9

I have a program which deals with nested data structures where the underlying type usually ends up being a decimal. e.g.

x={'a':[1.05600000001,2.34581736481,[1.1111111112,9.999990111111]],...}

Is there a simple pythonic way to print such a variable but rounding all floats to (say) 3dp and not assuming a particular configuration of lists and dictionaries? e.g.

{'a':[1.056,2.346,[1.111,10.000],...}

I'm thinking something like pformat(x,round=3) or maybe

pformat(x,conversions={'float':lambda x: "%.3g" % x})

except I don't think they have this kind of functionality. Permanently rounding the underlying data is of course not an option.

2
  • how about running a loop like [floor(x*1000)/1000.0 for x in a] ? Aug 16, 2011 at 9:45
  • that only works for lists of numbers.
    – acrophobia
    Aug 16, 2011 at 9:51

3 Answers 3

5

This will recursively descend dicts, tuples, lists, etc. formatting numbers and leaving other stuff alone.

import collections
import numbers
def pformat(thing, formatfunc):
    if isinstance(thing, dict):
        return type(thing)((key, pformat(value, formatfunc)) for key, value in thing.iteritems())
    if isinstance(thing, collections.Container):
        return type(thing)(pformat(value, formatfunc) for value in thing)
    if isinstance(thing, numbers.Number):
        return formatfunc(thing)
    return thing

def formatfloat(thing):
    return "%.3g" % float(thing)

x={'a':[1.05600000001,2.34581736481,[8.1111111112,9.999990111111]],
'b':[3.05600000001,4.34581736481,[5.1111111112,6.999990111111]]}

print pformat(x, formatfloat)

If you want to try and convert everything to a float, you can do

try:
    return formatfunc(thing)
except:
    return thing

instead of the last three lines of the function.

3
  • Trying to make this function work - throws an error : TypeError: pformat() missing 1 required positional argument: 'formatfunc' May 8, 2019 at 18:45
  • 1
    This code is fixed by adding an argument on pformat(value, formatfunc)
    – jose_bacoy
    May 8, 2019 at 20:57
  • Thanks @âńōŋŷXmoůŜ for fixing that!
    – agf
    May 10, 2019 at 1:50
1

A simple approach assuming you have lists of floats:

>>> round = lambda l: [float('%.3g' % e) if type(e) != list else round(e) for e in l]
>>> print {k:round(v) for k,v in x.iteritems()}
{'a': [1.06, 2.35, [1.11, 10.0]]}
3
  • A lambda referring to itself by name is just wrong, this is what named functions or the y-combinator are for :). He also said the type "usually ends up being decimal" so I think sometimes they won't be floatable.
    – agf
    Aug 16, 2011 at 10:32
  • I'll leave it as an exercise to the reader to swap round = lambda l: ... with def round(l): return ... :D
    – zeekay
    Aug 16, 2011 at 10:34
  • But the y-combinator is awesome and there is never a reason to use it in Python!
    – agf
    Aug 16, 2011 at 10:36
0
>>> b = []
>>> x={'a':[1.05600000001,2.34581736481,[1.1111111112,9.999990111111]]}
>>> for i in x.get('a'):
        if type(i) == type([]):
            for y in i:
                print("%0.3f"%(float(y)))
        else:
            print("%0.3f"%(float(i)))


    1.056
    2.346
    1.111
    10.000

The problem Here is we don't have flatten method in python, since I know it is only 2 level list nesting I have used for loop.

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