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Research Anthology on Artificial Neural Network Applications, VOL 2, Management Association Information R.


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Автор: Management Association Information R.
Название:  Research Anthology on Artificial Neural Network Applications, VOL 2
ISBN: 9781668435809
Издательство: Mare Nostrum (Eurospan)
Классификация:

ISBN-10: 1668435802
Обложка/Формат: Hardcover
Страницы: 564
Вес: 1.58 кг.
Дата издания: 17.09.2021
Язык: English
Размер: 27.94 x 21.59 x 3.18 cm
Читательская аудитория: General (us: trade)
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Поставляется из: Англии


Research Anthology on Artificial Neural Network Applications, VOL 1

Автор: Management Association Information R.
Название: Research Anthology on Artificial Neural Network Applications, VOL 1
ISBN: 1668435799 ISBN-13(EAN): 9781668435793
Издательство: Mare Nostrum (Eurospan)
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Цена: 59941.00 р.
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Research Anthology on Artificial Neural Network Applications, VOL 3

Автор: Management Association Information R.
Название: Research Anthology on Artificial Neural Network Applications, VOL 3
ISBN: 1668435810 ISBN-13(EAN): 9781668435816
Издательство: Mare Nostrum (Eurospan)
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Цена: 59941.00 р.
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Research Anthology on Artificial Neural Network Applications

Название: Research Anthology on Artificial Neural Network Applications
ISBN: 1668424088 ISBN-13(EAN): 9781668424087
Издательство: Mare Nostrum (Eurospan)
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Цена: 190159.00 р.
Наличие на складе: Нет в наличии.

Описание: Covers critical topics related to artificial neural networks and their multitude of applications in a number of diverse areas, including medicine, finance, operations research, business, social media, security, and more. The book covers everything from the applications and uses of artificial neural networks to deep learning and non-linear problems.

Artificial Neural Network Applications for Softwar e Reliability Prediction

Автор: Bisi
Название: Artificial Neural Network Applications for Softwar e Reliability Prediction
ISBN: 1119223547 ISBN-13(EAN): 9781119223542
Издательство: Wiley
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Цена: 26762.00 р.
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Описание:

This book provides a starting point for software professionals to apply artificial neural networks for software reliability prediction without having analyst capability and expertise in various ANN architectures and their optimization.

Artificial neural network (ANN) has proven to be a universal approximator for any non-linear continuous function with arbitrary accuracy. This book presents how to apply ANN to measure various software reliability indicators: number of failures in a given time, time between successive failures, fault-prone modules and development efforts. The application of machine learning algorithm i.e. artificial neural networks application in software reliability prediction during testing phase as well as early phases of software development process are presented. Applications of artificial neural network for the above purposes are discussed with experimental results in this book so that practitioners can easily use ANN models for predicting software reliability indicators.

Artificial Neural Network Applications in Business and Engineering

Автор: Quang Hung Do
Название: Artificial Neural Network Applications in Business and Engineering
ISBN: 1799832384 ISBN-13(EAN): 9781799832386
Издательство: Mare Nostrum (Eurospan)
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Цена: 39085.00 р.
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Описание: In today's modernized market, various disciplines continue to search for universally functional technologies that improve upon traditional processes. Artificial neural networks are a set of statistical modeling tools that are capable of processing nonlinear data with strong accuracy. Due to their complexity, utilizing their potential was previously seen as a challenge. However, with the development of artificial intelligence, this technology has proven to be an effective and efficient problem-solving method.

Artificial Neural Network Applications in Business and Engineering is an essential reference source that illustrates recent advancements of artificial neural networks in various professional fields, accompanied by specific case studies and practical examples. Featuring research on topics such as training algorithms, transportation, and computer security, this book is ideally designed for researchers, students, developers, managers, engineers, academicians, industrialists, policymakers, and educators seeking coverage on modern trends in artificial neural networks and their real-world implementations.

Artificial Neural Network Applications in Business and Engineering

Автор: Quang Hung Do
Название: Artificial Neural Network Applications in Business and Engineering
ISBN: 1799832392 ISBN-13(EAN): 9781799832393
Издательство: Mare Nostrum (Eurospan)
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Цена: 32155.00 р.
Наличие на складе: Есть у поставщика Поставка под заказ.

Описание: In today's modernized market, various disciplines continue to search for universally functional technologies that improve upon traditional processes. Artificial neural networks are a set of statistical modeling tools that are capable of processing nonlinear data with strong accuracy. Due to their complexity, utilizing their potential was previously seen as a challenge. However, with the development of artificial intelligence, this technology has proven to be an effective and efficient problem-solving method.

Artificial Neural Network Applications in Business and Engineering is an essential reference source that illustrates recent advancements of artificial neural networks in various professional fields, accompanied by specific case studies and practical examples. Featuring research on topics such as training algorithms, transportation, and computer security, this book is ideally designed for researchers, students, developers, managers, engineers, academicians, industrialists, policymakers, and educators seeking coverage on modern trends in artificial neural networks and their real-world implementations.

Network Embedding: Theories, Methods, and Applications

Автор: Yang Cheng, Liu Zhiyuan, Tu Cunchao
Название: Network Embedding: Theories, Methods, and Applications
ISBN: 1636390447 ISBN-13(EAN): 9781636390444
Издательство: Mare Nostrum (Eurospan)
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Цена: 12751.00 р.
Наличие на складе: Нет в наличии.

Описание:

Many machine learning algorithms require real-valued feature vectors of data instances as inputs. By projecting data into vector spaces, representation learning techniques have achieved promising performance in many areas such as computer vision and natural language processing. There is also a need to learn representations for discrete relational data, namely networks or graphs. Network Embedding (NE) aims at learning vector representations for each node or vertex in a network to encode the topologic structure. Due to its convincing performance and efficiency, NE has been widely applied in many network applications such as node classification and link prediction.

This book provides a comprehensive introduction to the basic concepts, models, and applications of network representation learning (NRL). The book starts with an introduction to the background and rising of network embeddings as a general overview for readers. Then it introduces the development of NE techniques by presenting several representative methods on general graphs, as well as a unified NE framework based on matrix factorization. Afterward, it presents the variants of NE with additional information: NE for graphs with node attributes/contents/labels; and the variants with different characteristics: NE for community-structured/large-scale/heterogeneous graphs. Further, the book introduces different applications of NE such as recommendation and information diffusion prediction. Finally, the book concludes the methods and applications and looks forward to the future directions.

Network Embedding: Theories, Methods, and Applications

Автор: Yang Cheng, Liu Zhiyuan, Tu Cunchao
Название: Network Embedding: Theories, Methods, and Applications
ISBN: 1636390463 ISBN-13(EAN): 9781636390468
Издательство: Mare Nostrum (Eurospan)
Рейтинг:
Цена: 15939.00 р.
Наличие на складе: Нет в наличии.

Описание:

Many machine learning algorithms require real-valued feature vectors of data instances as inputs. By projecting data into vector spaces, representation learning techniques have achieved promising performance in many areas such as computer vision and natural language processing. There is also a need to learn representations for discrete relational data, namely networks or graphs. Network Embedding (NE) aims at learning vector representations for each node or vertex in a network to encode the topologic structure. Due to its convincing performance and efficiency, NE has been widely applied in many network applications such as node classification and link prediction.

This book provides a comprehensive introduction to the basic concepts, models, and applications of network representation learning (NRL). The book starts with an introduction to the background and rising of network embeddings as a general overview for readers. Then it introduces the development of NE techniques by presenting several representative methods on general graphs, as well as a unified NE framework based on matrix factorization. Afterward, it presents the variants of NE with additional information: NE for graphs with node attributes/contents/labels; and the variants with different characteristics: NE for community-structured/large-scale/heterogeneous graphs. Further, the book introduces different applications of NE such as recommendation and information diffusion prediction. Finally, the book concludes the methods and applications and looks forward to the future directions.

Neural Network Methods in Natural Language Processing

Автор: Goldberg Yoav
Название: Neural Network Methods in Natural Language Processing
ISBN: 1627052984 ISBN-13(EAN): 9781627052986
Издательство: Mare Nostrum (Eurospan)
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Цена: 11504.00 р.
Наличие на складе: Нет в наличии.

Описание: Neural networks are a family of powerful machine learning models. This book focuses on the application of neural network models to natural language data. The first half of the book (Parts I and II) covers the basics of supervised machine learning and feed-forward neural networks, the basics of working with machine learning over language data, and the use of vector-based rather than symbolic representations for words. It also covers the computation-graph abstraction, which allows to easily define and train arbitrary neural networks, and is the basis behind the design of contemporary neural network software libraries.The second part of the book (Parts III and IV) introduces more specialized neural network architectures, including 1D convolutional neural networks, recurrent neural networks, conditioned-generation models, and attention-based models. These architectures and techniques are the driving force behind state-of-the-art algorithms for machine translation, syntactic parsing, and many other applications. Finally, we also discuss tree-shaped networks, structured prediction, and the prospects of multi-task learning.

Deep Learning: Research and Applications

Автор: Siddhartha Bhattacharyya, Vaclav Snasel, Aboul Ella Hassanien, Satadal Saha, B. K. Tripathy
Название: Deep Learning: Research and Applications
ISBN: 3110670798 ISBN-13(EAN): 9783110670790
Издательство: Walter de Gruyter
Цена: 20446.00 р.
Наличие на складе: Есть у поставщика Поставка под заказ.

Описание: This book will focus on the fundamentals of deep learning along with reporting on the current state-of-art research on deep learning. In addition, it would provide an insight of deep neural networks in action with illustrative coding examples. Moreover, the book will also provide video demonstrations on each chapter. Deep learning is a new area of machine learning research, which has been introduced with the objective of moving ML closer to one of its original goals, i.e. artificial intelligence. Deep learning was developed as an ML approach to deal with complex input-output mappings. While traditional methods successfully solve problems where final value is a simple function of input data, deep learning techniques are able to capture composite relations between non immediately related fields, for example between air pressure recordings and english words, millions of pixels and textual description, brand-related news and future stock prices and almost all real world problems. Deep learning is a class of nature inspired machine learning algorithms that uses a cascade of multiple layers of nonlinear processing units for feature extraction and transformation. Each successive layer uses the output from the previous layer as input. The learning may be supervised (e.g., classification) and/or unsupervised (e.g., pattern analysis) manners. These algorithms learn multiple levels of representations that correspond to different levels of abstraction by resorting to some form of gradient descent for training via backpropagation. Layers that have been used in deep learning include hidden layers of an artificial neural network and sets of propositional formulas. They may also include latent variables organized layer-wise in deep generative models such as the nodes in deep belief networks and deep boltzmann machines. Deep learning is part of state-of-the-art systems in various disciplines, particularly computer vision, automatic speech recognition (ASR) and human action recognition. The unique features of this book include: • tutorials on deep learning framework with focus on tensor flow, keras etc. • video demonstration of each chapter for enabling the readers to have a good understanding of the chapter contents. • a score of worked out examples on real life applications. • illustrative diagrams • coding examples

Neural Networks: Artificial Intelligence and Industrial Applications

Автор: Bert Kappen; Stan Gielen
Название: Neural Networks: Artificial Intelligence and Industrial Applications
ISBN: 3540199926 ISBN-13(EAN): 9783540199922
Издательство: Springer
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Цена: 12157.00 р.
Наличие на складе: Есть у поставщика Поставка под заказ.

Описание: This volume contains papers presented at the Third Annual SNN Symposium on Neural Networks held in Nijmegen, 1995. It summarizes developments in neurobiology, the cognitive sciences, robotics, and vision and data modelling. Working neural network solutions to industrial problems are also presented.

Artificial Neural Networks for Engineering Applications

Автор: Alanis, Alma
Название: Artificial Neural Networks for Engineering Applications
ISBN: 0128182474 ISBN-13(EAN): 9780128182475
Издательство: Elsevier Science
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Цена: 17180.00 р.
Наличие на складе: Есть у поставщика Поставка под заказ.

Описание: Hoe bestuur je een wendbare organisatie, of beter, hoe bestuur je een organisatie naar een blijvende wendbare organisatie?¢ Ben jij lid van het Managementteam (MT) of lid van de directie die de noodzaak tot verandering in besturing ziet, die de urgentie voelt om daar iets aan te doen en gehoor hiervoor wil vinden bij de collega leden van het MT of directie? ¢ Ben jij een coach in een organisatie die beweging richting een wendbare organisatie vooral bottom up ziet groeien, een beweging waar je de top down beweging aan toe wil voegen?. In deze pocketguide vind je een praktische methode hoe dit aan te pakken. Besturen in een steeds sneller veranderende wereld. Met de waan van de dag die vaak veel aandacht vraagt en die je kan afleiden van de te behalen resultaten. De auteurs gaan in op het operationaliseren van de strategische organisatiedoelen en daarmee het besturen van de gehele organisatie. De stellingname van dit boek is: maak scherp wat dit kwartaal bereikt moet worden om de strategische doelen te bereiken. Stuur kort cyclisch om te kunnen reageren op veranderende klantwensen of gewijzigde wet- en regelgeving. Werk samen als managementteam of directie richting dje strategische doelen en voorkom dat iedereen in de organisatie vooral een eigen doel nastreeft. Breng meer focus in de operationalisering van de strategie, minder met "brandjes" bezig zijn en meer met het voorkomen ervan. Krijg snel helder wat je medewerkers belemmert in hun werk. Lukt het om de belemmeringen in jouw organisatie snel op te lossen? De kern van deze pocketguide betreft het FOCUS- bord. Deze manier van visual management is een krachtig middel in de besturing. De toepassing ervan zorgt voor samenwerking tussen alle lagen in de organisatie, kort cyclisch sturen en focus op het behalen van de strategische doelen.


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