ON THE UNIQUENESS OF TIME-OPTIMAL CONTROL FOR LINEAR PROCESSES
Uniqueness of time-optimal control for linear processes
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Uniqueness of time-optimal control for linear processes
Optimal cost discounted stochastic control for diffusion processes
Optimization for automatic control of chemical catalysts and distillation processes
Space vehicle, stochastic process, and bounded phase-coordinate process optimal control problems in attitude control system optimization study
Time optimal control of soft spring showing switching locus changes
Time optimal control for nonlinear second order system containing positive parameter and measurable control function
Optimization of 24-hour communication satellite orbital control process
Optimization of stochastic control processes with respect to probability of entering target manifold in specific time interval
Application of dynamic programming to optimizing the orbital control process of a 24-hour communications satellite
Application of dynamic programming to optimizing the orbital control process of a 24-hour communications satellite
Optimal control processes in systems with distributed parameters, and problems of invariance theory
Dynamic programming to optimize orbital control in a 24-hour communication satellite
Processes and applications of calculus of variations in optimal control theory
The guide is intended as a resource to aid engineers and systems contracts in the design, implementation, and operation of metrology, calibration, and measurement systems, and to assist NASA personnel in the uniform evaluation of such systems supplied or operated by contractors. Methodologies and techniques acceptable in fulfilling metrology quality requirements for NASA programs are outlined. The measurement process is covered from a high level through more detailed discussions of key elements within the process, Emphasis is given to the flowdown of project requirements to measurement system requirements, then through the activities that will provide measurements with defined quality. In addition, innovations and techniques for error analysis, development of statistical measurement process control, optimization of calibration recall systems, and evaluation of measurement uncertainty are presented.
Marketed as the "Software of the Future," Optimal Engineering Systems P.I. EXPERT(TM) technology offers statistical process control and optimization techniques that are critical to businesses looking to restructure or accelerate operations in order to gain a competitive edge. Kennedy Space Center granted Optimal Engineering Systems the funding and aid necessary to develop a prototype of the process monitoring and improvement software. Completion of this prototype demonstrated that it was possible to integrate traditional statistical quality assurance tools with robust optimization techniques in a user- friendly format that is visually compelling. Using an expert system knowledge base, the software allows the user to determine objectives, capture constraints and out-of-control processes, predict results, and compute optimal process settings.
Typically, structural topology optimization problems undergo relaxation of certain design parameters to allow the existence of intermediate variable optimum topologies. Relaxation permits the use of a variety of gradient-based search techniques and has been shown to guarantee the existence of optimal solutions and eliminate mesh dependencies. This Technical Publication (TP) will demonstrate the application of relaxation to a control point discretization of the design workspace for the structural topology optimization process. The control point parameterization with subdivision has been offered as an alternative to the traditional method of discretized finite element design domain. The principle of relaxation demonstrates the increased utility of the control point parameterization. One of the significant results of the relaxation process offered in this TP is that direct manufacturability of the optimized design will be maintained without the need for designer intervention or translation. In addition, it will be shown that relaxation of certain parameters may extend the range of problems that can be addressed; e.g., in permitting limited out-of-plane motion to be included in a path generation problem.
Time optimal control of bounded phase coordinate problem associated with large booster autopilot design, noting oscillatory system with two control inputs
Stochastic maximum principle with averaged constraint developed for control problems affected by stochastic process