Demonstrating Quality Control Qc Procedures In Fmri
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Demonstrating quality control QC procedures in fMRI
Author | : Paul A. Taylor,Jo Etzel,Daniel R. Glen,Richard Craig Reynolds |
Publsiher | : Frontiers Media SA |
Total Pages | : 171 |
Release | : 2023-06-29 |
Genre | : Science |
ISBN | : 9782832527047 |
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Explainable AI in Healthcare and Medicine
Author | : Arash Shaban-Nejad,Martin Michalowski,David L. Buckeridge |
Publsiher | : Springer Nature |
Total Pages | : 344 |
Release | : 2020-11-02 |
Genre | : Technology & Engineering |
ISBN | : 9783030533526 |
Download Explainable AI in Healthcare and Medicine Book in PDF, Epub and Kindle
This book highlights the latest advances in the application of artificial intelligence and data science in health care and medicine. Featuring selected papers from the 2020 Health Intelligence Workshop, held as part of the Association for the Advancement of Artificial Intelligence (AAAI) Annual Conference, it offers an overview of the issues, challenges, and opportunities in the field, along with the latest research findings. Discussing a wide range of practical applications, it makes the emerging topics of digital health and explainable AI in health care and medicine accessible to a broad readership. The availability of explainable and interpretable models is a first step toward building a culture of transparency and accountability in health care. As such, this book provides information for scientists, researchers, students, industry professionals, public health agencies, and NGOs interested in the theory and practice of computational models of public and personalized health intelligence.
Magnetic Resonance Imaging MRI Quality Control Manual
Author | : Anonim |
Publsiher | : Unknown |
Total Pages | : 168 |
Release | : 2001 |
Genre | : Quality control |
ISBN | : UCLA:L0087534186 |
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MRI from Picture to Proton
Author | : Donald W. McRobbie,Elizabeth A. Moore,Martin J. Graves,Martin R. Prince |
Publsiher | : Cambridge University Press |
Total Pages | : 405 |
Release | : 2017-04-13 |
Genre | : Medical |
ISBN | : 9781107643239 |
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This new edition includes the latest on quantitative MR, safety, multi-band excitation, Dixon imaging and MR elastography.
MRI Atlas of Human White Matter
Author | : Kenichi Oishi,Andreia V. Faria,Peter C M van Zijl,Susumu Mori |
Publsiher | : Academic Press |
Total Pages | : 266 |
Release | : 2010-11-12 |
Genre | : Science |
ISBN | : 0123820820 |
Download MRI Atlas of Human White Matter Book in PDF, Epub and Kindle
MRI Atlas of Human White Matter presents an atlas to the human brain on the basis of T 1-weighted imaging and diffusion tensor imaging. A general background on magnetic resonance imaging is provided, as well as the basics of diffusion tensor imaging. An overview of the principles and limitations in using this methodology in fiber tracking is included. This book describes the core white-matter structures, as well as the superficial white matter, the deep gray matter, and the cortex. It also presents a three-dimensional reconstruction and atlas of the brain white-matter tracts. The Montreal Neurological Institute coordinates, which are the most widely used, are adopted in this book as the primary coordinate system. The Talairach coordinate system is used as the secondary coordinate system. Based on magnetic resonance imaging and diffusion tensor imaging, the book offers a full segmentation of 220 white-matter and gray-matter structures with boundaries. Visualization of brain white matter anatomy via 3D diffusion tensor imaging (DTI) contrasts and enhances relationship of anatomy to function Full segmentation of 170+ brain regions more clearly defines structure boundaries than previous point-and-annotate anatomical labeling, and connectivity is mapped in a way not provided by traditional atlases
Index to Theses with Abstracts Accepted for Higher Degrees by the Universities of Great Britain and Ireland and the Council for National Academic Awards
Author | : Anonim |
Publsiher | : Unknown |
Total Pages | : 614 |
Release | : 2004 |
Genre | : Dissertations, Academic |
ISBN | : STANFORD:36105113506989 |
Download Index to Theses with Abstracts Accepted for Higher Degrees by the Universities of Great Britain and Ireland and the Council for National Academic Awards Book in PDF, Epub and Kindle
Theses on any subject submitted by the academic libraries in the UK and Ireland.
Reliability and Reproducibility in Functional Connectomics
![Reliability and Reproducibility in Functional Connectomics](https://youbookinc.com/wp-content/uploads/2024/06/cover.jpg)
Author | : Xi-Nian Zuo,Bharat B. Biswal,Russell A. Poldrack |
Publsiher | : Unknown |
Total Pages | : 0 |
Release | : 2019 |
Genre | : Electronic Book |
ISBN | : OCLC:1368451381 |
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This eBook is a collection of articles from a Frontiers Research Topic. Frontiers Research Topics are very popular trademarks of the Frontiers Journals Series: they are collections of at least ten articles, all centered on a particular subject. With their unique mix of varied contributions from Original Research to Review Articles, Frontiers Research Topics unify the most influential researchers, the latest key findings and historical advances in a hot research area! Find out more on how to host your own Frontiers Research Topic or contribute to one as an author by contacting the Frontiers Editorial Office: frontiersin.org/about/contact.
Handbook of functional connectivity Magnetic Resonance Imaging methods in CONN
Author | : Alfonso Nieto-Castanon |
Publsiher | : Hilbert Press |
Total Pages | : 108 |
Release | : 2020-01-31 |
Genre | : Science |
ISBN | : 9780578644004 |
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This handbook describes methods for processing and analyzing functional connectivity Magnetic Resonance Imaging (fcMRI) data using the CONN toolbox, a popular freely-available functional connectivity analysis software. Content description [excerpt from introduction] The first section (fMRI minimal preprocessing pipeline) describes standard and advanced preprocessing steps in fcMRI. These steps are aimed at correcting or minimizing the influence of well-known factors affecting the quality of functional and anatomical MRI data, including effects arising from subject motion within the scanner, temporal and spatial image distortions due to the sequential nature of the scanning acquisition protocol, and inhomogeneities in the scanner magnetic field, as well as anatomical differences among subjects. Even after these conventional preprocessing steps, the measured blood-oxygen-level-dependent (BOLD) signal often still contains a considerable amount of noise from a combination of physiological effects, outliers, and residual subject-motion factors. If unaccounted for, these factors would introduce very strong and noticeable biases in all functional connectivity measures. The second section (fMRI denoising pipeline) describes standard and advanced denoising procedures in CONN that are used to characterize and remove the effect of these residual non-neural noise sources. Functional connectivity Magnetic Resonance Imaging studies attempt to quantify the level of functional integration across different brain areas. The third section (functional connectivity measures) describes a representative set of functional connectivity measures available in CONN, each focusing on different indicators of functional integration, including seed-based connectivity measures, ROI-to-ROI measures, graph theoretical approaches, network-based measures, and dynamic connectivity measures. Second-level analyses allow researchers to make inferences about properties of groups or populations, by generalizing from the observations of only a subset of subjects in a study. The fourth section (General Linear Model) describes the mathematics behind the General Linear Model (GLM), the approach used in CONN for all second-level analyses of functional connectivity measures. The description includes GLM model definition, parameter estimation, and hypothesis testing framework, as well as several practical examples and general guidelines aimed at helping researchers use this method to answer their specific research questions. The last section (cluster-level inferences) details several approaches implemented in CONN that allow researchers to make meaningful inferences from their second-level analysis results while providing appropriate family-wise error control (FWEC), whether in the context of voxel-based measures, such as when studying properties of seed-based maps across multiple subjects, or in the context of ROI-to-ROI measures, such as when studying properties of ROI-to-ROI connectivity matrices across multiple subjects.