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To study the growth behavior of this method experimentally, various pulse times of trimethylindium supply were used to get the optimal indium bilayer controlling by metalorganic vapour phase epitaxy.
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Numerical examples illustrating the behavior of the method are presented.
Under suitable conditions on the behavior of the method, we establish global and local convergence properties.
Several test problems are computed to both verify and display the behavior of the method.
Numerical examples are presented which illustrate the behavior of the method.
We study the behavior of the method on a non linear scalar problem.
In fact, one expects a phase transition in the behavior of the method as n crosses a critical threshold n⋆ given by the inequality.
This allowed us to examine the behavior of the methods under known outcomes and revealed serious deficiencies in the correlation and concordance approach.
Due to this lack of theoretical guarantees and the stochastic behavior of these methods, one must resort to empirical tuning and performance assessments.
The experiments were designed with emphasis on the evaluation of the "scaffold-hopping" behavior of the methods.
Additionally, each cluster can be seen as an individual chemotype and allows the analysis of the "scaffold-hopping" behavior of the methods.
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CEO of Professional Science Editing for Scientists @ prosciediting.com