its not that complicated, my problem is i don't understand how to change the variable of a character array using a pointer

#include "stdio.h"

int main(void) {
// Disable stdout buffering
setvbuf(stdout, NULL, _IONBF, 0);

char a[100], ch, *counter;
int c = 0, i;

counter = a[0];
printf("please enter a sentance:");


while ((ch = getchar()) != '\n'){
    printf("yo");
    *counter = ch;     //problem is here
    counter = a[c];
    c = c + 1;
}
printf("hi\n");

for(i = c-1; i >= 0; i--){
    printf("%c", a[i]);
}

return 0;
}

the error is "exited with non zero status"

  • 1
    Does lthe line counter = a[0]; throw up an error when compiling? – Ed Heal Nov 13 '16 at 18:03
  • 2
    counter = a[0]; --> counter = &a[0]; or counter = a;, counter = a[c]; --> counter++; – BLUEPIXY Nov 13 '16 at 18:04
up vote 0 down vote accepted

You need the following

counter = a;
^^^^^^^^^^^
printf("please enter a sentance:");


while ((ch = getchar()) != '\n'){
    printf("yo");
    *counter++ = ch;     //problem is here
    ++c;
}

while ( c != 0 ) printf("%c", a[--c]);

Or even the following

counter = a;
^^^^^^^^^^^
printf("please enter a sentance:");


while ((ch = getchar()) != '\n'){
    printf("yo");
    *counter++ = ch;     //problem is here
}

while ( counter != a ) printf( "%c", *--counter );

There are three issues.

  1. counter = a[0]; You are assigning value at a[0] to a pointer. What you need is this.

counter = &(a[0]);

Or better

counter = a;

  1. counter = a[c];

Same as point#1. You dont have to do this as counter is already pointing to array. Just increment the pointer.

  1. Since you have array of length 100, you can store only 99 characters + a null charecter. So You need to have a counter. So use c as the counter.

Change

while ((ch = getchar()) != '\n'){
    printf("yo");
    *counter = ch;     //problem is here
    counter = a[c];
    c = c + 1;
}

to

i = 0;
while ((ch = getchar()) != '\n' && ((sizeof(a)/sizeof(a[0])-1)>c)){
    printf("yo");
    *counter = ch;
    counter++;
    c++;
}
*counter = '\0';

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.