0

I'm learning python and recently I was challenged by an exercise to compress a string. The input goes like 'aaaabbcccca' the output has to be 'a4b2c4a1'. I did it, but I have a feeling that my solution is rather clumsy. I would like to know, what would be your answer to the task. My code is:

a = input()
l = int(len(a))
c = int()
b = str()
i = 0
while c <l:
    if a[i] == a[c]:
        c += 1
    else:
        b += (a[i] + str(c-i))
        i = c
b += (a[i] + str(c-i))
print(b)
1

Here is an alternative one(ish) liner:

import itertools

a = "aaaabbcccca"
print "".join(["%s%u" % (g[0], len(g)) for g in [list(g) for k,g in itertools.groupby(a)]])

Which prints:

a4b2c4a1

To see how this works, you can split the line up into its components to get:

groups = [list(g) for k,g in itertools.groupby(a)]
print groups

lengths = ["%s%u" % (g[0], len(g)) for g in groups]
print lengths

print "".join(lengths)

This prints the following:

[['a', 'a', 'a', 'a'], ['b', 'b'], ['c', 'c', 'c', 'c'], ['a']]
['a4', 'b2', 'c4', 'a1']
a4b2c4a1

Alternatively you could make use of k and g at the same time:

print "".join(["%s%u" % (k, len(list(g))) for k,g in itertools.groupby(a)])
  • Thank you for explanation of the code. There is one thing still not clear for me. What 'k' stands for in 'groups = [list(g) for k,g in itertools.groupby(a)]' – Oromay Jul 14 '15 at 21:32
  • If the look up the Python documentation for itertools.groupby(), they call it k for key, and g for group. So k would be 'a' and g would end up being 'aaaa'. – Martin Evans Jul 14 '15 at 21:44
0

Out of my head I would do it in a similar way:

s = 'aaaabbcccca'
out = ''
c = 1

for i in range(len(s)):
    if i < len(s)-1 and s[i] == s[i+1]:
        c += 1
    else:
        out += s[i] + str(c)
        c = 1
print out

But I guess I on the page provided by Vogel612 there are a lot more examples, this one is a nice to mention.

I modified the example from there (which uses itertools.groupby) to match your input string:

>>> from itertools import groupby
>>> src = 'aaaabbcccca'
>>> print ''.join([a + str(b) for a, b in [(k, sum(1 for _ in g)) for k,g in groupby(src)]])
a4b2c4a1

A neat one liner :-)

  • Thank you for your comment! I like your the first variant as it's clear and simpler than mine. The second uses methods which I'm not aware of. – Oromay Jul 14 '15 at 21:29

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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