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Hands-On Deep Learning for IoT
Hands-On Deep Learning for IoT

Hands-On Deep Learning for IoT: Train neural network models to develop intelligent IoT applications

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Profile Icon Dr. Mohammad Abdur Razzaque Profile Icon Md. Rezaul Karim
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Paperback Jun 2019 308 pages 1st Edition
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Arrow left icon
Profile Icon Dr. Mohammad Abdur Razzaque Profile Icon Md. Rezaul Karim
Arrow right icon
€28.99
Full star icon Full star icon Full star icon Full star icon Empty star icon 4 (1 Ratings)
Paperback Jun 2019 308 pages 1st Edition
eBook
€15.99 €22.99
Paperback
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Free Trial
Renews at €18.99p/m
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Hands-On Deep Learning for IoT

The End-to-End Life Cycle of the IoT

By enabling easy access it, and interaction with, a wide variety of physical devices and their environments, the Internet of Things (IoT) will foster the development of various applications in various domains, such as health and medical care, intelligent energy management and smart grids, transportation, traffic management, and more. These applications will generate big and real-time/streaming data, which will require big data analysis tools, including advanced machine learning, that is, deep learning (DL), to extract useful information and make informed decisions. We need to understand the end-to-end (E2E) life cycle of the IoT and its different components in order to apply advanced machine learning techniques on the generated data of IoT applications.

In this chapter, we will discuss the E2E life cycle of the IoT and its related concepts...

The E2E life cycle of the IoT

Different organizations and industries describe IoT differently. One way of defining it simply and tangibly is as a network of smart objects, which connects the physical and digital world together. Examining the E2E life cycle of the IoT solution or, more generally, of the IoT ecosystem, will help us to understand it further and show us how it is applicable to machine learning and DL.

Similar to the definition of IoT, there is no single consensus on the E2E life cycle or the IoT architecture that is agreed universally. Different architectures or layers have been proposed by different researchers. The most commonly proposed options are the three and five-layer life cycles or architectures, as shown in the following diagram:

In the preceding diagram, (a) presents a three-layer IoT life cycle or architecture, and (b) presents a five-layer IoT...

IoT application domains

By enabling easy access to, and interaction with, a wide variety of physical devices or things such as vehicles, machines, medical sensors, and more, IoT facilitates the development of applications in many different domains. The following diagram highlights the key application domains of IoT:

These include healthcare, industrial automation (that is, Industry 4.0), energy management and smart grids, transportation, smart infrastructure (such as the smart home and the smart city), retail, and many other areas that will transform our lives and societies for the better. These applications will have a global economic impact of $4 to $11 trillion per year by 2025. The key contributors (in order of their predicted contribution) of this quantity of money include the following:

  • Factories or industries, including operation management and predictive maintenance
  • ...

The importance of analytics in IoT

The use of IoT in various application domains will only be effective if those applications can extract some business value from the data generated and collected by IoT devices. In this context, analysis of IoT data is essential in IoT solutions. Gartner identified IoT analytics as one of the two top technologies used in IoT.

IoT analytics is the application of data analysis tools and procedures to unlocking insights from the huge volumes of data generated by IoT devices in different ways. IoT analytics is essential for extracting insights from the data generated by IoT devices or things. More specifically, IoT business models analyze the information generated and collected by things in many ways – for example, to understand customer behavior, to deliver services, to improve products and services, and to identify and intercept business...

The motivation to use DL in IoT data analytics

In recent years, many IoT applications have been actively exploiting sophisticated DL technologies, which use neural networks to capture and understand their environments. Amazon Echo, for example, is considered to be an IoT application as it connects the physical and human world with the digital world; it can understand human voice commands using DL.

Additionally, Microsoft's Windows face-recognition security system (an IoT application) uses DL technology to perform tasks such as unlocking a door when it recognizes its user's face. DL and IoT are among the top three strategic technology trends for 2017, and were announced at the Gartner Symposium/ITxpo 2016. The intensive publicity around DL is due to the fact that traditional machine learning algorithms do not address the emerging analytic needs of IoT systems. On the...

The key characteristics and requirements of IoT data

The data from IoT applications exhibits two characteristics that require different treatment from the analytics approach. Many IoT applications, such as remote patient monitoring or autonomous vehicles, generate streams of data continuously, and this leads to a huge volume of continuous data. Many other applications, such as consumer product analysis for marketing or inhabitant monitoring in forests or underwater, produce data that accumulates as a source of big data. Streaming data is generated or captured within short intervals of time and need to be quickly analyzed to extract immediate and useful insights and make fast decisions.

On the contrary, the term big data refers to huge datasets that commonly used hardware and software platforms are not able to store, manage, process, and analyze. These two types of data need to...

Summary

In this chapter, we presented two different layered views of the E2E life cycle of the IoT. We also looked at the IoT system architecture and key application domains of IoT. Following this, we defined what is meant by IoT analytics and its importance in IoT applications, with special emphasis on DL. We discussed the key characteristics of IoT and their corresponding requirements in analytics. Finally, we presented a few real IoT examples, which generate fast and streaming data as well as big data. In the next chapter, you will be introduced to several common DL models and the most cutting-edge architectures that have been introduced in recent years, and learn how they can be useful in analyzing IoT streaming and big data.

It is essential to know the basics of different DL models and their different implementation frameworks in order to use them in different IoT applications...

Reference

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Key benefits

  • Understand how deep learning facilitates fast and accurate analytics in IoT
  • Build intelligent voice and speech recognition apps in TensorFlow and Chainer
  • Analyze IoT data for making automated decisions and efficient predictions

Description

Artificial Intelligence is growing quickly, which is driven by advancements in neural networks(NN) and deep learning (DL). With an increase in investments in smart cities, smart healthcare, and industrial Internet of Things (IoT), commercialization of IoT will soon be at peak in which massive amounts of data generated by IoT devices need to be processed at scale. Hands-On Deep Learning for IoT will provide deeper insights into IoT data, which will start by introducing how DL fits into the context of making IoT applications smarter. It then covers how to build deep architectures using TensorFlow, Keras, and Chainer for IoT. You’ll learn how to train convolutional neural networks(CNN) to develop applications for image-based road faults detection and smart garbage separation, followed by implementing voice-initiated smart light control and home access mechanisms powered by recurrent neural networks(RNN). You’ll master IoT applications for indoor localization, predictive maintenance, and locating equipment in a large hospital using autoencoders, DeepFi, and LSTM networks. Furthermore, you’ll learn IoT application development for healthcare with IoT security enhanced. By the end of this book, you will have sufficient knowledge need to use deep learning efficiently to power your IoT-based applications for smarter decision making.

Who is this book for?

If you’re an IoT developer, data scientist, or deep learning enthusiast who wants to apply deep learning techniques to build smart IoT applications, this book is for you. Familiarity with machine learning, a basic understanding of the IoT concepts, and some experience in Python programming will help you get the most out of this book.

What you will learn

  • Get acquainted with different neural network architectures and their suitability in IoT
  • Understand how deep learning can improve the predictive power in your IoT solutions
  • Capture and process streaming data for predictive maintenance
  • Select optimal frameworks for image recognition and indoor localization
  • Analyze voice data for speech recognition in IoT applications
  • Develop deep learning-based IoT solutions for healthcare
  • Enhance security in your IoT solutions
  • Visualize analyzed data to uncover insights and perform accurate predictions
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Table of Contents

14 Chapters
Section 1: IoT Ecosystems, Deep Learning Techniques, and Frameworks Chevron down icon Chevron up icon
The End-to-End Life Cycle of the IoT Chevron down icon Chevron up icon
Deep Learning Architectures for IoT Chevron down icon Chevron up icon
Section 2: Hands-On Deep Learning Application Development for IoT Chevron down icon Chevron up icon
Image Recognition in IoT Chevron down icon Chevron up icon
Audio/Speech/Voice Recognition in IoT Chevron down icon Chevron up icon
Indoor Localization in IoT Chevron down icon Chevron up icon
Physiological and Psychological State Detection in IoT Chevron down icon Chevron up icon
IoT Security Chevron down icon Chevron up icon
Section 3: Advanced Aspects and Analytics in IoT Chevron down icon Chevron up icon
Predictive Maintenance for IoT Chevron down icon Chevron up icon
Deep Learning in Healthcare IoT Chevron down icon Chevron up icon
What's Next - Wrapping Up and Future Directions Chevron down icon Chevron up icon
Other Books You May Enjoy Chevron down icon Chevron up icon

Customer reviews

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Amazon Customer Sep 29, 2019
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This is a very helpful book for the beginners in Internet Of Things. It helped me a lot in understanding the basics. This is a must have book for everyone who wants to learn IoT.
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