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Selected papers from the 2nd International Symposium on UAVs, Reno, U.S.A. June 8-10, 2009 (Hardcover, 2010 ed.): Kimon P.... Selected papers from the 2nd International Symposium on UAVs, Reno, U.S.A. June 8-10, 2009 (Hardcover, 2010 ed.)
Kimon P. Valavanis, Randal Beard, Paul Oh, Anibal Ollero, Leslie A. Piegl, …
R5,825 Discovery Miles 58 250 Ships in 10 - 15 working days

In the last decade, signi?cant changes have occurred in the ?eld of vehicle motion planning, and for UAVs in particular. UAV motion planning is especially dif?cult due to several complexities not considered by earlier planning strategies: the - creased importance of differential constraints, atmospheric turbulence which makes it impossible to follow a pre-computed plan precisely, uncertainty in the vehicle state, and limited knowledge about the environment due to limited sensor capabilities. These differences have motivated the increased use of feedback and other control engineering techniques for motion planning. The lack of exact algorithms for these problems and dif?culty inherent in characterizing approximation algorithms makes it impractical to determine algorithm time complexity, completeness, and even soundness. This gap has not yet been addressed by statistical characterization of experimental performance of algorithms and benchmarking. Because of this overall lack of knowledge, it is dif?cult to design a guidance system, let alone choose the algorithm. Throughout this paper we keep in mind some of the general characteristics and requirements pertaining to UAVs. A UAV is typically modeled as having velocity and acceleration constraints (and potentially the higher-order differential constraints associated with the equations of motion), and the objective is to guide the vehicle towards a goal through an obstacle ?eld. A UAV guidance problem is typically characterized by a three-dimensional problem space, limited information about the environment, on-board sensors with limited range, speed and acceleration constraints, and uncertainty in vehicle state and sensor data.

Selected papers from the 2nd International Symposium on UAVs, Reno, U.S.A. June 8-10, 2009 (Paperback, 2010 ed.): Kimon P.... Selected papers from the 2nd International Symposium on UAVs, Reno, U.S.A. June 8-10, 2009 (Paperback, 2010 ed.)
Kimon P. Valavanis, Randal Beard, Paul Oh, Anibal Ollero, Leslie A. Piegl, …
R5,773 Discovery Miles 57 730 Ships in 10 - 15 working days

In the last decade, signi?cant changes have occurred in the ?eld of vehicle motion planning, and for UAVs in particular. UAV motion planning is especially dif?cult due to several complexities not considered by earlier planning strategies: the - creased importance of differential constraints, atmospheric turbulence which makes it impossible to follow a pre-computed plan precisely, uncertainty in the vehicle state, and limited knowledge about the environment due to limited sensor capabilities. These differences have motivated the increased use of feedback and other control engineering techniques for motion planning. The lack of exact algorithms for these problems and dif?culty inherent in characterizing approximation algorithms makes it impractical to determine algorithm time complexity, completeness, and even soundness. This gap has not yet been addressed by statistical characterization of experimental performance of algorithms and benchmarking. Because of this overall lack of knowledge, it is dif?cult to design a guidance system, let alone choose the algorithm. Throughout this paper we keep in mind some of the general characteristics and requirements pertaining to UAVs. A UAV is typically modeled as having velocity and acceleration constraints (and potentially the higher-order differential constraints associated with the equations of motion), and the objective is to guide the vehicle towards a goal through an obstacle ?eld. A UAV guidance problem is typically characterized by a three-dimensional problem space, limited information about the environment, on-board sensors with limited range, speed and acceleration constraints, and uncertainty in vehicle state and sensor data.

Distributed Consensus in Multi-vehicle Cooperative Control - Theory and Applications (Paperback, Softcover reprint of hardcover... Distributed Consensus in Multi-vehicle Cooperative Control - Theory and Applications (Paperback, Softcover reprint of hardcover 1st ed. 2008)
Wei Ren, Randal Beard
R5,210 Discovery Miles 52 100 Ships in 10 - 15 working days

Assuming only neighbor-neighbor interaction among vehicles, this monograph develops distributed consensus strategies that ensure that the information states of all vehicles in a network converge to a common value. Readers learn to deal with groups of autonomous vehicles in aerial, terrestrial, and submarine environments. Plus, they get the tools needed to overcome impaired communication by using constantly updated neighbor-neighbor interchange.

Distributed Consensus in Multi-vehicle Cooperative Control - Theory and Applications (Hardcover, 2008 ed.): Wei Ren, Randal... Distributed Consensus in Multi-vehicle Cooperative Control - Theory and Applications (Hardcover, 2008 ed.)
Wei Ren, Randal Beard
R5,241 Discovery Miles 52 410 Ships in 10 - 15 working days

Assuming only neighbor-neighbor interaction among vehicles, this monograph develops distributed consensus strategies that ensure that the information states of all vehicles in a network converge to a common value. Readers learn to deal with groups of autonomous vehicles in aerial, terrestrial, and submarine environments. Plus, they get the tools needed to overcome impaired communication by using constantly updated neighbor-neighbor interchange.

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