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I am trying to truncate a decimal value in Python. I don't want to round it, but instead just display the decimal values upto the specified accuracy. I tried the following:

d = 0.989434
'{:.{prec}f}'.format(d, prec=2)

This rounds it to 0.99. But I actually want the output to be 0.98. Obviously, round() is not an option. Is there any way to do this? Or should I go back to the code and change everything to decimal?

Thanks.

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Hmmm not sure if there is a way to do this with string formatting. I'll do some research :) –  James Mills Dec 12 '13 at 13:30
    
More answers please. We definitely need more. –  RickyA Dec 12 '13 at 13:37
1  
This is not a decimal.Decimal, but a float –  Eric Dec 18 '13 at 19:19

11 Answers 11

up vote 5 down vote accepted

I am not aware of all your requirements, but this will be fairly robust.

>> before_dec, after_dec = str(d).split('.')
>> float('.'.join((before_dec, after_dec[0:2])))
0.98
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1  
after_dec[:2] is enough :) –  thefourtheye Dec 12 '13 at 13:31
    
It sure is, but I believe that convention makes more sense in the case where the the other side is unknown, i.e. a_list[3:] so I don't really pay much attention to [0:2] vs [:2], whichever comes out at the time is good enough :) –  Derek Litz Dec 12 '13 at 13:42
1  
Why did you accept this as the solution? :) I would find some of the math based solutions slightly more robust! –  James Mills Dec 12 '13 at 13:44
    
@James Mills The only not robust part is if there is no decimal place, and surely you can figure out how to deal with that :) –  Derek Litz Dec 12 '13 at 13:46
1  
Just curious is all :) I would use the Decimal or any of the other math-based solutions personally! I totally forgot that floating-point string formatting specifiers do rounding! :/ –  James Mills Dec 12 '13 at 13:48

You can use following code

import decimal
d = 0.989434

print decimal.Decimal(d).quantize(decimal.Decimal('.01'), rounding=decimal.ROUND_DOWN)
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Format it to something much longer and then cut off the extra digits:

def truncate(f, digits):
    return ("{:.30f}".format(f))[:-30+digits]
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1  
It's inefficient but the only answer here that doesn't seem to have broken edge-cases. –  Veedrac Dec 12 '13 at 13:29
import math

d = 0.989434
prec = 2
output = math.floor(d * (10 ** prec)) / (10 ** prec)

If you still want a decimal variable instead of string

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Note that for d = -0.989434 this prints -0.99 –  Eric Dec 18 '13 at 19:27
    
@Eric Yeah you are right! That comes from the definition of floor. Seems that better to use string formatting. :) –  Ray Dec 19 '13 at 2:43

This is the best way I believe.

  1. Move the significant digits to the left
  2. Truncate the decimal part
  3. Move the number of digits moved to left, to right

    d = 0.989434
    print "{0:0.2f}".format(int(d * 100)/100.0)
    

    Output

    0.98
    
share|improve this answer
d = 0.989434
print floor(d * 100) / 100

Math.floor(x) Return the floor of x as a float, the largest integer value less than or equal to x.

Moving the 2 decimals on the left of the decimal '.', flooring, then moving back the numbers on the right of the '.'

100 can be modifying by

n = 2
m = pow (10, n)
d = 0.989434
print floor(d * m) / m

n is your wanted precision.

EDIT: In case d is negative, you have to use the ceil method

if d < 0:
    print ceil(d * m) / m
else:
    print floor(d * m) / m
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1  
Note that for d = -0.989434 this prints -0.99 –  Eric Dec 18 '13 at 19:27
    
@Eric Thanks for noticing that, i edited my answer –  Marcassin Dec 20 '13 at 10:51

with str:

d = str(0.989434)
print float(d[:d.find('.')+3])
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The code below will print 0.98 in this case, though you'll have to be careful that your d value doesn't become larger than or equal to 10 as then it'll only print, for e.g., 10.1 rather than 10.12.

d = 0.989434
print '{:.{prec}s}'.format(str(d), prec=4)
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I gives me an error...Unknown format code 'f' for object of type 'str' –  visakh Dec 12 '13 at 13:30
    
Sorry yes I forgot to change the f to an s in the string formatting. Have edited it now. –  Ffisegydd Dec 12 '13 at 13:32

Also with math:

d = 0.989434
x = int(d * 100.0) / 100.0
print "{0:0.2f}".format(x)
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Yup...i want to avoid the rounding... –  visakh Dec 12 '13 at 13:27

Fairly similar to some other answers, but without any imports

def truncate(x, d):
    return int(x*(10.0**d))/(10.0**d)

>>>truncate(0.987654, 2)
0.98
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Pretty sure int(x*(10.0**d))/(10.0**d) would work just as well here –  Eric Dec 18 '13 at 19:26
    
You are absolutely right! Don't know why i did not see that :P With your permission i'll change or add it to the answer... –  Kraay89 Dec 19 '13 at 8:46
    
I'm not gonna stop you changing it! –  Eric Dec 20 '13 at 16:46

If you only need to display you can convert it to string and slice it :

d = 0.989434
print str(d)[0:4] #or print(str(d)[0:4])
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