| Literature DB >> 36081133 |
Ibrahim Abunadi1,2, Amjad Rehman1,2, Khalid Haseeb2,3, Lorena Parra4, Jaime Lloret4.
Abstract
In recent decades, networked smart devices and cutting-edge technology have been exploited in many applications for the improvement of agriculture. The deployment of smart sensors and intelligent farming techniques supports real-time information gathering for the agriculture sector and decreases the burden on farmers. Many solutions have been presented to automate the agriculture system using IoT networks; however, the identification of redundant data traffic is one of the most significant research problems. Additionally, farmers do not obtain the information they need in time, such as data on water pressure and soil conditions. Thus, these solutions consequently reduce the production rates and increase costs for farmers. Moreover, controlling all agricultural operations in a controlled manner should also be considered in developing intelligent solutions. Therefore, this study proposes a framework for a system that combines fog computing with smart farming and effectively controls network traffic. Firstly, the proposed framework efficiently monitors redundant information and avoids the inefficient use of communication bandwidth. It also controls the number of re-transmissions in the case of malicious actions and efficiently utilizes the network's resources. Second, a trustworthy chain is built between agricultural sensors by utilizing the fog nodes to address security issues and increase reliability by preventing malicious communication. Through extensive simulation-based experiments, the proposed framework revealed an improved performance for energy efficiency, security, and network connectivity in comparison to other related works.Entities:
Keywords: Internet of Things; agriculture system; fog system; green energy; soil monitoring
Mesh:
Year: 2022 PMID: 36081133 PMCID: PMC9460273 DOI: 10.3390/s22176676
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.847
Figure 1Scenario for fog-based IoT agricultural system.
Figure 2Block diagram of the proposed methodology.
Format of a routing table.
| 1 Byte | 1 Byte | 1 Bit | 2 Bytes | 1 Byte |
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Figure 3Developed methods for the proposed framework.
Figure 4Flowchart of the proposed security algorithm.
Figure 5States of the proposed framework.
Simulation parameters.
| Parameter | Value |
|---|---|
| Agriculture sensors | Varying 150–750 |
| Sensor’s type | Temperature, air humidity, water quality, soil moisture |
| Fog nodes | 10–15 |
| Interface | IEEE 802.15.4 |
| Round step | 20 s |
| Sink nodes | 2 |
| Number of rounds | 2000 |
| Initial energy | 5 J |
| Field dimension | 1000 × 1000 |
| Simulations | 20 |
Figure 6(a) Packets delivery with varying sensors and (b) Packets delivery with varying distance.
Figure 7(a) Reliability with varying sensors and (b) Reliability with varying distance.
Figure 8(a) Energy efficiency with varying sensors and (b) Energy efficiency with varying distance.
Figure 9(a) Network connectivity with varying sensors and (b) Network connectivity with varying distance.