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i have this code (printing the occurrence of the all permutations in a string)

def splitter(str):
    for i in range(1, len(str)):
        start = str[0:i]
        end = str[i:]
        yield (start, end)
        for split in splitter(end):
            result = [start]
            result.extend(split)
            yield result


el =[];

string = "abcd"
for b in splitter("abcd"):
    el.extend(b);

unique =  sorted(set(el));

for prefix in unique:
    if prefix != "":
        print "value  " , prefix  , "- num of occurance =   " , string.count(str(prefix));

i want to print all the permutation occurrence there is in string varaible.

since the permutaion aren't in the same length i want to fix the width and print it in a nice not like this one:

value   a - num of occurance =    1
value   ab - num of occurance =    1
value   abc - num of occurance =    1
value   b - num of occurance =    1
value   bc - num of occurance =    1
value   bcd - num of occurance =    1
value   c - num of occurance =    1
value   cd - num of occurance =    1
value   d - num of occurance =    1

how can i use format to do it?

i found these posts but it didn't go well with alphanumeric strings:

python string formatting fixed width

Setting fixed length with python

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1  
what about print '%10s' % 'mystring' –  TJD Dec 9 '11 at 19:14
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2 Answers

up vote 19 down vote accepted

EDIT 12.11.2013 - This answer is very old. It is still valid and correct, but people looking at this should prefer the new format syntax.

You can use string formatting like this:

>>> print '%5s' % 'aa'
   aa
>>> print '%5s' % 'aaa'
  aaa
>>> print '%5s' % 'aaaa'
 aaaa
>>> print '%5s' % 'aaaaa'
aaaaa

Basically:

  • the % character informs python it will have to substitute something to a token
  • the s character informs python the token will be a string
  • the 5 (or whatever number you wish) informs python to pad the string with spaces up to 5 characters.

In your specific case a possible implementation could look like:

>>> dict_ = {'a': 1, 'ab': 1, 'abc': 1}
>>> for item in dict_.items():
...     print 'value %3s - num of occurances = %d' % item # %d is the token of integers
... 
value   a - num of occurances = 1
value  ab - num of occurances = 1
value abc - num of occurances = 1

SIDE NOTE: Just wondered if you are aware of the existence of the itertools module. For example you could obtain a list of all your combinations in one line with:

>>> [''.join(perm) for i in range(1, len(s)) for perm in it.permutations(s, i)]
['a', 'b', 'c', 'd', 'ab', 'ac', 'ad', 'ba', 'bc', 'bd', 'ca', 'cb', 'cd', 'da', 'db', 'dc', 'abc', 'abd', 'acb', 'acd', 'adb', 'adc', 'bac', 'bad', 'bca', 'bcd', 'bda', 'bdc', 'cab', 'cad', 'cba', 'cbd', 'cda', 'cdb', 'dab', 'dac', 'dba', 'dbc', 'dca', 'dcb']

and you could get the number of occurrences by using combinations in conjunction with count().

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8  
You should perhaps mention that negative numbers give left-justified padded output; this is hardly intuitive for a beginner. –  tripleee Oct 14 '12 at 6:27
    
+1 for @tripleee, without your negative numbers give left-justified comment I would have been hitting my head longer... thx m8. –  Briford Wylie Jan 17 at 23:27
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I find using str.format much more elegant:

>>> '{0: <5}'.format('ss')
'ss   '
>>> '{0: <5}'.format('sss')
'sss  '
>>> '{0: <5}'.format('ssss')
'ssss '
>>> '{0: <5}'.format('sssss')
'sssss'

If you like the string to be align to the right use > instead of <:

>>> '{0: >5}'.format('ss')
'   ss'
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1  
Additionally, the 0 indicates the position of the format argument, so you can do two other things: '{<5}'.format('ss') 'ss ' just like before, but without the 0, does the same thing or 'Second {1: <5} and first {0: <5}'.format('ss', 'sss') 'Second sss and first ss ' so you can reorder or even output the same variable many times in a single output string. –  Mike Schmidt Dec 23 '13 at 17:59
1  
I can no longer edit the previous comment, which needs it. {<5} does not work, but {: <5} does work without the index value. –  Mike Schmidt Dec 23 '13 at 18:45
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