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While this approximation is correct for small δ γ, the simulations (see Figures 2, 3, 5, and 6) show that the estimator is more sensitive to negative errors in the PLE.
The following asymptotic Porod approximation is correct for the slit collimation system: ln s 4 I s = ln K p + σ 2 s 2, describing the behavior of the scattering intensity curves for large s.
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The previous approximation is correct even for low n.
This approximation is correct only if the transducer is open-circuit.
Also note, that for this approximation the Kohn theorem is well generalized, this proves that such approximation is correct, the experimental verification is provided in Ref. [13].
Here, we have shown that despite the approximations and simplification made, the theory is correct for the LETs typically found in clinical radiotherapy employing particles from protons to carbon ions.
The negative charges are supposed to form a fixed 'background charge', which is correct for the semiconductor but is an approximation for the electrolyte.
The chi-square approximation is asymptotically correct for large samples.
Jernigan and Baran suggested, as a first approximation, that the dissimilarity between a genomic sequence and its host genome be corrected for the length of the sequence: log(delta*_norm) = log(delta*) -0.5 log(length).
Data were corrected for pCO2.
Values were corrected for recovery.
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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