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I'm trying to use the solution provided here

Instead of getting a dictionary, how can I get a string with the same output i.e. character followed by the number of occurrences

Example:d2m2e2s3

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3  
How do you want the string to be formatted? –  Amber May 6 '12 at 18:10
4  
What have you tried? –  Matt Ball May 6 '12 at 18:11
    
Can you explain the input and output? Are you trying to make string from the dictionary Out[25]: {'d': 2, 'f': 2, 'g': 2, 'q': 5, 'w': 3} –  shibly May 6 '12 at 18:14
    
I want the output as d2f2g2q5w3 –  TechacK May 6 '12 at 18:21

4 Answers 4

up vote 8 down vote accepted

To convert from the dict to the string in the format you want:

''.join('{}{}'.format(key, val) for key, val in adict.items())

if you want them alphabetically ordered by key:

''.join('{}{}'.format(key, val) for key, val in sorted(adict.items()))
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I want the letters followed by each time it has occurred in the original string in order. –  TechacK May 6 '12 at 18:33

Is this what you are looking for?

#!/usr/bin/python

dt={'d': 2, 'f': 2, 'g': 2, 'q': 5, 'w': 3}
st=""
for key,val in dt.iteritems():
    st = st + key + str(val)

print st

output: q5w3d2g2f2

Or this?

#!/usr/bin/python

dt={'d': 2, 'f': 2, 'g': 2, 'q': 5, 'w': 3}
dt=sorted(dt.iteritems())
st=""

for key,val in dt:
    st = st + key + str(val)

print st

output: d2f2g2q5w3

Example with join:

#!/usr/bin/python

adict=dt={'d': 2, 'f': 2, 'g': 2, 'q': 5, 'w': 3}
' '.join('{0}{1}'.format(key, val) for key, val in sorted(adict.items()))

output: 'd2 f2 g2 q5 w3'

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It's not the best variant because list comprehension and string concatenation with join is faster –  San4ez May 6 '12 at 18:34
    
I want the letters followed by each time it has occurred in the original string in order –  TechacK May 6 '12 at 18:45
    
Does the second code work? –  shibly May 6 '12 at 18:48
    
@San4ez, I have added the example with join too. –  shibly May 6 '12 at 18:51
>>> result = {'d': 2, 'f': 2, 'g': 2, 'q': 5, 'w': 3}
>>> ''.join('%s%d' % (k,v) for k,v in result.iteritems())
'q5w3d2g2f2'

or if you want them alphabetically...

>>> ''.join('%s%d' % (k,v) for k,v in sorted(result.iteritems()))
'd2f2g2q5w3'

or if you want them in increasing order of count...

>>> ''.join('%s%d' % (k,v) for k,v in sorted(result.iteritems(),key=lambda x:x[1]))
'd2g2f2w3q5'
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I want the letters followed by each time it has occurred in the original string in order –  TechacK May 6 '12 at 18:38

Once you have the dict solution, just use join to join them into a string:

''.join([k+str(v) for k,v in result.iteritems()])

You can replace the '' with whatever separater (including none) you want between numbers

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Output required is of type: d2m2e2s3 –  TechacK May 6 '12 at 18:25
    
Okay, I modified my answer to include the key (i.e. the letter) –  happydave May 6 '12 at 18:31
    
I want the letters followed by each time it has occurred in the original string in order –  TechacK May 6 '12 at 18:45

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