7

I have a more basic Run Length Encoding question compared to many of the questions about this topic that have already been answered. Essentially, I'm trying to take the string

string = 'aabccccaaa'

and have it return

a2b1c4a3

I thought that if I can manage to get all the information into a list like I have illustrated below, I would easily be able to return a2b1c4a3

test = [['a','a'], ['b'], ['c','c','c','c'], ['a','a','a']]

I came up with the following code so far, but was wondering if someone would be able to help me figure out how to make it create the output I illustrated above.

def string_compression():
    for i in xrange(len(string)):
        prev_item, current_item = string[i-1], string[i]
        print prev_item, current_item
        if prev_item == current_item:
            <HELP>

If anyone has any additional comments regarding more efficient ways to go about solving a question like this I am all ears!

1

3 Answers 3

9

You can use itertools.groupby():

from itertools import groupby

grouped = [list(g) for k, g in groupby(string)]

This will produce your per-letter groups as a list of lists.

You can turn that into a RLE in one step:

rle = ''.join(['{}{}'.format(k, sum(1 for _ in g)) for k, g in groupby(string)])

Each k is the letter being grouped, each g an iterator producing N times the same letter; the sum(1 for _ in g) expression counts those in the most efficient way possible.

Demo:

>>> from itertools import groupby
>>> string = 'aabccccaaa'
>>> [list(g) for k, g in groupby(string)]
[['a', 'a'], ['b'], ['c', 'c', 'c', 'c'], ['a', 'a', 'a']]
>>> ''.join(['{}{}'.format(k, sum(1 for _ in g)) for k, g in groupby(string)])
'a2b1c4a3'
2
  • Thanks works perfectly! I understand that how the code [list(g) for k, g in groupby(string)] works, but I'm getting caught on the first part. What you're doing is saying I've got a string of length 0 and to that string I want to join the sum of the smaller lists within the larger lists. Where I'm lost is at the piece join(['{}{}'.format(k, sum(1 for _ in g)) and I was wondering if you could explain in a little greater detail how that works?
    – g.humpkins
    Commented Aug 29, 2014 at 19:38
  • 1
    @ADT: the empty string is the joiner, what is placed between the elements of the list produced. Try out ' - '.join(']['foo', 'bar', 'spam']) for example and vary that joiner. Also try out what just the ['{}{}'.format(k, sum(1 for _ in g)) for k, g in groupby(string)] list comprehension produces.
    – Martijn Pieters
    Commented Aug 29, 2014 at 20:19
2

Consider using the more_itertools.run_length tool.

Demo

import more_itertools as mit


iterable = "aabccccaaa"
list(mit.run_length.encode(iterable))
# [('a', 2), ('b', 1), ('c', 4), ('a', 3)]

Code

"".join(f"{x[0]}{x[1]}" for x in mit.run_length.encode(iterable))  # python 3.6
# 'a2b1c4a3'

"".join(x[0] + str(x[1]) for x in mit.run_length.encode(iterable))
# 'a2b1c4a3'

Alternative itertools/functional style:

"".join(map(str, it.chain.from_iterable(x for x in mit.run_length.encode(iterable))))
# 'a2b1c4a3'

Note: more_itertools is a third-party library that installable via pip install more_itertools.

1

I'm a Python beginner and this is what I wrote for RLE.

s = 'aabccccaaa'
grouped_d = [(k, len(list(g))) for k, g in groupby(s)]

result = ''
for key, count in grouped_d:
    result += key + str(count)

print(f'result = {result}')

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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