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I am using the Decimal library in python, and printing out the values using format(value,'f') , where value is a Decimal. I get numbers in the form 10.00000, which refelcts the precision on the decimal. I know that float supports is_integer, but there seems to be a lack of a similar api for decimals. I was wondering if there was a way around this.

thanks

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up vote 9 down vote accepted

You could use the modulo operation to check if there is a non-integer remainder:

>>> Decimal('3.14') % 1 == 0
False
>>> Decimal('3') % 1 == 0
True
>>> Decimal('3.0') % 1 == 0
True
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this method does not work if a value is too big, it gives you decimal.InvalidOperation: quotient too large in //, % or divmod – sukhmel Dec 23 '15 at 14:07

Decimal does have a "hidden" method called _isinteger() that works kind of the like the float's is_integer() method:

>>> Decimal(1)._isinteger()
True
>>> Decimal(1.1)._isinteger()
Traceback (most recent call last):
  File "C:\Program Files (x86)\Wing IDE 4.1\src\debug\tserver\_sandbox.py", line 1, in <module>
    # Used internally for debug sandbox under external interpreter
  File "C:\Python26\Lib\decimal.py", line 649, in __new__
    "First convert the float to a string")
TypeError: Cannot convert float to Decimal.  First convert the float to a string

As you can see, you would have to catch an exception though. Alternatively, you could do the test on the value BEFORE you pass it to Decimal using the float's method as you mentioned or by using isinstance.

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Now the only issue i see , is_integer does not seem to work as i would expect. This might have to do with float representation. Conside this: num1 = 0.00002 – Pradyot Nov 13 '13 at 22:12
    
Yeah, I get a traceback about needing to convert the float into a string if I do that. Not sure why that's implemented that way. – Mike Driscoll Nov 13 '13 at 22:26
    
As of Python 2.7, Decimal instances can be constructed directly from floats. – unutbu Nov 13 '13 at 23:10

Try math.floor(val) == val or val == int(val).

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The int suggestion is good. math.floor is a poor choice because it relies on floats, which cannot accurately represent Decimals. And you even have to import a module just to get this inaccurate result. – John Y Nov 13 '13 at 22:00
1  
Yeah, now that I think about it the math version isn't the best idea. I'd just finished writing some math-intensive JavaScript when I wrote the answer, so the js Math object was still stuck in my brain. – willy Nov 13 '13 at 22:37
    
Using int(val) successfully. – jaywink Jan 22 at 7:54

The mathematical solution is to convert your decimal number to integer and then test its equality with your number.

Since Decimal can have an arbitrary precision, you should not convert it to int or float.

Fortunately, the Decimalclass has a to_integral_value which make the conversion for you. You can adopt a solution like this:

def is_integer(d):
    return d == d.to_integral_value()

Example:

from decimal import Decimal

d_int = Decimal(3)
assert is_integer(d_int)

d_float = Decimal(3.1415)
assert not is_integer(d_float)

See: http://docs.python.org/2/library/decimal.html#decimal.Decimal.to_integral_value

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Converting Decimal value to integer is right... but why can't you use int? Python transparently uses arbitrary-precision integers as necessary. – John Y Nov 13 '13 at 22:38
    
Yes, you can convert to arbritrary-precision integer, but I'm not sure it is more efficient than using to_integral_value(). – Laurent LAPORTE Nov 13 '13 at 22:44
    
You didn't mention anything about efficiency. You said int wouldn't be able to handle it. Until it's shown that int is too slow of a solution, there is no reason to bring up something more complicated. – John Y Nov 13 '13 at 22:55
    
Incidentally, on my machine, int is faster than to_integral_value. – John Y Nov 13 '13 at 22:56

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