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#include<stdio.h>
void gradescounter(int[], int);

int main(void){
   int indexnum;
   int grade[indexnum];

   /* processing phase */

   printf( "Please enter the index number: ");
   scanf( "%d", &indexnum);

   gradescounter(grade[indexnum], indexnum);
}

When I enter the number, I encounter the segmentation fault error. Could somebody tell me where I was wrong? Also, when I used gcc to compile, there is a warning that passing argument 1 of 'gradescounter' makes pointer from integer without a cast, why is it? Thank you for everyone could help

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2 Answers 2

  1. indexnum isn't initialized when you use it to create the grade array. You should probably use a known value there instead.

  2. You are passing an int to a function that expects int[] (which is just syntactic sugar for int *). That's the problem - either pass grade, or change the function to take just int, whichever is correct.

  3. main should probably have a return statement somewhere.

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1  
thank you very much. Your explain is very clear and helpful –  user1834274 Jan 16 '13 at 0:59

I agree with Carl Norum

See the code below

#include <stdio.h>
void gradescounter(int*, int);

int main(void){

   int indexnum;
   int grade[]={1,2,3,4,5,6,7,8,9};

   /* processing phase */

   printf( "Please enter the index number: ");
   scanf( "%d", &indexnum);

   gradescounter(grade, indexnum);

   return 0;
}

void gradescounter(int *array, int index){

    if(index > -1 && index < 9)
        printf("The number entered is : %d\n",array[index]);
else 
        printf("Please enter the index number in the range of 0 and 8\n");    
}
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What if the indexnum was 11? –  ericzma Jan 16 '13 at 3:59
    
@ZhiqiangMa it would be some garbage value. The function gradescounter was not defined so i made a sample example of how he should go about it in my example he can check for the index and then print the value in the array :) –  nimish Jan 16 '13 at 4:04

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