1

I have the following dictionary and I need to print only the ones with odd numbers (1, 3 ...). How would I go about doing that?

zen = {
    1: 'Beautiful is better than ugly.',
    2: 'Explicit is better than implicit.',
    3: 'Simple is better than complex.',
    4: 'Complex is better than complicated.',
    5: 'Flat is better than nested.',
    6: 'Sparse is better than dense.',
    7: 'Readability counts.',
    8: 'Special cases aren't special enough to the rules.',
    9: 'Although practicality beats purity.',
   10: 'Errors should never pass silently.'
   }

So far I have:

for c in zen:
print (c , zen[c][:])
  • You can do c % 2 to give you the remainder of c divided by 2, and if c%2 equals 0 then c must be even. – Ruzihm Sep 19 '18 at 3:42
  • The trick here is that since zen is a dictionary, an enumeration of the dictionary will be unordered, so if you want them to be ordered (1, 3, 5...), you'll need to generate the keys yourself. Try, for i in range(1,10,2): print(zen[i]) (And, by the way, the math word for uneven is "odd".) – tom10 Sep 19 '18 at 3:55
  • @tom10 Wow! We got the same answer at almost the exact same time. – teclnol Sep 19 '18 at 3:57
  • @teclnol: Well, yours is an answer and mine just a lazy comment (so I gave the answer an upvote). – tom10 Sep 19 '18 at 3:58
5

If your keys are numbers:

for i in range(1,len(zen),2):
    print(zen[i])

It starts at 1, and steps by 2, so it i will only do odds

Another, shorter way is list comprehension, it is a bit unusual however, as you really don't need the list.

[print(zen[i]) for i in zen if i%2==1]

  • 2
    the list comprehension solution is safer since youre only traversing existing keys. Should the dictionary miss any numerical keys, the first solution would error out – Danilo Souza Morães Sep 19 '18 at 4:16
  • What does len(zen) do in this case? Thanks for your help! – rockymountain Sep 20 '18 at 0:17
  • len(zen) says how many pairs are in the dictionary, basically it iterates up until that point. – teclnol Sep 20 '18 at 0:52
0

Assuming your keys are integers, you can iterate over the keys and drop those not of interest for you:

for key in zen.keys():    # iterate over all keys of zen
    if key % 2:           # if reminder of dividing by 2 is non-zero, this is True
        print(zen[key])   # print value of zen[key]

As a matter of fact, iteration over a dictionary iterates over its keys, hence:

for key in zen:           # iterate over all keys of zen
    if key % 2:           # if reminder of dividing by 2 is non-zero, this is True
        print(zen[key])   # print value of zen[key]

Now be aware that dict are actually not guaranteeing any specific order. So if you wanted the values to be printed order of numeric key sort:

for key in sorted(zen):
    ...

When we pass dict to sorted(), we get list of zen treated as iterable (i.e. sorted list of its keys).

You can do compact this a but by using a generator expression. If you want these sorted, you can sort place sorted() around the generator:

for key in (k for k in zen if k % 2):
    print(zen[key])

Or, if you wanted these sorted, you'd place sorted() around zen:

for value in (zen[k] for k in zen if k % 2):
    print(value)

Couple side notes:

Your example zen has a broken string literal: 'Special cases aren't special enough to the rules.' If it includes single quotes, use double quotes on the outside (or escape that quote): "Special cases aren't special enough to the rules." or 'Special cases aren\'t special enough to the rules.'. This next one is not syntactically incorrect, but would be flagged by a linter. Normally the left indent is aligned on beginning of the line text, not on a character later on that line (like :).

And of course it should be mentioned, this is a bit of an odd bunch of data. If this was supposed to be an indexed list, then a list would make more sense and be easier to use, because you could also slice. I guess if you knew there were no gaps in keys, worked with the sorted option, you could still to that (in this case assuming first key is odd), but that's a bit besides the point:

for key in sorted(zen)[::2]:
    print(zen[key])
0

A even number % 2 will return 0 , False so we can use if i % 2 and all odds return a value that will evaluate to True

[print(zen[i]) for i in zen if i % 2]
(xenial)vash@localhost:~/python/stack_overflow$ python3.7 odd.py
Beautiful is better than ugly.
Simple is better than complex.
Flat is better than nested.
Readability counts.
Although practicality beats purity.

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