9780470278338 - unsupervised learning: a dynamic approach: 11 (ieee press series on computational intelligence) de kyan, matthew; muneesawang, paisarn; jarrah, kambiz; guan, ling (22 resultados)

Unsupervised Learning : A Dynamic Approach
Kyan, Matthew; Muneesawang , Paisarn; Jarrah, Kambiz; Guan, Ling
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Unsupervised Learning : A Dynamic Approach
Kyan, Matthew; Muneesawang , Paisarn; Jarrah, Kambiz; Guan, Ling
Idioma: Inglés
Editorial: Wiley-IEEE Press, 2014
Serie: Libro 4 de 8 - IEEE Press Series on Computational Intelligence
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Unsupervised Learning : A Dynamic Approach
Kyan, Matthew; Muneesawang , Paisarn; Jarrah, Kambiz; Guan, Ling
Idioma: Inglés
Editorial: Wiley-IEEE Press, 2014
Serie: Libro 4 de 8 - IEEE Press Series on Computational Intelligence
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Hardback. Condición: New. A new approach to unsupervised learning Evolving technologies have brought about an explosion of information in recent years, but the question of how such information might be effectively harvested, archived, and analyzed remains a monumental challenge-for the processing of such information is often fra…ught with the need for conceptual interpretation: a relatively simple task for humans, yet an arduous one for computers. Inspired by the relative success of existing popular research on self-organizing neural networks for data clustering and feature extraction, Unsupervised Learning: A Dynamic Approach presents information within the family of generative, self-organizing maps, such as the self-organizing tree map (SOTM) and the more advanced self-organizing hierarchical variance map (SOHVM). It covers a series of pertinent, real-world applications with regard to the processing of multimedia data-from its role in generic image processing techniques, such as the automated modeling and removal of impulse noise in digital images, to problems in digital asset management and its various roles in feature extraction, visual enhancement, segmentation, and analysis of microbiological image data. Self-organization concepts and applications discussed include: Distance metrics for unsupervised clusteringSynaptic self-amplification and competitionImage retrievalImpulse noise removalMicrobiological image analysis Unsupervised Learning: A Dynamic Approach introduces a new family of unsupervised algorithms that have a basis in self-organization, making it an invaluable resource for researchers, engineers, and scientists who want to create systems that effectively model oppressive volumes of data with little or no user intervention.

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Hardcover. Condición: new. Hardcover. A new approach to unsupervised learning Evolving technologies have brought about an explosion of information in recent years, but the question of how such information might be effectively harvested, archived, and analyzed remains a monumental challengefor the processing of such information i…s often fraught with the need for conceptual interpretation: a relatively simple task for humans, yet an arduous one for computers. Inspired by the relative success of existing popular research on self-organizing neural networks for data clustering and feature extraction, Unsupervised Learning: A Dynamic Approach presents information within the family of generative, self-organizing maps, such as the self-organizing tree map (SOTM) and the more advanced self-organizing hierarchical variance map (SOHVM). It covers a series of pertinent, real-world applications with regard to the processing of multimedia datafrom its role in generic image processing techniques, such as the automated modeling and removal of impulse noise in digital images, to problems in digital asset management and its various roles in feature extraction, visual enhancement, segmentation, and analysis of microbiological image data. Self-organization concepts and applications discussed include: Distance metrics for unsupervised clusteringSynaptic self-amplification and competitionImage retrievalImpulse noise removalMicrobiological image analysis Unsupervised Learning: A Dynamic Approach introduces a new family of unsupervised algorithms that have a basis in self-organization, making it an invaluable resource for researchers, engineers, and scientists who want to create systems that effectively model oppressive volumes of data with little or no user intervention. To aid in intelligent data mining, this book introduces a new family of unsupervised algorithms that have a basis in self-organization, yet are free from many of the constraints typical of other well known self-organizing architectures. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.

Unsupervised Learning : A Dynamic Approach
Kyan, Matthew; Muneesawang , Paisarn; Jarrah, Kambiz; Guan, Ling
Idioma: Inglés
Editorial: Wiley-IEEE Press, 2014
Serie: Libro 4 de 8 - IEEE Press Series on Computational Intelligence
- Tapa dura
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Unsupervised Learning: A Dynamic Approach (IEEE Press Series on Computational Intelligence)
Kyan, Matthew; Muneesawang, Paisarn; Jarrah, Kambiz; Guan, Ling
Idioma: Inglés
Editorial: Wiley-IEEE Press, 2014
Serie: Libro 4 de 8 - IEEE Press Series on Computational Intelligence
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Unervised Learning via Self-Organization
Guan Ling Jarrah Kambiz Muneesawang Paisarn Kyan Matthew Guan L.
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Unsupervised Learning: A Dynamic Approach (IEEE Press Series on Computational Intelligence)
Kyan, Matthew; Muneesawang, Paisarn; Jarrah, Kambiz; Guan, Ling
Idioma: Inglés
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Serie: Libro 4 de 8 - IEEE Press Series on Computational Intelligence
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Condición: New. To aid in intelligent data mining, this book introduces a new family of unsupervised algorithms that have a basis in self-organization, yet are free from many of the constraints typical of other well known self-organizing architectures. Series: IEEE Press Series on Computational Intelligence. Num Pages: 288 pages…, , black & white illustrations, black & white line drawings, black & white tables, figures. BIC Classification: UNF; UYQ. Category: (P) Professional & Vocational. Dimension: 242 x 156 x 24. Weight in Grams: 592. . 2014. Hardback. . . . .

Unervised Learning via Self-Organization
Ling Guan Kambiz Jarrah Paisarn Muneesawang Matthew Kyan L. Guan
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Hardcover. Condición: new. Hardcover. A new approach to unsupervised learning Evolving technologies have brought about an explosion of information in recent years, but the question of how such information might be effectively harvested, archived, and analyzed remains a monumental challengefor the processing of such information i…s often fraught with the need for conceptual interpretation: a relatively simple task for humans, yet an arduous one for computers. Inspired by the relative success of existing popular research on self-organizing neural networks for data clustering and feature extraction, Unsupervised Learning: A Dynamic Approach presents information within the family of generative, self-organizing maps, such as the self-organizing tree map (SOTM) and the more advanced self-organizing hierarchical variance map (SOHVM). It covers a series of pertinent, real-world applications with regard to the processing of multimedia datafrom its role in generic image processing techniques, such as the automated modeling and removal of impulse noise in digital images, to problems in digital asset management and its various roles in feature extraction, visual enhancement, segmentation, and analysis of microbiological image data. Self-organization concepts and applications discussed include: Distance metrics for unsupervised clusteringSynaptic self-amplification and competitionImage retrievalImpulse noise removalMicrobiological image analysis Unsupervised Learning: A Dynamic Approach introduces a new family of unsupervised algorithms that have a basis in self-organization, making it an invaluable resource for researchers, engineers, and scientists who want to create systems that effectively model oppressive volumes of data with little or no user intervention. To aid in intelligent data mining, this book introduces a new family of unsupervised algorithms that have a basis in self-organization, yet are free from many of the constraints typical of other well known self-organizing architectures. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability.

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Condición: New. To aid in intelligent data mining, this book introduces a new family of unsupervised algorithms that have a basis in self-organization, yet are free from many of the constraints typical of other well known self-organizing architectures. Series: IEEE Press Series on Computational Intelligence. Num Pages: 288 pages…, , black & white illustrations, black & white line drawings, black & white tables, figures. BIC Classification: UNF; UYQ. Category: (P) Professional & Vocational. Dimension: 242 x 156 x 24. Weight in Grams: 592. . 2014. Hardback. . . . . Books ship from the US and Ireland.

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Hardback. Condición: New. A new approach to unsupervised learning Evolving technologies have brought about an explosion of information in recent years, but the question of how such information might be effectively harvested, archived, and analyzed remains a monumental challenge-for the processing of such information is often fra…ught with the need for conceptual interpretation: a relatively simple task for humans, yet an arduous one for computers. Inspired by the relative success of existing popular research on self-organizing neural networks for data clustering and feature extraction, Unsupervised Learning: A Dynamic Approach presents information within the family of generative, self-organizing maps, such as the self-organizing tree map (SOTM) and the more advanced self-organizing hierarchical variance map (SOHVM). It covers a series of pertinent, real-world applications with regard to the processing of multimedia data-from its role in generic image processing techniques, such as the automated modeling and removal of impulse noise in digital images, to problems in digital asset management and its various roles in feature extraction, visual enhancement, segmentation, and analysis of microbiological image data. Self-organization concepts and applications discussed include: Distance metrics for unsupervised clusteringSynaptic self-amplification and competitionImage retrievalImpulse noise removalMicrobiological image analysis Unsupervised Learning: A Dynamic Approach introduces a new family of unsupervised algorithms that have a basis in self-organization, making it an invaluable resource for researchers, engineers, and scientists who want to create systems that effectively model oppressive volumes of data with little or no user intervention.

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Hardcover. Condición: new. Hardcover. A new approach to unsupervised learning Evolving technologies have brought about an explosion of information in recent years, but the question of how such information might be effectively harvested, archived, and analyzed remains a monumental challengefor the processing of such information i…s often fraught with the need for conceptual interpretation: a relatively simple task for humans, yet an arduous one for computers. Inspired by the relative success of existing popular research on self-organizing neural networks for data clustering and feature extraction, Unsupervised Learning: A Dynamic Approach presents information within the family of generative, self-organizing maps, such as the self-organizing tree map (SOTM) and the more advanced self-organizing hierarchical variance map (SOHVM). It covers a series of pertinent, real-world applications with regard to the processing of multimedia datafrom its role in generic image processing techniques, such as the automated modeling and removal of impulse noise in digital images, to problems in digital asset management and its various roles in feature extraction, visual enhancement, segmentation, and analysis of microbiological image data. Self-organization concepts and applications discussed include: Distance metrics for unsupervised clusteringSynaptic self-amplification and competitionImage retrievalImpulse noise removalMicrobiological image analysis Unsupervised Learning: A Dynamic Approach introduces a new family of unsupervised algorithms that have a basis in self-organization, making it an invaluable resource for researchers, engineers, and scientists who want to create systems that effectively model oppressive volumes of data with little or no user intervention. To aid in intelligent data mining, this book introduces a new family of unsupervised algorithms that have a basis in self-organization, yet are free from many of the constraints typical of other well known self-organizing architectures. Shipping may be from our Sydney, NSW warehouse or from our UK or US warehouse, depending on stock availability.