Smart Computer Vision
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Author |
: B. Vinoth Kumar |
Publisher |
: Springer Nature |
Total Pages |
: 359 |
Release |
: 2023-02-27 |
ISBN-10 |
: 9783031205415 |
ISBN-13 |
: 3031205413 |
Rating |
: 4/5 (15 Downloads) |
Synopsis Smart Computer Vision by : B. Vinoth Kumar
This book addresses and disseminates research and development in the applications of intelligent techniques for computer vision, the field that works on enabling computers to see, identify, and process images in the same way that human vision does, and then providing appropriate output. The book provides contributions which include theory, case studies, and intelligent techniques pertaining to computer vision applications. The book helps readers grasp the essence of the recent advances in this complex field. The audience includes researchers, professionals, practitioners, and students from academia and industry who work in this interdisciplinary field. The authors aim to inspire future research both from theoretical and practical viewpoints to spur further advances in the field.
Author |
: Lavanya Sharma |
Publisher |
: CRC Press |
Total Pages |
: 319 |
Release |
: 2022-05-19 |
ISBN-10 |
: 9781000570557 |
ISBN-13 |
: 100057055X |
Rating |
: 4/5 (57 Downloads) |
Synopsis Computer Vision and Internet of Things by : Lavanya Sharma
Computer Vision and Internet of Things: Technologies and Applications explores the utilization of Internet of Things (IoT) with computer vision and its underlying technologies in different applications areas. Using a series of present and future applications – including business insights, indoor-outdoor securities, smart grids, human detection and tracking, intelligent traffic monitoring, e-health departments, and medical imaging – this book focuses on providing a detailed description of the utilization of IoT with computer vision and its underlying technologies in critical application areas, such as smart grids, emergency departments, intelligent traffic cams, insurance, and the automotive industry. Key Features • Covers the challenging issues related to sensors, detection, and tracking of moving objects with solutions to handle relevant challenges • Describes the latest technological advances in IoT and computer vision with their implementations • Combines image processing and analysis into a unified framework to understand both IOT and computer vision applications • Explores mining and tracking of motion-based object data, such as trajectory prediction and prediction of a particular location of object data, and their critical applications • Provides novel solutions for medical imaging (skin lesion detection, cancer detection, enhancement techniques for MRI images, and automated disease prediction) This book is primarily aimed at graduates and researchers working in the areas of IoT, computer vision, big data, cloud computing, and remote sensing. It is also an ideal resource for IT professionals and technology developers.
Author |
: Leo Marco |
Publisher |
: Academic Press |
Total Pages |
: 398 |
Release |
: 2018-05-15 |
ISBN-10 |
: 9780128134467 |
ISBN-13 |
: 0128134461 |
Rating |
: 4/5 (67 Downloads) |
Synopsis Computer Vision for Assistive Healthcare by : Leo Marco
Computer Vision for Assistive Healthcare describes how advanced computer vision techniques provide tools to support common human needs, such as mental functioning, personal mobility, sensory functions, daily living activities, image processing, pattern recognition, machine learning and how language processing and computer graphics cooperate with robotics to provide such tools. Users will learn about the emerging computer vision techniques for supporting mental functioning, algorithms for analyzing human behavior, and how smart interfaces and virtual reality tools lead to the development of advanced rehabilitation systems able to perform human action and activity recognition. In addition, the book covers the technology behind intelligent wheelchairs, how computer vision technologies have the potential to assist blind people, and about the computer vision-based solutions recently employed for safety and health monitoring. - Gives the state-of-the-art computer vision techniques and tools for assistive healthcare - Includes a broad range of topic areas, ranging from image processing, pattern recognition, machine learning to robotics, natural language processing and computer graphics - Presents a wide range of application areas, ranging from mobility, sensory substitution, and safety and security, to mental and physical rehabilitation and training - Written by leading researchers in this growing field of research - Describes the outstanding research challenges that still need to be tackled, giving researchers good indicators of research opportunities
Author |
: Ling Shao |
Publisher |
: Springer |
Total Pages |
: 313 |
Release |
: 2014-07-14 |
ISBN-10 |
: 9783319086514 |
ISBN-13 |
: 3319086510 |
Rating |
: 4/5 (14 Downloads) |
Synopsis Computer Vision and Machine Learning with RGB-D Sensors by : Ling Shao
This book presents an interdisciplinary selection of cutting-edge research on RGB-D based computer vision. Features: discusses the calibration of color and depth cameras, the reduction of noise on depth maps and methods for capturing human performance in 3D; reviews a selection of applications which use RGB-D information to reconstruct human figures, evaluate energy consumption and obtain accurate action classification; presents an approach for 3D object retrieval and for the reconstruction of gas flow from multiple Kinect cameras; describes an RGB-D computer vision system designed to assist the visually impaired and another for smart-environment sensing to assist elderly and disabled people; examines the effective features that characterize static hand poses and introduces a unified framework to enforce both temporal and spatial constraints for hand parsing; proposes a new classifier architecture for real-time hand pose recognition and a novel hand segmentation and gesture recognition system.
Author |
: Swarnalatha, P. |
Publisher |
: IGI Global |
Total Pages |
: 330 |
Release |
: 2020-10-30 |
ISBN-10 |
: 9781799833376 |
ISBN-13 |
: 1799833372 |
Rating |
: 4/5 (76 Downloads) |
Synopsis Applications of Artificial Intelligence for Smart Technology by : Swarnalatha, P.
As global communities are attempting to transform into more efficient and technologically-advanced metropolises, artificial intelligence (AI) has taken a firm grasp on various professional fields. Technology used in these industries is transforming by introducing intelligent techniques including machine learning, cognitive computing, and computer vision. This has raised significant attention among researchers and practitioners on the specific impact that these smart technologies have and what challenges remain. Applications of Artificial Intelligence for Smart Technology is a pivotal reference source that provides vital research on the implementation of advanced technological techniques in professional industries through the use of AI. While highlighting topics such as pattern recognition, computational imaging, and machine learning, this publication explores challenges that various fields currently face when applying these technologies and examines the future uses of AI. This book is ideally designed for researchers, developers, managers, academicians, analysts, students, and practitioners seeking current research on the involvement of AI in professional practices.
Author |
: Valliappa Lakshmanan |
Publisher |
: "O'Reilly Media, Inc." |
Total Pages |
: 481 |
Release |
: 2021-07-21 |
ISBN-10 |
: 9781098102333 |
ISBN-13 |
: 1098102339 |
Rating |
: 4/5 (33 Downloads) |
Synopsis Practical Machine Learning for Computer Vision by : Valliappa Lakshmanan
This practical book shows you how to employ machine learning models to extract information from images. ML engineers and data scientists will learn how to solve a variety of image problems including classification, object detection, autoencoders, image generation, counting, and captioning with proven ML techniques. This book provides a great introduction to end-to-end deep learning: dataset creation, data preprocessing, model design, model training, evaluation, deployment, and interpretability. Google engineers Valliappa Lakshmanan, Martin Görner, and Ryan Gillard show you how to develop accurate and explainable computer vision ML models and put them into large-scale production using robust ML architecture in a flexible and maintainable way. You'll learn how to design, train, evaluate, and predict with models written in TensorFlow or Keras. You'll learn how to: Design ML architecture for computer vision tasks Select a model (such as ResNet, SqueezeNet, or EfficientNet) appropriate to your task Create an end-to-end ML pipeline to train, evaluate, deploy, and explain your model Preprocess images for data augmentation and to support learnability Incorporate explainability and responsible AI best practices Deploy image models as web services or on edge devices Monitor and manage ML models
Author |
: Aparajita Nanda |
Publisher |
: Springer Nature |
Total Pages |
: 264 |
Release |
: 2020-09-26 |
ISBN-10 |
: 9789811568442 |
ISBN-13 |
: 9811568448 |
Rating |
: 4/5 (42 Downloads) |
Synopsis High Performance Vision Intelligence by : Aparajita Nanda
This book focuses on the challenges and the recent findings in vision intelligence incorporating high performance computing applications. The contents provide in-depth discussions on a range of emerging multidisciplinary topics like computer vision, image processing, artificial intelligence, machine learning, cloud computing, IoT, and big data. The book also includes illustrations of algorithms, architecture, applications, software systems, and data analytics within the scope of the discussed topics. This book will help students, researchers, and technology professionals discover latest trends in the fields of computer vision and artificial intelligence.
Author |
: David A. Forsyth |
Publisher |
: Pearson Higher Ed |
Total Pages |
: 793 |
Release |
: 2015-01-23 |
ISBN-10 |
: 9781292014081 |
ISBN-13 |
: 1292014083 |
Rating |
: 4/5 (81 Downloads) |
Synopsis Computer Vision: A Modern Approach by : David A. Forsyth
Appropriate for upper-division undergraduate- and graduate-level courses in computer vision found in departments of Computer Science, Computer Engineering and Electrical Engineering. This textbook provides the most complete treatment of modern computer vision methods by two of the leading authorities in the field. This accessible presentation gives both a general view of the entire computer vision enterprise and also offers sufficient detail for students to be able to build useful applications. Students will learn techniques that have proven to be useful by first-hand experience and a wide range of mathematical methods.
Author |
: Manoj Kumar Sharma |
Publisher |
: Springer |
Total Pages |
: 0 |
Release |
: 2020-09-22 |
ISBN-10 |
: 9811560668 |
ISBN-13 |
: 9789811560668 |
Rating |
: 4/5 (68 Downloads) |
Synopsis Innovations in Computational Intelligence and Computer Vision by : Manoj Kumar Sharma
This book presents high-quality, peer-reviewed papers from the International Conference on “Innovations in Computational Intelligence and Computer Vision (ICICV 2020),” hosted by Manipal University Jaipur, Rajasthan, India, on January 17–19, 2020. Offering a collection of innovative ideas from researchers, scientists, academics, industry professionals and students, the book covers a variety of topics, such as artificial intelligence and computer vision, image processing and video analysis, applications and services of artificial intelligence and computer vision, interdisciplinary areas combining artificial intelligence and computer vision, and other innovative practices.
Author |
: Nicu Sebe |
Publisher |
: Springer Science & Business Media |
Total Pages |
: 253 |
Release |
: 2005-10-04 |
ISBN-10 |
: 9781402032752 |
ISBN-13 |
: 1402032757 |
Rating |
: 4/5 (52 Downloads) |
Synopsis Machine Learning in Computer Vision by : Nicu Sebe
The goal of this book is to address the use of several important machine learning techniques into computer vision applications. An innovative combination of computer vision and machine learning techniques has the promise of advancing the field of computer vision, which contributes to better understanding of complex real-world applications. The effective usage of machine learning technology in real-world computer vision problems requires understanding the domain of application, abstraction of a learning problem from a given computer vision task, and the selection of appropriate representations for the learnable (input) and learned (internal) entities of the system. In this book, we address all these important aspects from a new perspective: that the key element in the current computer revolution is the use of machine learning to capture the variations in visual appearance, rather than having the designer of the model accomplish this. As a bonus, models learned from large datasets are likely to be more robust and more realistic than the brittle all-design models.