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Introduction to Mathematical Oncology (Chapman & Hall/CRC Mathematical and Computational Biology) de Yang Kuang,Steffen E. Eikenberry

Descripción - Críticas 'Introduction to Mathematical Oncology is both timely and unique. It is rich with a broad range of examples and important historical contexts. There is a clear sense of the importance of integrating rigorous mathematical analysis with numerical simulations. This book will be an important addition to the libraries of faculty and students who are interested in teaching and/or learning critical techniques for mathematical modeling of cancer dynamics.'?Trachette L. Jackson, Professor of Mathematics, University of Michigan, Ann Arbor, USA 'This is a very interesting and well-written book … The book chapters cover a wide range of topics related to cancer dynamics and treatments focusing on chemotherapy and radiotherapy as the most traditional and commonly used procedures. Various types of cancer are discussed from the point of view of their growth, progression, and treatment with a special emphasis on prostate cancer, an area where the authors have made significant research contributions. All the topics covered are presented in an easily accessible way, starting with the most elementary introduction to the problems and leading all the way to the discussion of new trends and challenges concerning the subject. In all presentations, a nice balance between mathematics and biology is kept, a very welcome feature facilitated by the mixed background of the authors.The book is suitable as a textbook for both undergraduate and graduate courses … . The material is presented in an interesting, sometimes even intriguing manner, and it is supported with valuable exercises, projects, and open questions allowing for hands-on experiences. Students can learn a fair amount of both biology and mathematics from this text and see how these two disciplines come together to shed light on understanding one of the biggest problems and challenges of our century: cancer.'?Professor Urszula Ledzewicz, Southern Illinois University, Edwardsville, USA, and Lodz University of Technology, Poland Reseña del editor Introduction to Mathematical Oncology presents biologically well-motivated and mathematically tractable models that facilitate both a deep understanding of cancer biology and better cancer treatment designs. It covers the medical and biological background of the diseases, modeling issues, and existing methods and their limitations. The authors introduce mathematical and programming tools, along with analytical and numerical studies of the models. They also develop new mathematical tools and look to future improvements on dynamical models. After introducing the general theory of medicine and exploring how mathematics can be essential in its understanding, the text describes well-known, practical, and insightful mathematical models of avascular tumor growth and mathematically tractable treatment models based on ordinary differential equations. It continues the topic of avascular tumor growth in the context of partial differential equation models by incorporating the spatial structure and physiological structure, such as cell size. The book then focuses on the recent active multi-scale modeling efforts on prostate cancer growth and treatment dynamics. It also examines more mechanistically formulated models, including cell quota-based population growth models, with applications to real tumors and validation using clinical data. The remainder of the text presents abundant additional historical, biological, and medical background materials for advanced and specific treatment modeling efforts. Extensively classroom-tested in undergraduate and graduate courses, this self-contained book allows instructors to emphasize specific topics relevant to clinical cancer biology and treatment. It can be used in a variety of ways, including a single-semester undergraduate course, a more ambitious graduate course, or a full-year sequence on mathematical oncology. Biografía del autor Yang Kuang is a professor of mathematics at Arizona State University (ASU). Dr. Kuang is the author or editor of more than 150 refereed journal publications and 11 books and the founder and editor of Mathematical Biosciences and Engineering. He is well known for his pioneering work in applying delay differential equation to models of biology and medicine. His recent research interests focus on the formulation of scientifically well-grounded and computationally tractable mathematical models to describe the rich and intriguing dynamics of various within-host diseases and their treatments. These models have the potential to speed up much-needed personalized medicine development. He earned a Ph.D in mathematics from the University of Alberta. John D. Nagy is a professor of biology and former chair of the Department of Life Sciences at Scottsdale Community College (SCC). He is also an adjunct professor in the School of Mathematical and Statistical Sciences at ASU. He is the founding director of an undergraduate research program in mathematical biology at both ASU and SCC. Dr. Nagy’s primary research interests focus on the evolutionary dynamics of disease, including the application of mathematics and principles of evolutionary ecology to cancer and disease biology. He pioneered the 'hypertumor' hypothesis and recently addressed how evolution shapes malignant characteristics of cancer. He earned a Ph.D. in mathematical biology from ASU. Steffen E. Eikenberry is completing his M.D. at the University of Southern California (USC), as the final component of a combined M.D./Ph.D. program. He earned a Ph.D. in biomedical engineering from USC, with his dissertation studies focused on hierarchical model building for immune–pathogen interaction. Dr. Eikenberry is particularly interested in a careful approach to mathematical model building, understanding how specific functional forms affect model dynamics, and using modeling to address well-defined clinical questions, especially those pertaining to cancer treatment and screening. These well-formulated mathematical models can potentially form a conceptual foundation that informs clinical research and practice in the future.

Detalles del Libro

  • Name: Introduction to Mathematical Oncology (Chapman & Hall/CRC Mathematical and Computational Biology)
  • Autor: Yang Kuang,Steffen E. Eikenberry
  • Categoria: Libros,Libros universitarios y de estudios superiores,Medicina y ciencias de la salud
  • Tamaño del archivo: 16 MB
  • Tipos de archivo: PDF Document
  • Descargada: 456 times
  • Idioma: Español
  • Archivos de estado: AVAILABLE


Lee un libro Introduction to Mathematical Oncology (Chapman & Hall/CRC Mathematical and Computational Biology) de Yang Kuang,Steffen E. Eikenberry libros ebooks

Introduction to Mathematical Oncology (Chapman & Hall/CRC ~ Introduction to Mathematical Oncology presents biologically well-motivated and mathematically tractable models that facilitate both a deep understanding of cancer biology and better cancer treatment designs. It covers the medical and biological background of the diseases, modeling issues, and existing methods and their limitations.

Introduction to Mathematical Oncology [Book] ~ Book Description. Introduction to Mathematical Oncology presents biologically well-motivated and mathematically tractable models that facilitate both a deep understanding of cancer biology and better cancer treatment designs. It covers the medical and biological background of the diseases, modeling issues, and existing methods and their limitations.

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Introduction to Mathematical Oncology / JCO Clinical ~ Mathematical oncology—the use of mathematics, modeling, and simulation to study cancer—is at once both an old and a new field of research. 1-8 Its roots date back hundreds of years, to the earliest days of the study of calculus. The principles of rates of change and differential equations have been used to model and predict the uncontrolled proliferation of cancer cells and the effects of .

Introduction to Mathematical Oncology (Chapman & Hall/CRC ~ Introduction to Mathematical Oncology (Chapman & Hall/CRC Mathematical and Computational Biology Book 59) eBook: Kuang, Yang, Nagy, John D., Eikenberry, Steffen E .

/ Introduction to Mathematical Oncology (Chapman ~ 配送商品ならIntroduction to Mathematical Oncology (Chapman & Hall/CRC Mathematical Biology Series)が通常配送無料。更にならポイント還元本が多数。Kuang, Yang, Nagy, John D., Eikenberry, Steffen E.作品ほか、お急ぎ便対象商品は当日お届けも可能。

Introduction to Mathematical Oncology. ~ Introduction to Mathematical Oncology. Rockne RC(1), Scott JG(2). Author information: (1)City of Hope National Medical Center, Duarte CA. (2)Cleveland Clinic, Cleveland OH. PMCID: PMC6752950 PMID: 31026176. Grant support. K12 CA076917/CA/NCI NIH HHS/United States; P30 CA033572/CA/NCI NIH HHS/United States; R03 CA216142/CA/NCI NIH HHS/United States

Mathematical Oncology: How Are the Mathematical and ~ Computational oncology uses mathematical techniques to extract information from large datasets (such as transcriptome, proteome, or imaging data) where extensive computational resources are utilized either by means of statistical and bioinformatics methodologies or for the study and quantitative prediction of tumor behavior by means of data-driven models [9, 10].

Introduction to Mathematical Oncology : Yang Kuang ~ Introduction to Mathematical Oncology by Yang Kuang, 9781584889908, available at Book Depository with free delivery worldwide.

Elements of Mathematical Oncology - unipi ~ Introduction The material of these notes is manifestly incomplete with respect to the present knowl-edge of Mathematical Oncology, naïve from the biomedical viewpoint, often not rigorous from the Mathematical side. We apologize for the mistakes and, with several experts and colleagues, for the lack of references.

Introduction to Mathematical Oncology - 1st Edition - Yang ~ Introduction to Mathematical Oncology presents biologically well-motivated and mathematically tractable models that facilitate both a deep understanding of cancer biology and better cancer treatment designs. It covers the medical and biological background of the diseases, modeling issues, and existi

Introduction to Mathematical Oncology / JCO Clinical ~ DOI: 10.1200/CCI.19.00010 JCO Clinical Cancer Informatics - published online April 26, 2019 . PMID: 31026176

Integrated Mathematical Oncology / Moffitt ~ The mission of the Integrated Mathematical Oncology (IMO) Department is to use such an integrated approach to better understand cancer initiation, progression and treatment and to aid in the clinical utilization of integrated models in precision medicine.

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B.S. in Mathematics / Schmid / Chapman University ~ Dr. Mohamed Allali (allali@chapman.edu) - Associate Professor (Expertise: mathematical modeling, signal and image processing); Dr. Daniel Alpay (alpay@chapman.edu) - Foster G. and Mary McGaw Professor of Mathematics (Expertise: stochastic processes and infinite dimensional analysis, quaternionic and hypercomplex analysis, complex analysis and Riemann surfaces, wavelets, information theory)

Mathematical oncology: exploiting maths for cancer ~ Mathematical oncology: exploiting maths for cancer research 20 Jun 2019 Tami Freeman The cover art for the roadmap – "Two Beasts" by artist Ben Day Todd – was chosen as an apt metaphor for the beautiful, strange and evolving relationship between mathematics and cancer.

Libros de CHAPMAN - UNEBOOK. ~ Libros de CHAPMAN - 20. X. Este sitio web utiliza cookies, tanto propias como de terceros, para mejorar su experiencia de navegación.

Introduction to mathematical oncology. - Abstract - Europe PMC ~ Introduction to mathematical oncology. (PMID:27583784) Abstract Citations; Related Articles; Data; BioEntities; External Links ' ' Stadtländer CT 1 Affiliations . 1. a St. Paul , MN , USA ctkstadtlander@msn. Close affiliations . Journal of Biological Dynamics [01 Dec 2016, 10(1 .

Mathematical Oncology Research Papers - Academia.edu ~ View Mathematical Oncology Research Papers on Academia.edu for free.

Mathematical Oncology – Every Patient Deserves Their Own ~ The field of Mathematical NeuroOncology represents a marriage between applied mathematics, clinical oncology, cancer biology, radiology, pathology, artificial intelligence and informatics to enable practical clinical tools to benefit brain tumor patients.

Download Introduction to Bio-Ontologies (Chapman & Hall ~ Note: If you're looking for a free download links of Introduction to Bio-Ontologies (Chapman & Hall/CRC Mathematical and Computational Biology) Pdf, epub, docx and torrent then this site is not for you. Ebookphp only do ebook promotions online and we does not distribute any free download of ebook on this site.

Mathematical Oncology ~ Mathematical Oncology: The integration and application of mathematical and computational models to better understand and predict cancer initiation, progression and treatment.

Mathematics in Oncology - EMCL ~ Mathematical Oncology - Understanding tumor evolution and developing new clinical concepts. HITS-S 3 Scientific Seminar Series, Heidelberg, Germany, 28 th October 2019. Talk & poster presentation: How mathematics can help in the fight against cancer. European Hereditary Tumor Group (EHTG) Meeting 2019, Barcelona, Spain, 17 th October 2019 - 20 .

Mathematical oncology: Cancer summed up / Nature ~ Perhaps this presages a time in which mathematical oncology will become integral to the study of cancer. FURTHER READING Adam, J. A. & Bellomo, N. (eds) A Survey of Models for Tumour–Immune .

More articles from Mathematical Oncology / Cancer Research ~ More articles from Mathematical Oncology. Chemotherapeutic Dose Scheduling Based on Tumor Growth Rates Provides a Case for Low-Dose Metronomic High-Entropy Therapies. Jeffrey West, Paul K. Newton. Cancer Research Dec 2017, 77 (23) 6717-6728; DOI: 10.1158/0008-5472.CAN-17-1120 .

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