anatomy....Pages 147-168
Building Patient-Specific Physical and Physiological Computational Models from Medical Images....Pages 169-182
Constructing a Patient-Specific Model Heart from CT Data....Pages 183-197
Image-based haemodynamics simulation in intracranial aneurysms....Pages 199-217
Front Matter....Pages 219-219
Atlas-based Segmentation....Pages 221-244
Integration of Topological Constraints in Medical Image Segmentation....Pages 245-262
Monte Carlo Sampling for the Segmentation of Tubular Structures....Pages 263-275
Non-rigid registration using free-form deformations....Pages 277-294
Image registration using mutual information....Pages 295-308
Physical Model Based Recovery of Displacement and Deformations from 3D Medical Images....Pages 309-329
Graph-based Deformable Image Registration....Pages 331-359
Front Matter....Pages 361-361
Cardiovascular Informatics....Pages 363-374
Rheumatoid Arthritis Quantification using Appearance Models....Pages 375-389
Front Matter....Pages 361-361
Medical Image Processing for Analysis of Colon Motility....Pages 391-401
Segmentation of Diseased Livers: A 3D Refinement Approach....Pages 403-412
Front Matter....Pages 413-413
Intra and inter subject analyses of brain functional Magnetic Resonance Images (fMRI)....Pages 415-435
Diffusion Tensor Estimation, Regularization and Classification....Pages 437-454
From Local Q-Ball Estimation to Fibre Crossing Tractography....Pages 455-473
Segmentation of Clustered Cells in Microscopy Images by Geometric PDEs and Level Sets....Pages 475-487
Atlas-based whole-body registration in mice....Pages 489-500
Potential carotid atherosclerosis biomarkers based on ultrasound image analysis....Pages 501-511