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How can I remove all repeated characters from a string?

e.g:

Input:  string = 'Hello'
Output: 'Heo'

different question from Removing duplicate characters from a string as i don't want to print out the duplicates but i want to delete them.

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    Is your question restricted to consecutive characters? Or do you want a word like sports to become port? – normanius Nov 11 '19 at 11:46
  • acutally not: i'm trying to completely remove all the duplicates and leave only the characters repeated for just 1 time...in the post above the output is a set :\ – EddyIT Nov 11 '19 at 16:17
  • If your question is perceived wrongly, you may want to rewrite it. Possibly add a few more examples to make your case clearer. What about the answers below? In my view, they achieve what you are asking for. – normanius Nov 13 '19 at 9:03
  • indeed they do.. – EddyIT Nov 13 '19 at 11:20
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You can use a generator expression and join like,

>>> x = 'Hello'
>>> ''.join(c for c in x if x.count(c) == 1)
'Heo'
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    This is unnecessarily O(n**2) – yatu Nov 11 '19 at 9:37
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    Sure. But the user didn't raise any concern regarding complexity – han solo Nov 11 '19 at 9:38
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    So? I can't see why that is a good reason to not go with the most efficient answer – yatu Nov 11 '19 at 9:38
  • Premature optimization is the root of all evil ? :) I will do it with a dict, if i am worried about time complexity though – han solo Nov 11 '19 at 9:44
  • This complexity is not O(n**2), it is at worst O(nm) :) – han solo Nov 11 '19 at 10:23
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You could construct a Counter from the string, and retrieve elements from it looking up in the counter which appear only once:

from collections import Counter

c = Counter(string)
''.join([i for i in string if c[i]==1])
# 'Heo'
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  • No. It is faster precisely because join implicitly will create one anyways, that is why feeding it a list is a better idea @han Note that join internally has to iterate over the string first to calculate its size, so you wouldn't be able to perform the operation anyways if it did not fit in memory – yatu Nov 11 '19 at 9:54
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    Okay. Good to know. Thanks :) – han solo Nov 11 '19 at 9:55
  • No worries. I'll leave the complexity warning anyways, for future visitors at least, it is important to take into account for when performance is an issue @han – yatu Nov 11 '19 at 10:03
  • join won't create a list internally now that i a ask around. See src But still, this is very micro-optimization i am told. – han solo Nov 11 '19 at 10:05
  • Hmm from what I have understood it does, could be wrong though. Note that you brought this up though :) @han My main objection was about the difference in complexity – yatu Nov 11 '19 at 10:12
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a = 'Hello'


list_a = list(a)

output = []
for i in list_a:
    if list_a.count(i) == 1:
        output.append(i)

''.join(output)
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In addition to the other answers, a filter is also possible:

s = 'Hello'
result = ''.join(filter(lambda c: s.count(c) == 1, s))
# result - Heo
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If you limit your question to cases with only repeated consecutive letters (as your example suggests), you could employ regular expressions:

import re
print(re.sub(r"(.)\1+", "", "hello"))     # result = heo
print(re.sub(r"(.)\1+", "", "helloo"))    # result = he
print(re.sub(r"(.)\1+", "", "hellooo"))   # result = he
print(re.sub(r"(.)\1+", "", "sports"))    # result = sports

If you need to re-apply the regular expression many times, its worth to compile it beforehand:

prog = re.compile(r"(.)\1+")
print(prog.sub("", "hello"))

To restrict the search for duplicated letters on some subset of characters, you can adjust the regular expression accordingly.

print(re.sub(r"(\S)\1+", "", "hello"))     # Search duplicated non-whitespace chars
print(re.sub(r"([a-z])\1+", "", "hello"))  # Search for duplicated lowercase letters

Alternatively, an approach using list comprehension could look as follows:

from itertools import groupby
dedup = lambda s: "".join([i for i, g in groupby(s) if len(list(g))==1])
print(dedup("hello"))     # result = heo
print(dedup("helloo"))    # result = he
print(dedup("hellooo"))   # result = he
print(dedup("sports"))    # result = sports

Note that the first method using regular expressions was on my machine about 8-10 times faster than the second one. (System: python 3.6.7, MacBook Pro (Mid 2015))

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