Statistical Learning and Pattern Analysis for Image and Video Processing: Advances in Computer Vision and Pattern Recognition
Autor Nanning Zheng, Jianru Xueen Limba Engleză Paperback – 14 mar 2012
Toate formatele și edițiile | Preț | Express |
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Paperback (1) | 974.55 lei 6-8 săpt. | |
SPRINGER LONDON – 14 mar 2012 | 974.55 lei 6-8 săpt. | |
Hardback (1) | 980.55 lei 6-8 săpt. | |
SPRINGER LONDON – 16 apr 2010 | 980.55 lei 6-8 săpt. |
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Specificații
ISBN-13: 9781447126737
ISBN-10: 1447126734
Pagini: 384
Ilustrații: XVI, 365 p.
Dimensiuni: 155 x 235 x 20 mm
Greutate: 0.54 kg
Ediția:2009
Editura: SPRINGER LONDON
Colecția Springer
Seria Advances in Computer Vision and Pattern Recognition
Locul publicării:London, United Kingdom
ISBN-10: 1447126734
Pagini: 384
Ilustrații: XVI, 365 p.
Dimensiuni: 155 x 235 x 20 mm
Greutate: 0.54 kg
Ediția:2009
Editura: SPRINGER LONDON
Colecția Springer
Seria Advances in Computer Vision and Pattern Recognition
Locul publicării:London, United Kingdom
Public țintă
ResearchCuprins
Pattern Analysis and Statistical Learning.- Unsupervised Learning for Visual Pattern Analysis.- Component Analysis.- Manifold Learning.- Functional Approximation.- Supervised Learning for Visual Pattern Classification.- Statistical Motion Analysis.- Bayesian Tracking of Visual Objects.- Probabilistic Data Fusion for Robust Visual Tracking.- Multitarget Tracking in Video-Part I.- Multi-Target Tracking in Video – Part II.- Information Processing in Cognition Process and New Artificial Intelligent Systems.
Recenzii
From the reviews:
“The level for which the text was aimed was quite introductory, giving a well executed explanation of not just the technique, but also the supporting techniques. This would serve the book well as a tool to someone learning the technique from new … . Overall I enjoyed the book … . I found that the subjects were well discussed and at a level that suited my knowledge. I would recommend it as a general purpose book for image and video analysis … .” (Gavin Powell, International Association for Pattern Recognition, Vol. 32 (3), July, 2010)
“The level for which the text was aimed was quite introductory, giving a well executed explanation of not just the technique, but also the supporting techniques. This would serve the book well as a tool to someone learning the technique from new … . Overall I enjoyed the book … . I found that the subjects were well discussed and at a level that suited my knowledge. I would recommend it as a general purpose book for image and video analysis … .” (Gavin Powell, International Association for Pattern Recognition, Vol. 32 (3), July, 2010)
Textul de pe ultima copertă
The inexpensive collection, storage, and transmission of vast amounts of visual data has revolutionized science, technology, and business. Innovations from various disciplines have aided in the design of intelligent machines able to detect and exploit useful patterns in data. One such approach is statistical learning for pattern analysis.
Among the various technologies involved in intelligent visual information processing, statistical learning and pattern analysis is undoubtedly the most popular and important approach, and is the area which has undergone the most rapid development in recent years. Above all, it provides a unifying theoretical framework for applications of visual pattern analysis.
This unique textbook/reference provides a comprehensive overview of theories, methodologies, and recent developments in the field of statistical learning and statistical analysis for visual pattern modeling and computing. The book describes the solid theoretical foundation, provides a complete summary of the latest advances, and presents typical issues to be considered in making a real system for visual information processing.
Features:
• Provides a broad survey of recent advances in statistical learning and pattern analysis with respect to the two principal problems of representation and computation in visual computing
• Presents the fundamentals of statistical pattern recognition and statistical learning via the general framework of a statistical pattern recognition system
• Discusses pattern representation and classification, as well as concepts involved in supervised learning, semi-statistical learning, and unsupervised learning
• Introduces the supervised learning of visual patterns in images, with a focus on supervised statistical pattern analysis, feature extraction and selection, and classifier design
• Covers visual pattern analysis in video, including methodologiesfor building intelligent video analysis systems, critical aspects of motion analysis, and multi-target tracking formulation for video
• Includes an in-depth discussion of information processing in the cognitive process, embracing a new scheme of association memory and a new architecture for an artificial intelligent system with attractors of chaos
This complete guide to developing intelligent visual information processing systems is rich in examples, and will provide researchers and graduate students in computer vision and pattern recognition with a self-contained, invaluable and useful resource on the topic.
Among the various technologies involved in intelligent visual information processing, statistical learning and pattern analysis is undoubtedly the most popular and important approach, and is the area which has undergone the most rapid development in recent years. Above all, it provides a unifying theoretical framework for applications of visual pattern analysis.
This unique textbook/reference provides a comprehensive overview of theories, methodologies, and recent developments in the field of statistical learning and statistical analysis for visual pattern modeling and computing. The book describes the solid theoretical foundation, provides a complete summary of the latest advances, and presents typical issues to be considered in making a real system for visual information processing.
Features:
• Provides a broad survey of recent advances in statistical learning and pattern analysis with respect to the two principal problems of representation and computation in visual computing
• Presents the fundamentals of statistical pattern recognition and statistical learning via the general framework of a statistical pattern recognition system
• Discusses pattern representation and classification, as well as concepts involved in supervised learning, semi-statistical learning, and unsupervised learning
• Introduces the supervised learning of visual patterns in images, with a focus on supervised statistical pattern analysis, feature extraction and selection, and classifier design
• Covers visual pattern analysis in video, including methodologiesfor building intelligent video analysis systems, critical aspects of motion analysis, and multi-target tracking formulation for video
• Includes an in-depth discussion of information processing in the cognitive process, embracing a new scheme of association memory and a new architecture for an artificial intelligent system with attractors of chaos
This complete guide to developing intelligent visual information processing systems is rich in examples, and will provide researchers and graduate students in computer vision and pattern recognition with a self-contained, invaluable and useful resource on the topic.
Caracteristici
Offers a system view of modelling and computing visual patterns in image sequences Provides a complete guide to accomplishing intelligent visual information processing system Rich in examples and illustrations displaying implementation details Contains deep surveys of recent developments within the topic