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The objective of the resulting non-convex NLP problem is the same as in Equation (20), however, subjected to different constraints, i.e. system dynamics in form of a nonlinear algebraic equation system and additional constraints (details see Supplementary Material).
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The practical answer to these constraints, detailed in this paper, proved to be reliable, appropriate and efficient.
The difference between each set is the length of each element, which was randomly selected within the constraints detailed in Table 6.
Subject to the scalability and interactivity constraints detailed above, we pursue the goal of maximizing the visual fidelity of the rendering system.
The length of the receptor sites or OBS (bold lines), the helix II (short crinkled lines), and the linkers (cf. Table 1) are randomised within the constraints detailed in Table 6.
This restriction is made necessary due to the difficulty in meeting the thermal constraints, further details are provided in the next section (Section 6.20.1).
The system will show the list of all the miRNAs which satisfy these constraints, with details about the involved targets.
Due to space constraints, the details of the case studies are described and discussed in Supplementary Material S7 S9.
However, it is almost universally agreed that, without similar space constraints, further details, particularly pertaining to pre-study planning, serum acquisition and post-venesection processing would be useful.
The search direction d k can be determined by solving a linear programming problem involving the gradient of the objective function and the active constraints (for details on this issue, it is referred to e.g. [71]).
According to the kinetics of the model (see also Methods), the reference curve of one variable, x1, was generated, and GA and PSO were applied to it to evaluate the effect of the introduction of DE constraints (see details in Additional File 2) into the objective function.
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CEO of Professional Science Editing for Scientists @ prosciediting.com