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Yet Gassendi's definitive criterion for any physical, metaphysical, or epistemological thesis is approximation to the truth, which is empirically-determined.
For example, applying the explicit linear multistep method to differential equation (u'(t)=f u(t))), we have u_{n+1}=u_{n}+h bigl(c_{1}f u_{n})+c_{2}f(u_{n-1}) bigr), where h is stepsize and (u_{n}) is approximation to (u(t)) at (t_{n}).
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(Or at least they are approximations to those functions).
In any case, both of them are approximations to associated torsion problem (Vijayakumar 2011b).
But, as Sklar points out, what actually can be derived from the Newtonian theory are approximations to the laws of the reduced Galilean theory.
At the same time, many of these calculations are approximations to the calculations which would be performed first-hand in an ideal situation.
The models reviewed are approximations to these processes.
Thus, rate laws such as the popular Michaelis-Menten are approximations to the actual mechanism in specific conditions.
The Y i are considered to be approximations to the solution at the intermediate points t n + w i h for i = 1,... s.
The AIC and the BIC, two of the penalized error measures included in our range, are approximations to the log-evidence or log-marginal likelihood of the model.
Both fast/slow decompositions are approximations, however, to a system that evolves on three time scales.
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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