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Efficient Communication Scheme for Bluetooth Low Energy in Large Scale Applications
Maciej Nikodem1, Mariusz Slabicki2, Marek Bawiec1
1Faculty of Electronics, Wrocław University of Science and Technology, Wybrzeże Wyspiańskiego 27, 50-370 Wrocław, Poland.
This study introduces a new Bluetooth Low Energy (BLE) communication scheme for Internet-of-Things (IoT) devices. The improved scheme reduces message traffic and packet loss, enhancing energy efficiency and device coexistence in crowded 2.4 GHz environments.
Area of Science:
- Wireless communication
- Internet-of-Things (IoT)
- Low-power electronics
Background:
- Bluetooth Low Energy (BLE) is widely used in IoT applications, leading to a high density of devices.
- Connectionless communication via advertisement messages is crucial for BLE energy efficiency.
- Spectrum competition among BLE devices causes inevitable collisions, necessitating improved coexistence strategies.
Purpose of the Study:
- To propose and evaluate a novel connectionless communication scheme for BLE to enhance efficiency in dense IoT deployments.
- To compare the proposed active scanning scheme against the traditional passive scanning mode.
- To address challenges of simultaneous communication from numerous BLE nodes to a central server.
Main Methods:
- Development of a connectionless BLE communication scheme utilizing active scanning.
- Comparative analysis against a passive scanning approach.
- Validation through numerical simulations and real-world testing with a 150-device network.
Main Results:
- The proposed scheme significantly reduces the number of transmitted messages per node.
- A notable decrease in packet loss ratio was observed.
- Enhanced energy efficiency and battery preservation for BLE nodes due to reduced active communication time.
Conclusions:
- The developed connectionless BLE scheme effectively improves communication efficiency and device coexistence for dense IoT applications.
- The scheme offers negligible implementation complexity and cost.
- Applicable to diverse IoT scenarios operating in the 2.4 GHz band, enhancing overall performance and interoperability.
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