Smart Rover-Voice Control Bluetooth Control Robot to Avoid Obstacles

Y. V. Devi Kausthubh*, K. Chaithanya**, M. Yamuna***, B. Poojitha ****, P. S. Neeraj *****
*-***** Department of Electronics Communication, Vidya Jyothi Institute of Technology (VJIT), Hyderabad, India.
Periodicity:January - March'2024
DOI : https://doi.org/10.26634/jele.14.2.20534

Abstract

This paper presents the development and implementation of a Smart Rover, integrating robotics and IoT technologies to create a versatile and efficient robotic platform. The Smart Rover is a versatile robotic platform integrating Bluetooth, voice control, and IoT capabilities for seamless navigation and obstacle avoidance. Powered by an Arduino UNO microcontroller and programmed in C++, the Smart Rover provides a user-friendly interface for remote control through Bluetooth-enabled devices. Voice commands add convenience and accessibility, offering an alternative control method. The onboard sensors facilitate autonomous obstacle detection and avoidance, enabling the Smart Rover to navigate its environment intelligently. The prototype demonstrates successful integration and functionality, offering a compact and sturdy design suitable for various applications. IoT integration expands functionality, allowing the rover to communicate with other smart devices or cloud services, opening up possibilities for data collection, remote monitoring, and collaborative tasks.

Keywords

Smart Rover, Voice Control, Bluetooth Control, Robot, Arduino UNO Microcontroller, Onboard Sensors, IoT Technologies.

How to Cite this Article?

Kausthubh, Y. V. D., Chaithanya, K., Yamuna, M., Poojitha, B., and Neeraj, P. S. (2024). Smart Rover-Voice Control Bluetooth Control Robot to Avoid Obstacles. i-manager’s Journal on Electronics Engineering, 14(2), 13-18. https://doi.org/10.26634/jele.14.2.20534

References

[1].Alli, K. S., Onibonoje, M. O., Oluwole, A. S., Ogunlade, M. A., Mmonyi, A. C., Ayamolowo, O., & Dada, S. O. (2018). Development of an Arduino-based obstacle avoidance robotic system for an unmanned vehicle. ARPN Journal of Engineering and Applied Sciences, 13(3), 886-892.
[3].Dash, A., Amrutha, G., Ganpur, K. S., Chatter, S., Pavithra, G., Sree, M. S., & Manjunath, T. C. (2023). Obstacle avoiding robotic car using arduino with bluetooth and voice control. Tuijin Jishu/Journal of Propulsion Technology, 44(3), 783-790.
[5].Huang, Y., Zhang, Y., & Xiao, H. (2019). Multi-robot system task allocation mechanism for smart factory. In 2019 IEEE 8th Joint International Information Technology and Artificial Intelligence Conference (ITAIC) (pp. 587- 591). IEEE.
[6].Jeon, Y. H., & Ahn, H. (2011). A multimodal ubiquitous interface system using smart phone for human-robot interaction. In 2011 8th International Conference on Ubiquitous Robots and Ambient Intelligence (URAI) (pp. 764-767). IEEE.
[7].Kebir, S. T., Kheddar, H., Maazouz, M., Mekaoui, S., Ferrah, A., & Mazari, R. (2018). Smart robot navigation using rgb-d camera. In 2018 International Conference on Applied Smart Systems (ICASS) (pp. 1-6). IEEE.
[8].Rakshith, B. M., Sagar, B., & Balaram, M. (2023). Obstacle avoiding, bluetooth and voice control robot car. International Research Journal of Modernization in Engineering Technology and Science, 5(7), 792-796.
[10].Tabassum, F., Lopa, S., Tarek, M. M., & Ferdosi, B. J. (2017). Obstacle avoiding robot. Global Journal of Research in Engineering, 17(1), 19-24.
[11].Toscano, E., Spitale, M., & Garzotto, F. (2022). Socially assistive robots in smart homes: Design factors that influence the user perception. In 2022 17th ACM/IEEE International Conference on Human-Robot Interaction (HRI) (pp. 1075-1079). IEEE.
[12].Yuan, Q., Lee, J. Y., & Han, C. (2011). Sensor-based navigation algorithm for car-like robot to generate completed GVG. In 2011 11th International Conference on Control, Automation and Systems (pp. 1442-1447). IEEE.
[13].Zafar, T., Khan, M. U., Nawaz, A., & Ahmad, K. F. (2014). Smart phone interface for robust control of mobile robots. In 2014 IEEE International Conference on Autonomous Robot Systems and Competitions (ICARSC) (pp. 42-46). IEEE.
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