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Dive into the research topics where Bilal Arain is active.

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Featured researches published by Bilal Arain.


IEEE Transactions on Aerospace and Electronic Systems | 2014

Real-time wind speed estimation and compensation for improved flight

Bilal Arain; Farid Kendoul

This paper presents the development and experimental validation of a prototype system for online estimation and compensation of wind disturbances onboard small Rotorcraft unmanned aerial systems (RUAS). The proposed approach consists of integrating a small pitot-static system onboard the vehicle and using simple but effective algorithms for estimating the wind speed in real time. The baseline flight controller has been augmented with a feed-forward term to compensate for these wind disturbances, thereby improving the flight performance of small RUAS in windy conditions. The paper also investigates the use of online airspeed measurements in a closed-loop for controlling the RUAS forward motion without the aid of a global positioning system (GPS). The results of more than 80 flights with a RUAS confirm the validity of our approach.


field and service robotics | 2015

Enabling Aircraft Emergency Landings Using Active Visual Site Detection

Michael Warren; Luis Mejias; Xilin Yang; Bilal Arain; Felipe Gonzalez; Ben Upcroft

The ability to automate forced landings in an emergency such as engine failure is an essential ability to improve the safety of Unmanned Aerial Vehicles operating in General Aviation airspace. By using active vision to detect safe landing zones below the aircraft, the reliability and safety of such systems is vastly improved by gathering up-to-the-minute information about the ground environment. This paper presents the Site Detection System, a methodology utilising a downward facing camera to analyse the ground environment in both 2D and 3D, detect safe landing sites and characterise them according to size, shape, slope and nearby obstacles. A methodology is presented showing the fusion of landing site detection from 2D imagery with a coarse Digital Elevation Map and dense 3D reconstructions using INS-aided Structure-from-Motion to improve accuracy. Results are presented from an experimental flight showing the precision/recall of landing sites in comparison to a hand-classified ground truth, and improved performance with the integration of 3D analysis from visual Structure-from-Motion.


international conference on unmanned aircraft systems | 2013

A UKF-based estimation strategy for actuator fault detection of UASs

Xilin Yang; Michael Warren; Bilal Arain; Ben Upcroft; Felipe Gonzalez; Luis Mejias

This paper presents a recursive strategy for online detection of actuator faults on a unmanned aerial system (UAS) subjected to accidental actuator faults. The proposed detection algorithm aims to provide a UAS with the capability of identifying and determining characteristics of actuator faults, offering necessary flight information for the design of fault-tolerant mechanism to compensate for the resultant side-effect when faults occur. The proposed fault detection strategy consists of a bank of unscented Kalman filters (UKFs) with each one detecting a specific type of actuator faults and estimating corresponding velocity and attitude information. Performance of the proposed method is evaluated using a typical nonlinear UAS model and it is demonstrated in simulations that our method is able to detect representative faults with a sufficient accuracy and acceptable time delay, and can be applied to the design of fault-tolerant flight control systems of UASs.


australian control conference | 2013

Autonomous forced landing system for light general aviation aircraft in unknown environments

Bilal Arain; Michael Warren; Xilin Yang; Felipe Gonzalez; Luis Mejias; Ben Upcroft

This paper presents a system which enhances the capabilities of a light general aviation aircraft to land autonomously in case of an unscheduled event such as engine failure. The proposed system will not only increase the level of autonomy for the general aviation aircraft industry but also increase the level of dependability. Safe autonomous landing in case of an engine failure with a certain level of reliability is the primary focus of our work as both safety and reliability are attributes of dependability. The system is designed for a light general aviation aircraft but can be extended for dependable unmanned aircraft systems. The underlying system components are computationally efficient and provides continuous situation assessment in case of an emergency landing. The proposed system is undergoing an evaluation phase using an experimental platform (Cessna 172R) in real world scenarios.


Science & Engineering Faculty | 2010

Flight control of a rotary wing UAV using backstepping

Bilal Arain; H. R. Pota; Matthew A. Garratt


Journal of Intelligent and Robotic Systems | 2014

Nonlinear Actuator Fault Detection for Small-Scale UASs

Xilin Yang; Luis Mejias; Felipe Gonzalez; Michael Warren; Ben Upcroft; Bilal Arain


Australian Research Centre for Aerospace Automation; Science & Engineering Faculty | 2014

Nonlinear actuator fault detection for small-scale UAS

Xilin Yang; Luis Mejias; Felipe Gonzalez; Michael Warren; Ben Upcroft; Bilal Arain


Science & Engineering Faculty | 2012

Bio-inspired taupilot for automated aerial 4d docking and landing of unmanned aircraft systems

Farid Kendoul; Bilal Arain


Science & Engineering Faculty | 2011

Dynamic compensation for control of a rotary wing UAV using positive position feedback

Bilal Arain; H. R. Pota


Science & Engineering Faculty | 2011

Flight control of a rotary wing UAV including flapping dynamics

Bilal Arain; H. R. Pota

Collaboration


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H. R. Pota

University of New South Wales

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Ben Upcroft

Queensland University of Technology

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Felipe Gonzalez

Queensland University of Technology

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Luis Mejias

Queensland University of Technology

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Michael Warren

Queensland University of Technology

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Xilin Yang

Queensland University of Technology

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Matthew A. Garratt

University of New South Wales

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Farid Kendoul

Commonwealth Scientific and Industrial Research Organisation

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