Advanced Machine Learning Approaches in Cancer Prognosis

Advanced Machine Learning Approaches in Cancer Prognosis
Author: Janmenjoy Nayak
Publisher: Springer Nature
Total Pages: 461
Release: 2021-05-29
Genre: Technology & Engineering
ISBN: 3030719758


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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.

Artificial Intelligence Applications and Innovations

Artificial Intelligence Applications and Innovations
Author: Ilias Maglogiannis
Publisher: Springer Science & Business Media
Total Pages: 761
Release: 2006-05-18
Genre: Computers
ISBN: 0387342230


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Artificial Intelligence applications build on a rich and proven theoretical background to provide solutions to a wide range of real life problems. The ever expanding abundance of information and computing power enables researchers and users to tackle higly interesting issues for the first time, such as applications providing personalized access and interactivity to multimodal information based on preferences and semantic concepts or human-machine interface systems utilizing information on the affective state of the user. The purpose of the 3rd IFIP Conference on Artificial Intelligence Applications and Innovations (AIAI) is to bring together researchers, engineers, and practitioners interested in the technical advances and business and industrial applications of intelligent systems. AIAI 2006 is focused on providing insights on how AI can be implemented in real world applications.

Cancer Prediction for Industrial IoT 4.0

Cancer Prediction for Industrial IoT 4.0
Author: Meenu Gupta
Publisher: CRC Press
Total Pages: 219
Release: 2021-12-30
Genre: Health & Fitness
ISBN: 1000508587


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Cancer Prediction for Industrial IoT 4.0: A Machine Learning Perspective explores various cancers using Artificial Intelligence techniques. It presents the rapid advancement in the existing prediction models by applying Machine Learning techniques. Several applications of Machine Learning in different cancer prediction and treatment options are discussed, including specific ideas, tools and practices most applicable to product/service development and innovation opportunities. The wide variety of topics covered offers readers multiple perspectives on various disciplines. Features • Covers the fundamentals, history, reality and challenges of cancer • Presents concepts and analysis of different cancers in humans • Discusses Machine Learning-based deep learning and data mining concepts in the prediction of cancer • Offers real-world examples of cancer prediction • Reviews strategies and tools used in cancer prediction • Explores the future prospects in cancer prediction and treatment Readers will learn the fundamental concepts and analysis of cancer prediction and treatment, including how to apply emerging technologies such as Machine Learning into practice to tackle challenges in domains/fields of cancer with real-world scenarios. Hands-on chapters contributed by academicians and other professionals from reputed organizations provide and describe frameworks, applications, best practices and case studies on emerging cancer treatment and predictions. This book will be a vital resource to graduate students, data scientists, Machine Learning researchers, medical professionals and analytics managers.

Cancer Diagnosis Via Linear Programming

Cancer Diagnosis Via Linear Programming
Author: University of Wisconsin--Madison. Computer Sciences Dept
Publisher:
Total Pages: 12
Release: 1990
Genre: Cancer
ISBN:


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Abstract: "This report describes informally a diagnostic system that has been in operation at University of Wisconisn [sic] Hospitals for the past 17 months. The system, which has correctly diagnosed 165 out of 166 cases in that period, is based on linear programming and can also be viewed as a neural network."

Machine Learning Application in Healthcare

Machine Learning Application in Healthcare
Author: Johnny Chan
Publisher:
Total Pages: 0
Release: 2022
Genre:
ISBN:


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Breast cancer is one of the most common cancers among women worldwide, representing the majority of new cancer cases and cancer-related deaths according to global statistics, making it a significant public health problem in today's society. Thus, the correct diagnosis of breast cancer and classification of patients into malignant or benign groups is the subject of much research. The objective of this paper is to review machine learning techniques and their applications in breast cancer diagnosis and prognosis. Because of its unique advantages in critical features detection from complex breast cancer datasets, machine learning is widely recognised as the methodology of choice in breast cancer pattern classification and forecast modelling. This paper provides an overview of machine learning techniques including artificial neural networks, support vector machines, decision trees, and k-nearest neighbours. Then, it investigates their applications in breast cancer. The primary data is drawn from the Wisconsin breast cancer database which is the benchmark database for comparing the results through different algorithms. Finally, a healthcare system model is also shown.

Artificial Intelligence Techniques in Breast Cancer Diagnosis and Prognosis

Artificial Intelligence Techniques in Breast Cancer Diagnosis and Prognosis
Author: Ashlesha Jain
Publisher: World Scientific
Total Pages: 350
Release: 2000
Genre: Computers
ISBN: 981024374X


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The main aim of this book is to present a sample of recent research on the application of novel artificial intelligence paradigms to the diagnosis and prognosis of breast cancer. These paradigms include neural networks, fuzzy logic and evolutionary computing. Artificial intelligence techniques offer advantages ? such as adaptation, fault tolerance, learning and human-like behavior ? over conventional computing techniques. The idea is to combine the pathological, intelligent and statistical approaches to enable simple and accurate diagnosis and prognosis.This book is the first of its kind on the topic of artificial intelligence in breast cancer. It presents the applications of artificial intelligence in breast cancer diagnosis and prognosis, and includes state-of-the-art concepts in the field. It contains contributions from Australia, Germany, Italy, UK and the USA.

Deep Learning in Cancer Diagnostics

Deep Learning in Cancer Diagnostics
Author: Mohd Hafiz Arzmi
Publisher: Springer Nature
Total Pages: 41
Release: 2023-01-18
Genre: Science
ISBN: 9811989370


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Cancer is the leading cause of mortality in most, if not all, countries around the globe. It is worth noting that the World Health Organisation (WHO) in 2019 estimated that cancer is the primary or secondary leading cause of death in 112 of 183 countries for individuals less than 70 years old, which is alarming. In addition, cancer affects socioeconomic development as well. The diagnostics of cancer are often carried out by medical experts through medical imaging; nevertheless, it is not without misdiagnosis owing to a myriad of reasons. With the advancement of technology and computing power, the use of state-of-the-art computational methods for the accurate diagnosis of cancer is no longer far-fetched. In this brief, the diagnosis of four types of common cancers, i.e., breast, lung, oral and skin, are evaluated with different state-of-the-art feature-based transfer learning models. It is expected that the findings in this book are insightful to various stakeholders in the diagnosis of cancer. ​

Artificial Intelligence in Breast Cancer Early Detection and Diagnosis

Artificial Intelligence in Breast Cancer Early Detection and Diagnosis
Author: Khalid Shaikh
Publisher: Springer Nature
Total Pages: 107
Release: 2020-12-04
Genre: Technology & Engineering
ISBN: 3030592081


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This book provides an introduction to next generation smart screening technology for medical image analysis that combines artificial intelligence (AI) techniques with digital screening to develop innovative methods for detecting breast cancer. The authors begin with a discussion of breast cancer, its characteristics and symptoms, and the importance of early screening.They then provide insight on the role of artificial intelligence in global healthcare, screening methods for breast cancer using mammogram, ultrasound, and thermogram images, and the potential benefits of using AI-based systems for clinical screening to more accurately detect, diagnose, and treat breast cancer. Discusses various existing screening methods for breast cancer Presents deep information on artificial intelligence-based screening methods Discusses cancer treatment based on geographical differences and cultural characteristics

Artificial Neural Networks in Cancer Diagnosis, Prognosis, and Patient Management

Artificial Neural Networks in Cancer Diagnosis, Prognosis, and Patient Management
Author: R. N. G. Naguib
Publisher: CRC Press
Total Pages: 216
Release: 2001-06-22
Genre: Medical
ISBN: 1420036386


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The potential value of artificial neural networks (ANN) as a predictor of malignancy has begun to receive increased recognition. Research and case studies can be found scattered throughout a multitude of journals. Artificial Neural Networks in Cancer Diagnosis, Prognosis, and Patient Management brings together the work of top researchers - primaril