Quote (saber_x3 @ Aug 28 2013 01:41pm)
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to answer your earlier question, it never asked for the uncertainty of your avg, at least not in your sense
it wants the standard deviation
http://www.ndt-ed.org/GeneralResources/Uncertainty/Graphics/std-dev-eq.jpg
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for the multiplication parts use
remember to bring the "z" over to the right side
x,y,etc are your measured values
delta x,y,etc are your uncertainties
z= your answer , delta z= uncertainty of your answer
http://www.rit.edu/~w-uphysi/uncertainties/stdmult.gif
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and, i'd like to point out your uncertainties of .02,etc for the ruler and such
usually, your uncertainty is going to be one half of your most precise marking
so, taking a ruler usually measures to millimeters, then uncertainty is .0005 m, or .05 cm
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from
http://www.rit.edu/~w-uphysi/uncertainties/Uncertaintiespart2.htmlThat second part answered my question about uncertainties perfectly, thank you! With that said, I won't be needing that anymore due to the fact that I took your advice and adjusted all of my uncertainties to 0.05 cm. Thus, my averaged value is a hell of a lot easier to calculate, as the uncertainty will remain 0.05 throughout.
For the derivative part, would you be willing to take three of my data values and quickly show me how to calculate that value? I'm currently in Calculus, however, we haven't even started to cover these types of topics. I mainly just need to know where to plug things in.
If you do have the time and are willing to quickly show me how to take the standard derivative, here's my first three values and their average:
7.70 +/- 0.05 cm
7.70 +/- 0.05 cm
7.70 +/- 0.05 cm
Average:
7.70 +/- 0.05 cmThank you very much, though, for the assistance thus far!