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Outdoor Autonomous Mobile Robot Using ROS and GNSS

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OUT DOOR AMR USING ROBOT OPERAT ING SYST EM Page 88 of 118 (ROS) AND GNSS

Edrick REFERENCES

Acosta, N. and Toloza, J. (2012) ‘Techniques to improve the GPS precision’, International Journal of Advanced Computer Science and Applications, 3(8), pp. 125–

130. doi: 10.14569/ijacsa.2012.030820.

Amador, T. (2018) Robot Localization in an Autonomous Ground Vehicle. California State Polytechnic University, Pomona.

Arduino (2020) Arduino Mega 2560. Available at: https://store.arduino.cc/usa/mega- 2560-r3 (Accessed: 12 March 2020).

Coppeliarobotics (no date) Vision sensor types and mode of operation. Available at:

https://www.coppeliarobotics.com/helpFiles/en/visionSensorDescription.htm (Accessed: 11 April 2020).

Gul, F., Rahiman, W. and Nazli Alhady, S. S. (2019) ‘A comprehensive study for robot navigation techniques’, Cogent Engineering. Cogent, 6(1). doi:

10.1080/23311916.2019.1632046.

Ivis, F. (2006) ‘Calculating geographic distance: Concepts and methods’, Proceedings of the 19th annual NorthEast SAS Users …, pp. 1–10. Available at:

http://scholar.google.com/scholar?hl=en&btnG=Search&q=intitle:Calculating+Geogr aphic+Distance+:+Concepts+and+Methods#0.

Jazba, M. (2018) Introduction to rosserial_arduino. Available at:

https://atadiat.com/en/e-rosserial-arduino-introduction/ (Accessed: 30 March 2020).

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OUT DOOR AMR USING ROBOT OPERAT ING SYST EM Page 89 of 118 (ROS) AND GNSS

Edrick Kusuma, M. C. A. (2019) Designing and Constructing an Autonomous Mobile Robot.

Swiss German University.

Linorobot (no date) Linorobot. Available at: https://linorobot.org/ (Accessed: 12 April 2020).

Marin-Plaza, P. et al. (2018) ‘Global and Local Path Planning Study in a ROS-Based Research Platform for Autonomous Vehicles’, Journal of Advanced Transportation, 2018. doi: 10.1155/2018/6392697.

Morales, Y. et al. (2009) ‘Autonomous robot navigation in outdoor cluttered pedestrian walkways’, Journal of Field Robotics, 26(8), pp. 609–635. doi: 10.1002/rob.20301.

Neckelmanns (2020) Mobile Industrial Robots. Available at: https://www.mobile- industrial-robots.com/en/products/mir100/ (Accessed: 11 April 2020).

Other Global Navigation Satellite System (GNSS) (2020). Available at:

https://www.gps.gov/systems/gnss/ (Accessed: 6 April 2020).

Paleja, R. (2018) ‘Adaptive Monte Carlo Localization for Mobile Robots’, pp. 1–9.

Qt (2019) ‘Qt’. Available at: https://wiki.qt.io/About_Qt.

ROS (2019) About ROS. Available at: https://www.ros.org/about-ros/.

Swri-robotics (2019) Mapviz. Available at: http://wiki.ros.org/mapviz (Accessed: 30 March 2020).

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