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InputString: "I am unwell" "We need to go to the doctor" "How long will it take?".

OutputString: I am unwell We need to go to the doctor How long will it take?

The string needs to cleaned of all occurrences of the char " . I can think of the following approacg

  1. Use, strchr() function finding first occurrence of "
  2. Move all characters in the string left by once position.

Repeat steps 1 and 2 , until strchr() returns a NULL pointer.

I feel this is very inefficient way to approach this problem. I need to know , if there are other methods to achieve this? Pseudo code or actual code will both be appreciated.

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4 Answers 4

up vote 13 down vote accepted
for (s=d=str;*d=*s;d+=(*s++!='"'));
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Done! :-) +8chars –  R.. Nov 12 '10 at 5:27
2  
One more: *s++-'"'&&d++ –  ephemient Nov 12 '10 at 5:30
    
@ephemient: Yeah well I want to keep it readable and instructive. ;-) –  R.. Nov 12 '10 at 5:39
    
@R - could you explain how this works? I understand that a char* in c is an array of characters terminated by '\0'. You do not delete any character '"' in you for loop. Also what is the behavior of d+=(*s++!='"'). There is a nice little explanation below by Leftium , but he does not not explain what to do when the if condition in line 2 of his fails. –  Eternal Learner Nov 12 '10 at 6:10
    
@Eternal Learner: It's safe to do the assignment even if the source points to ", because the destination pointer hasn't been updated and the next loop around will write over it. s++ post-increments s; *s++ dereferences post-incremented s; *s++!='"' compares dereferenced post-incremented s to " and yields 1 or 0; d+=(*s++!='"') increments d by one if dereferenced post-incremented s is not ". Pretty simple. –  ephemient Nov 12 '10 at 6:55

Instead of moving the characters "in-place" to overwrite the character being deleted, create a new string.

This minimizes the number of characters copied by copying each valid character once. With the original method, characters near the end of the string are copyied n times, where n is the number of invalid characters preceding it.

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This is inefficient. My algorithm is in-place or out-of-place (I wrote it in-place but either works) and only copies each character once. –  R.. Nov 12 '10 at 5:24

You can accomplish this by visiting each char of the string once. You basically copy the string over itself, skipping the " characters:

pseudocode:

  1. Start with two pointers: SOURCE and DESTINATION. They both point to the first char of the string.
  2. If *SOURCE == NULL set *DESTINATION = NULL. Stop.
  3. If *SOURCE != " set *DESTINATION = *SOURCE and increment DESTINATION.
  4. Increment SOURCE. Go to step 2.

code:

// assume input is a char* with "I am unwell\" \"We need to go..."

char *src, *dest;

src = dest = input;    // both pointers point to the first char of input
while(*src != '\0')    // exit loop when null terminator reached
{
    if (*src != '\"')  // if source is not a " char
    {
        *dest = *src;  // copy the char at source to destination
        dest++;        // increment destination pointer
    }
    src++;             // increment source pointer
}
*dest = '\0';          // terminate string with null terminator              

// input now contains "I am unwell We need to go..."

update: fixed some bugs in code

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+1 for nice explanation of my concise for loop. –  R.. Nov 12 '10 at 5:30
    
Actually your code has a bug. As written, it starts reading the first byte and writing the second, so it will clobber its own input. You need to increment destination after storing to it, not before, and throw out the final increment of destination entirely. –  R.. Nov 12 '10 at 6:06
    
And destination = NULL; // terminate string with NULL code doesn't match comment. *destination = '\0'; // terminate string with NUL would make more sense. Also, note that "..." is a const char *, not a char * — as per the C specification, writing to it is undefined behavior. –  ephemient Nov 12 '10 at 6:56
1  
@ephemient: as per the C specification, string literals are unmodifiable char[] (6.4.5/#6), not char * and much less const char *. gcc's option -Wwrite-strings makes literal strings be of type const char[] and therefore makes gcc compile a language that is almost C –  pmg Nov 12 '10 at 9:30
    
You're still using NULL where you should be using 0 (or '\0' if you insist). NULL is a pointer constant, not the null character. –  R.. Nov 13 '10 at 5:28

If your string is not very big, the obvious answer would be to have a separate string. A single loop till you get \0 (End of string) Have a loop (Gives you O(n)) and a comparison to check if the current location of the string is the character in question (again O(n) )

In all :


  s1 = original array
  s2 = new array to store the final result
  c = character in question.  
  current_pointer = 0 
  new_pointer =0 
  while(s1[current_pointer] != '\0') {
   ele = s1[current_pointer] ;

   if( ele != c)  { 
    s2[new_pointer++] = ele
   }
    current_pointer++
  }

Note that this method works only when string sizes are small. We need to go for better methods as size of string increases.

Hope this helps.

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