8

I tried this code using the decimal standard library module:

>>> from decimal import *
>>> getcontext().prec = 6
>>> Decimal(22)/Decimal(7)
Decimal('3.14286')

It appears to have rounded the value to the nearest representable one.

How can I make it truncate instead, to give a result of 3.14285?

4
  • nothing is rounded in Decimal... its just the print ... you can do "{0:0.6f}".format(Decimal(22)/Decimal(7)) at least as far as i understand without testing ... Commented Sep 12, 2012 at 5:43
  • 3
    @JoranBeasley: you are absolutely wrong. Decimal does round (or truncate, depending on the behaviour you specify in the context). That's what the precision value is for. Try '{:.50f}'.format(Decimal(22)/Decimal(7)) and see all those zeroes at the end. Commented Sep 12, 2012 at 5:57
  • ok thanks for correcting me :) ... sorry for any confusion my comment may have caused Commented Sep 12, 2012 at 6:18

1 Answer 1

12

Just like you specify precision using the Decimal context you can also specify rounding rules.

from decimal import *

getcontext().prec = 6 
getcontext().rounding = ROUND_FLOOR

print Decimal(22)/Decimal(7)

the result will be

3.14285

http://docs.python.org/release/3.1.5/library/decimal.html#decimal.Context

2
  • Thank you very much! Never occured to me search for 'floor' haha! Commented Sep 12, 2012 at 6:01
  • 4
    If you only want to change the context for this part of code, a with localcontext() as ctx: ctx.prec=6; ctx.rounding = ROUND_FLOOR; print Decimal(22)/Decimal(7) could be helpful.
    – glglgl
    Commented Sep 12, 2012 at 6:34

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