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Soft Computing for Image Processing (Hardcover, 2000 ed.): Sankar K. Pal, Ashish Ghosh, Malay K. Kundu Soft Computing for Image Processing (Hardcover, 2000 ed.)
Sankar K. Pal, Ashish Ghosh, Malay K. Kundu
R4,124 Discovery Miles 41 240 Ships in 18 - 22 working days

Any task that involves decision-making can benefit from soft computing techniques which allow premature decisions to be deferred. The processing and analysis of images is no exception to this rule. In the classical image analysis paradigm, the first step is nearly always some sort of segmentation process in which the image is divided into (hopefully, meaningful) parts. It was pointed out nearly 30 years ago by Prewitt (1] that the decisions involved in image segmentation could be postponed by regarding the image parts as fuzzy, rather than crisp, subsets of the image. It was also realized very early that many basic properties of and operations on image subsets could be extended to fuzzy subsets; for example, the classic paper on fuzzy sets by Zadeh [2] discussed the "set algebra" of fuzzy sets (using sup for union and inf for intersection), and extended the defmition of convexity to fuzzy sets. These and similar ideas allowed many of the methods of image analysis to be generalized to fuzzy image parts. For are cent review on geometric description of fuzzy sets see, e. g. , [3]. Fuzzy methods are also valuable in image processing and coding, where learning processes can be important in choosing the parameters of filters, quantizers, etc.

Granular Neural Networks, Pattern Recognition and Bioinformatics (Hardcover, 1st ed. 2017): Sankar K. Pal, Shubhra S. Ray,... Granular Neural Networks, Pattern Recognition and Bioinformatics (Hardcover, 1st ed. 2017)
Sankar K. Pal, Shubhra S. Ray, Avatharam Ganivada
R3,817 Discovery Miles 38 170 Ships in 18 - 22 working days

This book provides a uniform framework describing how fuzzy rough granular neural network technologies can be formulated and used in building efficient pattern recognition and mining models. It also discusses the formation of granules in the notion of both fuzzy and rough sets. Judicious integration in forming fuzzy-rough information granules based on lower approximate regions enables the network to determine the exactness in class shape as well as to handle the uncertainties arising from overlapping regions, resulting in efficient and speedy learning with enhanced performance. Layered network and self-organizing analysis maps, which have a strong potential in big data, are considered as basic modules,. The book is structured according to the major phases of a pattern recognition system (e.g., classification, clustering, and feature selection) with a balanced mixture of theory, algorithm, and application. It covers the latest findings as well as directions for future research, particularly highlighting bioinformatics applications. The book is recommended for both students and practitioners working in computer science, electrical engineering, data science, system design, pattern recognition, image analysis, neural computing, social network analysis, big data analytics, computational biology and soft computing.

Pattern Recognition Algorithms for Data Mining - Scalability, Knowledge Discovery and Soft Granular Computing (Paperback):... Pattern Recognition Algorithms for Data Mining - Scalability, Knowledge Discovery and Soft Granular Computing (Paperback)
Sankar K. Pal, Pabitra Mitra
R1,868 Discovery Miles 18 680 Ships in 10 - 15 working days

Pattern Recognition Algorithms for Data Mining addresses different pattern recognition (PR) tasks in a unified framework with both theoretical and experimental results. Tasks covered include data condensation, feature selection, case generation, clustering/classification, and rule generation and evaluation. This volume presents various theories, methodologies, and algorithms, using both classical approaches and hybrid paradigms. The authors emphasize large datasets with overlapping, intractable, or nonlinear boundary classes, and datasets that demonstrate granular computing in soft frameworks. Organized into eight chapters, the book begins with an introduction to PR, data mining, and knowledge discovery concepts. The authors analyze the tasks of multi-scale data condensation and dimensionality reduction, then explore the problem of learning with support vector machine (SVM). They conclude by highlighting the significance of granular computing for different mining tasks in a soft paradigm.

Genetic Algorithms for Pattern Recognition (Paperback): Sankar K. Pal Genetic Algorithms for Pattern Recognition (Paperback)
Sankar K. Pal; Contributions by Frederick E. Petry; Paul P. Wang; Contributions by Sanghamitra Bandyopadhyay, Hisao Ishibuchi, …
R1,976 Discovery Miles 19 760 Ships in 10 - 15 working days

Solving pattern recognition problems involves an enormous amount of computational effort. By applying genetic algorithms - a computational method based on the way chromosomes in DNA recombine - these problems are more efficiently and more accurately solved. Genetic Algorithms for Pattern Recognition covers a broad range of applications in science and technology, describing the integration of genetic algorithms in pattern recognition and machine learning problems to build intelligent recognition systems. The articles, written by leading experts from around the world, accomplish several objectives: they provide insight into the theory of genetic algorithms; they develop pattern recognition theory in light of genetic algorithms; and they illustrate applications in artificial neural networks and fuzzy logic. The cross-sectional view of current research presented in Genetic Algorithms for Pattern Recognition makes it a unique text, ideal for graduate students and researchers.

Genetic Algorithms for Pattern Recognition (Hardcover): Sankar K. Pal Genetic Algorithms for Pattern Recognition (Hardcover)
Sankar K. Pal; Contributions by Frederick E. Petry; Paul P. Wang; Contributions by Sanghamitra Bandyopadhyay, Hisao Ishibuchi, …
R6,770 Discovery Miles 67 700 Ships in 10 - 15 working days

Solving pattern recognition problems involves an enormous amount of computational effort. By applying genetic algorithms - a computational method based on the way chromosomes in DNA recombine - these problems are more efficiently and more accurately solved. Genetic Algorithms for Pattern Recognition covers a broad range of applications in science and technology, describing the integration of genetic algorithms in pattern recognition and machine learning problems to build intelligent recognition systems. The articles, written by leading experts from around the world, accomplish several objectives: they provide insight into the theory of genetic algorithms; they develop pattern recognition theory in light of genetic algorithms; and they illustrate applications in artificial neural networks and fuzzy logic. The cross-sectional view of current research presented in Genetic Algorithms for Pattern Recognition makes it a unique text, ideal for graduate students and researchers.

Pattern Recognition Algorithms for Data Mining - Scalability, Knowledge Discovery and Soft Granular Computing (Hardcover, New):... Pattern Recognition Algorithms for Data Mining - Scalability, Knowledge Discovery and Soft Granular Computing (Hardcover, New)
Sankar K. Pal, Pabitra Mitra
R3,940 Discovery Miles 39 400 Ships in 10 - 15 working days

Pattern Recognition Algorithms for Data Mining addresses different pattern recognition (PR) tasks in a unified framework with both theoretical and experimental results. Tasks covered include data condensation, feature selection, case generation, clustering/classification, and rule generation and evaluation. This volume presents various theories, methodologies, and algorithms, using both classical approaches and hybrid paradigms. The authors emphasize large datasets with overlapping, intractable, or nonlinear boundary classes, and datasets that demonstrate granular computing in soft frameworks. Organized into eight chapters, the book begins with an introduction to PR, data mining, and knowledge discovery concepts. The authors analyze the tasks of multi-scale data condensation and dimensionality reduction, then explore the problem of learning with support vector machine (SVM). They conclude by highlighting the significance of granular computing for different mining tasks in a soft paradigm.

Rough Fuzzy Image Analysis - Foundations and Methodologies (Paperback): Sankar K. Pal, James F. Peters Rough Fuzzy Image Analysis - Foundations and Methodologies (Paperback)
Sankar K. Pal, James F. Peters
R2,350 Discovery Miles 23 500 Ships in 10 - 15 working days

Fuzzy sets, near sets, and rough sets are useful and important stepping stones in a variety of approaches to image analysis. These three types of sets and their various hybridizations provide powerful frameworks for image analysis. Emphasizing the utility of fuzzy, near, and rough sets in image analysis, Rough Fuzzy Image Analysis: Foundations and Methodologies introduces the fundamentals and applications in the state of the art of rough fuzzy image analysis. In the first chapter, the distinguished editors explain how fuzzy, near, and rough sets provide the basis for the stages of pictorial pattern recognition: image transformation, feature extraction, and classification. The text then discusses hybrid approaches that combine fuzzy sets and rough sets in image analysis, illustrates how to perform image analysis using only rough sets, and describes tolerance spaces and a perceptual systems approach to image analysis. It also presents a free, downloadable implementation of near sets using the Near Set Evaluation and Recognition (NEAR) system, which visualizes concepts from near set theory. In addition, the book covers an array of applications, particularly in medical imaging involving breast cancer diagnosis, laryngeal pathology diagnosis, and brain MR segmentation. Edited by two leading researchers and with contributions from some of the best in the field, this volume fully reflects the diversity and richness of rough fuzzy image analysis. It deftly examines the underlying set theories as well as the diverse methods and applications.

Pattern Recognition and Machine Intelligence - 5th International Conference, PReMI 2013, Kolkata, India, December 10-14, 2013.... Pattern Recognition and Machine Intelligence - 5th International Conference, PReMI 2013, Kolkata, India, December 10-14, 2013. Proceedings (Paperback, 2013)
Pradipta Maji, Ashish Ghosh, M. Narasimha Murty, Kuntal Ghosh, Sankar K. Pal
R1,542 Discovery Miles 15 420 Ships in 18 - 22 working days

This book constitutes the refereed proceedings of the 5th International Conference on Pattern Recognition and Machine Intelligence, PReMI 2013, held in Kolkata, India in December 2013. The 101 revised papers presented together with 9 invited talks were carefully reviewed and selected from numerous submissions. The papers are organized in topical sections on pattern recognition; machine learning; image processing; speech and video processing; medical imaging; document image processing; soft computing; bioinformatics and computational biology; and social media mining.

Perception and Machine Intelligence - First Indo-Japan Conference, PerMIn 2012, Kolkata, India, January 12-13, 2011,... Perception and Machine Intelligence - First Indo-Japan Conference, PerMIn 2012, Kolkata, India, January 12-13, 2011, Proceedings (Paperback, 2012)
Malay K. Kundu, Sushmita Mitra, Debasis Mazumdar, Sankar K. Pal
R1,436 Discovery Miles 14 360 Ships in 18 - 22 working days

This book constitutes the proceedings of the First Indo-Japanese conference on Perception and Machine Intelligence, PerMIn 2012, held in Kolkata, India, in January 2012. The 41 papers, presented together with 1 keynote paper and 3 plenary papers, were carefully reviewed and selected for inclusion in the book. The papers are organized in topical sections named perception; human-computer interaction; e-nose and e-tongue; machine intelligence and application; image and video processing; and speech and signal processing.

Soft Computing for Image Processing (Paperback, Softcover reprint of hardcover 1st ed. 2000): Sankar K. Pal, Ashish Ghosh,... Soft Computing for Image Processing (Paperback, Softcover reprint of hardcover 1st ed. 2000)
Sankar K. Pal, Ashish Ghosh, Malay K. Kundu
R4,097 Discovery Miles 40 970 Ships in 18 - 22 working days

Any task that involves decision-making can benefit from soft computing techniques which allow premature decisions to be deferred. The processing and analysis of images is no exception to this rule. In the classical image analysis paradigm, the first step is nearly always some sort of segmentation process in which the image is divided into (hopefully, meaningful) parts. It was pointed out nearly 30 years ago by Prewitt (1] that the decisions involved in image segmentation could be postponed by regarding the image parts as fuzzy, rather than crisp, subsets of the image. It was also realized very early that many basic properties of and operations on image subsets could be extended to fuzzy subsets; for example, the classic paper on fuzzy sets by Zadeh [2] discussed the "set algebra" of fuzzy sets (using sup for union and inf for intersection), and extended the defmition of convexity to fuzzy sets. These and similar ideas allowed many of the methods of image analysis to be generalized to fuzzy image parts. For are cent review on geometric description of fuzzy sets see, e. g. , [3]. Fuzzy methods are also valuable in image processing and coding, where learning processes can be important in choosing the parameters of filters, quantizers, etc.

Pattern Recognition and Machine Intelligence - Second International Conference, PReMI 2007, Kolkata, India, December 18-22,... Pattern Recognition and Machine Intelligence - Second International Conference, PReMI 2007, Kolkata, India, December 18-22, 2007, Proceedings (Paperback, 2007 ed.)
Ashish Ghosh, Rajat K. De, Sankar K. Pal
R2,763 Discovery Miles 27 630 Ships in 18 - 22 working days

This book constitutes the refereed proceedings of the Second International Conference on Pattern Recognition and Machine Intelligence, PReMI 2007, held in Kolkata, India in December 2007.

The 82 revised papers presented were carefully reviewed and selected from 241 submissions. The papers are organized in topical sections on pattern recognition, image analysis, soft computing and applications, data mining and knowledge discovery, bioinformatics, signal and speech processing, document analysis and text mining, biometrics, and video analysis.

Granular Neural Networks, Pattern Recognition and Bioinformatics (Paperback, Softcover reprint of the original 1st ed. 2017):... Granular Neural Networks, Pattern Recognition and Bioinformatics (Paperback, Softcover reprint of the original 1st ed. 2017)
Sankar K. Pal, Shubhra S. Ray, Avatharam Ganivada
R3,785 Discovery Miles 37 850 Ships in 18 - 22 working days

This book provides a uniform framework describing how fuzzy rough granular neural network technologies can be formulated and used in building efficient pattern recognition and mining models. It also discusses the formation of granules in the notion of both fuzzy and rough sets. Judicious integration in forming fuzzy-rough information granules based on lower approximate regions enables the network to determine the exactness in class shape as well as to handle the uncertainties arising from overlapping regions, resulting in efficient and speedy learning with enhanced performance. Layered network and self-organizing analysis maps, which have a strong potential in big data, are considered as basic modules,. The book is structured according to the major phases of a pattern recognition system (e.g., classification, clustering, and feature selection) with a balanced mixture of theory, algorithm, and application. It covers the latest findings as well as directions for future research, particularly highlighting bioinformatics applications. The book is recommended for both students and practitioners working in computer science, electrical engineering, data science, system design, pattern recognition, image analysis, neural computing, social network analysis, big data analytics, computational biology and soft computing.

Pattern Recognition and Machine Intelligence - 7th International Conference, PReMI 2017, Kolkata, India, December 5-8, 2017,... Pattern Recognition and Machine Intelligence - 7th International Conference, PReMI 2017, Kolkata, India, December 5-8, 2017, Proceedings (Paperback, 1st ed. 2017)
B. Uma Shankar, Kuntal Ghosh, Deba Prasad Mandal, Shubhra Sankar Ray, David Zhang, …
R1,523 Discovery Miles 15 230 Ships in 18 - 22 working days

This book constitutes the proceedings of the 7th International Conference on Pattern Recognition and Machine Intelligence, PReMI 2017,held in Kolkata, India, in December 2017. The total of 86 full papers presented in this volume were carefully reviewed and selected from 293 submissions. They were organized in topical sections named: pattern recognition and machine learning; signal and image processing; computer vision and video processing; soft and natural computing; speech and natural language processing; bioinformatics and computational biology; data mining and big data analytics; deep learning; spatial data science and engineering; and applications of pattern recognition and machine intelligence.

Pattern Recognition and Machine Intelligence - 6th International Conference, PReMI 2015, Warsaw, Poland, June 30 - July 3,... Pattern Recognition and Machine Intelligence - 6th International Conference, PReMI 2015, Warsaw, Poland, June 30 - July 3, 2015, Proceedings (Paperback, 2015 ed.)
Marzena Kryszkiewicz, Sanghamitra Bandyopadhyay, Henryk Rybinski, Sankar K. Pal
R2,989 Discovery Miles 29 890 Ships in 18 - 22 working days

This book constitutes the proceedings of the 6th International Conference on Pattern Recognition and Machine Intelligence, PReMI 2015, held in Warsaw, Poland, in June/July 2015. The total of 53 full papers and 1 short paper presented in this volume were carefully reviewed and selected from 90 submissions. They were organized in topical sections named: foundations of machine learning; image processing; image retrieval; image tracking; pattern recognition; data mining techniques for large scale data; fuzzy computing; rough sets; bioinformatics; and applications of artificial intelligence.

Recent Trends in Signal and Image Processing - Proceedings of ISSIP 2018 (Paperback, 1st ed. 2019): Siddhartha Bhattacharyya,... Recent Trends in Signal and Image Processing - Proceedings of ISSIP 2018 (Paperback, 1st ed. 2019)
Siddhartha Bhattacharyya, Sankar K. Pal, Indrajit Pan, Abhijit Das
R4,011 Discovery Miles 40 110 Ships in 18 - 22 working days

This book presents fascinating, state-of-the-art research findings in the field of signal and image processing. It includes conference papers covering a wide range of signal processing applications involving filtering, encoding, classification, segmentation, clustering, feature extraction, denoising, watermarking, object recognition, reconstruction and fractal analysis. It addresses various types of signals, such as image, video, speech, non-speech audio, handwritten text, geometric diagram, ECG and EMG signals; MRI, PET and CT scan images; THz signals; solar wind speed signals (SWS); and photoplethysmogram (PPG) signals, and demonstrates how new paradigms of intelligent computing, like quantum computing, can be applied to process and analyze signals precisely and effectively. The book also discusses applications of hybrid methods, algorithms and image filters, which are proving to be better than the individual techniques or algorithms.

Soft Computing Applications in Sensor Networks (Hardcover): Sankar K. Pal, Sudip Misra Soft Computing Applications in Sensor Networks (Hardcover)
Sankar K. Pal, Sudip Misra
R4,920 Discovery Miles 49 200 Ships in 10 - 15 working days

This book uses tutorials and new material to describe the basic concepts of soft-computing which potentially can be used in real-life sensor network applications. It is organized in a manner that exemplifies the use of an assortment of soft-computing applications for solving different problems in sensor networking. Written by worldwide experts, the chapters provide a balanced mixture of different problems concerning channel access, routing, coverage, localization, lifetime maximization and target tracking using emerging soft-computing applications.

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