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Deep Learning: Fundamentals, Theory and Applications, Kaizhu Huang; Amir Hussain; Qiu-Feng Wang; Rui Zha


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Автор: Kaizhu Huang; Amir Hussain; Qiu-Feng Wang; Rui Zha
Название:  Deep Learning: Fundamentals, Theory and Applications
ISBN: 9783030060725
Издательство: Springer
Классификация:





ISBN-10: 3030060721
Обложка/Формат: Hardcover
Страницы: 163
Вес: 0.48 кг.
Дата издания: 2019
Серия: Cognitive Computation Trends
Язык: English
Издание: 1st ed. 2019
Иллюстрации: 56 tables, color; 46 illustrations, color; 20 illustrations, black and white; vii, 163 p. 66 illus., 46 illus. in color.
Размер: 240 x 164 x 14
Читательская аудитория: Professional & vocational
Основная тема: Biomedicine
Ссылка на Издательство: Link
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Поставляется из: Германии
Описание: The purpose of this edited volume is to provide a comprehensive overview on the fundamentals of deep learning, introduce the widely-used learning architectures and algorithms, present its latest theoretical progress, discuss the most popular deep learning platforms and data sets, and describe how many deep learning methodologies have brought great breakthroughs in various applications of text, image, video, speech and audio processing. Deep learning (DL) has been widely considered as the next generation of machine learning methodology. DL attracts much attention and also achieves great success in pattern recognition, computer vision, data mining, and knowledge discovery due to its great capability in learning high-level abstract features from vast amount of data. This new book will not only attempt to provide a general roadmap or guidance to the current deep learning methodologies, but also present the challenges and envision new perspectives which may lead to further breakthroughs in this field. This book will serve as a useful reference for senior (undergraduate or graduate) students in computer science, statistics, electrical engineering, as well as others interested in studying or exploring the potential of exploiting deep learning algorithms. It will also be of special interest to researchers in the area of AI, pattern recognition, machine learning and related areas, alongside engineers interested in applying deep learning models in existing or new practical applications.
Дополнительное описание: Preface.- Introduction to Deep Density Models with Latent Variables.- Deep RNN Architecture: Design and Evaluation.- Deep Learning Based Handwritten Chinese Character and Text Recognition.- Deep Learning and Its Applications to Natural Language Processing



Fundamentals of Biostatistics, 8 ed.

Автор: Rosner, Bernard
Название: Fundamentals of Biostatistics, 8 ed.
ISBN: 130526892X ISBN-13(EAN): 9781305268920
Издательство: Cengage Learning
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Цена: 22506.00 р.
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Описание: FUNDAMENTALS OF BIOSTATISTICS leads you through the methods, techniques, and computations of statistics necessary for success in the medical field. Every new concept is developed systematically through completely worked out examples from current medical research problems.

Fundamentals of Finslerian Diffusion with Applications

Автор: P.L. Antonelli; T.J. Zastawniak
Название: Fundamentals of Finslerian Diffusion with Applications
ISBN: 9401060231 ISBN-13(EAN): 9789401060233
Издательство: Springer
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Цена: 20962.00 р.
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Описание: The erratic motion of pollen grains and other tiny particles suspended in liquid is known as Brownian motion, after its discoverer, Robert Brown, a botanist who worked in 1828, in London.

Numerical Methods: Fundamentals and Applications

Автор: Rajesh Kumar Gupta
Название: Numerical Methods: Fundamentals and Applications
ISBN: 1108716008 ISBN-13(EAN): 9781108716000
Издательство: Cambridge Academ
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Цена: 11563.00 р.
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Описание: Written in a lucid manner, this textbook gives an in-depth discussion of basic and advanced concepts of numerical methods. C programming codes are included in the textbook for better understanding of concepts. Pedagogical features including solved examples and unsolved exercises are interspersed throughout the book for better understanding.

Computational Modeling of Objects Presented in Images. Fundamentals, Methods, and Applications

Автор: Reneta P. Barneva; Valentin E. Brimkov; Piotr Kulc
Название: Computational Modeling of Objects Presented in Images. Fundamentals, Methods, and Applications
ISBN: 3030208044 ISBN-13(EAN): 9783030208042
Издательство: Springer
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Цена: 8104.00 р.
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Описание:

This book constitutes the refereed post-conference proceedings of the 6th International Symposium on Computational Modeling of Objects Presented in Images, CompIMAGE 2018, held in Cracow, Poland, in
July 2018.
The 16 revised full papers presented in this book were carefully reviewed and selected from 30 submissions. The papers cover the following topics: digital geometry; digital tomography; and methods and applications.
Deep Learning and Data Labeling for Medical Applications

Автор: Carneiro
Название: Deep Learning and Data Labeling for Medical Applications
ISBN: 3319469754 ISBN-13(EAN): 9783319469751
Издательство: Springer
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Цена: 6988.00 р.
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Описание: This book constitutes the refereed proceedings of two workshops held at the 19th International Conference on Medical Image Computing and Computer-Assisted Intervention, MICCAI 2016, in Athens, Greece, in October 2016: the First Workshop on Large-Scale Annotation of Biomedical Data and Expert Label Synthesis, LABELS 2016, and the Second International Workshop on Deep Learning in Medical Image Analysis, DLMIA 2016. The 28 revised regular papers presented in this book were carefully reviewed and selected from a total of 52 submissions. The 7 papers selected for LABELS deal with topics from the following fields: crowd-sourcing methods; active learning; transfer learning; semi-supervised learning; and modeling of label uncertainty.

The 21 papers selected for DLMIA span a wide range of topics such as image description; medical imaging-based diagnosis; medical signal-based diagnosis; medical image reconstruction and model selection using deep learning techniques; meta-heuristic techniques for fine-tuning parameter in deep learning-based architectures; and applications based on deep learning techniques.
Proceedings of Seventh International Conference on Bio-Inspired Computing: Theories and Applications (BIC-TA 2012)

Автор: Jagdish C. Bansal; Pramod Singh; Kusum Deep; Milli
Название: Proceedings of Seventh International Conference on Bio-Inspired Computing: Theories and Applications (BIC-TA 2012)
ISBN: 8132210379 ISBN-13(EAN): 9788132210375
Издательство: Springer
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Цена: 32142.00 р.
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Описание: The book is a collection of high quality peer reviewed research papers presented in Seventh International Conference on Bio-Inspired Computing (BIC-TA 2012) held at ABV-IIITM Gwalior, India.

Proceedings of Seventh International Conference on Bio-Inspired Computing: Theories and Applications (BIC-TA 2012)

Автор: Jagdish C. Bansal; Pramod Kumar Singh; Kusum Deep;
Название: Proceedings of Seventh International Conference on Bio-Inspired Computing: Theories and Applications (BIC-TA 2012)
ISBN: 8132210409 ISBN-13(EAN): 9788132210405
Издательство: Springer
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Цена: 27950.00 р.
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Описание: The book is a collection of high quality peer reviewed research papers presented in Seventh International Conference on Bio-Inspired Computing (BIC-TA 2012) held at ABV-IIITM Gwalior, India.

Deep learning with applications using python

Автор: Manaswi, Navin Kumar
Название: Deep learning with applications using python
ISBN: 1484235150 ISBN-13(EAN): 9781484235157
Издательство: Springer
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Цена: 10480.00 р.
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Описание: Build deep learning applications, such as computer vision, speech recognition, and chatbots, using frameworks such as TensorFlow and Keras. This book helps you to ramp up your practical know-how in a short period of time and focuses you on the domain, models, and algorithms required for deep learning applications. Deep Learning with Applications Using Python covers topics such as chatbots, natural language processing, and face and object recognition. The goal is to equip you with the concepts, techniques, and algorithm implementations needed to create programs capable of performing deep learning.
This book covers intermediate and advanced levels of deep learning, including convolutional neural networks, recurrent neural networks, and multilayer perceptrons. It also discusses popular APIs such as IBM Watson, Microsoft Azure, and scikit-learn.
What You Will Learn

  • Work with various deep learning frameworks such as TensorFlow, Keras, and scikit-learn.
  • Build face recognition and face detection capabilities
  • Create speech-to-text and text-to-speech functionality
  • Make chatbots using deep learning

Who This Book Is For
Data scientists and developers who want to adapt and build deep learning applications.

Big Data Analysis and Deep Learning Applications

Автор: Zin
Название: Big Data Analysis and Deep Learning Applications
ISBN: 9811308683 ISBN-13(EAN): 9789811308680
Издательство: Springer
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Цена: 25155.00 р.
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Описание:

Big data analysis.- Machine learning and applications.- Monitoring system by using image processing.- Conventional neural networks and its applications.- Information and communication.- Industrial information systems and applications.

Practical computer vision applications using deep learning with cnns

Автор: Gad, Ahmed Fawzy
Название: Practical computer vision applications using deep learning with cnns
ISBN: 1484241665 ISBN-13(EAN): 9781484241660
Издательство: Springer
Рейтинг:
Цена: 10480.00 р.
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Описание:

Deploy deep learning applications into production across multiple platforms. You will work on computer vision applications that use the convolutional neural network (CNN) deep learning model and Python. This book starts by explaining the traditional machine-learning pipeline, where you will analyze an image dataset. Along the way you will cover artificial neural networks (ANNs), building one from scratch in Python, before optimizing it using genetic algorithms.
For automating the process, the book highlights the limitations of traditional hand-crafted features for computer vision and why the CNN deep-learning model is the state-of-art solution. CNNs are discussed from scratch to demonstrate how they are different and more efficient than the fully connected ANN (FCNN). You will implement a CNN in Python to give you a full understanding of the model.
After consolidating the basics, you will use TensorFlow to build a practical image-recognition model that you will deploy to a web server using Flask, making it accessible over the Internet. Using Kivy and NumPy, you will create cross-platform data science applications with low overheads.
This book will help you apply deep learning and computer vision concepts from scratch, step-by-step from conception to production.
What You Will Learn
Understand how ANNs and CNNs work Create computer vision applications and CNNs from scratch using PythonFollow a deep learning project from conception to production using TensorFlowUse NumPy with Kivy to build cross-platform data science applications
Who This Book Is For
Data scientists, machine learning and deep learning engineers, software developers.
Deep Learning for Beginners: A comprehensive introduction of deep learning fundamentals for beginners to understanding frameworks, neural networks,

Автор: Cooper Steven
Название: Deep Learning for Beginners: A comprehensive introduction of deep learning fundamentals for beginners to understanding frameworks, neural networks,
ISBN: 3903331074 ISBN-13(EAN): 9783903331075
Издательство: Неизвестно
Рейтинг:
Цена: 2757.00 р.
Наличие на складе: Есть у поставщика Поставка под заказ.

Описание:

If you are looking for a complete beginners guide to learn deep learning with examples, in just a few hours, then you need to continue reading.

This book delves into the basics of deep learning for those who are enthusiasts concerning all things machine learning and artificial intelligence. For those who have seen movies which show computer systems taking over the world like, Terminator, or benevolent systems that watch over the population, i.e. Person of Interest, this should be right up your alley.

This book will give you the basics of what deep learning entails. That means frameworks used by coders and significant components and tools used in deep learning, that enable facial recognition, speech recognition, and virtual assistance. Yes, deep learning provides the tools through which systems like Siri became possible.

Grab your copy today and learn:

  • Deep learning utilizes frameworks which allow people to develop tools which are able to offer better abstraction, along with simplification of hard programming issues. TensorFlow is the most popular tool and is used by corporate giants such as Airbus, Twitter, and even Google.
  • The book illustrates TensorFlow and Caffe2 as the prime frameworks that are used for development by Google and Facebook. Facebook illustrates Caffe2 as one of the lightweight and modular deep learning frameworks, though TensorFlow is the most popular one, considering it has a lot of popularity, and thus, a big forum, which allows for assistance on main problems.
  • The book considers several components and tools of deep learning such as the neural networks; CNNs, RNNs, GANs, and auto-encoders. These algorithms create the building blocks which propel deep learning and advance it.
  • The book also considers several applications, including chatbots and virtual assistants, which have become the main focus for deep learning into the future, as they represent the next frontier in information gathering and connectivity. The Internet of Things is also represented here, as deep learning allows for integration of various systems via an artificial intelligence system, which is already being used for the home and car functions.
  • And much more...

The use of data science adds a lot of value to businesses, and we will continue to see the need for data scientists grow.

This book is probably one of the best books for beginners. It's a step-by-step guide for any person who wants to start learning deep learning and artificial intelligence from scratch.

When data science can reduce spending costs by billions of dollars in our economy, why wait to jump in?

Deep Learning for Beginners: A comprehensive introduction of deep learning fundamentals for beginners to understanding frameworks, neural networks,

Автор: Cooper Steven
Название: Deep Learning for Beginners: A comprehensive introduction of deep learning fundamentals for beginners to understanding frameworks, neural networks,
ISBN: 3903331465 ISBN-13(EAN): 9783903331464
Издательство: Неизвестно
Рейтинг:
Цена: 3723.00 р.
Наличие на складе: Есть у поставщика Поставка под заказ.

Описание:

If you are looking for a complete beginners guide to learn deep learning with examples, in just a few hours, then you need to continue reading.

This book delves into the basics of deep learning for those who are enthusiasts concerning all things machine learning and artificial intelligence. For those who have seen movies that show computer systems taking over the world like, Terminator, or benevolent systems that watch over the population, i.e. Person of Interest, this should be right up your alley.

This book will give you the basics of what deep learning entails. That means frameworks used by coders and significant components and tools used in deep learning, that enable facial recognition, speech recognition, and virtual assistance. Yes, deep learning provides the tools through which systems like Siri became possible.

Grab your copy today and learn:

  • Deep learning utilizes frameworks that allow people to develop tools that are able to offer better abstraction, along with simplification of hard programming issues. TensorFlow is the most popular tool and is used by corporate giants such as Airbus, Twitter, and even Google.
  • The book illustrates TensorFlow and Caffe2 as the prime frameworks that are used for development by Google and Facebook. Facebook illustrates Caffe2 as one of the lightweight and modular deep learning frameworks, though TensorFlow is the most popular one, considering it has a lot of popularity, and thus, a big forum, which allows for assistance on main problems.
  • The book considers several components and tools of deep learning such as the neural networks; CNNs, RNNs, GANs, and auto-encoders. These algorithms create the building blocks which propel deep learning and advance it.
  • The book also considers several applications, including chatbots and virtual assistants, which have become the main focus for deep learning into the future, as they represent the next frontier in information gathering and connectivity. The Internet of Things is also represented here, as deep learning allows for integration of various systems via an artificial intelligence system, which is already being used for the home and car functions.
  • And much more...

The use of data science adds a lot of value to businesses, and we will continue to see the need for data scientists grow.

This book is probably one of the best books for beginners. It's a step-by-step guide for any person who wants to start learning deep learning and artificial intelligence from scratch.

When data science can reduce spending costs by billions of dollars in our economy, why wait to jump in?


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