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the input is given in the format 1)number of testcases, t. 2)taking input t times for ranges in the format, LOWERLIMITUPPERLIMIT. The output is the sum of divisors for all the good numbers in the given range for each test case

We are supposed to first take in number of test cases, and then all the ranges for the test cases. When complied using some other compiler it gives an error

Command Failed: ./a.out

[this is the correct output given by Codeblocks for the same Input][1]
[this is the error message, using a compiler code gcc v4.8.4 ][2]
[this is the expected output][3]
#include <stdio.h>

int sqfr(int n); 
int divsum(int n);
int prlessthansumchk(int sum);
int main()
{
    int t;
    scanf("%d",&t);
    int L[t], R[t], x;

    for(x=0 ; x<t ; x++)
    {
        scanf("%d %d",&L[x],&R[x]);
    }**//takes in the ranges for given number of test cases**

    for(x=0 ; x<t ; x++)
    {
        int sum, checksqfr, checkprime, k, dsum=0;
        for(k=L[x] ; k<=R[x] ; k++)
        {
            sum=0, checksqfr=0, checkprime=0;
            checksqfr=sqfr(k); **//function calling to check whether number is square free**

            sum=divsum(k); **//function calling to get the sum of divisors of square free numbers**

            checkprime=prlessthansumchk(sum); **//function calling to check second condition**

            if(checksqfr==1 && checkprime==1) **//to check if number is a good number**
            {
                dsum=dsum+sum;
            }**//to add divisors of all good numbers in a range for every test case**
        }
        printf("\n%d",dsum); **//prints the sum of divisors, i.e, the answer**
    }
    return 0;
}

int sqfr(int n) **//function to check if number is square free**
{
    int i, squarefr=1;

    for(i=2 ; i*i<=n ; i++)
    {
        if(n%(i*i)==0)
        {
            squarefr=0;
        }
    }
    return squarefr; **//returns 0 if number is square free, else 1**
}

int divsum(int n) **//function too get the sum of divisors of all numbers**
{
    int i, sum=0;

    for(i=1 ; i<=n ; i++)
    {
        if(n%i==0)
        {
            sum=sum+i;
        }
    }
    return sum;
}

int prlessthansumchk(int sum) **//function to check the second condition**
{
    int p[40], i, j, divisors=0, primes=0, prdivisors=0, factsofprdivisors=0, checkfinal=0;

    for(i=1 ; i<=sum ; i++)
    {
        divisors=0;

        for(j=1 ; j<=i ; j++)
        {
            if(i%j==0)
            {
                divisors++;
            }
        }

        if(divisors==2)
        {
            p[i-1]=i;
            primes++;
        }
    }

    for(i=0 ; i<primes ; i++)
    {
        if(sum%p[i]==0)
        {
            prdivisors++;
        }
    }

    for(j=1 ; j<=prdivisors ; j++)
    {
        if(prdivisors%j==0)
        {
            factsofprdivisors++;
        }
    }

    if(factsofprdivisors==2)
    {
        checkfinal=1;
    }
    return checkfinal; **//returns 1 if number follows second condition, else 0**
}    
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  • 3
    Pick a language tag. – WhozCraig Mar 24 at 11:26
  • 1
    Welcome to Stack Overflow. Questions asking why a large chunk of code does not work is off-topic for Stack Overflow and will be closed. Please try running your code through a debugger. You should identify the problematic portion of the code and see if you can solve the error by searching on the Internet. If not, extract the problematic code and make a minimal reproducible example (which can be fed directly to a compiler and demonstrate the problem) to demonstrate it. Make sure you are tackling one specific issue each time. and post the minimal code required to reproduce the problem. – L. F. Mar 24 at 11:32
  • one of problem of your code is in "int t; scanf("%d", &t); int L[t];" this part. t should be given a constant in compile time. but your code is trying to make it a variable. you can do like "int* L = new int[t];" to allocate necessary memory at runtime. – CodingLab Mar 24 at 11:46
  • 1
    That it "gives a wrong output" is not a useful problem description. Include your input, expected output, and actual output. – molbdnilo Mar 24 at 12:09
  • Before sum%p[i]==0, check if any of the p[i] is (wrongly) equal to 0. That could be a cause of floating point exception. – Bob__ Mar 24 at 16:24