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Consider a linear discrete-time model given with the state-space equations begin{array}rcl@ mathbf{x}_{k} & = & mathbf{A}mathbf{x}_{k-1}+mathbf{B}mathbf{w}_{k},, end{array} (1).
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We assessed this hypothesis using the linear model given above with only N2 and MA24 included.
The nullclines for the model given in (1), with nominal parameter values, are depicted in Figure 2A.
I know it's very straightforward with the Hodgkin-Huxley model given a hyperpolarizing pulse with a suitably long duration.
These features are consistent with the Coles and Sparks (2006) model, given in (4) above, with a value of b>1.
With the model given by molecular replacement, a rigid body refinement was carried out at 3.5 Å resolution.
They also were able to reproduce OL responses with this model given enough fibers.
Finally, an energy-based fatigue model is given with modifying of the original energy-type damage parameter.
Odds ratios of variables present in the final model are given with their 95% confidence intervals.
Model as given, with t4-distributed error terms (this is Student's t-distribution with 4 degrees of freedom [21]) on the consumer isotope values, as well as t4-distributed sources and correction values.
Clearly, it is impossible to examine all possible scenarios; the 3 we consider are: Model as given, with normally distributed error term εij, as well as normally distributed sources and correction values.
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Since I tried Ludwig back in 2017, I have been constantly using it in both editing and translation. Ever since, I suggest it to my translators at ProSciEditing.

Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com