9

I am looking for a regex pattern that will match third, fourth, ... occurrence of each character. Look below for clarification:

For example I have the following string:

111aabbccxccybbzaa1

I want to replace all the duplicated characters after the second occurrence. The output will be:

11-aabbccx--y--z---

Some regex patterns that I tried so far:

Using the following regex I can find the last occurrence of each character: (.)(?=.*\1)

Or using this one I can do it for consecutive duplicates but not for any duplicates: ([a-zA-Z1-9])\1{2,}

  • 1
    What regex engine do you plan to use with the regex? – Wiktor Stribiżew Dec 11 '19 at 20:42
  • 1
    You can only do that with a regex that supports infinite width lookbehind, so your only option is Python PyPi regex module then. Use it with (.)(?<=^(?:(?:(?!\1).)*\1){2,}(?:(?!\1).)*\1) regex. Demo. – Wiktor Stribiżew Dec 11 '19 at 20:51
  • 3
    @WiktorStribiżew Is that better than (.)(?<=(.*\1){3})? – Stefan Pochmann Dec 11 '19 at 21:03
  • 2
    @StefanPochmann Well, (.)(?<=(?:.*\1){3}) will do the job, too, but all these are not good since excessive backtracking may cause issues with longer strings. I'd rather write a non-regex method to solve the problem. – Wiktor Stribiżew Dec 11 '19 at 21:07
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    @WiktorStribiżew If I copy the teststring into regexstorm several times, making it a huge string, I get performance difference eg your pattern 750ms, (.)(?<=(?:.*\1){3}) 25ms, (.)(?<=(?:\1.*?){2}\1) 3ms. You can just test yourself. Yours seem to be the least efficient pattern and it's hardest to read. – bobble bubble Dec 11 '19 at 21:34
8

Non-regex R solution. Split string. Replace elements of this vector having rowid >= 3 * with '-'. Paste it back together.

x <- '111aabbccxccybbzaa1'

xsplit <- strsplit(x, '')[[1]]
xsplit[data.table::rowid(xsplit) >= 3] <- '-'
paste(xsplit, collapse = '')

# [1] "11-aabbccx--y--z---"

* rowid(x) is an integer vector with each element representing the number of times the value from the corresponding element of x has been realized. So if the last element of x is 1, and that's the fourth time 1 has occurred in x, the last element of rowid(x) is 4.

4

You can easily accomplish this without regex:

See code in use here

s = '111aabbccxccybbzaa1'

for u in set(s):
    for i in [i for i in range(len(s)) if s[i]==u][2:]:
        s = s[:i]+'-'+s[i+1:]

print(s)

Result:

11-aabbccx--y--z---

How this works:

  1. for u in set(s) gets a list of unique characters in the string: {'c','a','b','y','1','z','x'}
  2. for i in ... loops over the indices that we gather in 3.
  3. [i for i in range(len(s)) if s[i]==u][2:] loops over each character in the string and checks if it matches u (from step 1.), then it slices the array from the 2nd element to the end (dropping the first two elements if they exist)
  4. Set the string to s[:i]+'-'+s[i+1:] - concatenate the substring up to the index with - and then the substring after the index, effectively omitting the original character.
3

An option with gsubfn

library(gsubfn)
p <- proto(fun = function(this, x) if (count >=3) '-' else x)
for(i in c(0:9, letters)) x <- gsubfn(i, p, x)
x
#[1] "11-aabbccx--y--z---"

data

x <- '111aabbccxccybbzaa1'
1

Another way of doing it with pandas.

import pandas as pd

s = '111aabbccxccybbzaa1'
# 11-aabbccx--y--z---

df = pd.DataFrame({'Data': list(s)})
df['Count'] = 1
df['cumsum'] = df[['Data', 'Count']].groupby('Data').cumsum()
df.loc[df['cumsum']>=3, 'Data'] = '-'
''.join(df.Data.to_list())

Output:

11-aabbccx--y--z---
1

No regex python one-liner:

s = "111aabbccxccybbzaa1"

print("".join(char if s.count(char, 0, i) < 2 else "-" for i, char in enumerate(s)))
# ==> "11-aabbccx--y--z---"

This enumerates through the string, counting occurrences of the current character behind it and only putting the character if it is one of the first 2, otherwise dash.

0

Thanks to Wiktor Stribiżew, Stefan Pochmann, and bobble bubble. For the sake of completion, I am posting possible regex solutions discussed in the comments;

This is only doable with a regex that supports infinite width lookbehind. Using Python PyPi regex module we can do the followings:

#python 2.7.12

import regex

s = "111aabbccxccybbzaa1"

print(regex.sub(r'(.)(?<=^(?:(?:(?!\1).)*\1){2,}(?:(?!\1).)*\1)', '-', s)) #Wiktor Stribizew
     ## 11-aabbccx--y--z---

print(regex.sub(r'(.)(?<=(.*\1){3})', '-', s)) #Stefan Pochmann
     ## 11-aabbccx--y--z---

print(regex.sub(r'(.)(?<=(?:.*\1){3})', '-', s)) #Wiktor Stribizew
     ## 11-aabbccx--y--z---

print(regex.sub(r'(.)(?<=(?:\1.*?){2}\1)', '-', s)) #bobble bubble
     ## 11-aabbccx--y--z---

See the code in working.

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