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So I'm doing what the title says with this code

else if(input[0] == 'i'){
        printf("This works");
        if(isspace(input[1])){
            x = 2;
            while(input[x] != '\0'){
                tempS[x - 2] = input[x];
            }
            inp = atoi(tempS);
            for(x = x-2; x >= 0; x--){
                tempS[x] == NULL;
            }
            insert(&linkedList, inp);
            printf("%i %s %c", inp, " sucessfully inserted.", '\n');
        }
    }

You can ignore the insert, basically I get user input which should be i and some number.

For example: i 27

Then the program should recognize that it's i in that else if, and take the number after the i.

Variable initialization is as follows.

char *input;
int inp = 0;
int x = 0;
char *tempS[255];

Thanks in advance.

Edit: The problem is that I get a segmentation fault before even the printf.

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closed as too localized by Greg Hewgill, Jonathan Leffler, WhozCraig, Jim Garrison, chris Nov 21 '12 at 8:29

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const char* is read only. Try allocating memory using malloc or calloc. –  Lews Therin Nov 19 '12 at 23:41
1  
So where have you initialised what input points to? –  Greg Hewgill Nov 19 '12 at 23:41
    
the while loop looks infinite... and the for loop's tempS[x] == NULL; does nothing... –  William Morris Nov 19 '12 at 23:43
    
Lol that loop. Beginner mistake, but that was not the issue with the segmentation fault. Looked at the answers given, and fixed the program. Thanks guys. –  Man Person Nov 20 '12 at 0:16
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3 Answers

up vote 1 down vote accepted

You are getting into infinite loop.

 while(input[x] != '\0')
    {
          tempS[x - 2] = input[x];
    }

Add the instruction x++; So you can read the next element in the array input, otherwise you are stuck in the position x = 2.

This char *input; it only a pointer, you have to allocate memory, in order to use it like your are using. Do this :

input = malloc(sizeof(char) * N);

N is the number of elements that you want to have in the input array.

You are getting segmentation fault because you are trying to access memory, which you did not allocated, like I said above.

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You have to allocate memory (reserve memory) using malloc to your input pointer. Something like:

char *input = malloc( sizeof(char) * 128 ); //If you needs 128 positions

Take a look:

//  *---*---*---*---*------*
//  | i |   | 2 | 1 | \'0' |
//  *---*---*---*---*------*
//            ^----- You stay here.

while(input[x] != '\0'){
    tempS[x - 2] = input[x];
}

You declared x = 2, so You start in the 3rd position the char '2' (Char because you inputed it as a string), and it is not the null terminator '\0' so the while loop will execute the inner statement tempS[x - 2] = input[x]; forever. So to fix this you should add an x modification kind of:

while(input[x] != '\0'){
    tempS[x - 2] = input[x];
    x++;
}
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Problems with while loop: It never ends as it does not increase x. It does not copy '\0' so atoi might crash. input is char array but tempS is char pointer array.

I don't immediately see reason for crash, unless input[2] actually is '\0' and while loop ends, in which case it is atoi which crashes, when you give it nonsense pointer array instead of string. Crash might be in code you are not showing, considering how broken this code you show is...

Start by fixing compiler warnings, after turning on warnings. To turn them on, you need comppand line switch for compiler, for gcc just -W is a good start... Though real men compile with at least -W -Wall -pedantic -std=c11 (replace c11 with whichever version of C standard you want to use).

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