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Mathematical Methods and Models in Biomedicine / edited by Urszula Ledzewicz, Heinz Schättler, Avner Friedman, Eugene Kashdan
(Lecture Notes on Mathematical Modelling in the Life Sciences. ISSN:21934797)
版 | 1st ed. 2013. |
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出版者 | (New York, NY : Springer New York : Imprint: Springer) |
出版年 | 2013 |
本文言語 | 英語 |
大きさ | XI, 427 p. 94 illus : online resource |
著者標目 | Ledzewicz, Urszula editor Schättler, Heinz editor Friedman, Avner editor Kashdan, Eugene editor SpringerLink (Online service) |
件 名 | LCSH:Biomathematics LCSH:Mathematical models LCSH:Life sciences LCSH:Biomedical engineering LCSH:Mathematical optimization FREE:Mathematical and Computational Biology FREE:Mathematical Modeling and Industrial Mathematics FREE:Life Sciences FREE:Biomedical Engineering and Bioengineering FREE:Optimization |
一般注記 | Spatial aspects of HIV infection -- Basic Principles in Modeling Adaptive Regulation and Immunodominance -- Evolutionary Principles In Viral Epitopes -- A Multiscale Approach Leading to Hybrid Mathematical Models for Angiogenesis: the Role of Randomness -- Modeling Tumor Blood Vessel Dynamics -- Influence of Blood Rheology and Outflow Boundary Conditions in Numerical Simulations of Cerebral Aneurysms -- The Steady State of Multicellular Tumour Spheroids: a Modelling Challenge -- Deciphering Fate Decision in Normal and Cancer Stem Cells – Mathematical Models and Their Experimental Verification. -- Data Assimilation in Brain Tumor Models -- Optimisation of Cancer Drug Treatments Using Cell Population Dynamics -- Tumor Development under Combination Treatments with Antiangiogenic Therapies -- Saturable Fractal Pharmacokinetics and Its Applications -- A MathematicalModel of Gene Therapy for the Treatment of Cancer -- Epidemiological Models with Seasonality -- Periodic Incidence in a Discrete-Time SIS Epidemic Model Mathematical biomedicine is a rapidly developing interdisciplinary field of research that connects the natural and exact sciences in an attempt to respond to the modeling and simulation challenges raised by biology and medicine. There exist a large number of mathematical methods and procedures that can be brought in to meet these challenges and this book presents a palette of such tools ranging from discrete cellular automata to cell population based models described by ordinary differential equations to nonlinear partial differential equations representing complex time- and space-dependent continuous processes. Both stochastic and deterministic methods are employed to analyze biological phenomena in various temporal and spatial settings. This book illustrates the breadth and depth of research opportunities that exist in the general field of mathematical biomedicine by highlighting some of the fascinating interactions that continue to develop between the mathematical and biomedical sciences. It consists of five parts that can be read independently, but are arranged to give the reader a broader picture of specific research topics and the mathematical tools that are being applied in its modeling and analysis. The main areas covered include immune system modeling, blood vessel dynamics, cancer modeling and treatment, and epidemiology. The chapters address topics that are at the forefront of current biomedical research such as cancer stem cells, immunodominance and viral epitopes, aggressive forms of brain cancer, or gene therapy. The presentations highlight how mathematical modeling can enhance biomedical understanding and will be of interest to both the mathematical and the biomedical communities including researchers already working in the field as well as those who might consider entering it. Much of the material is presented in a way that gives graduate students and young researchers a starting point for their own work HTTP:URL=https://doi.org/10.1007/978-1-4614-4178-6 |
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電子ブック | オンライン | 電子ブック |
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Springer eBooks | 9781461441786 |
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EB00235411 |
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データ種別 | 電子ブック |
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分 類 | LCC:QH323.5 LCC:QH324.2-324.25 DC23:570.285 |
書誌ID | 4000117222 |
ISBN | 9781461441786 |
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※2017年9月4日以降