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Suppose I have two numbers, v = 0.01342 and err = 0.0004. Under scientific notation, this would be written as (13.4 ± 0.4)e-3. Is there a function that does that conversion (probably on scipy)? Naturally, the important thing is the numbers and not the ± sign. Searching the web, I learned that there is (are?) function(s?) which eat a number to transform and a number of desired digit and they spit the result. This is not what I'm searching for. I've written once but it turned out to be quite ugly.

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2 Answers 2

I didn't understand what you meant by the last few lines, but when you have a specific output like yours, you usually have to write you own.

def sci_not(v,err,rnd=1):
    power = - int(('%E' % v)[-3:])+1
    return '({0} +/- {1})e{2}'.format(
            round(v*10**power,rnd),round(err*10**power,rnd),power)

This does the trick

>>> v = .01342
>>> err = .0004
>>> sci_not(v,err)
(13.4 +/- 0.4)e3

EDIT : You can put in the ± character if you make the string unicode, but the results only look pretty when you use a print statment.

Replace the previous return statement with

return u'({0} \u00B1 {1})e{2}'.format(
            round(v*10**power,rnd),round(err*10**power,rnd),power)

This returns

>>> sci_not(v,err)
u'(13.4 \xb1 0.4)e3'
>>> print sci_not(v,err)
(13.4 ± 0.4)e3
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I don't know if this is exactly what you're looking for, but you can display numbers in scientific notation using .format

v = 0.01342
err = 0.0004

print ('({:.2e}'.format(float(v)) + ' +/- ' + '{:.2e}'.format(float(err)) + ')')

Will output the following:

(1.34e-02 +/- 4.00e-04)

the .2 of {:.2e} specifies the precision, which prevents any overly ugly numbers

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The goal is to calculate the 2 in the {:.2e} via the function. There are about 80 of those I need to do. –  Yotam Jun 13 '13 at 14:17

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