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Books > Computing & IT > Applications of computing > Artificial intelligence > Neural networks

AI for Finance (Hardcover): Edward P K Tsang AI for Finance (Hardcover)
Edward P K Tsang
R3,595 Discovery Miles 35 950 Ships in 9 - 15 working days

How could Finance benefit from AI? How can AI techniques provide an edge? Moving well beyond simply speeding up computation, this book tackles AI for Finance from a range of perspectives including business, technology, research, and students. Covering aspects like algorithms, big data, and machine learning, this book answers these and many other questions.

AI for Finance (Paperback): Edward P K Tsang AI for Finance (Paperback)
Edward P K Tsang
R750 Discovery Miles 7 500 Ships in 9 - 15 working days

How could Finance benefit from AI? How can AI techniques provide an edge? Moving well beyond simply speeding up computation, this book tackles AI for Finance from a range of perspectives including business, technology, research, and students. Covering aspects like algorithms, big data, and machine learning, this book answers these and many other questions.

Machine Learning on Commodity Tiny Devices - Theory and Practice (Hardcover): Song Guo, Qihua Zhou Machine Learning on Commodity Tiny Devices - Theory and Practice (Hardcover)
Song Guo, Qihua Zhou
R2,165 Discovery Miles 21 650 Ships in 9 - 15 working days

This book aims at the tiny machine learning (TinyML) software and hardware synergy for edge intelligence applications. This book presents on-device learning techniques covering model-level neural network design, algorithm-level training optimization and hardware-level instruction acceleration. Analyzing the limitations of conventional in-cloud computing would reveal that on-device learning is a promising research direction to meet the requirements of edge intelligence applications. As to the cutting-edge research of TinyML, implementing a high-efficiency learning framework and enabling system-level acceleration is one of the most fundamental issues. This book presents a comprehensive discussion of the latest research progress and provides system-level insights on designing TinyML frameworks, including neural network design, training algorithm optimization and domain-specific hardware acceleration. It identifies the main challenges when deploying TinyML tasks in the real world and guides the researchers to deploy a reliable learning system. This book will be of interest to students and scholars in the field of edge intelligence, especially to those with sufficient professional Edge AI skills. It will also be an excellent guide for researchers to implement high-performance TinyML systems.

Deep Learning for Crack-Like Object Detection (Hardcover): Kaige Zhang, Heng-Da Cheng Deep Learning for Crack-Like Object Detection (Hardcover)
Kaige Zhang, Heng-Da Cheng
R1,425 Discovery Miles 14 250 Ships in 9 - 15 working days

Computer vision-based crack-like object detection has many useful applications, such as pavement surface inspection, underground pipeline inspection, bridge cracking monitoring, railway track assessment, etc. However, in most contexts, cracks appear as thin, irregular long-narrow objects, and often are buried into complex, textured background with high diversity which make the crack detection very challenging. During the past a few years, the deep learning technique has achieved great success and has been utilized for solving a variety of object detection problems. However, using deep learning for accurate crack localization is non-trivial. This book discusses crack-like object detection problem in a comprehensive way. It starts by discussing traditional image processing approaches for solving this problem, and then introduces deep learning-based methods. The book provides a comprehensive review of object detection problems and focuses on the most challenging problem, crack-like object detection, to dig deep into the deep learning method. It includes examples of real-world problems, which are easy to understand and could be a good tutorial for introducing computer vision and machine learning.

Deep Learning with R, Second Edition (Paperback, 2nd edition): Francois Chollet, Tomasz Kalinowski, Joseph Allaire Deep Learning with R, Second Edition (Paperback, 2nd edition)
Francois Chollet, Tomasz Kalinowski, Joseph Allaire
R1,281 Discovery Miles 12 810 Ships in 12 - 17 working days

Deep learning from the ground up using R and the powerful Keras library! In Deep Learning with R, Second Edition you will learn: Deep learning from first principles Image classification and image segmentation Time series forecasting Text classification and machine translation Text generation, neural style transfer, and image generation Deep Learning with R, Second Edition shows you how to put deep learning into action. It's based on the revised new edition of Francois Chollet's bestselling Deep Learning with Python. All code and examples have been expertly translated to the R language by Tomasz Kalinowski, who maintains the Keras and Tensorflow R packages at RStudio. Novices and experienced ML practitioners will love the expert insights, practical techniques, and important theory for building neural networks. about the technology Deep learning has become essential knowledge for data scientists, researchers, and software developers. The R language APIs for Keras and TensorFlow put deep learning within reach for all R users, even if they have no experience with advanced machine learning or neural networks. This book shows you how to get started on core DL tasks like computer vision, natural language processing, and more using R. what's inside Image classification and image segmentation Time series forecasting Text classification and machine translation Text generation, neural style transfer, and image generation about the reader For readers with intermediate R skills. No previous experience with Keras, TensorFlow, or deep learning is required.

Research Advances in Intelligent Computing (Hardcover): Anshul Verma, Pradeepika Verma, Kiran Kumar Pattanaik, Lalit Garg Research Advances in Intelligent Computing (Hardcover)
Anshul Verma, Pradeepika Verma, Kiran Kumar Pattanaik, Lalit Garg
R3,034 Discovery Miles 30 340 Ships in 9 - 15 working days

Since the invention of computers or machines, scientists and researchers are trying very hard to enhance their capabilities to perform various tasks. As a consequence, the capabilities of computers are growing exponentially day by day in terms of diverse working domains, versatile jobs, processing speed, and reduced size. Now, we are in the race to make the computers or machines as intelligent as human beings. Artificial Intelligence (AI) came up as a way of making a computer or computer software think in the similar manner the intelligent humans think. AI is inspired by the study of human brain like how humans think, learn, decide and act while trying to solve a problem. The outcomes of this study are the basis of developing intelligent software and systems or Intelligent Computing (IC). An IC system has the capability of reasoning, learning, problem solving, perception, and linguistic intelligence. The IC systems consist of AI techniques as well as other emerging techniques that make a system intelligent. The use of intelligent computing has been seen in almost every sub-domain of computer science such as networking, software engineering, gaming, natural language processing, computer vision, image processing, data science, robotics, expert systems, and security. Now a days, the use of IC can also be seen for solving various complex problems in diverse domains such as for predicting disease in medical science, predicting land fertility or crop productivity in agriculture science, predicting market growth in economics, weather forecasting and so on. For all these reasons, this book presents the advances in AI techniques, under the umbrella of IC. In this context, the book includes the recent research works have been done in the areas of machine learning, neural networks, deep learning, evolutionary algorithms, genetic algorithms, swarm intelligence, fuzzy systems and so on. This book provides theoretical, algorithmic, simulation, and implementation-based recent research advancements related to the Intelligent Computing.

Current Applications of Deep Learning in Cancer Diagnostics (Hardcover): Jyotismita Chaki, Aysegul Ucar Current Applications of Deep Learning in Cancer Diagnostics (Hardcover)
Jyotismita Chaki, Aysegul Ucar
R2,283 Discovery Miles 22 830 Ships in 9 - 15 working days

- First book to focus on deep learning-based approaches in the field of cancer diagnostics. - Covers the state of the art across a wide-range of topics. - Topics include preprocessing data, prediction of cancer susceptibility and reoccurence, detection of different cancers, complexity and challenges.

Beyond Algorithms - Delivering AI for Business (Paperback): James,Luke, David Porter, Padmanabhan Santhanam Beyond Algorithms - Delivering AI for Business (Paperback)
James,Luke, David Porter, Padmanabhan Santhanam
R1,481 R1,362 Discovery Miles 13 620 Save R119 (8%) Ships in 9 - 15 working days

Focuses on the definition, engineering, and delivery of AI solutions as opposed to AI itself Reader will still gain a strong understanding of AI, but through the perspective of delivering real solutions Explores the core AI issues that impact the success of an overall solution including i. realities of dealing with data, ii. impact of AI accuracy on the ability of the solution to meet business objectives, iii. challenges in managing the quality of machine learning models Includes real world examples of enterprise scale solutions Provides a series of (optional) technical deep dives and thought experiments.

Beyond Algorithms - Delivering AI for Business (Hardcover): James,Luke, David Porter, Padmanabhan Santhanam Beyond Algorithms - Delivering AI for Business (Hardcover)
James,Luke, David Porter, Padmanabhan Santhanam
R3,876 R3,221 Discovery Miles 32 210 Save R655 (17%) Ships in 9 - 15 working days

Focuses on the definition, engineering, and delivery of AI solutions as opposed to AI itself Reader will still gain a strong understanding of AI, but through the perspective of delivering real solutions Explores the core AI issues that impact the success of an overall solution including i. realities of dealing with data, ii. impact of AI accuracy on the ability of the solution to meet business objectives, iii. challenges in managing the quality of machine learning models Includes real world examples of enterprise scale solutions Provides a series of (optional) technical deep dives and thought experiments.

Cognitive and Neural Modelling for Visual Information Representation and Memorization (Hardcover): Limiao Deng Cognitive and Neural Modelling for Visual Information Representation and Memorization (Hardcover)
Limiao Deng
R2,398 Discovery Miles 23 980 Ships in 9 - 15 working days

Focusing on how visual information is represented, stored and extracted in the human brain, this book uses cognitive neural modeling in order to show how visual information is represented and memorized in the brain. Breaking through traditional visual information processing methods, the author combines our understanding of perception and memory from the human brain with computer vision technology, and provides a new approach for image recognition and classification. While biological visual cognition models and human brain memory models are established, applications such as pest recognition and carrot detection are also involved in this book. Given the range of topics covered, this book is a valuable resource for students, researchers and practitioners interested in the rapidly evolving field of neurocomputing, computer vision and machine learning.

Grokking Deep Reinforcement Learning (Paperback): Miguel Morales Grokking Deep Reinforcement Learning (Paperback)
Miguel Morales 1
R1,229 Discovery Miles 12 290 Ships in 9 - 15 working days

Written for developers with some understanding of deep learning algorithms. Experience with reinforcement learning is not required. Grokking Deep Reinforcement Learning introduces this powerful machine learning approach, using examples, illustrations, exercises, and crystal-clear teaching. You'll love the perfectly paced teaching and the clever, engaging writing style as you dig into this awesome exploration of reinforcement learning fundamentals, effective deep learning techniques, and practical applications in this emerging field. We all learn through trial and error. We avoid the things that cause us to experience pain and failure. We embrace and build on the things that give us reward and success. This common pattern is the foundation of deep reinforcement learning: building machine learning systems that explore and learn based on the responses of the environment. * Foundational reinforcement learning concepts and methods * The most popular deep reinforcement learning agents solving high-dimensional environments * Cutting-edge agents that emulate human-like behavior and techniques for artificial general intelligence Deep reinforcement learning is a form of machine learning in which AI agents learn optimal behavior on their own from raw sensory input. The system perceives the environment, interprets the results of its past decisions and uses this information to optimize its behavior for maximum long-term return.

A First Course in Fuzzy Logic (Paperback, 4th edition): Hung T. Nguyen, Carol Walker, Elbert A. Walker A First Course in Fuzzy Logic (Paperback, 4th edition)
Hung T. Nguyen, Carol Walker, Elbert A. Walker
R1,417 Discovery Miles 14 170 Ships in 9 - 15 working days

A First Course in Fuzzy Logic, Fourth Edition is an expanded version of the successful third edition. It provides a comprehensive introduction to the theory and applications of fuzzy logic. This popular text offers a firm mathematical basis for the calculus of fuzzy concepts necessary for designing intelligent systems and a solid background for readers to pursue further studies and real-world applications. New in the Fourth Edition: Features new results on fuzzy sets of type-2 Provides more information on copulas for modeling dependence structures Includes quantum probability for uncertainty modeling in social sciences, especially in economics With its comprehensive updates, this new edition presents all the background necessary for students, instructors and professionals to begin using fuzzy logic in its many-applications in computer science, mathematics, statistics, and engineering. About the Authors: Hung T. Nguyen is a Professor Emeritus at the Department of Mathematical Sciences, New Mexico State University. He is also an Adjunct Professor of Economics at Chiang Mai University, Thailand. Carol L. Walker is also a Professor Emeritus at the Department of Mathematical Sciences, New Mexico State University. Elbert A. Walker is a Professor Emeritus, Department of Mathematical Sciences, New Mexico State University.

AI for Learning (Paperback): Carmel Kent, Benedict du Boulay AI for Learning (Paperback)
Carmel Kent, Benedict du Boulay
R754 Discovery Miles 7 540 Ships in 9 - 15 working days

- the book provides a short and accessible introduction to AI for learners - it examines seven different educational roles and settings, from AI as a peer to AI as a tutor and AI as textbook, among others - it considers both opportunities and risks: technological developments as well as ethical considerations

AI for Sports (Paperback): Chris Brady, Karl Tuyls, Shayegan Omidshafiei AI for Sports (Paperback)
Chris Brady, Karl Tuyls, Shayegan Omidshafiei
R758 Discovery Miles 7 580 Ships in 9 - 15 working days

- Written by world-leading subject specialist in both sport management and artificial intelligence - Includes interviews with elite sports managers and coaches - Examines the competitive advantages offered by AI to a wide-range of areas including Recruitment, Performance & Tactics, Health & Fitness, Pedagogy, Broadcasting, eSports, Gambling, and Stadium Design

AI for Cars (Paperback): Josep Aulinas, Hanky Sjafrie AI for Cars (Paperback)
Josep Aulinas, Hanky Sjafrie
R745 Discovery Miles 7 450 Ships in 9 - 15 working days

a short and accessible introduction on AI and Cars written by leading experts

Concepts of Artificial Intelligence and its Application in Modern Healthcare Systems (Hardcover): Deepshikha Agarwal, Khushboo... Concepts of Artificial Intelligence and its Application in Modern Healthcare Systems (Hardcover)
Deepshikha Agarwal, Khushboo Tripathi, Kumar Krishen
R3,710 Discovery Miles 37 100 Ships in 12 - 17 working days

This reference text presents the usage of artificial intelligence in healthcare and discusses the challenges and solutions of using advanced techniques like wearable technologies and image processing in the sector. Features: Focuses on the use of artificial intelligence (AI) in healthcare with issues, applications, and prospects Presents the application of artificial intelligence in medical imaging, fractionalization of early lung tumour detection using a low intricacy approach, etc Discusses an artificial intelligence perspective on wearable technology Analyses cardiac dynamics and assessment of arrhythmia by classifying heartbeat using electrocardiogram (ECG) Elaborates machine learning models for early diagnosis of depressive mental affliction This book serves as a reference for students and researchers analyzing healthcare data. It can also be used by graduate and post graduate students as an elective course.

Flood Forecasting Using Artificial Neural Networks (Paperback): P. Varoonchotikul Flood Forecasting Using Artificial Neural Networks (Paperback)
P. Varoonchotikul
R3,367 Discovery Miles 33 670 Ships in 12 - 17 working days

Flood disasters continue to occur in many countries in the world and cause tremendous casualties and property damage. To mitigate the effects of floods, a range of structural and non-structural measures have been employed including dykes, channelling, flood-proofing property, land-use regulation and flood warning schemes. Such schemes can include the use of Artificial Neural Networks (ANN) for modelling the rainfall run-off process as it is a quick and flexible approach which gives very promising results. However, the inability of ANN to extrapolate beyond the limits of the training range is a serious limitation of the method, and this book examines ways of side-stepping or solving this complex issue.

Handbook of Neural Network Signal Processing (Hardcover): Yu Hen Hu, Jenq-Neng Hwang Handbook of Neural Network Signal Processing (Hardcover)
Yu Hen Hu, Jenq-Neng Hwang; Series edited by Richard C. Dorf, Alexander D. Poularikas; Contributions by Ling Guan, …
R7,609 Discovery Miles 76 090 Ships in 12 - 17 working days

The use of neural networks is permeating every area of signal processing. They can provide powerful means for solving many problems, especially in nonlinear, real-time, adaptive, and blind signal processing. The Handbook of Neural Network Signal Processing brings together applications that were previously scattered among various publications to provide an up-to-date, detailed treatment of the subject from an engineering point of view.

The authors cover basic principles, modeling, algorithms, architectures, implementation procedures, and well-designed simulation examples of audio, video, speech, communication, geophysical, sonar, radar, medical, and many other signals. The subject of neural networks and their application to signal processing is constantly improving. You need a handy reference that will inform you of current applications in this new area. The Handbook of Neural Network Signal Processing provides this much needed service for all engineers and scientists in the field.

Transformers for Machine Learning - A Deep Dive (Paperback): Uday Kamath, Kenneth Graham, Wael Emara Transformers for Machine Learning - A Deep Dive (Paperback)
Uday Kamath, Kenneth Graham, Wael Emara
R1,411 Discovery Miles 14 110 Ships in 9 - 15 working days

A comprehensive reference book for detailed explanations for every algorithm and techniques related to the transformers. 60+ transformer architectures covered in a comprehensive manner. A book for understanding how to apply the transformer techniques in speech, text, time series, and computer vision. Practical tips and tricks for each architecture and how to use it in the real world. Hands-on case studies and code snippets for theory and practical real-world analysis using the tools and libraries, all ready to run in Google Colab.

AI by Design - A Plan for Living with Artificial Intelligence (Paperback): Catriona Campbell AI by Design - A Plan for Living with Artificial Intelligence (Paperback)
Catriona Campbell
R807 Discovery Miles 8 070 Ships in 9 - 15 working days

- the author is in the BIMA Hall of Fame and is Chief Technology & Innovation Officer at Ernst & Young - the book explains the current state of AI and how it is governed, as well as detailing five potential futures involving AI and providing a clear Roadmap to manage the future of AI - easy and fun to read

Low-Power Computer Vision - Improve the Efficiency of Artificial Intelligence (Hardcover): George K. Thiruvathukal, Yung-Hsiang... Low-Power Computer Vision - Improve the Efficiency of Artificial Intelligence (Hardcover)
George K. Thiruvathukal, Yung-Hsiang Lu, Jaeyoun Kim, Yiran Chen, Bo Chen
R2,354 R1,985 Discovery Miles 19 850 Save R369 (16%) Ships in 9 - 15 working days

Energy efficiency is critical for running computer vision on battery-powered systems, such as mobile phones or UAVs (unmanned aerial vehicles, or drones). This book collects the methods that have won the annual IEEE Low-Power Computer Vision Challenges since 2015. The winners share their solutions and provide insight on how to improve the efficiency of machine learning systems.

Mathematical Perspectives on Neural Networks (Hardcover): Paul Smolensky, Michael C. Mozer, David E. Rumelhart Mathematical Perspectives on Neural Networks (Hardcover)
Paul Smolensky, Michael C. Mozer, David E. Rumelhart
R6,781 Discovery Miles 67 810 Ships in 12 - 17 working days

Recent years have seen an explosion of new mathematical results on learning and processing in neural networks. This body of results rests on a breadth of mathematical background which even few specialists possess. In a format intermediate between a textbook and a collection of research articles, this book has been assembled to present a sample of these results, and to fill in the necessary background, in such areas as computability theory, computational complexity theory, the theory of analog computation, stochastic processes, dynamical systems, control theory, time-series analysis, Bayesian analysis, regularization theory, information theory, computational learning theory, and mathematical statistics.
Mathematical models of neural networks display an amazing richness and diversity. Neural networks can be formally modeled as computational systems, as physical or dynamical systems, and as statistical analyzers. Within each of these three broad perspectives, there are a number of particular approaches. For each of 16 particular mathematical perspectives on neural networks, the contributing authors provide introductions to the background mathematics, and address questions such as:
* Exactly what mathematical systems are used to model neural networks from the given perspective?
* What formal questions about neural networks can then be addressed?
* What are typical results that can be obtained? and
* What are the outstanding open problems?
A distinctive feature of this volume is that for each perspective presented in one of the contributed chapters, the first editor has provided a moderately detailed summary of the formal results and the requisite mathematical concepts. These summaries are presented in four chapters that tie together the 16 contributed chapters: three develop a coherent view of the three general perspectives -- computational, dynamical, and statistical; the other assembles these three perspectives into a unified overview of the neural networks field.

Augmentation Technologies and Artificial Intelligence in Technical Communication - Designing Ethical Futures (Hardcover): Ann... Augmentation Technologies and Artificial Intelligence in Technical Communication - Designing Ethical Futures (Hardcover)
Ann Hill Duin, Isabel Pedersen
R4,130 Discovery Miles 41 300 Ships in 12 - 17 working days

Innovative examination of augmentation technologies in terms of technical, social, and ethical considerations Usable as a supplemental text for a variety of courses, and also of interest to researchers and professionals in fields including: technical communication, digital communication, UX design, information technology, informatics, human factors, artificial intelligence, ethics, philosophy of technology, and sociology of technology First major work to combine technological, ethical, social, and rhetorical perspectives on human augmentation Additional cases and research material available at the authors' Fabric of Digital Life research database at https://fabricofdigitallife.com/

Python for Scientific Computing and Artificial Intelligence (Hardcover): Stephen Lynch Python for Scientific Computing and Artificial Intelligence (Hardcover)
Stephen Lynch
R4,001 Discovery Miles 40 010 Ships in 12 - 17 working days

Python for Scientific Computation and Artificial Intelligence is split into 3 parts: in Section 1, the reader is introduced to the Python programming language and shown how Python can aid in the understanding of advanced High School Mathematics. In Section 2, the reader is shown how Python can be used to solve real-world problems from a broad range of scientific disciplines. Finally, in Section 3, the reader is introduced to neural networks and shown how TensorFlow (written in Python) can be used to solve a large array of problems in Artificial Intelligence (AI). This book was developed from a series of national and international workshops that the author has been delivering for over twenty years. The book is beginner friendly and has a strong practical emphasis on programming and computational modelling. Features: No prior experience of programming is required. Online GitHub repository available with codes for readers to practice. Covers applications and examples from biology, chemistry, computer science, data science, electrical and mechanical engineering, economics, mathematics, physics, statistics and binary oscillator computing. Full solutions to exercises are available as Jupyter notebooks on the Web.

Artificial Intelligence for Capital Markets (Hardcover): Syed Hasan Jafar, Hemachandran K, Hani El-Chaarani, Sairam Moturi,... Artificial Intelligence for Capital Markets (Hardcover)
Syed Hasan Jafar, Hemachandran K, Hani El-Chaarani, Sairam Moturi, Neha Gupta
R3,055 Discovery Miles 30 550 Ships in 12 - 17 working days

Artificial Intelligence for Capital Market throws light on application of AI/ML techniques in the financial capital markets. This book discusses the challenges posed by the AI/ML techniques as these are prone to "black box" syndrome. The complexity of understanding the underlying dynamics for results generated by these methods is one of the major concerns which is highlighted in this book: Features: Showcases artificial intelligence in finance service industry Explains Credit and Risk Analysis Elaborates on cryptocurrencies and blockchain technology Focuses on optimal choice of asset pricing model Introduces Testing of market efficiency and Forecasting in Indian Stock Market This book serves as a reference book for Academicians, Industry Professional, Traders, Finance Mangers and Stock Brokers. It may also be used as textbook for graduate level courses in financial services and financial Analytics.

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