7

I have dictionary that look like

d= {(1, 8): 94.825000000000003, (2, 8): 4.333}

I am trying to apply a function to round all the values.

I don't wanna re-create the dictionary.

newD= {}
for x,y in d.iteritems():
   newD+= {x:round(y)}

Is there any pythonic-way to apply round function on all values ?

  • 1
    your example doesn't actually work, also it seems like you are recreating the dictionary by making newD correct me if i'm wrong – jamylak Dec 17 '14 at 4:01
  • It's not a duplicate. This is different – user3378649 Dec 17 '14 at 4:18
7

This is a little more convoluted, but you did ask for a 'pythonic-way' ;)

newD = {k:round(v) for k, v in d.items()}

However, this dictionary comprehension will only work on 2.7+. If using an older version of Python, try this more convoluted way:

newD = dict(zip(d.keys(), [round(v) for v in d.values()]))

Let me unpack this a little bit:

  • We are beginning by reassigning the new dictionary (d) object back to a new dictionary as requested (although you could easily assign it to the same name)
  • The outer dict() ensures the final result is a dictionary object
  • zip() returns a list of tuples, where the i-th tuple contains the i-th element from each of the argument sequences
  • The first argument sequence given to zip() is the dictionary keys (d.keys())
  • The second argument sequence given to zip() is the rounded values after a list comprehension
  • The list comprehension rounds each value in the dictionary values and returns a list of the rounded values
  • 1
    Or you could just write d = {k:round(v) for k, v in d.items()}, but the question explicitly stated "I don't wanna re-create the dictionary." – fjarri Dec 17 '14 at 4:27
  • @Bogdan good point, updated. Thanks! – Dan Dec 17 '14 at 4:29
  • elegant solution @Dan – user3378649 Dec 17 '14 at 4:35
  • 1
    I'm sorry this is not an elegant solution at all and definitely not pythonic. en.wikipedia.org/wiki/Obfuscation_%28software%29 The 2nd code is perfectly fine though – jamylak Dec 17 '14 at 7:14
6

You could try something like this:

for k, v in d.iteritems():
    d[k] = round(v)

It will do an in-place rounding of all of the items in the dictionary. In this particular example it will work perfectly, however be careful - all normal caveats of using the round function apply.

  • you are rounding one of the dictionary key tuple members, how can this be the answer? – jamylak Dec 17 '14 at 4:02
  • @jamylak I'm sorry, I don't understand your question? I iterate through every key, value pair in the dictionary, calculate a new value and replace the old on in the dictionary. – Vikram Saran Dec 17 '14 at 4:05
  • No you aren't, you are just iterating keys. Try print k, v in your loop – jamylak Dec 17 '14 at 4:05
  • @jamylak - bah! You're right, I didn't add .iteritems(). Editing response now – Vikram Saran Dec 17 '14 at 4:09
  • Your answer isn't wrong now but I don't know if this is what OP wants, the question is very unclear – jamylak Dec 17 '14 at 4:11

Not the answer you're looking for? Browse other questions tagged or ask your own question.