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Asked: 2026-05-27T17:44:50+00:00

people! I’ve been told to create next code as homework. If you compile it

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people!

I’ve been told to create next code as homework.
If you compile it – you’l easely see it’s purpose. Now, my question is whether there is a way to make it shorter (I’m new to C). I must use structs and struct pointers. This might seem a lame question – sorry for that.
As well, I would like to know whether it’s alright to call “main()” repeatedly.

#include <stdio.h>

typedef struct frac{
    int num;
    int den;
};

int reducer( struct frac *fi ){
    if( fi->num == 0 ) return 0;
    if( fi->den == 1 ) return 1;
    if( fi->num % fi->den == 0 ){
        fi->num /= fi->den;
        fi->den /= fi->den;
        return reducer( fi );
    }
    if( fi->num % 2 == 0 && fi->den % 2 == 0 ){
        fi->num /= 2;
        fi->den /= 2;
        return reducer( fi );
    }
    else if( fi->num % 3 == 0 && fi->den % 3 == 0 ){
        fi->num /= 3;
        fi->den /= 3;
        return reducer( fi );
    }
}

int main(){
    char c , tt;
    struct frac one , two , multi , quot , sum , diff , *o , *t , *m , *q , *s , *d;
    printf( "Please, enter the first fraction, ieg. 3/8:\n" );
    scanf( "%d/%d%c" , &one.num , &one.den , &tt );
    printf( "Now the second fraction (numerator/denominator):\n" );
    scanf( "%d/%d%c" , &two.num , &two.den , &tt );
    o = &one;
    t = &two;
    m = &multi;
    q = &quot;
    s = &sum;
    d = &diff;
    m->num = o->num * t->num; // product numerator
    m->den = o->den * t->den; // product denominator
    q->num = o->num * t->den; // quotient numerator
    q->den = o->den * t->num; // quotient denominator and so on...
    s->num = q->num + q->den;
    s->den = m->den;
    d->num = q->num - q->den;
    d->den = m->den;
    reducer( q );
    reducer( m );
    reducer( s );
    reducer( d );
    printf( "%d/%d + %d/%d = %d/%d\n" , o->num , o->den , t->num , t->den , s->num , s->den );
    printf( "%d/%d - %d/%d = %d/%d\n" , o->num , o->den , t->num , t->den , d->num , d->den );
    printf( "%d/%d * %d/%d = %d/%d\n" , o->num , o->den , t->num , t->den , m->num , m->den );
    printf( "%d/%d : %d/%d = %d/%d\n" , o->num , o->den , t->num , t->den , q->num , q->den );
    printf( "\nWould you like to make another calculation? (y/n):\n" );
    scanf( "%c" , &c );
    if( c == 121 || c == 89 ){
        return main();
    }
    return 0;
}
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1 Answer

  1. Editorial Team

    Here are some suggestions:

    • Use a loop instead of recursion. It’s more natural in this scenario, and it doesn’t make the stack grow with each iteration:

      int finish;
do
{
    //...
    printf( "\nWould you like to make another calculation? (y/n):\n" );
    scanf( "%c" , &c );
    finish = c != 121 && c == 89;
}
while (!finish)

    • You can remove all the pointer declarations and work directly with the fractions themselves.

      multi.num = one.num * two.num; // product numerator
// ...
reducer(&quot)

    Hope it helps!

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