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The spectral performance of this structure is characterized by transfer matrix method calculations.
Since such integrated structures constitute a continued avenue of research, the manufacturing and performance of this structure is illustrated.
The experiments with the IMC implementation show the feasibility and performance of this structure in practical control problems.
Specifically, the photoluminescent performance of this structure is strongly influenced by the size and concentration of Au cores and the surfactant.
Design examples are given to demonstrate the performance of this structure and to compare it with the existing one and the classical minimum roundoff state-space realizations.
Moreover, we compare the performance of this structure with two other monolayer graphene based tunnelling field-effect transistors (GFETs) including gapless and finite band gap graphene across the source, channel and drain regions.
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The performance of this new structure and the famous normalized lattice structure are analyzed by deriving the corresponding expression for the roundoff noise gain.
The performance of this LASSO structure detection method was evaluated by using it to estimate the structure of a nonlinear polynomial model.
It can also be expected that, the thermal performance of this compound structure can be even improved after a denser arrangement of dimple/protrusion structure and optimal shape design.
To evaluate the performance of this control structure, we quantified its degree of controllability and stability (Fig. 5b).
Numerical tests on the performance of this adaptive structure were carried out on a bank of 500 simulated standard PK/PD models.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com