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I have a String like 'LETTER' now i have another string "LTR" when the string is checked with the previous one the remaining letters are "ETE" how can i extract this from the main string in python. The order of the letters doesn't matter any way we should get the remaining letters

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Why does the R remain? –  DSM Sep 12 '12 at 5:46
    
sorry i will update the question –  user1275375 Sep 12 '12 at 5:47
1  
The constraints of your problem are not at all clear. What, for example, would the result be if you had TLR instead of LTR? Would it be "ETE" or would it be "TE"? –  Chris Morgan Sep 12 '12 at 5:52
    
sounds like a job for reduce ! –  wim Sep 12 '12 at 5:55
    
@user1275375 does the order matters, will EET do it for you? –  Aशwini चhaudhary Sep 12 '12 at 6:00
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9 Answers

Popular question:-) I think this is a very readable one:

s=list("LETTER")                                  
p=list("LTR")                                         
while p: s.remove(p.pop())                            

Now

print("".join(s))

prints "ETE"

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use ndiff() from difflib library:

>>> from difflib import *
>>> list(ndiff("LETTER","LTR"))
['  L', '- E', '  T', '- T', '- E', '  R']

#so filter out letters which doesn't have '-'

>>> ''.join(x.strip('-').strip() for x in filter(lambda x:'-' in x,ndiff("LETTER","LTR")))
'ETE'

>>> ''.join(x.strip('-').strip() for x in filter(lambda x:'-' in x,ndiff("stack","tc")))
'sak'

you can use Counter(), incase if the order of letters doesn't matter:

>>> from collections import Counter
>>> str1="LETTER"
>>> str2="LTR"
>>> c=Counter(str1)-Counter(str2)
>>> c
Counter({'E': 2, 'T': 1})
>>> ''.join(x*c[x] for x in c)
'EET
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I thought of this too, but it loses the order. –  DSM Sep 12 '12 at 5:57
    
@DSM yeah! I was worried about ordered too, just asked the OP whether he's concerned about the order or not. –  Aशwini चhaudhary Sep 12 '12 at 6:01
    
@DSM ndiff() from difflib can be used for this, and it preserves the order too. –  Aशwini चhaudhary Sep 12 '12 at 6:14
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#!/bin/env python

def str_diff(s, rem):
    for x in rem:
        pos = s.find(x)
        if pos >= 0: s = s[:pos] + s[pos+1:]

    return s

print str_diff("LETTER", "LTR")    # ETE
print str_diff("LETTER", "LTTR")   # EE
print str_diff("LETTER", "LTRxyz") # ETE

This seems to do what you want to do. It preserves original ordering, works for multiples of the same letter in the "removal set", and doesn't barf if the "removal set" includes a character not in the original string.

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The constraints of your problem are not 100% clear, but this is the most readable method as I understand it

>>> s1 = 'LETTER'
>>> s2 = 'LTR'
>>> temp = list(s1)
>>> for x in s2:
...   temp.remove(x)
... 
>>> s = ''.join(temp)
>>> s
'ETE'
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This is very clean -- but it should be noted that if "LTR" were instead, "LTRxzy" an exception will be thrown at remove() –  jedwards Sep 12 '12 at 6:07
    
I intended it that way. It is easy to except: pass that case, if that were the desired behaviour. –  wim Sep 12 '12 at 6:15
    
just posted one almost like it;-) –  Alfred Bratterud Sep 12 '12 at 7:16
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>>> x = "LETTER"
>>> r = "LTR"
>>> y = x
>>> for c in r:
...     y = y.replace(c, '', 1)
... 
>>> y
'ETE'
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>>> x = "LETTER"
>>> for c in "LTR":
...     if c in x:
...        p = x.find(c)
...        if p < len(x)-1:
...           x = x[:p]+x[p+1:]
...        else:
...           x = x[:p]
...
>>> x
'ETE'
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@user4815162342 answer is better I think ... –  Joran Beasley Sep 12 '12 at 5:51
    
It should be noted that if "LTR" were instead, "LTRxzy" an exception will be thrown at index() –  jedwards Sep 12 '12 at 6:04
    
naw it checks if c in x first... but edited to use find instead of index all the same :) –  Joran Beasley Sep 12 '12 at 6:12
    
oh sorry, my mistake –  jedwards Sep 12 '12 at 6:18
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Here is a fairly straightforward and readable solution that correctly preserves the ordering and duplicates of the input string:

def omit(s, discard):
    discard = list(discard)
    for c in s:
        if c not in discard:
            yield c
        else:
            discard.remove(c)

>>> ''.join(omit('LETTER', 'LTR'))
'ETE'
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2  
This is pretty good, but using a set for the second argument won't work in the case you want to discard, for example, "LETT" –  jedwards Sep 12 '12 at 5:50
    
this is better than my answer i think –  Joran Beasley Sep 12 '12 at 5:52
    
How can i make it work for the above case –  user1275375 Sep 12 '12 at 5:55
    
@Joran Beasley solution is working for this condition –  user1275375 Sep 12 '12 at 5:58
1  
Couldn't you simply replace set with list? –  DSM Sep 12 '12 at 5:59
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def remaining(my_string, my_string_2):
    output = ""

    i = 0
    j = 0
    while i < len(my_string) and j < len(my_string_2):
        if my_string[i] != my_string_2[j]:
            output += my_string[i]
        else:    
            j += 1
        i+=1
    if i < len(my_string):
        output+=my_string[i:len(my_string)]

    return output

result = remaining("LETTER", "LTR")

print result

Returns 'ETE'

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l1='LETTER'
l2='LTR'
occur=[]
for i in range(0,len(l1)):
    if l1[i] in occur:
        print l1[i]

    if l1[i] in l2:
        occur.append(l1[i])
    else:
        print l1[i]
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only writing the code is never a good option please let user know what is happening –  NullPoiиteя Sep 12 '12 at 6:12
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