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Advanced Machine Learning Approaches in Cancer Prognosis
Details
This book introduces a variety of advanced machine learning approaches covering the areas of neural networks, fuzzy logic, and hybrid intelligent systems for the determination and diagnosis of cancer. Moreover, the tactical solutions of machine learning have proved its vast range of significance and, provided novel solutions in the medical field for the diagnosis of disease. This book also explores the distinct deep learning approaches that are capable of yielding more accurate outcomes for the diagnosis of cancer. In addition to providing an overview of the emerging machine and deep learning approaches, it also enlightens an insight on how to evaluate the efficiency and appropriateness of such techniques and analysis of cancer data used in the cancer diagnosis. Therefore, this book focuses on the recent advancements in the machine learning and deep learning approaches used in the diagnosis of different types of cancer along with their research challenges and future directions for the targeted audience including scientists, experts, Ph.D. students, postdocs, and anyone interested in the subjects discussed.
Discusses all types of cancer diseases information with their detection, solution, and prevention Presents advanced machine learning approaches spanning the areas of neural networks, fuzzy logic, connectionist systems, genetic algorithms, evolutionary computation, cellular automata, self-organizing systems, fuzzy systems, and hybrid intelligent systems for solving the cancer diseases Covers advanced methodologies, challenges, and solutions of diversified cancer-related issues
Inhalt
Advances in Machine Learning Approaches in Cancer Prognosis.- Data Analysis on Cancer Disease using Machine Learning Techniques.- Learning from multiple modalities of imaging data for cancer detection/diagnosis .- Neural Network for Lung Cancer diagnosis.- Improved Thyroid Disease Prediction Model Using Data Mining Techniques with Outlier Detection.- Automated Breast Cancer Diagnosis Based on Neural Network Algorithms.
Weitere Informationen
- Allgemeine Informationen
- GTIN 09783030719746
- Editor Janmenjoy Nayak, Margarita N. Favorskaya, Seema Jain, Bighnaraj Naik, Manohar Mishra
- Sprache Englisch
- Genre Allgemeines & Lexika
- Lesemotiv Verstehen
- Größe H241mm x B160mm x T31mm
- Jahr 2021
- EAN 9783030719746
- Format Fester Einband
- ISBN 303071974X
- Veröffentlichung 30.05.2021
- Titel Advanced Machine Learning Approaches in Cancer Prognosis
- Untertitel Challenges and Applications
- Gewicht 875g
- Herausgeber Springer
- Anzahl Seiten 476