Differences

This shows you the differences between two versions of the page.

Link to this comparison view

Both sides previous revisionPrevious revision
Next revision
Previous revision
en:iot-reloaded:iot_network_design_methodologies [2024/12/01 09:20] – [IoT Network Design Methodologies] ktokarzen:iot-reloaded:iot_network_design_methodologies [2025/05/13 14:49] (current) – [Best Practices for IoT Network Design] pczekalski
Line 1: Line 1:
 ====== IoT Network Design Methodologies ====== ====== IoT Network Design Methodologies ======
  
-Designing a network for the Internet of Things (IoT) requires a strategic approach integrating scalability, security, efficiency, and interoperability. IoT network design methodologies revolve around creating robust, flexible, and efficient networks supporting diverse devices, applications, and services. These methodologies emphasize handling large volumes of data, ensuring real-time communication, and maintaining high levels of security and reliability.+Designing a network for the Internet of Things requires a strategic approach integrating scalability, security, efficiency, and interoperability. IoT network design methodologies revolve around creating robust, flexible, and efficient networks supporting diverse devices, applications, and services. These methodologies emphasise handling large volumes of data, ensuring real-time communication, and maintaining high levels of security and reliability.
 This section explores the principles, methodologies, challenges, and best practices for designing IoT networks. This section explores the principles, methodologies, challenges, and best practices for designing IoT networks.
  
Line 24: Line 24:
  
 <figure IoNNDM4> <figure IoNNDM4>
-{{ :en:iot-reloaded:iot_network_design_methodologies-page-5.png?500 |IoT Network Design Methodologies}}+{{ :en:iot-reloaded:iot_network_design_methodologies-page-5.png?400 |IoT Network Design Methodologies}}
 <caption>IoT Network Design Methodologies</caption> <caption>IoT Network Design Methodologies</caption>
 </figure> </figure>
Line 98: Line 98:
  
 2. **Topology Selection:** \\ 2. **Topology Selection:** \\
-Choose the most suitable topology based on the use case, device distribution, and scalability needs (e.g., star, mesh, tree, hybrid).+Based on the use case, device distribution, and scalability needs, choose the most suitable topology (e.g., star, mesh, tree, hybrid).
  
 3. **Protocol and Communication Technology:**\\ 3. **Protocol and Communication Technology:**\\
Line 119: Line 119:
 7. **Testing and Optimisation**\\ 7. **Testing and Optimisation**\\
   * Conduct rigorous performance, reliability, and security testing under real-world conditions.   * Conduct rigorous performance, reliability, and security testing under real-world conditions.
-  * Optimize the design based on feedback and test results.+  * Optimise the design based on feedback and test results.
  
  
Line 126: Line 126:
  
 <figure IoNNDM5> <figure IoNNDM5>
-{{ :en:iot-reloaded:iot_network_design_methodologies-page-3.png?400 |Challenges in IoT Network Design}}+{{ :en:iot-reloaded:iot_network_design_methodologies-page-3.png?280 |Challenges in IoT Network Design}}
 <caption>Challenges in IoT Network Design</caption> <caption>Challenges in IoT Network Design</caption>
 </figure> </figure>
Line 152: Line 152:
  
 <figure IoNNDM6> <figure IoNNDM6>
-{{ :en:iot-reloaded:iot_network_design_methodologies-page-4.png?400 |Best Practices for IoT Network Design}}+{{ :en:iot-reloaded:iot_network_design_methodologies-page-4.png?280 |Best Practices for IoT Network Design}}
 <caption>Best Practices for IoT Network Design</caption> <caption>Best Practices for IoT Network Design</caption>
 </figure> </figure>
  
  
-**1. Use Standardized Protocols:**\\+**1. Use Standardised Protocols:**\\
 Ensure compatibility and interoperability by adopting widely accepted standards like MQTT, CoAP, and IPv6. Ensure compatibility and interoperability by adopting widely accepted standards like MQTT, CoAP, and IPv6.
  
Line 163: Line 163:
 Incorporate failover mechanisms and redundant pathways to enhance reliability. Incorporate failover mechanisms and redundant pathways to enhance reliability.
  
-**3. Prioritize Security:**\\+**3. Prioritise Security:**\\
 Encrypt data, use secure boot processes, and enforce least privilege access policies. Encrypt data, use secure boot processes, and enforce least privilege access policies.
  
Line 170: Line 170:
  
 **5. Monitor and Manage:**\\ **5. Monitor and Manage:**\\
-Deploy monitoring tools to track performance, detect anomalies, and optimize resource utilization.+Deploy monitoring tools to track performance, detect anomalies, and optimise resource utilisation.
  
-**6. Optimize for Energy Efficiency:**\\+**6. Optimise for Energy Efficiency:**\\
 Use low-power wireless technologies and energy-efficient hardware. Use low-power wireless technologies and energy-efficient hardware.
  
 ===== Emerging Trends in IoT Network Design ===== ===== Emerging Trends in IoT Network Design =====
-IoT technologies are closely related to the development of general ITC technologies. At the moment, significant factors driving the development of the IoT networks are discussed below and shortly presented in figure {{ref>IoNNDM7}}.+IoT technologies are closely related to the development of general ITC technologies. At the moment, significant factors driving the development of the IoT networks are discussed below and shortly presented in figure {{ref>IoNNDM6}}.
  
 <figure IoNNDM6> <figure IoNNDM6>
Line 187: Line 187:
  
 **2. AI-Driven Network Management:** **2. AI-Driven Network Management:**
-Artificial intelligence (AI) and machine learning (ML) are being used to optimize IoT network performance and predict potential failures.+Artificial intelligence (AI) and machine learning (ML) are used to optimise IoT network performance and predict potential failures.
  
 **3. Blockchain for Security:** **3. Blockchain for Security:**
-Blockchain technology is increasingly used to secure IoT networks by providing immutable, decentralized record-keeping.+Blockchain technology is increasingly used to secure IoT networks by providing immutable, decentralised record-keeping.
  
 **4. Digital Twins:** **4. Digital Twins:**
-Digital twins enable real-time simulation and optimization of IoT networks, improving design and operation.+Digital twins enable real-time simulation and optimisation of IoT networks, improving design and operation.
  
 **5. Fog Computing:** **5. Fog Computing:**
 Extending the capabilities of edge computing, fog computing processes data closer to devices, enhancing speed and efficiency. Extending the capabilities of edge computing, fog computing processes data closer to devices, enhancing speed and efficiency.
  
-IoT network design methodologies are critical for creating robust, scalable, and secure ecosystems that can handle the diverse demands of IoT applications. By adhering to structured methodologies and staying informed about emerging trends, organizations can build IoT networks that are efficient, reliable, and prepared for future challenges.+IoT network design methodologies are critical for creating robust, scalable, and secure ecosystems that can handle the diverse demands of IoT applications. By adhering to structured methodologies and staying informed about emerging trends, organisations can build IoT networks that are efficient, reliable, and prepared for future challenges.
  
en/iot-reloaded/iot_network_design_methodologies.1733044812.txt.gz · Last modified: 2024/12/01 09:20 by ktokarz
CC Attribution-Share Alike 4.0 International
www.chimeric.de Valid CSS Driven by DokuWiki do yourself a favour and use a real browser - get firefox!! Recent changes RSS feed Valid XHTML 1.0