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Firstly, a self feeding based procedure is proposed with the intention of being a fast method to be used as a first estimate of suitable process parameters.
An improved response surface based procedure is proposed by combining it with the First-Order Reliability Method (FORM) and the appropriate response surfaces are constructed by combining the saturated design and the central composite design sampling schemes.
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An improved flow-based procedure is proposed for turbidimetric sulphate determination in waters.
Second, a new matrix-based procedure is proposed to calculate the sensitivities of system reliability with respect to parameters.
A two-step regression-based procedure is proposed to identify the nonlinear physical parameters of the isolation system.
A new linear matrix inequality (LMI -based procedure is proposed for designing state-feedback controLMI -basedch would guarantee that the closed-looprocedureed system wish stochastic samproposedacks the output ofor given reference modesigningin the sense of H∞.
A genetic algorithm based solution procedure is proposed to solve the sub-problem efficiently.
The novel robust stability condition in the form appropriate for convexification is developed and the respective LMI based design procedure is proposed.
The effects of the undrained shear strength profile, reinforcement stiffness and soil viscosity on embankment performance under working stress conditions are explored and a new limit equilibrium based design procedure is proposed.
An LMI based observer synthesis procedure is proposed to increase the closed loop system performance.
The proposed analytically numerically based procedure is employed for numerical computation of mesoscopic stress distributions in short fibers.
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