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Real-Time Object Measurement and Classification, Anil K. Jain


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Цена: 18167.00р.
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Автор: Anil K. Jain
Название:  Real-Time Object Measurement and Classification
ISBN: 9783642833274
Издательство: Springer
Классификация:





ISBN-10: 3642833276
Обложка/Формат: Paperback
Страницы: 407
Вес: 0.67 кг.
Дата издания: 22.12.2011
Серия: Nato ASI Subseries F:
Язык: English
Размер: 244 x 170 x 22
Основная тема: Computer Science
Ссылка на Издательство: Link
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Поставляется из: Германии
Описание: Proceedings of the NATO Advanced Research Workshop on Real- Time Object and Environment Measurement and Qualification, held in Maratea, Italy, August 31 - September 3, 1987


Soft Computing Approach to Pattern Classification and Object Recognition

Автор: Kumar S. Ray
Название: Soft Computing Approach to Pattern Classification and Object Recognition
ISBN: 1489990100 ISBN-13(EAN): 9781489990105
Издательство: Springer
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Цена: 15372.00 р.
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Описание: Soft Computing Approach to Pattern Classification and Object Recognition establishes an innovative, unified approach to supervised pattern classification and model-based occluded object recognition.

Multiple Fuzzy Classification Systems

Автор: Rafa? Scherer
Название: Multiple Fuzzy Classification Systems
ISBN: 3642436579 ISBN-13(EAN): 9783642436574
Издательство: Springer
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Цена: 18284.00 р.
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Описание: This book presents a novel approach for exploratory data analysis with ensembles of various neuro-fuzzy systems. It places emphasis on ensembles that can work on incomplete data, thanks to rough set theory.

Support Vector Machines for Pattern Classification

Автор: Shigeo Abe
Название: Support Vector Machines for Pattern Classification
ISBN: 1447125487 ISBN-13(EAN): 9781447125488
Издательство: Springer
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Цена: 22201.00 р.
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Описание: This guide on the use of SVMs in pattern classification includes a rigorous performance comparison of classifiers and regressors. The book takes the unique approach of focusing on classification rather than covering the theoretical aspects of SVMs.

ECG Signal Processing, Classification and Interpretation

Автор: Adam Gacek; Witold Pedrycz
Название: ECG Signal Processing, Classification and Interpretation
ISBN: 1447159209 ISBN-13(EAN): 9781447159209
Издательство: Springer
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Цена: 16977.00 р.
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Описание: The volume shows how the various paradigms of computational intelligence, employed individually or in combination, can produce an effective structure for obtaining often vital information from ECG signals.

Pattern Classification Using Ensemble Methods

Автор: Rokach Lior
Название: Pattern Classification Using Ensemble Methods
ISBN: 9814271063 ISBN-13(EAN): 9789814271066
Издательство: World Scientific Publishing
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Цена: 13464.00 р.
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Описание: Researchers from various disciplines such as pattern recognition, statistics, and machine learning have explored the use of ensemble methodology since the late seventies. This book aims to impose a degree of order upon this diversity by presenting a coherent and unified repository of ensemble methods, theories, trends, challenges and applications.

Cellular Image Classification

Автор: Xiang Xu; Xingkun Wu; Feng Lin
Название: Cellular Image Classification
ISBN: 3319476289 ISBN-13(EAN): 9783319476285
Издательство: Springer
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Цена: 18167.00 р.
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Описание:

This book introduces new techniques for cellular image feature extraction, pattern recognition and classification. The authors use the antinuclear antibodies (ANAs) in patient serum as the subjects and the Indirect Immunofluorescence (IIF) technique as the imaging protocol to illustrate the applications of the described methods. Throughout the book, the authors provide evaluations for the proposed methods on two publicly available human epithelial (HEp-2) cell datasets: ICPR2012 dataset from the ICPR'12 HEp-2 cell classification contest and ICIP2013 training dataset from the ICIP'13 Competition on cells classification by fluorescent image analysis.
First, the reading of imaging results is significantly influenced by one’s qualification and reading systems, causing high intra- and inter-laboratory variance. The authors present a low-order LP21 fiber mode for optical single cell manipulation and imaging staining patterns of HEp-2 cells. A focused four-lobed mode distribution is stable and effective in optical tweezer applications, including selective cell pick-up, pairing, grouping or separation, as well as rotation of cell dimers and clusters. Both translational dragging force and rotational torque in the experiments are in good accordance with the theoretical model. With a simple all-fiber configuration, and low peak irradiation to targeted cells, instrumentation of this optical chuck technology will provide a powerful tool in the ANA-IIF laboratories. Chapters focus on the optical, mechanical and computing systems for the clinical trials. Computer programs for GUI and control of the optical tweezers are also discussed.
to more discriminative local distance vector by searching for local neighbors of the local feature in the class-specific manifolds. Encoding and pooling the local distance vectors leads to salient image representation. Combined with the traditional coding methods, this method achieves higher classification accuracy.
Then, a rotation invariant textural feature of Pairwise Local Ternary Patterns with Spatial Rotation Invariant (PLTP-SRI) is examined. It is invariant to image rotations, meanwhile it is robust to noise and weak illumination. By adding spatial pyramid structure, this method captures spatial layout information. While the proposed PLTP-SRI feature extracts local feature, the BoW framework builds a global image representation. It is reasonable to combine them together to achieve impressive classification performance, as the combined feature takes the advantages of the two kinds of features in different aspects.
Finally, the authors design a Co-occurrence Differential Texton (CoDT) feature to represent the local image patches of HEp-2 cells. The CoDT feature reduces the information loss by ignoring the quantization while it utilizes the spatial relations among the differential micro-texton feature. Thus it can increase the discriminative power. A generative model adaptively characterizes the CoDT feature space of the training data. Furthermore, exploiting a discriminant representation allows for HEp-2 cell images based on the adaptive partitioned feature space. Therefore, the resulting representation is adapted to the classification task. By cooperating with linear Support Vector Machine (SVM) classifier, this framework can exploit the advantages of both generative and discriminative approaches for cellular image classification.
The book is written for those researchers who would like to develop their own programs, and the working MatLab codes are included for all the important algorithms presented. It can also be used as a reference book for graduate students and senior undergraduates in the area of biomedical imaging, image feature extraction, pattern recognition an
Multilabel Classification

Автор: Herrera
Название: Multilabel Classification
ISBN: 3319411101 ISBN-13(EAN): 9783319411101
Издательство: Springer
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Цена: 18167.00 р.
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Описание:

This book offers a comprehensive review of multilabel techniques widely used to classify and label texts, pictures, videos and music in the Internet. A deep review of the specialized literature on the field includes the available software needed to work with this kind of data. It provides the user with the software tools needed to deal with multilabel data, as well as step by step instruction on how to use them. The main topics covered are:
• The special characteristics of multi-labeled data and the metrics available to measure them.
• The importance of taking advantage of label correlations to improve the results.
• The different approaches followed to face multi-label classification.
• The preprocessing techniques applicable to multi-label datasets.
• The available software tools to work with multi-label data.
This book is beneficial for professionals and researchers in a variety of fields because of the wide range of potential applications for multilabel classification. Besides its multiple applications to classify different types of online information, it is also useful in many other areas, such as genomics and biology. No previous knowledge about the subject is required. The book introduces all the needed concepts to understand multilabel data characterization, treatment and evaluation.
Unsupervised Classification

Автор: Sanghamitra Bandyopadhyay; Sriparna Saha
Название: Unsupervised Classification
ISBN: 3642428363 ISBN-13(EAN): 9783642428364
Издательство: Springer
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Цена: 6981.00 р.
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Описание: This book offers a theoretical analysis of symmetry-based clustering techniques. It includes extensive real-world applications in data mining, remote sensing imaging, MR brain imaging, gene expression data analysis, and face detection.

Graph Classification And Clustering Based On Vector Space Embedding

Автор: Riesen Kaspar & Bunke Horst
Название: Graph Classification And Clustering Based On Vector Space Embedding
ISBN: 9814304719 ISBN-13(EAN): 9789814304719
Издательство: World Scientific Publishing
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Цена: 17424.00 р.
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Описание: Focuses on a fundamentally novel approach to graph-based pattern recognition based on vector space embedding of graphs. This title aims at condensing the high representational power of graphs into a computationally efficient and mathematically convenient feature vector.

Search Techniques in Intelligent Classification Systems

Автор: Andrey V. Savchenko
Название: Search Techniques in Intelligent Classification Systems
ISBN: 3319305131 ISBN-13(EAN): 9783319305134
Издательство: Springer
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Цена: 6986.00 р.
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Описание:

1.Intelligent Classification Systems.- 2. Statistical Classification of Audiovisual Data.- 3. Hierarchical Intelligent Classification Systems.- 4. Approximate Nearest Neighbor Search in Intelligent Classification Systems.- 5. Search in Voice Control Systems.- 6. Conclusion.

Machine Learning Models and Algorithms for Big Data Classification

Автор: Shan Suthaharan
Название: Machine Learning Models and Algorithms for Big Data Classification
ISBN: 1489978526 ISBN-13(EAN): 9781489978523
Издательство: Springer
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Цена: 18167.00 р.
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Описание: This book presents machine learning models and algorithms to address big data classification problems. The first part mainly focuses on the topics that are needed to help analyze and understand data and big data. The third part presents the topics required to understand and select machine learning techniques to classify big data.

Prediction and Classification of Respiratory Motion

Автор: Suk Jin Lee; Yuichi Motai
Название: Prediction and Classification of Respiratory Motion
ISBN: 3662510642 ISBN-13(EAN): 9783662510643
Издательство: Springer
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Цена: 15672.00 р.
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Описание: This book examines current radiotherapy technologies including tools for measuring target position during radiotherapy and tracking-based delivery systems. The proposed method improves treatments by considering breathing pattern for accurate dose calculation.


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