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Applied Pattern Recognition (Paperback, Softcover reprint of hardcover 1st ed. 2008): Horst Bunke, Abraham Kandel, Mark Last Applied Pattern Recognition (Paperback, Softcover reprint of hardcover 1st ed. 2008)
Horst Bunke, Abraham Kandel, Mark Last
R4,474 Discovery Miles 44 740 Ships in 10 - 15 working days

A sharp increase in the computing power of modern computers has triggered the development of powerful algorithms that can analyze complex patterns in large amounts of data within a short time period. Consequently, it has become possible to apply pattern recognition techniques to new tasks. The main goal of this book is to cover some of the latest application domains of pattern recognition while presenting novel techniques that have been developed or customized in those domains.

Advances in Web Intelligence and Data Mining (Paperback, Softcover reprint of hardcover 1st ed. 2006): Mark Last, Piotr S.... Advances in Web Intelligence and Data Mining (Paperback, Softcover reprint of hardcover 1st ed. 2006)
Mark Last, Piotr S. Szczepaniak, Zeev Volkovich, Abraham Kandel
R4,504 Discovery Miles 45 040 Ships in 10 - 15 working days

This book presents state-of-the-art developments in the area of computationally intelligent methods applied to various aspects and ways of Web exploration and Web mining. Some novel data mining algorithms that can lead to more effective and intelligent Web-based systems are also described. Scientists, engineers, and research students can expect to find many inspiring ideas in this volume.

Applied Graph Theory in Computer Vision and Pattern Recognition (Paperback, Softcover reprint of hardcover 1st ed. 2007):... Applied Graph Theory in Computer Vision and Pattern Recognition (Paperback, Softcover reprint of hardcover 1st ed. 2007)
Abraham Kandel, Horst Bunke, Mark Last
R2,957 Discovery Miles 29 570 Ships in 10 - 15 working days

This book presents novel graph-theoretic methods for complex computer vision and pattern recognition tasks. It presents the application of graph theory to low-level processing of digital images, presents graph-theoretic learning algorithms for high-level computer vision and pattern recognition applications, and provides detailed descriptions of several applications of graph-based methods to real-world pattern recognition tasks.

Data Mining and Computational Intelligence (Paperback, Softcover reprint of hardcover 1st ed. 2001): Abraham Kandel, Mark Last,... Data Mining and Computational Intelligence (Paperback, Softcover reprint of hardcover 1st ed. 2001)
Abraham Kandel, Mark Last, Horst Bunke
R4,511 Discovery Miles 45 110 Ships in 10 - 15 working days

Many business decisions are made in the absence of complete information about the decision consequences. Credit lines are approved without knowing the future behavior of the customers; stocks are bought and sold without knowing their future prices; parts are manufactured without knowing all the factors affecting their final quality; etc. All these cases can be categorized as decision making under uncertainty. Decision makers (human or automated) can handle uncertainty in different ways. Deferring the decision due to the lack of sufficient information may not be an option, especially in real-time systems. Sometimes expert rules, based on experience and intuition, are used. Decision tree is a popular form of representing a set of mutually exclusive rules. An example of a two-branch tree is: if a credit applicant is a student, approve; otherwise, decline. Expert rules are usually based on some hidden assumptions, which are trying to predict the decision consequences. A hidden assumption of the last rule set is: a student will be a profitable customer. Since the direct predictions of the future may not be accurate, a decision maker can consider using some information from the past. The idea is to utilize the potential similarity between the patterns of the past (e.g., "most students used to be profitable") and the patterns of the future (e.g., "students will be profitable").

Advances in Web Intelligence and Data Mining (Hardcover, 2006 ed.): Mark Last, Piotr S. Szczepaniak, Zeev Volkovich, Abraham... Advances in Web Intelligence and Data Mining (Hardcover, 2006 ed.)
Mark Last, Piotr S. Szczepaniak, Zeev Volkovich, Abraham Kandel
R4,705 Discovery Miles 47 050 Ships in 10 - 15 working days

This book presents state-of-the-art developments in the area of computationally intelligent methods applied to various aspects and ways of Web exploration and Web mining. Some novel data mining algorithms that can lead to more effective and intelligent Web-based systems are also described. Scientists, engineers, and research students can expect to find many inspiring ideas in this volume.

Data Mining and Computational Intelligence (Hardcover, 2001 ed.): Abraham Kandel, Mark Last, Horst Bunke Data Mining and Computational Intelligence (Hardcover, 2001 ed.)
Abraham Kandel, Mark Last, Horst Bunke
R4,715 Discovery Miles 47 150 Ships in 10 - 15 working days

Many business decisions are made in the absence of complete information about the decision consequences. Credit lines are approved without knowing the future behavior of the customers; stocks are bought and sold without knowing their future prices; parts are manufactured without knowing all the factors affecting their final quality; etc. All these cases can be categorized as decision making under uncertainty. Decision makers (human or automated) can handle uncertainty in different ways. Deferring the decision due to the lack of sufficient information may not be an option, especially in real-time systems. Sometimes expert rules, based on experience and intuition, are used. Decision tree is a popular form of representing a set of mutually exclusive rules. An example of a two-branch tree is: if a credit applicant is a student, approve; otherwise, decline. Expert rules are usually based on some hidden assumptions, which are trying to predict the decision consequences. A hidden assumption of the last rule set is: a student will be a profitable customer. Since the direct predictions of the future may not be accurate, a decision maker can consider using some information from the past. The idea is to utilize the potential similarity between the patterns of the past (e.g., "most students used to be profitable") and the patterns of the future (e.g., "students will be profitable").

Fuzzy Mathematical Analysis and Advances in Computational Mathematics (1st ed. 2022): S. R. Kannan, Mark Last, Tzung-Pei Hong,... Fuzzy Mathematical Analysis and Advances in Computational Mathematics (1st ed. 2022)
S. R. Kannan, Mark Last, Tzung-Pei Hong, Chun-Hao Chen
R5,245 Discovery Miles 52 450 Ships in 10 - 15 working days

The edited volume includes papers in the fields of fuzzy mathematical analysis and advances in computational mathematics. The fields of fuzzy mathematical analysis and advances in computational mathematics can provide valuable solutions to complex problems. They have been applied in multiple areas such as high dimensional data analysis, medical diagnosis, computer vision, hand-written character recognition, pattern recognition, machine intelligence, weather forecasting, network optimization, VLSI design, etc. The volume covers ongoing research in fuzzy and computational mathematical analysis and brings forward its recent applications to important real-world problems in various fields. The book includes selected high-quality papers from the International Conference on Fuzzy Mathematical Analysis and Advances in Computational Mathematics (FMAACM 2020).

Fuzzy Mathematical Analysis and Advances in Computational Mathematics (Hardcover, 1st ed. 2022): S. R. Kannan, Mark Last,... Fuzzy Mathematical Analysis and Advances in Computational Mathematics (Hardcover, 1st ed. 2022)
S. R. Kannan, Mark Last, Tzung-Pei Hong, Chun-Hao Chen
R5,278 Discovery Miles 52 780 Ships in 10 - 15 working days

The edited volume includes papers in the fields of fuzzy mathematical analysis and advances in computational mathematics. The fields of fuzzy mathematical analysis and advances in computational mathematics can provide valuable solutions to complex problems. They have been applied in multiple areas such as high dimensional data analysis, medical diagnosis, computer vision, hand-written character recognition, pattern recognition, machine intelligence, weather forecasting, network optimization, VLSI design, etc. The volume covers ongoing research in fuzzy and computational mathematical analysis and brings forward its recent applications to important real-world problems in various fields. The book includes selected high-quality papers from the International Conference on Fuzzy Mathematical Analysis and Advances in Computational Mathematics (FMAACM 2020).

Applied Graph Theory in Computer Vision and Pattern Recognition (Hardcover, 2007 ed.): Abraham Kandel, Horst Bunke, Mark Last Applied Graph Theory in Computer Vision and Pattern Recognition (Hardcover, 2007 ed.)
Abraham Kandel, Horst Bunke, Mark Last
R3,126 Discovery Miles 31 260 Ships in 10 - 15 working days

This book presents novel graph-theoretic methods for complex computer vision and pattern recognition tasks. It presents the application of graph theory to low-level processing of digital images, presents graph-theoretic learning algorithms for high-level computer vision and pattern recognition applications, and provides detailed descriptions of several applications of graph-based methods to real-world pattern recognition tasks.

Artificial Intelligence Methods For Software Engineering (Hardcover): Meir Kalech, Rui Abreu, Mark Last Artificial Intelligence Methods For Software Engineering (Hardcover)
Meir Kalech, Rui Abreu, Mark Last
R3,962 Discovery Miles 39 620 Ships in 10 - 15 working days

Software is an integral part of our lives today. Modern software systems are highly complex and often pose new challenges in different aspects of Software Engineering (SE).Artificial Intelligence (AI) is a growing field in computer science that has been proven effective in applying and developing AI techniques to address various SE challenges.This unique compendium covers applications of state-of-the-art AI techniques to the key areas of SE (design, development, debugging, testing, etc).All the materials presented are up-to-date. This reference text will benefit researchers, academics, professionals, and postgraduate students in AI, machine learning and software engineering.Related Link(s)

Data Mining In Time Series And Streaming Databases (Hardcover): Mark Last, Horst Bunke, Abraham Kandel Data Mining In Time Series And Streaming Databases (Hardcover)
Mark Last, Horst Bunke, Abraham Kandel
R2,403 Discovery Miles 24 030 Ships in 10 - 15 working days

This compendium is a completely revised version of an earlier book, Data Mining in Time Series Databases, by the same editors. It provides a unique collection of new articles written by leading experts that account for the latest developments in the field of time series and data stream mining.The emerging topics covered by the book include weightless neural modeling for mining data streams, using ensemble classifiers for imbalanced and evolving data streams, document stream mining with active learning, and many more. In particular, it addresses the domain of streaming data, which has recently become one of the emerging topics in Data Science, Big Data, and related areas. Existing titles do not provide sufficient information on this topic.

Artificial Intelligence Methods In Software Testing (Hardcover): Mark Last, Abraham Kandel, Horst Bunke Artificial Intelligence Methods In Software Testing (Hardcover)
Mark Last, Abraham Kandel, Horst Bunke
R3,212 Discovery Miles 32 120 Ships in 10 - 15 working days

An inadequate infrastructure for software testing is causing major losses to the world economy. The characteristics of software quality problems are quite similar to other tasks successfully tackled by artificial intelligence techniques. The aims of this book are to present state-of-the-art applications of artificial intelligence and data mining methods to quality assurance of complex software systems, and to encourage further research in this important and challenging area.

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