Articles published in Advances in Robotics & Automation have been cited by esteemed scholars and scientists all around the world.
Advances in Robotics & Automation has got h-index 13, which means every article in Advances in Robotics & Automation has got 13 average citations.
Following are the list of articles that have cited the articles published in Advances in Robotics & Automation.
2024 | 2023 | 2022 | 2021 | 2020 | 2019 | 2018 | |
---|---|---|---|---|---|---|---|
Total published articles |
22 | 44 | 50 | 59 | 2 | 15 | 11 |
Research, Review articles and Editorials |
0 | 10 | 45 | 2 | 0 | 8 | 8 |
Research communications, Review communications, Editorial communications, Case reports and Commentary |
22 | 34 | 5 | 57 | 2 | 7 | 3 |
Conference proceedings |
0 | 5 | 42 | 0 | 0 | 12 | 111 |
Citations received as per Google Scholar, other indexing platforms and portals |
1196 | 821 | 168 | 180 | 98 | 85 | 63 |
Journal total citations count | 1127 |
Journal impact factor | 2.8 |
Journal 5 years impact factor | 2.7 |
Journal cite score | 2.43 |
Journal h-index | 13 |
Journal h-index since 2019 | 10 |
Baarath, K. (2016). Implementation of platooning strategy for autonomous mobile robot. |
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Vazquez-Santacruz, J. A., Velasco-Villa, M., Portillo-Velez, R. D. J., Marin-Urias, L. F., & Vigueras-Zuniga, M. (2016). Autonomous Navigation for Multiple Mobile Robots under Time Delay in Communication. Journal of Intelligent & Robotic Systems, 1-15. |
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Deepak, B. B. V. L. (2015). Design and Development of an Automated Mobile Manipulator for Industrial Applications (Doctoral dissertation). |
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Nikshi, W. M., Bedillion, M. D., & Hoover, R. C. (2016, November). Parking Control of Mixed Conventional/Braking Actuation Mobile Robots Using Fuzzy Logic Control. In ASME, International Mechanical Engineering Congress and Exposition (Accepted). |
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Solea, R., Filipescu, A., Filipescu, A., Minca, E., & Filipescu, S. (2015, July). Wheelchair control and navigation based on kinematic model and iris movement. In Cybernetics and Intelligent Systems (CIS) and IEEE Conference on Robotics, Automation and Mechatronics (RAM), 2015 IEEE 7th International Conference on (pp. 78-83). IEEE. |
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Ali, R. S., Aldair, A. A., & Almousawi, A. K. (2014). Design an Optimal PID Controller using Artificial Bee Colony and Genetic Algorithm for Autonomous Mobile Robot. International Journal of Computer Applications (0975-8887), 100(1), 8-16. |
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Elsheikh, A. H., Showaib, E. A., & Asar, A. E. (2013). Artificial Neural Network Based Forward Kinematics Solution for Planar Parallel Manipulators Passing through Singular Configuration. Adv Robot Autom, 2(106), 2. |
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Do, K. D. (2013). Bounded Coordination Control of Second-order Dynamic Agents. Advances in Robotics and Automation, 2(2). |
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Bharghava, B. Research and Reviews: Journal of Engineering and Technology. |
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Bharghava, B. Research and Reviews: Journal of Engineering and Technology. |
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Micu, B., Micu, C., Pop, T. R., & Constantea, N. (2017, April). Robotic Splenectomy using the DaVinci Platform. In International Conference on Advancements of Medicine and Health Care through Technology; 12th-15th October 2016, Cluj-Napoca, Romania: MEDITECH 2016 (Vol. 59, p. 35). Springer. |
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Bharghava, B. Research and Reviews: Journal of Engineering and Technology. |
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Bharghava, B. Research and Reviews: Journal of Engineering and Technology. |
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Chong, K. K. (2012). Non-Imaging Focusing Technology for the Application in Concentrator Photovoltaic System. Adv Robot Autom, 1, e113. |
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Helmink, B. A., Snyder, R. A., Idrees, K., Merchant, N. B., & Parikh, A. A. (2016). Advances in the Surgical Management of Resectable and Borderline Resectable Pancreas Cancer. Surgical oncology clinics of North America, 25(2), 287-310. |
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Cirocchi, R., Partelli, S., Trastulli, S., Coratti, A., Parisi, A., & Falconi, M. (2013). A systematic review on robotic pancreaticoduodenectomy. Surgical oncology, 22(4), 238-246. |
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Bogdanov, E., Petrov, V. A., Botman, S. A., Sapunov, V. V., Stupin, V. A., Silina, E. V., ... & Shusharina, N. N. (2016). Development of a neurodevice with a biological feedback for compensating for lost motor functions. ÒõÑÂтýøú àþÑÂÑÂøùÑÂúþóþ óþÑÂуôðрÑÂтòõýýþóþ üõôøцøýÑÂúþóþ уýøòõрÑÂøтõтð, (2 (eng)). |
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Ñþóôðýþò, Õ. ÃÂ., ßõтрþò, Ã’. ÃÂ., Ñþтüðý, á. ÃÂ., áðÿуýþò, Ã’. Ã’., áтуÿøý, Ã’. ÃÂ., áøûøýð, Õ. Ã’., ... & èушðрøýð, ÃÂ. ÃÂ. (2016). àð÷рðñþтúð ýõùрþуÑÂтрþùÑÂтòð ѠñøþûþóøчõÑÂúþù þñрðтýþù ÑÂòÑÂ÷ью ôûѠòþÑÂÿþûýõýøѠутрðчõýýых ôòøóðтõûьýых фуýúцøù. ÒõÑÂтýøú àþÑÂÑÂøùÑÂúþóþ óþÑÂуôðрÑÂтòõýýþóþ üõôøцøýÑÂúþóþ уýøòõрÑÂøтõтð, (2). |
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Shusharina, N. N., Bogdanov, E. A., Petrov, V. A., Silina, E. V., & Patrushev, M. V. (2016). Multifunctional Neurodevice for Recognition of Electrophysiological Signals and Data Transmission in an Exoskeleton Construction. Biology and Medicine, 8(6), 1. |
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Fu, K. C. D., & フ,ã‚ÂンãƒÂョンデニー. (2016). Studies on control methods for musculoskeletal robots using muscle synergies. |
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Advances in Robotics & Automation received 1127 citations as per Google Scholar report