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(This is related to a previous issue I had.) In trying to assign values from one character array to another, I'm facing a weird problem where the correct values aren't being copied but only when I use a loop. I commented out the loop and wrote out its iterations manually and it worked as I wanted it to. What could be causing this issue?

//Causes incorrect data transfer

 for(int q=0; q<4; q++){


   directory[q] = malloc(sizeof(char) * (1 + strlen(temp[q])));

   strcpy(directory[q],temp[q]);


  }

//But this works as it should

directory[0] = malloc(sizeof(char) * (1 + strlen(temp[0])));

strcpy(directory[0], temp[0]);

directory[1] = malloc(sizeof(char) * (1 + strlen(temp[1])));

strcpy(directory[1], temp[1]);

directory[2] = malloc(sizeof(char) * (1 + strlen(temp[2])));

strcpy(directory[2], temp[2]);

directory[3] = malloc(sizeof(char) * (1 + strlen(temp[3])));

strcpy(directory[3], temp[3]);
share|improve this question
1  
sizeof(char) is defined to be 1 so you can remove the multiplication by it. As for this code, I see nothing wrong so the problem is elsewhere. – Seth Carnegie Oct 20 '12 at 2:35
1  
No don't, strdup is pure evil. – Seth Carnegie Oct 20 '12 at 2:37
7  
strdup(); /*check success*/ is no more evil that malloc(1 + strlen()); /*check malloc success*/ strcpy as it comes down to exactly the same thing. Indeed it is less evil insofar as it relieves the programmer of the need to recall the +1. Leaving off the failure check is, of course, evil in either case. – dmckee Oct 20 '12 at 3:15
3  
@SethCarnegie You already have to remember several functions that return alloced memory. At least I do because I program in a unix environment, and there are a bunch of APIs that hand you alloced stuff. You just add it to the list. – dmckee Oct 20 '12 at 3:49
4  
@SethCarnegie Why use the function instead of writing two lines and having to put the test between them? Because strdup makes neater, more readable code. – dmckee Oct 20 '12 at 4:35

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