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The Carologistics Approach to Cope with the Increased Complexity and New Challenges of the RoboCup Logistics League 2015.

, , , , , и . RoboCup, том 9513 из Lecture Notes in Computer Science, стр. 47-59. Springer, (2015)

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Decisive Factors for the Success of the Carologistics RoboCup Team in the RoboCup Logistics League 2014., , , , , и . RoboCup, том 8992 из Lecture Notes in Computer Science, стр. 155-167. Springer, (2014)Towards Benchmarking Cyber-Physical Systems in Factory Automation Scenarios., , , , , , и . KI, том 8077 из Lecture Notes in Computer Science, стр. 296-299. Springer, (2013)The Carologistics Approach to Cope with the Increased Complexity and New Challenges of the RoboCup Logistics League 2015., , , , , и . RoboCup, том 9513 из Lecture Notes in Computer Science, стр. 47-59. Springer, (2015)Engaging undergraduate students in a biomedical research project: a virtual collaboration across institutes under the pandemic environment., и . FIE, стр. 1-5. IEEE, (2021)RoboCup Logistics League Sponsored by Festo: A Competitive Factory Automation Testbed., , , , , и . RoboCup, том 8371 из Lecture Notes in Computer Science, стр. 336-347. Springer, (2013)A Wide-Band Tissue Numerical Model for Deeply Implantable Antennas for RF-Powered Leadless Pacemakers., , , , и . IEEE Access, (2019)HEART: an automated beat-to-beat cardiovascular analysis package using Matlab®., , , и . Comput. Biol. Medicine, 34 (5): 371-388 (2004)A Novel RF-Powered Wireless Pacing via a Rectenna-Based Pacemaker and a Wearable Transmit-Antenna Array., , , , , и . IEEE Access, (2019)Design and In Vivo Test of a Batteryless and Fully Wireless Implantable Asynchronous Pacing System., , , , , , и . IEEE Trans. Biomed. Eng., 63 (5): 1070-1081 (2016)Leveraging the Innovation-Based Learning Framework to Predict and Understand Student Success in Innovation., и . IEEE Access, (2022)