2021
DOI: 10.36001/ijphm.2021.v12i3.2953
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Online decision making and path planning framework for safe operation of unmanned aerial vehicles in urban scenarios

Abstract: As the potential for deploying low-flying unmanned aerial vehicles (UAVs) in urban spaces increases, ensuring their safe operations is becoming a major concern. Given the uncertainties in their operational environments caused by wind gusts, degraded state of health, and probability of collision with static and dynamic objects, it becomes imperative to develop online decision-making schemes to ensure safe flights. In this paper, we propose an online decision-making framework that takes into account the state of… Show more

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Cited by 5 publications
(6 citation statements)
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“…The torque-load relationship model was derived via polynomial fitting of test data obtained from a publicly available dataset. The aerodynamics, DC motor, and continuous battery models were adapted from previous publications [26,[36][37][38][39] . The battery degradation model came from test data obtained from NASA' s data repository.…”
Section: Data Model Source Referencementioning
confidence: 99%
See 1 more Smart Citation
“…The torque-load relationship model was derived via polynomial fitting of test data obtained from a publicly available dataset. The aerodynamics, DC motor, and continuous battery models were adapted from previous publications [26,[36][37][38][39] . The battery degradation model came from test data obtained from NASA' s data repository.…”
Section: Data Model Source Referencementioning
confidence: 99%
“…As a result, throttle increase is required to compensate for these effects, thus increasing the battery' s rate of drainage. In previous experiments [26,39,48] , we only considered the degradation of one motor, which resulted in a consistent position error deviation with respect to the direction of flight and the direction of wind. In real life, all of the motors can degrade simultaneously, and this would result in unpredictable trajectory deviations.…”
Section: Degradation Models and Environment Conditionsmentioning
confidence: 99%
“…making (PDM), which is used to reduce the risk of failure during a vehicle's mission since it takes into account the conditions of the environment and the performance of the components (Balaban, Alonso, & Goebel, 2012). This approach has been used in studies for autonomous decision-making for planetary rovers (Narasimhan et al, 2012) and other types of vehicles, such as unmanned aerial vehicles (UAVs) for path planning (Quiñones-Grueiro, Biswas, Ahmed, Darrah, & Kulkarni, 2021). Decision-making system takes into account the health of the components.…”
Section: Introductionmentioning
confidence: 99%
“…Despite some built-in redundancies, all the components are required to operate as designed to achieve required performance and avoid safety incidents (Quinones-Grueiro, Biswas, Ahmed, Darrah, & Kulkarni, 2021). Failure of components, faulty sensors, inclement weather, or even errors within the flight control software could result in erratic behavior, mismanagement of systems, or even complete failure and crashes (Quinones-Grueiro et al, 2021;Pesé, Ganesan, & Shin, 2017;Wasicek, Pese, Weimerskirch, Burakova, & Singh, 2017;Bai, ElBatt, Holland, Krishnan, & Sadekar, 2006;ElBatt, Goel, Holland, Krishnan, & Parikh, 2006;Jones, 2002;Waraksa, Fraley, Kiefer, Douglas, & Gilbert, 1988;Diem, 2001;Feser, Mc-Connell, Brandmeier, & Lauerer, 2006). These may lead to damage to the vehicle and nearby property as well as harm to humans in the current or nearby vehicles or on the ground (Bauranov & Rakas, 2019).…”
Section: Introductionmentioning
confidence: 99%