IoT Programming with Java Training Course
The Internet of Things (IoT) constitutes a network infrastructure that wirelessly links physical objects with software applications, enabling them to communicate and exchange data through network communications, cloud computing, and data capture. Java, a general-purpose language renowned for its "write once, run anywhere" capability, is a preferred choice for IoT development due to its portability and efficiency.
During this instructor-led live training, participants will acquire the skills necessary to program IoT solutions using Java.
Upon completion of this training, participants will be able to:
- Install and configure essential tools and frameworks (such as the Eclipse Open IoT Stack) for developing IoT systems with Java
- Grasp the core principles of IoT architecture
- Utilize the Eclipse Open IoT Stack for Java to connect and manage devices within an IoT solution
- Construct, test, and deploy an IoT system utilizing Java
Audience
- Developers
- Engineers
Course Format
- A combination of lectures, discussions, exercises, and extensive hands-on practice
Note
- For customized training requests, please contact us to arrange your session.
Course Outline
Introduction to the Internet of Things (IoT)
- Understanding IoT Fundamentals
- Examples of IoT Devices and Platforms
Overview of IoT Solutions Architecture
- IoT Components
- Analog Sensors and Actuators
- Digital Sensors
- Internet Gateways and Data Acquisition Systems
- Data Aggregation
- Analog to Digital Conversion
- Edge IT
- Analytics
- Pre-Processing
- Data Center / Cloud
- Analytics
- Management
- Archive
The Role and Benefits of Java in IoT
Overview of the Eclipse Open IoT Stack for Java
- Kura
- SmartHome
- Californium
- Paho
- OM2M
- Eclipse SCADA
Installing and Configuring the Eclipse Open IoT Stack for Java
Using the Eclipse Open IoT Stack for Java to Connect and Manage Devices in an IoT System
- Utilizing Eclipse Paho for MQTT
- Utilizing Eclipse Californium for CoAP
- Utilizing Eclipse Wakaama for Lightweight M2M
Using Eclipse Kura to Connect and Manage Connectivity between IoT Devices with IoT Gateway Services
Building an IoT Java Application with Eclipse Kura
Testing and Deploying an IoT Java Application in Eclipse Kura
Troubleshooting
Summary and Conclusion
Requirements
- Basic experience in Java programming
- Familiarity or basic experience with microcontrollers
Open Training Courses require 5+ participants.
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Testimonials (3)
The ability of the trainer to align the course with the requirements of the organization other than just providing the course for the sake of delivering it.
Masilonyane - Revenue Services Lesotho
Course - Big Data Business Intelligence for Govt. Agencies
The oral skills and human side of the trainer (Augustin).
Jeremy Chicon - TE Connectivity
Course - NB-IoT for Developers
The training was relevant to my needs and I would be able to apply the lessons learnt to meet my challenging needs
Botshabelo Jason - Water Utilities Botswana
Course - IoT Fundamentals and Frontiers : For Managers, CXO, VP, Investors and Entrepreneurs
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Summary
An advanced training program covering the current state of the art in the Internet of Things.
Cuts across multiple technology domains to develop awareness of an IoT system, its components, and how it can help businesses and organizations.
Live demos of model IoT applications to showcase practical IoT deployments across different industry domains, such as Industrial IoT, Smart Cities, Retail, Travel & Transportation, and use cases around connected devices & things.
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Managers responsible for business and operational processes within their respective organizations who want to know how to harness IoT to make their systems and processes more efficient.
Entrepreneurs and Investors who are looking to build new ventures and want to develop a better understanding of the IoT technology landscape to see how they can leverage it effectively.
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In the consumer space, many products and services have already crossed over into the IoT, including kitchen and home appliances, parking, RFID, lighting and heating products, and a number of applications in Industrial Internet.
However, the underlying technologies of IoT are nothing new as M2M communication existed since the birth of the Internet. However, what changed in the last couple of years is the emergence of numerous inexpensive wireless technologies added by the overwhelming adaptation of smartphones and tablets in every home. The explosive growth of mobile devices led to the present demand for IoT.
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Course Objective
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Basic introduction of all the elements of IoT-Mechanical, Electronics/sensor platform, Wireless and wireline protocols, Mobile to Electronics integration, Mobile to enterprise integration, Data-analytics, and Total control plane.
M2M Wireless protocols for IoT-WiFi, Zigbee/Zwave, Bluetooth, ANT+: When and where to use which one?
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Security issues and security solutions for IoT.
Open source/commercial electronics platforms for IoT-Raspberry Pi, Arduino, ArmMbedLPC, etc.
Open source /commercial enterprise cloud platforms for AWS-IoT apps, Azure-IoT, Watson-IoT cloud in addition to other minor IoT clouds.
Studies of the business and technology of some of the common IoT devices like Home automation, Smoke alarms, vehicles, military, home health, etc.
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For manufacturing professional, most critical aspect is to understand the advancement in the area of Industrial Internet of things, which includes predictive and preventative maintenance, condition based monitoring of the machines, production optimization, energy optimization, supply-chain optimization and uptime of manufacturing utilities etc.
Summary
- An advanced training program covering the current state of the art in Internet of Things in Smart Factories.
- Cuts across multiple technology domains to develop awareness of an IoT system and its components and how it can help manufacturing managerial professionals
- Live demo of model IIoT applications for smart factories
Target Audience
- Managers responsible for business and operational processes within their respective manufacturing organizations and want to know how to harness IoT to make their systems and processes more efficient.
Duration 3 Days ( 8 hours / day)
Estimates for Internet of Things or IoT market value are massive, since by definition the IoT is an integrated and diffused layer of devices, sensors, and computing power that overlays entire consumer, business-to-business, and government industries. The IoT will account for an increasingly huge number of connections: 1.9 billion devices today, and 9 billion by 2018. That year, it will be roughly equal to the number of smartphones, smart TVs, tablets, wearable computers, and PCs combined.
In the consumer space, many products and services have already crossed over into the IoT, including kitchen and home appliances, parking, RFID, lighting and heating products, and a number of applications in Industrial Internet.
However the underlying technologies of IoT are nothing new as M2M communication existed since the birth of Internet. However what changed in last couple of years is the emergence of number of inexpensive wireless technologies added by overwhelming adaptation of smart phones and Tablet in every home. Explosive growth of mobile devices led to present demand of IoT.
Industrial IoT, or IIoT for manufacturing has been widely in use since 2014 and since then a large number of IIoT innovations have taken place. This course will introduce all the important aspects of innovations in Industrial IoT area.
This training is intended for a technology and business review of an emerging industry so that IoT enthusiasts/entrepreneurs can grasp the basics of IoT technology and business.
Course Objective
Main objective of the course is to introduce emerging technological options, platforms and case studies of IoT implementation in smart factories for manufacturing sectors.
- Studies of business and technology of some of the common IIoT platform like Siemens MindSphere and Azure IoT.
- Open source /commercial enterprise cloud platform for AWS-IoT apps, Azure -IOT, Watson-IOT, Mindsphere IIoT cloud in addition to other minor IoT clouds
- Open source/commercial electronics platform for IoT-Raspberry Pi, Arduino , ArmMbedLPC etc
- Security issues and security solutions for IIoT
- Mobile/Desktop/Web app- for registration, data acquisition and control –
- M2M Wireless protocols for IoT- WiFi, LoPan, BLE, Ethernet, Ethercat, PLC : When and where to use which one?
- Basic introduction of all the elements of IoT-Mechanical, Electronics/sensor platform, Wireless and wireline protocols, Mobile to Electronics integration, Mobile to enterprise integration, Data-analytics and Total control plane
IoT for Power Utility: Fundamentals, Frontiers and Strategy
22 HoursConnected devices are disrupting numerous industries, with the power utility sector being no exception. Power utility companies currently face four primary challenges stemming from the growth of IoT:
- Vendors of machines, controllers, HMIs, and SCADA systems are increasingly connecting these assets to the cloud, promising enhanced analytics and insights for predictive and preventative maintenance. However, strict quarantine policies regarding critical assets prevent power companies from leveraging these new IoT features offered by machine and controller vendors.
- As the cost of solar and wind power microgrids continues to decline, utility companies are anticipating a drop in revenue from traditional power generation. To offset this loss, companies must aggressively pursue new revenue streams, such as energy management for homes as a service, energy storage as a service, and grid services for EV charging or peer-to-peer (P2P) energy trading between homes, microgrids, and batteries. All these activities require smart metering, smart grids, and secure transactions facilitated by Distributed Ledger Technology (DLT) like IOTA. Additionally, utilities are exploring the provision of smart city services to municipal authorities.
- For critical infrastructure such as dams, ICOLD (International Committee of Large Dams) mandates real-time Structural Health Monitoring (SHM). This allows for early warning of potential collapses in dams, rocks, or tunnels, enabling the evacuation of people in affected areas.
- Another emerging revenue opportunity is EV charging in parking facilities. This module explores how IoT can facilitate smart charging and smart parking solutions.
Over the past three years, IoT engineering has undergone massive changes, primarily driven by Microsoft, Google, and Amazon. These industry giants have invested billions to develop IoT platforms that are easier to manage and secure. Furthermore, IoT edge computing has gained significant momentum in both research and deployment as the most practical means of implementing IoT. The advent of 5G promises to further transform the IoT business landscape, leading to unprecedented investment in IoT research. Consequently, it is essential for practicing engineers to understand the IoT platforms developed by major players like AWS, Google, and particularly Microsoft.
However, none of these platforms offer a comprehensive solution for scalable IoT. For instance, deploying smart meters to millions of homes requires additional technologies to secure the meters, radio networks, IoT management tools, and other secured services. The strategy, pricing, and security of any IoT deployment must be optimized and acceptable. Given the interdisciplinary nature of this knowledge, it is nearly impossible for any single company to assemble a team capable of meeting all requirements.
This course is a modest attempt to educate key decision-makers, developers, and security experts on the challenges, risks, and practical approaches to deploying IoT for the next generation of power utility business.
Additionally, as deployment scales, managing IoT services for thousands of sensors and connections has emerged as a distinct engineering discipline. This area, formally known as managed IoT services, is experiencing rapid growth because the challenges of scalable IoT are far greater than simply building them. This includes securing over-the-top firmware/software updates, managing sensor and system calibration, auto-diagnosing connection issues, identifying root causes of API failures, and tracking the hardware and service health of distributed systems.
Course objectives
The main objective of the course is to introduce emerging technological options, platforms, and case studies of IoT implementation in Power Utility Companies, including Smart Metering, Smart Cars, SHM (Structural Health Monitoring), Power Quality Diagnosis, and Smart Contracts. Participants will receive a basic introduction to all IoT elements: mechanical components, electronics/sensor platforms, wireless and wireline protocols, mobile-to-electronics integration, mobile-to-enterprise integration, and data-analytics and control plane applications.
- IoT technology stacks: Devices, Gateways, Edge, Edge Cloud, Public Cloud, IoT databases, Web & Mobile Applications for IoT, Centralized vs Decentralized IoT.
- IoT ecosystem for business, third-party device management, and risk management of the entire IoT ecosystem.
- M2M Wireless protocols for IoT: WiFi, SigFox, LORA, LPWAN, Zigbee/Zwave, Bluetooth, ANT+: Understanding when and where to use each.
- Fundamentals of IoT Gateways: Risks, Management, and Ecosystem.
- Mobile/Desktop/Web apps for registration, data acquisition, and control: Review of available M2M data acquisition platforms for IoT—AWS IoT, Azure IoT, Google IoT.
- Security issues and solutions for IoT: A review of security across all technology stacks.
- Enterprise IoT platforms such as Microsoft Azure IoT suites, AWS IoT, Google IoT, and Siemens MindSphere.
- Smart Metering, Open Smart Grid Protocols (OSGP), ANSI C 2.18 Protocols, NIST Standard for HAN (Home Area Network), Home Plug Powerline Alliance, Security Standard for Smart Meter- IEC 62056.
- Distributed Ledger Technology (DLT) such as Blockchain, HyperLedger, and DAG (Directed Acyclic Graph) for smart contracts, P2P transactions, and smart car charging.
- IoT applications for critical infrastructure like dams, transformers, sub-stations, and high-tension wires.
Kaa IoT
7 HoursThis instructor-led, live training in Sweden (online or onsite) is aimed at developers and programmers who wish to install, configure, and manage the Kaa platform to build IoT applications.
By the end of this training, participants will be able to build, develop, manage, and implement IoT applications for smart devices and machines using Kaa.
n8n for IoT: Automating the Internet of Things
21 HoursThis instructor-led, live training in Sweden (online or onsite) is designed for advanced IoT developers and smart home enthusiasts who want to automate IoT processes and create innovative solutions using n8n.
Upon completion of this training, participants will be able to:
- Install and configure n8n for IoT workflow automation.
- Connect IoT devices and platforms using n8n nodes and connectors.
- Develop custom workflows to automate IoT tasks and processes.
- Utilize IoT protocols such as MQTT and REST APIs within n8n workflows.
- Monitor, troubleshoot, and optimize IoT automation workflows.
NB-IoT for Developers
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By the end of this training, participants will be able to:
- Identify the different components of NB-IoT and understand how they integrate to form a cohesive ecosystem.
- Understand and explain the security features embedded within NB-IoT devices.
- Develop a simple application for tracking NB-IoT devices.