This shows you the differences between two versions of the page.
Both sides previous revisionPrevious revisionNext revision | Previous revision | ||
en:iot-reloaded:iot_network_design_methodologies [2024/12/01 09:20] – [IoT Network Design Methodologies] ktokarz | en: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 | + | Designing a network for the Internet of Things requires a strategic approach integrating scalability, |
This section explores the principles, methodologies, | This section explores the principles, methodologies, | ||
Line 24: | Line 24: | ||
<figure IoNNDM4> | <figure IoNNDM4> | ||
- | {{ : | + | {{ : |
< | < | ||
</ | </ | ||
Line 98: | Line 98: | ||
2. **Topology Selection: | 2. **Topology Selection: | ||
- | Choose the most suitable topology based on the use case, device distribution, | + | Based on the use case, device distribution, |
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, | * Conduct rigorous performance, | ||
- | * Optimize | + | * Optimise |
Line 126: | Line 126: | ||
<figure IoNNDM5> | <figure IoNNDM5> | ||
- | {{ : | + | {{ : |
< | < | ||
</ | </ | ||
Line 152: | Line 152: | ||
<figure IoNNDM6> | <figure IoNNDM6> | ||
- | {{ : | + | {{ : |
< | < | ||
</ | </ | ||
- | **1. Use Standardized | + | **1. Use Standardised |
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 | + | **3. Prioritise |
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, | + | Deploy monitoring tools to track performance, |
- | **6. Optimize | + | **6. Optimise |
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 | + | Artificial intelligence (AI) and machine learning (ML) are used to optimise |
**3. Blockchain for Security:** | **3. Blockchain for Security:** | ||
- | Blockchain technology is increasingly used to secure IoT networks by providing immutable, | + | Blockchain technology is increasingly used to secure IoT networks by providing immutable, |
**4. Digital Twins:** | **4. Digital Twins:** | ||
- | Digital twins enable real-time simulation and optimization | + | Digital twins enable real-time simulation and optimisation |
**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, | + | 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, |