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Monitoring Aquatic Debris Using Smartphone-Based Robots.

, , , , , , and . IEEE Trans. Mob. Comput., 15 (6): 1412-1426 (2016)

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Monitoring Aquatic Debris Using Smartphone-Based Robots., , , , , , and . IEEE Trans. Mob. Comput., 15 (6): 1412-1426 (2016)Accuracy-aware aquatic diffusion process profiling using robotic sensor networks., , , , and . IPSN, page 281-292. IEEE Computer Society / ACM, (2012)Energy-Efficient Aquatic Environment Monitoring Using Smartphone-Based Robots., , , , , and . ACM Trans. Sens. Networks, 12 (3): 25:1-25:28 (2016)Profiling Aquatic Diffusion Process UsingRobotic Sensor Networks., , , , and . IEEE Trans. Mob. Comput., 13 (4): 880-893 (2014)Averaging Tail-Actuated Robotic Fish Dynamics Through Force and Moment Scaling., and . IEEE Trans. Robotics, 31 (4): 906-917 (2015)Evolutionary Design and Experimental Validation of a Flexible Caudal Fin for Robotic Fish., , , , and . ALIFE, MIT Press, (2012)Towards Closing the Loop: Bridging Machine-induced Pedagogical Policies to Learning Theories., , , and . EDM, International Educational Data Mining Society (IEDMS), (2017)Aquatic debris monitoring using smartphone-based robotic sensors., , , , , , and . IPSN, page 13-24. IEEE/ACM, (2014)Gliding robotic fish for mobile sampling of aquatic environments., , , , , and . ICNSC, page 167-172. IEEE, (2014)Mapping the Spatial-Temporal Dynamics of Vegetation Response Lag to Drought in a Semi-Arid Region., , , , , and . Remote. Sens., 11 (16): 1873 (2019)