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  • About
  • The Global ETD Search service is a free service for researchers to find electronic theses and dissertations. This service is provided by the Networked Digital Library of Theses and Dissertations.
    Our metadata is collected from universities around the world. If you manage a university/consortium/country archive and want to be added, details can be found on the NDLTD website.
161

Airborne Collision Detection and Avoidance for Small UAS Sense and Avoid Systems

Sahawneh, Laith Rasmi 01 January 2016 (has links)
The increasing demand to integrate unmanned aircraft systems (UAS) into the national airspace is motivated by the rapid growth of the UAS industry, especially small UAS weighing less than 55 pounds. Their use however has been limited by the Federal Aviation Administration regulations due to collision risk they pose, safety and regulatory concerns. Therefore, before civil aviation authorities can approve routine UAS flight operations, UAS must be equipped with sense-and-avoid technology comparable to the see-and-avoid requirements for manned aircraft. The sense-and-avoid problem includes several important aspects including regulatory and system-level requirements, design specifications and performance standards, intruder detecting and tracking, collision risk assessment, and finally path planning and collision avoidance. In this dissertation, our primary focus is on developing an collision detection, risk assessment and avoidance framework that is computationally affordable and suitable to run on-board small UAS. To begin with, we address the minimum sensing range for the sense-and-avoid (SAA) system. We present an approximate close form analytical solution to compute the minimum sensing range to safely avoid an imminent collision. The approach is then demonstrated using a radar sensor prototype that achieves the required minimum sensing range. In the area of collision risk assessment and collision prediction, we present two approaches to estimate the collision risk of an encounter scenario. The first is a deterministic approach similar to those been developed for Traffic Alert and Collision Avoidance (TCAS) in manned aviation. We extend the approach to account for uncertainties of state estimates by deriving an analytic expression to propagate the error variance using Taylor series approximation. To address unanticipated intruders maneuvers, we propose an innovative probabilistic approach to quantify likely intruder trajectories and estimate the probability of collision risk using the uncorrelated encounter model (UEM) developed by MIT Lincoln Laboratory. We evaluate the proposed approach using Monte Carlo simulations and compare the performance with linearly extrapolated collision detection logic. For the path planning and collision avoidance part, we present multiple reactive path planning algorithms. We first propose a collision avoidance algorithm based on a simulated chain that responds to a virtual force field produced by encountering intruders. The key feature of the proposed approach is to model the future motion of both the intruder and the ownship using a chain of waypoints that are equally spaced in time. This timing information is used to continuously re-plan paths that minimize the probability of collision. Second, we present an innovative collision avoidance logic using an ownship centered coordinate system. The technique builds a graph in the local-level frame and uses the Dijkstra's algorithm to find the least cost path. An advantage of this approach is that collision avoidance is inherently a local phenomenon and can be more naturally represented in the local coordinates than the global coordinates. Finally, we propose a two step path planner for ground-based SAA systems. In the first step, an initial suboptimal path is generated using A* search. In the second step, using the A* solution as an initial condition, a chain of unit masses connected by springs and dampers evolves in a simulated force field. The chain is described by a set of ordinary differential equations that is driven by virtual forces to find the steady-state equilibrium. The simulation results show that the proposed approach produces collision-free plans while minimizing the path length. To move towards a deployable system, we apply collision detection and avoidance techniques to a variety of simulation and sensor modalities including camera, radar and ADS-B along with suitable tracking schemes.
162

AUTONOMOUS QUADROTOR COLLISION AVOIDANCE AND DESTINATION SEEKING IN A GPS-DENIED ENVIRONMENT

Kirven, Thomas C. 01 January 2017 (has links)
This thesis presents a real-time autonomous guidance and control method for a quadrotor in a GPS-denied environment. The quadrotor autonomously seeks a destination while it avoids obstacles whose shape and position are initially unknown. We implement the obstacle avoidance and destination seeking methods using off-the-shelf sensors, including a vision-sensing camera. The vision-sensing camera detects the positions of points on the surface of obstacles. We use this obstacle position data and a potential-field method to generate velocity commands. We present a backstepping controller that uses the velocity commands to generate the quadrotor's control inputs. In indoor experiments, we demonstrate that the guidance and control methods provide the quadrotor with sufficient autonomy to fly point to point, while avoiding obstacles.
163

Generalized Sampling-Based Feedback Motion Planners

Kumar, Sandip 2011 December 1900 (has links)
The motion planning problem can be formulated as a Markov decision process (MDP), if the uncertainties in the robot motion and environments can be modeled probabilistically. The complexity of solving these MDPs grow exponentially as the dimension of the problem increases and hence, it is nearly impossible to solve the problem even without constraints. Using hierarchical methods, these MDPs can be transformed into a semi-Markov decision process (SMDP) which only needs to be solved at certain landmark states. In the deterministic robotics motion planning community, sampling based algorithms like probabilistic roadmaps (PRM) and rapidly exploring random trees (RRTs) have been successful in solving very high dimensional deterministic problem. However they are not robust to system with uncertainties in the system dynamics and hence, one of the primary objective of this work is to generalize PRM/RRT to solve motion planning with uncertainty. We first present generalizations of randomized sampling based algorithms PRM and RRT, to incorporate the process uncertainty, and obstacle location uncertainty, termed as "generalized PRM" (GPRM) and "generalized RRT" (GRRT). The controllers used at the lower level of these planners are feedback controllers which ensure convergence of trajectories while mitigating the effects of process uncertainty. The results indicate that the algorithms solve the motion planning problem for a single agent in continuous state/control spaces in the presence of process uncertainty, and constraints such as obstacles and other state/input constraints. Secondly, a novel adaptive sampling technique, termed as "adaptive GPRM" (AGPRM), is proposed for these generalized planners to increase the efficiency and overall success probability of these planners. It was implemented on high-dimensional robot n-link manipulators, with up to 8 links, i.e. in a 16-dimensional state-space. The results demonstrate the ability of the proposed algorithm to handle the motion planning problem for highly non-linear systems in very high-dimensional state space. Finally, a solution methodology, termed the "multi-agent AGPRM" (MAGPRM), is proposed to solve the multi-agent motion planning problem under uncertainty. The technique uses a existing solution technique to the multiple traveling salesman problem (MTSP) in conjunction with GPRM. For real-time implementation, an ?inter-agent collision detection and avoidance? module was designed which ensures that no two agents collide at any time-step. Algorithm was tested on teams of homogeneous and heterogeneous agents in cluttered obstacle space and the algorithm demonstrate the ability to handle such problems in continuous state/control spaces in presence of process uncertainty.
164

Kinematics and Optimal Control of a Mobile Parallel Robot for Inspection of Pipe-like Environments

Sarfraz, Hassan 24 January 2014 (has links)
The objective of this thesis is to analyze the kinematics of a mobile parallel robot with contribution that pertain to the singularity analysis, the optimization of geometric parameters and the optimal control to avoid singularities when navigating across singular geometric configurations. The analysis of the workspace and singularities is performed in a prescribed reference workspace regions using discretization method. Serial and parallel singularities are analytically analyzed and all possible singular configurations are presented. Kinematic conditioning index is used to determine the robot’s proximity to a singular configuration. A method for the determination of a continuous and singularity-free workspace is detailed. The geometric parameters of the system are optimized in various types of pipe-like structures with respect to a suitable singularity index, in order to avoid singularities during the navigation across elbows. The optimization problem is formulated with an objective to maximize the reachable workspace and minimize the singularities. The objective function is also subjected to constraints such as collision avoidance, singularity avoidance, workspace continuity and contact constraints imposed between the boundaries and the wheels of the robot. A parametric variation method is used as a technique to optimize the design parameters. The optimal design parameters found are normalized with respect to the width of the pipe-like structures and therefore the results are generalized to be used in the development phase of the robot. An optimal control to generate singularity-free trajectories when the robotic device has to cross a geometric singularity in a sharp 90◦ elbow is proposed. Such geometric singularity inherently leads to singularities in the Jacobian of the system, and therefore a modified device with augmented number of degrees of freedom is introduced to be able to generate non-singular trajectories.
165

[de] ENTWICKLUNG EINES KOLLISIONSVERMEIDUNGSSYSTEM BASIEREND AUF EINER FUZZY REGELUNG / [en] DEVELOPMENT OF AN AUTONOMOUS COLLISION AVOIDANCE SYSTEM BASED ON FUZZY CONTROL / [pt] DESENVOLVIMENTO DE UM SISTEMA AUTÔNOMO DE EVASÃO DE COLISÕES BASEADO EM CONTROLE FUZZY

RAFAEL BASILIO CHAVES 09 February 2018 (has links)
[pt] O presente trabalho apresenta um conceito para um sistema de evasão de colisões, simulado usando modelos 3D de três veículos diferentes implementados em MATLAB. Dois destes veículos foram parametrizados com dados genéricos, caracterizando automóveis de médio e grande porte. Em seguida, utilizados para realização de simulações iniciais e demonstração de conceitos. O terceiro conjunto de dados foi construído com informações do Apollo N, um veículo super esportivo. Estes diferentes conjuntos de dados foram utilizados para avaliar a capacidade do controlador de trabalhar com veículos de diferentes portes e dinâmicas de direção. A abordagem para acionar o sistema baseia-se no cálculo do tempo para a colisão (TTC; timeto- collision). O conceito foi adotado para detectar situações onde o motorista não é capaz de evitar um acidente. Depois de ser acionado, o sistema deve decidir qual manobra é a mais apropriada, dadas as condições de aderência da pista e o risco associado. O primeiro objetivo deste trabalho é desenvolver um sistema autônomo de frenagem que deve ser capaz de avaliar o risco de uma possível colisão e decidir se o condutor é capaz de evitá-la. Uma vez que o motorista não tenha tempo suficiente para reagir, o sistema deve acionar os freios automaticamente a fim de evitar um possível acidente. Além disso, o veículo possui um sistema anti-travamento (ABS), desenvolvido usando controle Fuzzy. O desempenho do controlador ABS foi avaliado em simulações usando os conjuntos de dados e testado em um veículo em escala. Em casos mais críticos, quando há baixa aderência, o veículo não é capaz de frear em uma distância razoável. Levando-se em consideração tal situação, um controle autônomo de esterçamento também foi desenvolvido, visando a possibilidade de uma manobra alternativa de evasão. Este segundo sistema foi avaliado em simulações utilizando veículos com características subesterçantes e sobreesterçantes. Os resultados mostraram que o controle de esterçamento foi capaz de realizar manobras evasivas produzindo valores razoáveis de acelerações laterais, em veículos com diferentes dinâmicas de direção. / [en] This work presents a concept for a collision avoidance system simulated using 3D-models of three different vehicles implemented in MATLAB. Two of the vehicle data sets were built with generic information, used to characterize mid-size and full-size vehicles. These standard vehicles were used in initial simulations and for demonstration of some concepts. The third data set was built with information from the Apollo N, a super sportive car. These different data sets were used to evaluate the controller s capacity to work with a range of vehicles, with different sizes and driving characteristics. The approach for triggering the system is based on the time-to-colision (TTC) estimation. This concept was adopted to recognize when the driver is not able to avoid an accident. After being triggered, the system must decide which maneuver is the most appropriate for the given friction and risk conditions. The first goal of this work is to develop an autonomous braking system which evaluates the risk of a possible collision and decides if the driver is able to avoid it. Once the driver has not enough time to react, the system must trigger the brakes automatically in order to avoid the accident. The vehicle is equipped with an embedded Anti-lock Brake System (ABS) developed using Fuzzy control. The ABS controller s performance was evaluated in simulations using the data sets and tested in a scaled vehicle. In more critical cases, when there is low friction, the vehicle is not able to brake in a reasonable distance. Considering this situation, an autonomous steering control was implemented in order to make an alternative avoidance maneuver. This second system was evaluated in simulations using vehicles with understeering and oversteering characteristics. The results pointed out that the autonomous steering control was able to perform avoidance maneuvers in a reasonable range of lateral accelerations, in vehicles with different driving tendencies. / [de] Die vorliegende Arbeit prasentiert ein Konzept fur ein Kollisionsvermeidungssystem. Dieses wird anhand von drei verschiedenen 3DFahrzeugmodellen mit Hilfe von MATLAB simuliert. Zwei der FahrzeugDatensatze basieren auf generischen Informationen, die jeweils ein Automobil der Mittelklasse und der Oberklasse reprasentieren. Diese Standardfahrzeuge wurden fur anfangliche Simulationen und zur Demonstration einiger Konzepte verwendet. Das dritte Fahrzeugmodell wurde mit Hilfe der Daten des Sportwagens Apollo N aufgebaut. Durch die Verwendung der verschiedenen Datensatze soll die Funktionsfahigkeit der Regelung auch bei verschiedenen Fahrzeugtypen mit unterschiedlichen Dimensionen und Fahreigenschaften uberpruft werden.Die Grundlage zum Auslosen des Systems ist die Abschatzung der Zeit bis zur Kollision (TTC; time-to-collision). Dieses Konzept wurde aufgegriffen, um zu entscheiden, wann der Fahrer nicht mehr in der Lage ist einen Unfall zu vermeiden. Nachdem das System ausgelost wird muss dieses anhand der Traktionsverhaltnisse und Gefahrensituation entscheiden, welches Manover am besten geeignet ist. Das erste Teilziel ist die Entwicklung eines autonomen Bremssystems, welches eine bevorstehende Kollision erkennen muss und entscheidet ob der Fahrer die Kollision eigenstandig vermeiden kann. Sobald der Fahrer nicht mehr genug Zeit hat selbst zu reagieren, muss das System die Bremsen automatisch betatigen um den Unfall zu vermeiden. Hierzu ist das Fahrzeug mit einem Antiblockiersystem (ABS) ausgestattet. Dieses wurde mit Hilfe eines Fuzzy-Kontrollers realisiert. Die Funktionstuchtigkeit der ABS-Regelung wurde mit Simulationen und anhand eines realen, skalierten Fahrzeugmodells getestet. In kritischen Situationen, kann es aufgrund der Traktionsverhaltnisse vorkommen, dass das Fahrzeug nicht mehr in der Lage ist innerhalb einer ausreichenden Strecke zum Stehen zu kommen. Um fur solche Situationen ein alternatives Ausweichmanöver anwenden zu konnen, wurde ein automatischer Lenkeingriff implementiert. Dieses System wurde anhand von Simulationen an Fahrzeugmodellen mit Ubersteuernden und Untersteuernden Eigenschaften uberprüft. Die Ergebnisse zeigten, dass die automatische Lenkeingriff-Regelung in der Lage war auch bei Fahrzeugen mit unterschiedlichen Fahreigenschaften Ausweichmanöver unter Einhaltung angemessener Querbeschleunigungen durchzufuhren.
166

Kinematics and Optimal Control of a Mobile Parallel Robot for Inspection of Pipe-like Environments

Sarfraz, Hassan January 2014 (has links)
The objective of this thesis is to analyze the kinematics of a mobile parallel robot with contribution that pertain to the singularity analysis, the optimization of geometric parameters and the optimal control to avoid singularities when navigating across singular geometric configurations. The analysis of the workspace and singularities is performed in a prescribed reference workspace regions using discretization method. Serial and parallel singularities are analytically analyzed and all possible singular configurations are presented. Kinematic conditioning index is used to determine the robot’s proximity to a singular configuration. A method for the determination of a continuous and singularity-free workspace is detailed. The geometric parameters of the system are optimized in various types of pipe-like structures with respect to a suitable singularity index, in order to avoid singularities during the navigation across elbows. The optimization problem is formulated with an objective to maximize the reachable workspace and minimize the singularities. The objective function is also subjected to constraints such as collision avoidance, singularity avoidance, workspace continuity and contact constraints imposed between the boundaries and the wheels of the robot. A parametric variation method is used as a technique to optimize the design parameters. The optimal design parameters found are normalized with respect to the width of the pipe-like structures and therefore the results are generalized to be used in the development phase of the robot. An optimal control to generate singularity-free trajectories when the robotic device has to cross a geometric singularity in a sharp 90◦ elbow is proposed. Such geometric singularity inherently leads to singularities in the Jacobian of the system, and therefore a modified device with augmented number of degrees of freedom is introduced to be able to generate non-singular trajectories.
167

Warning Design for Connected Cars

Schwarz, Felix 03 July 2017 (has links) (PDF)
Future connected vehicles will be able to warn about hidden dangers already before they are visible for the driver. With sight obstructions as one of the most common factors of accident causation, there is a huge potential to improve traffic safety. However, it is unclear how to design the human-machine-interface of such systems to effectively warn drivers about invisible dangers. Especially the expectation that such warnings will be comparably unreliable lead to conflicting demands on amount and coding of warning information. Earlier work shows that warnings that contain more specific information about a hazard can improve drivers understanding of and responses to warnings but they can also raise processing costs and delay reactions or even distract drivers. Psychological theories as well as related research indicates that augmented reality (AR) has the potential to improve warning effectiveness through optimized coding of additional information. AR warnings can inherently transmit the location of a hazard and – due to the corresponding approach of the referenced display towards the driver – could increases the salience of a warning. The general aim of this work is to understand the human factors of future communication-based collision warnings. Based on a theoretical analysis revealing the most relevant questions within that context, we conducted three driving simulator studies to understand the impact of AR warning design on the effectiveness of unreliable warnings about sight obstructed dangers. To consider not only short-term effectiveness, all studies contained several necessary as well as unnecessary warnings that were analyzed in detail. The first study with 88 participants investigated the benefit of prototypical AR warnings over unspecific warnings of different modalities (visual vs. auditory). Visual AR warnings showed advantages over the other warning designs in gaze and brake reaction times, passing speeds, collision rates and subjective evaluation. Auditory AR warnings did not reveal comparable effects. The second test with 80 participants examined the contribution of different design aspects of visual AR warnings. Adding specific warning symbols or scaling animations to the warnings showed some positive but rather inconsistent effects. In contrast, spatial referencing even of an unspecific warning symbol with AR consistently improved driver’s reactions and evaluations. A third experiment with 36 participants observed the differential effects of the spatial information per se and the coding of the information with AR. The warnings had either no spatial information, symbolically encrypted spatial information or AR encrypted spatial information. A higher amount of information consistently led to stronger brake reactions, higher trust and better subjective evaluation. Additionally, with AR encryption we observed faster fixations as well as brake reactions. The present research emphasizes the importance of specificity for warnings about hidden hazards and the potential of AR especially for in-vehicle warnings of future collision avoidance systems. The systematic analysis of psychological factors of warning design and the corresponding findings on their relative contribution to driver’s behavior might also be transferred to other domains and applications of warning and information design. / In naher Zukunft werden vernetzte Fahrzeuge bereits vor sichtverdeckten Gefahren warnen können, noch bevor diese für den Fahrer sichtbar sind. Da Sichtverdeckungen bei einem Großteil schwerer Verkehrsunfälle eine Rolle spielen, stellt dies ein großes Potenzial zur Erhöhung der Verkehrssicherheit dar. Unklar ist jedoch, wie die Mensch-Maschine- Schnittstelle solcher Systeme gestaltet werden sollte, um Autofahrer möglichst effektiv vor noch nicht sichtbaren Gefahren zu warnen. Insbesondere die Vorhersage, dass solche Systeme nur eine begrenzte Zuverlässigkeit haben werden, führt zu teilweise widersprüchlichen Anforderungen an Informationsmenge und Kodierung der Warnungen. Frühere Arbeiten haben gezeigt, dass Warnungen mit spezifischen Informationen über eine Gefahr einerseits Verständnis und Reaktionen der Fahrer auf die Warnungen verbessern, andererseits aber auch kognitiven Verarbeitungsaufwand und Reaktionszeiten erhöhen und ablenken können. Sowohl kognitionspsychologische Theorien als auch Studien aus unserem Forschungsgebiet deuten darauf hin, dass die Darstellungsprinzipien der erweiterten Realität (AR, für engl. augmented reality) das Potenzial bieten, die Effizienz solcher Warnungen durch eine optimierte Kodierung von Zusatzinformationen zu steigern. AR-Warnungen können inhärent die Position einer Gefahr übermitteln, ohne dass der Fahrer dazu eine abstrakte Repräsentation der Information auf die reale Umwelt übertragen muss. Das grundlegende Ziel der vorliegenden Arbeit besteht darin, die psychologischen Faktoren zukünftiger vernetzter Kollisionswarnungen zu verstehen. Ausgehend von der theoretischen Analyse relevanter psychologischer Theorien wurden wesentliche Implikationen und offene Fragestellungen abgeleitet. Zur Beantwortung dieser Fragen wurden drei Fahrsimulator- Studien durchgeführt, in denen der Einfluss von AR als Darstellungsprinzip auf die Effizienz begrenzt zuverlässiger Warnungen über sichtverdeckte Gefahren untersucht wurden. Um valide Aussagen über die längerfristige Wirksamkeit treffen zu können, wurden in den Versuchen sowohl notwendige als auch unnötige Warnungen betrachtet. Eine erste Studie mit 88 Teilnehmern untersuchte den Mehrwert prototypischer AR-Warnungen unterschiedlicher Modalität (visuell vs. auditiv) gegenüber unspezifischen Warnungen. Visuelle AR-Warnungen zeigten klare Vorteile bezüglich Blick- und Bremsreaktionen, Geschwindigkeiten, Kollisionszahlen und subjektiven Bewertungen. Auditive AR-Warnungen hingegen führten zu einzelnen positiven, jedoch auch einigen negativen Effekten. In der zweiten Studie mit 80 Teilnehmern wurden die Auswirkungen gestalterischer Teilaspekte visueller AR-Warnungen verglichen. Das Hinzufügen von spezifischen Warnsymbolen über Bewegungsrichtung und Typ der Gefahr oder einer Vergrößerungs-Animation mit gleicher zeitlicher Veränderung wie bei der AR-Warnung führte zu einzelnen positiven aber nicht konsistenten Effekten. Im Gegensatz dazu führten räumlich verortete AR-Warnungen erneut sowohl zu schnelleren und stärkeren Fahrerreaktionen als auch zu besseren subjektiven Bewertungen. In der dritten Studie mit 36 Teilnehmern wurden schließlich die individuellen Effekte der räumlichen Information an sich und der Codierung dieser Information mittels AR analysiert. Dazu wurden Warnungen ohne Information über die Position der Gefahr, mit symbolisch kodierter Information, sowie mit AR-kodierter Information verglichen. Der höhere Informationsgehalt führte zu durchgehend stärkeren Bremsungen, höherem Systemvertrauen und besseren subjektiven Bewertungen. Darüber hinaus ermöglichte die AR-Kodierung desselben Informationsgehalts der Warnungen sowohl schnellere Gefahrenentdeckung als auch kürzere Bremsreaktionszeiten. Insgesamt bestätigen die Ergebnisse der vorliegenden Arbeit einen deutlichen Mehrwert von spezifischen Informationen bei Warnungen vor sichtverdeckten Gefahren sowie das hohe Potenzial von AR als Darstellungsprinzip, insbesondere für Warnungen zukünftiger Kollisionsvermeidungssysteme. Die systematische Analyse der bei der Gestaltung von Warnungen relevanten psychologischen Faktoren sowie unsere empirischen Erkenntnisse zu deren relativen Einfluss auf das Nutzerverhalten können zudem auf Warnungen anderer Anwendungen und Domänen übertragen werden, und somit einen generellen Beitrag zur Vermeidung von Unfällen in Mensch-Maschine-Systemen liefern.
168

Simulátor provozu stanic s kmitočtovým skákáním a vyhýbáním se kolizí / Simulator of stations with frequency hopping and collision avoidance

Akkizová, Dinara January 2011 (has links)
The master's thesis aims to introduce and study the issue of frequency hopping with collsion avoidance (FH/CA). On this basis, design a computer program for simulating the operation of a radio systém FHCA, who works in the band used by other systems FH/CA . This simulation programm using MATLAB software to implement verify the correctness of programs. Use simulator to obtain date about the intensity of interference systems FH/CA for the chosen scenario. This work consists of five parts: the first part consists of describing the queuing system, the second part of the description of the radio frequency system with collision avoidence FH / CA, the third part of the description of the simulation model. The fourth part includes verification of the model in the fifth and last section inspects results are shown.
169

Conception d’un système d’alerte embarqué basé sur les communications entre véhicules / Conception of an embarked alarm system based on the communications between vehicles

Salameh, Nadeen 04 November 2011 (has links)
Récemment, dans la recherche automobile et dans le domaine des transports intelligents,plusieurs projets intéressants ont été menés afin de diminuer le nombre d’accidents. Lors du développement de ces projets, de nouveaux systèmes d’aide à la conduite ont été proposés,comme les systèmes de prévention de collision, d’aide à la vision de nuit et à la navigation.Ces études ont permis de proposer de nouvelles perspectives telles que les systèmes d’aide à la conduite coopératifs, en utilisant la communication entre les véhicules ou entre les véhicules et l’infrastructure basée sur les réseaux VANETs. Pour évaluer l’impact de systèmes ADAS sur l’amélioration de la sécurité routière et la réaction du conducteur, il est indispensable d’utiliser des outils flexibles et efficaces. Des métriques intéressantes sont ainsi proposées dans le but de tester la performance de ces systèmes. La plateforme LaRA qui est équipée de plusieurs capteurs et d’un système d’acquisition en temps réel nous a fourni une base de données réelles de position et de vitesse. Ces données sont traitées et analysées afin de calculer les métriques de performances tels que : la distance entre véhicules et le temps à collision. Nous avons proposé dans cette thèse une nouvelle méthodologie de développement pour le prototypage de systèmes ADAS. Cette méthodologie dédiée aux systèmes ADAS coopératifs, combine les données de plusieurs modules tels que : le module de vision, le module de communication V2V et le module de géo-localisation GPS. Un des problèmes majeurs des systèmes ADAS communicants concerne la qualité et la robustesse de la communication. Elle est fonction d’un grand nombre de paramètres qu’il faut modéliser pour pouvoir évaluer la fiabilité du système d’aide à la conduite.Nous proposons ainsi, un système de prototypage basé sur le principe de la réalité augmentée,dans lequel nous pouvons rejouer des données réelles et modifier des paramètres de l’environnement de communication. Nous avons mis en œuvre notre méthodologie avec la réalisation d’un système d’alerte coopératif entre les véhicules. Les données du système de géolocalisation GPS et les protocoles de routage ont été des éléments primordiaux pour la simulation du modèleV2V sous le simulateur ns-2. L’étape de la simulation du protocole avec les données réelles a été suivie par l’intégration des résultats de simulations dans le nouveau prototype développé sous RTMaps. La mise en œuvre du système d’alerte a permis d’estimer le nombre de pré-collisions détectées dans les deux situations réelle et simulée. L’écart entre ces deux dernières a été étudié et analysé pour plusieurs scénarios qui correspondent aux différentes situations routières. / During the last recent years, ADAS systems such as collision warning, tracking, night vision and navigation systems have been developed. The development of these systems has witness eda growing importance, as they are expected to help improving both road safety and traffic efficiency. More over, they have an ability to enhance the communication between the road infrastructure and the vehicle or between vehicles for safer and efficient transportation services such as : embedded advance collision, collision avoidance and automatic control. In addition,given the rapidly increasing interest in wireless communications, cooperative ADAS define anew framework of autonomous inter vehicular communication which operates on the assumption that such vehicles consist of a multitude of coordinated advanced sensory technologies.Sensors acquire real-time data about road conditions to help the driver respond effectively by sending appropriate messages between vehicles. In addition, these data help to assess the performance of ADAS in the context of improving driver behavior. It is necessary to set some main metrics such as inter-vehicle distance, driver reaction time and time to collision. The messages are transmitted to drivers using vehicular Ad-hoc networks (VANETs) which are a specific type of Mobile Ad-hoc Networks hold the promise to contribute to safe and more efficient roadways.In this thesis we proposed a new methodology of development to prototype ADAS. This methodology dedicated to cooperative ADAS drove us to implement a new simulated frameworkof prototyping system. This framework combines the data from three models : Geo-localizationGPS, vision and V2V communication towards an application of anti-collision warning system. A major problem in communicating ADAS systems is the quality and robustness of the communication.It depends on a large number of parameters that must be modeled to assess there liability of these systems. We developed a new prototyping system based on the principle ofaugmenting the reality in which we can replay actual data and change settings of communication environment. The GPS data and routing protocols were crucial elements for V2V model simulation into ns-2 simulator. We have performed real tests on the experimental prototyping platform LaRA. Multiple results are presented to show up the constancy of the method and the performance efficiency of real-time multi sensors in an integrated framework for collision avoidance applications. Results of this research have shown that IVCs simulations system provides enhanced data for the verification of features of new ADAS. The results of routing protocols simulation with real-time location data are integrated in the new developed prototype. The implementation of the system warning was used to estimate the number of pre-collisions detected in both real and simulated situations. The difference between these two situations was studied and analyzed for several scenarios corresponding to different road situations.
170

Warning Design for Connected Cars: A Psychological Analysis of the Potential of Augmented Reality

Schwarz, Felix 11 May 2017 (has links)
Future connected vehicles will be able to warn about hidden dangers already before they are visible for the driver. With sight obstructions as one of the most common factors of accident causation, there is a huge potential to improve traffic safety. However, it is unclear how to design the human-machine-interface of such systems to effectively warn drivers about invisible dangers. Especially the expectation that such warnings will be comparably unreliable lead to conflicting demands on amount and coding of warning information. Earlier work shows that warnings that contain more specific information about a hazard can improve drivers understanding of and responses to warnings but they can also raise processing costs and delay reactions or even distract drivers. Psychological theories as well as related research indicates that augmented reality (AR) has the potential to improve warning effectiveness through optimized coding of additional information. AR warnings can inherently transmit the location of a hazard and – due to the corresponding approach of the referenced display towards the driver – could increases the salience of a warning. The general aim of this work is to understand the human factors of future communication-based collision warnings. Based on a theoretical analysis revealing the most relevant questions within that context, we conducted three driving simulator studies to understand the impact of AR warning design on the effectiveness of unreliable warnings about sight obstructed dangers. To consider not only short-term effectiveness, all studies contained several necessary as well as unnecessary warnings that were analyzed in detail. The first study with 88 participants investigated the benefit of prototypical AR warnings over unspecific warnings of different modalities (visual vs. auditory). Visual AR warnings showed advantages over the other warning designs in gaze and brake reaction times, passing speeds, collision rates and subjective evaluation. Auditory AR warnings did not reveal comparable effects. The second test with 80 participants examined the contribution of different design aspects of visual AR warnings. Adding specific warning symbols or scaling animations to the warnings showed some positive but rather inconsistent effects. In contrast, spatial referencing even of an unspecific warning symbol with AR consistently improved driver’s reactions and evaluations. A third experiment with 36 participants observed the differential effects of the spatial information per se and the coding of the information with AR. The warnings had either no spatial information, symbolically encrypted spatial information or AR encrypted spatial information. A higher amount of information consistently led to stronger brake reactions, higher trust and better subjective evaluation. Additionally, with AR encryption we observed faster fixations as well as brake reactions. The present research emphasizes the importance of specificity for warnings about hidden hazards and the potential of AR especially for in-vehicle warnings of future collision avoidance systems. The systematic analysis of psychological factors of warning design and the corresponding findings on their relative contribution to driver’s behavior might also be transferred to other domains and applications of warning and information design. / In naher Zukunft werden vernetzte Fahrzeuge bereits vor sichtverdeckten Gefahren warnen können, noch bevor diese für den Fahrer sichtbar sind. Da Sichtverdeckungen bei einem Großteil schwerer Verkehrsunfälle eine Rolle spielen, stellt dies ein großes Potenzial zur Erhöhung der Verkehrssicherheit dar. Unklar ist jedoch, wie die Mensch-Maschine- Schnittstelle solcher Systeme gestaltet werden sollte, um Autofahrer möglichst effektiv vor noch nicht sichtbaren Gefahren zu warnen. Insbesondere die Vorhersage, dass solche Systeme nur eine begrenzte Zuverlässigkeit haben werden, führt zu teilweise widersprüchlichen Anforderungen an Informationsmenge und Kodierung der Warnungen. Frühere Arbeiten haben gezeigt, dass Warnungen mit spezifischen Informationen über eine Gefahr einerseits Verständnis und Reaktionen der Fahrer auf die Warnungen verbessern, andererseits aber auch kognitiven Verarbeitungsaufwand und Reaktionszeiten erhöhen und ablenken können. Sowohl kognitionspsychologische Theorien als auch Studien aus unserem Forschungsgebiet deuten darauf hin, dass die Darstellungsprinzipien der erweiterten Realität (AR, für engl. augmented reality) das Potenzial bieten, die Effizienz solcher Warnungen durch eine optimierte Kodierung von Zusatzinformationen zu steigern. AR-Warnungen können inhärent die Position einer Gefahr übermitteln, ohne dass der Fahrer dazu eine abstrakte Repräsentation der Information auf die reale Umwelt übertragen muss. Das grundlegende Ziel der vorliegenden Arbeit besteht darin, die psychologischen Faktoren zukünftiger vernetzter Kollisionswarnungen zu verstehen. Ausgehend von der theoretischen Analyse relevanter psychologischer Theorien wurden wesentliche Implikationen und offene Fragestellungen abgeleitet. Zur Beantwortung dieser Fragen wurden drei Fahrsimulator- Studien durchgeführt, in denen der Einfluss von AR als Darstellungsprinzip auf die Effizienz begrenzt zuverlässiger Warnungen über sichtverdeckte Gefahren untersucht wurden. Um valide Aussagen über die längerfristige Wirksamkeit treffen zu können, wurden in den Versuchen sowohl notwendige als auch unnötige Warnungen betrachtet. Eine erste Studie mit 88 Teilnehmern untersuchte den Mehrwert prototypischer AR-Warnungen unterschiedlicher Modalität (visuell vs. auditiv) gegenüber unspezifischen Warnungen. Visuelle AR-Warnungen zeigten klare Vorteile bezüglich Blick- und Bremsreaktionen, Geschwindigkeiten, Kollisionszahlen und subjektiven Bewertungen. Auditive AR-Warnungen hingegen führten zu einzelnen positiven, jedoch auch einigen negativen Effekten. In der zweiten Studie mit 80 Teilnehmern wurden die Auswirkungen gestalterischer Teilaspekte visueller AR-Warnungen verglichen. Das Hinzufügen von spezifischen Warnsymbolen über Bewegungsrichtung und Typ der Gefahr oder einer Vergrößerungs-Animation mit gleicher zeitlicher Veränderung wie bei der AR-Warnung führte zu einzelnen positiven aber nicht konsistenten Effekten. Im Gegensatz dazu führten räumlich verortete AR-Warnungen erneut sowohl zu schnelleren und stärkeren Fahrerreaktionen als auch zu besseren subjektiven Bewertungen. In der dritten Studie mit 36 Teilnehmern wurden schließlich die individuellen Effekte der räumlichen Information an sich und der Codierung dieser Information mittels AR analysiert. Dazu wurden Warnungen ohne Information über die Position der Gefahr, mit symbolisch kodierter Information, sowie mit AR-kodierter Information verglichen. Der höhere Informationsgehalt führte zu durchgehend stärkeren Bremsungen, höherem Systemvertrauen und besseren subjektiven Bewertungen. Darüber hinaus ermöglichte die AR-Kodierung desselben Informationsgehalts der Warnungen sowohl schnellere Gefahrenentdeckung als auch kürzere Bremsreaktionszeiten. Insgesamt bestätigen die Ergebnisse der vorliegenden Arbeit einen deutlichen Mehrwert von spezifischen Informationen bei Warnungen vor sichtverdeckten Gefahren sowie das hohe Potenzial von AR als Darstellungsprinzip, insbesondere für Warnungen zukünftiger Kollisionsvermeidungssysteme. Die systematische Analyse der bei der Gestaltung von Warnungen relevanten psychologischen Faktoren sowie unsere empirischen Erkenntnisse zu deren relativen Einfluss auf das Nutzerverhalten können zudem auf Warnungen anderer Anwendungen und Domänen übertragen werden, und somit einen generellen Beitrag zur Vermeidung von Unfällen in Mensch-Maschine-Systemen liefern.

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