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1.
J Adv Res ; 25: 181-189, 2020 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-32922985

RESUMO

This work deals with the control design and development of an automated car-following strategy that further increases robustness to vehicle dynamics uncertainties. The control algorithm is applied on a hierarchical architecture where high and low level control layers are designed for gap-control and desired acceleration tracking, respectively. A fractional-order controller is proposed due to its flexible frequency shape, fulfilling more demanding design requirements. The iso-damping loop property is sought, which yields a desired closed-loop stability that results invariant despite changes on the controlled plant gain. In addition, the graphical nature of the proposed design approach demonstrates its portability and applicability to any type of vehicle dynamics without complex reconfiguration. The algorithm benefits are validated in frequency and time domains, as well as through experiments on a real vehicle platform performing adaptive cruise control.

3.
Sensors (Basel) ; 11(1): 661-73, 2011.
Artigo em Inglês | MEDLINE | ID: mdl-22346596

RESUMO

Currently, vehicles are often equipped with active safety systems to reduce the risk of accidents, most of which occur in urban environments. The most prominent include Antilock Braking Systems (ABS), Traction Control and Stability Control. All these systems use different kinds of sensors to constantly monitor the conditions of the vehicle, and act in an emergency. In this paper the use of ultrasonic sensors in active safety systems for urban traffic is proposed, and the advantages and disadvantages when compared to other sensors are discussed. Adaptive Cruise Control (ACC) for urban traffic based on ultrasounds is presented as an application example. The proposed system has been implemented in a fully-automated prototype vehicle and has been tested under real traffic conditions. The results confirm the good performance of ultrasonic sensors in these systems.

4.
Sensors (Basel) ; 10(6): 5872-87, 2010.
Artigo em Inglês | MEDLINE | ID: mdl-22219692

RESUMO

These days, mass-produced vehicles benefit from research on Intelligent Transportation System (ITS). One prime example of ITS is vehicle Cruise Control (CC), which allows it to maintain a pre-defined reference speed, to economize on fuel or energy consumption, to avoid speeding fines, or to focus all of the driver's attention on the steering of the vehicle. However, achieving efficient Cruise Control is not easy in roads or urban streets where sudden changes of the speed limit can happen, due to the presence of unexpected obstacles or maintenance work, causing, in inattentive drivers, traffic accidents. In this communication we present a new Infrastructure to Vehicles (I2V) communication and control system for intelligent speed control, which is based upon Radio Frequency Identification (RFID) technology for identification of traffic signals on the road, and high accuracy vehicle speed measurement with a Hall effect-based sensor. A fuzzy logic controller, based on sensor fusion of the information provided by the I2V infrastructure, allows the efficient adaptation of the speed of the vehicle to the circumstances of the road. The performance of the system is checked empirically, with promising results.


Assuntos
Inteligência Artificial , Condução de Veículo , Dispositivo de Identificação por Radiofrequência , Tecnologia de Sensoriamento Remoto/instrumentação , Meios de Transporte/instrumentação , Aceleração , Sistemas de Informação Geográfica/instrumentação , Humanos , Modelos Biológicos , Veículos Automotores , Reconhecimento Automatizado de Padrão , Dispositivo de Identificação por Radiofrequência/métodos , Dispositivo de Identificação por Radiofrequência/estatística & dados numéricos , Processamento de Sinais Assistido por Computador/instrumentação
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