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I have a function that tries to make all the letters in a word lowercase, if needed. I debugged my program and found out I was getting my segfault from this function. Both word and lowerword are strings.

Here is the call:

lowerword = word_to_lower(word);

Here is the function itself:

char * word_to_lower(char * word) {
  int i;
  char * lowerword;
  for (i = 0; i < strlen(word); ++i) {
    lowerword = (char *) tolower(word[i]);
    printf("%s\n", lowerword);
  }

  return lowerword;
}

I am very new to C so a detailed explanation would be greatly appreciated :)

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closed as too localized by Adrian McCarthy, Bo Persson, netcoder, Jonathan Leffler, Sankar Ganesh Feb 13 '13 at 5:13

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3  
lowerword = (char *) tolower(word[i]); This is a classic case of casting to silence the compiler (and gone wrong) ;-) –  Blue Moon Feb 12 '13 at 18:41

3 Answers 3

up vote 2 down vote accepted

You are trying to cast a char in char* which are two different things. The first is a value (a character), the second is a pointer (a variable which points to a location in the memory at which there is a character stored). If you want to return a completely processed string, you should first allocate an array of char of the size "strlen(word)", and then setting its elements (i.e. each character) to the proper value with the call to toLower.

In the end, you should have something like

char * word_to_lower(const char * word) {
  int i;
  unsigned int length = strlen(word);
  char * lowerword = (char*) malloc(sizeof(char) * length);
  for (i = 0; i < length; ++i) {
    lowerword[i] = tolower(word[i]);
    printf("%c\n", lowerword[i]);
  }

  return lowerword;
}

Be sure you understand the concepts behind "pointers" and "arrays" in C, and the processes of allocating and freeing memory. It seems by the way you use them that you're not comfortable with these.

EDIT : As remarked in the comments, this function should take a const char * as a parameter.

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Thank you for the answer and the explanation! –  Jonfor Feb 12 '13 at 18:59
    
@Jonfor Beware that 1. this method modifies its argument, 2. as such it will also error out when you pass it constant strings. –  user529758 Feb 12 '13 at 19:00
lowerword = (char *) tolower(word[i]);
printf("%s\n", lowerword)

Nah. tolower() returns an int (that you can assign to a char).

char lowerword;
lowerword = tolower(word[i]);
printf("%c\n", lowerword)
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But I am casting to char *. Why does that not work? –  Jonfor Feb 12 '13 at 18:44
    
@Jonfor: You're changing the address to which lowerword points to whatever tolower returns. –  netcoder Feb 12 '13 at 18:45
2  
@Jonfor because casting ain't no magic. If printf() encounters %s, it expects a char * - a pointer from where it can fetch characters one after another. But you give it the numeric value of a char, and when it tries to interpret it as an address, BOOM! –  user529758 Feb 12 '13 at 18:45
    
OH it can't just cast like that! I understand now, thank you :) –  Jonfor Feb 12 '13 at 18:49
    
@Jonfor Yap, casting is just for fooling the compiler. Remember that C is a weakly-typed and not very high-level languages. If you pass it a char, the exact value of the char will be passed down, whatever you do with it. Pure, raw, numeric data. –  user529758 Feb 12 '13 at 18:50

If you want to lower the case of the whole string :

void word_to_lower(char * word) {
  int i, len = strlen(word);
  for (i = 0; i < len ; ++i) {
      word[i] = tolower(word[i]);
  }
}
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