10

I need to truncate decimal types without rounding & retain the decimal type, in the most processor efficient way possible.

The Math options I believe returns a float.

The quantize option returns a rounded number I believe.

Str options are way to processor costly.

Is there a simple, direct way to simply cut the digits off a decimal type past a specified decimal length?

4
  • Do you want to actually truncate the numeric value, or do you need a string representation of the value with a given number of digits?
    – mkrieger1
    Jan 7 '17 at 16:10
  • I need the end result to be a Decimal type. I don't want to convert in and out of str. I have hella lot of numbers to process. That would add too much to the processing time.
    – Emily
    Jan 7 '17 at 16:13
  • When you say decimal you mean decimal.Decimal? Jan 7 '17 at 16:26
  • If processing time is an issue: Are you sure you need Decimal? Or can you get away with floats (maybe using numpy), which is probably inherently faster?
    – mkrieger1
    Jan 7 '17 at 16:37
12

The quantize method does have a rounding parameter which controls how the value is rounded. The ROUND_DOWN option seems to do what you want:

  • ROUND_DOWN (towards zero)
from decimal import Decimal, ROUND_DOWN

def truncate_decimal(d, places):
    """Truncate Decimal d to the given number of places.

    >>> truncate_decimal(Decimal('1.234567'), 4)
    Decimal('1.2345')
    >>> truncate_decimal(Decimal('-0.999'), 1)
    Decimal('-0.9')
    """
    return d.quantize(Decimal(10) ** -places, rounding=ROUND_DOWN)
-1

To cut off decimals past (for example) the second decimal place:

from math import floor
x = 3.14159
x2 = floor(x * 100) / 100
-1

If I understand you correctly you can use divmod (it's a build-in function). It splits a number into integer and decimal parts:

>>> import decimal
>>> d1 = decimal.Decimal(3.14)
>>> divmod(d1, 1)[0]
Decimal('3')
>>> d2 = decimal.Decimal(5.64)
>>> divmod(d2, 1)[0]
Decimal('5')

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