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Self explanatory, I want to get 1324343032.324

As you can see below, the following do not work:

>>1324343032.324325235 * 1000 / 1000
1324343032.3243253
>>int(1324343032.324325235 * 1000) / 1000.0
1324343032.3239999
>>round(int(1324343032.324325235 * 1000) / 1000.0,3)
1324343032.3239999
>>str(1324343032.3239999)
'1324343032.32'
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2  
There is no such value in the set that are represented by floating-point numbers. –  Karl Knechtel Dec 21 '11 at 20:55
1  
In case Karl's comment is not clear enough: There is no such number as 1324343032.324 in binary floating point. If you switch to a higher version of Python (2.7 or 3.1 or later) the interpreter will display 1324343032.324 for you. But in actuality, the number you are computing with is neither 1324343032.324 nor 1324343032.3239999 regardless of Python version. The only way to get exactly 1324343032.324 is to use the decimal module or some other arbitrary-precision math library, such as gmpy. –  John Y Dec 21 '11 at 23:14

5 Answers 5

up vote 8 down vote accepted

'%.3f'%(1324343032.324325235)

Use an additional float() around it if you want to preserve it as a float.

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I dont want to print it...I want to store it –  SuperString Dec 21 '11 at 20:33
1  
This is basically the correct answer, just use val = '%.3f'%(1324343032.324325235) instead of print. –  David H. Clements Dec 21 '11 at 20:37
    
Edited. You can print it, save it, whatever. –  Abhranil Das Dec 21 '11 at 20:41
    
Except that this is the same value that the OP already had (namely, 1324343032.3239999). –  John Y Dec 21 '11 at 22:58
    
I understand. But I think the question here was a simple truncation. Since @SuperString used str() in one of his attempts, I assumed he was just looking for a truncated display. –  Abhranil Das Dec 22 '11 at 20:35

Almo's link explains why this happens. To solve the problem, use the decimal library.

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Use the decimal module. But if you must use floats and still somehow coerce them into a given number of decimal points converting to string an back provides a (rather clumsy, I'm afraid) method of doing it.

>>> q = 1324343032.324325235 * 1000 / 1000
>>> a = "%.3f" % q
>>> a
'1324343032.324'
>>> b = float(a)
>>> b
1324343032.324

So:

float("%3.f" % q)
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1  
It's good that you mentioned the decimal module first, because that is the only fully correct answer. One thing to be a little careful of with the rest is that b in your example will be displayed as 1324343032.3239999 on versions of Python before 2.7. And indeed, this is the value that OP is seeing when he tries. Of course, both values are indistinguishable, in terms of binary floating point. –  John Y Dec 21 '11 at 22:56

How about this:

In [1]: '%.3f' % round(1324343032.324325235 * 1000 / 1000,3)
Out[1]: '1324343032.324'

Possible duplicate of round() in Python doesn't seem to be rounding properly

[EDIT]

Given the additional comments I believe you'll want to do:

In : Decimal('%.3f' % (1324343032.324325235 * 1000 / 1000))
Out: Decimal('1324343032.324')

The floating point accuracy isn't going to be what you want:

In : 3.324
Out: 3.3239999999999998

(all examples are with Python 2.6.5)

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Google turned up this discussion, which I think answers the question:

http://bytes.com/topic/python/answers/503265-how-truncate-round-off-decimal-numbers

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so impossible?? –  SuperString Dec 21 '11 at 20:36
    
@SuperString: If you must stick with floats, then yes, it's impossible. And it is equally impossible in virtually all programming languages. See my comment to your question. –  John Y Dec 21 '11 at 23:18

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