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I'm making a Flashcard program for 5th graders to practice their math skills. Whenever they get to the division part of the program, it does not generate evenly divisible numbers. I've generated two numbers like so:

    int divisor_one = 1+rand()%5 * 2;
    int divisor_two = 1+rand()%5 * 2;

I thought by multiplying it by two, it gives only even numbers but I was wrong. It generates a 5, as seen below.

    ********************************
          Division Flashcards
    ********************************
                  3
                  5
              _____

Clearly, these two numbers are not evenly divisible. How can I generate random evenly divisible numbers?

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  • 5
    Seems like you multiply the random number by 2 and then add 1. (1+rand()%5) * 2;might work better.
    – Bo Persson
    Nov 25, 2017 at 22:00
  • That does make it generate only even numbers, but it does not make them evenly divisible. Nov 25, 2017 at 22:03
  • >>but it does not make them evenly divisible what is evenly divisible number then? Nov 25, 2017 at 22:06
  • 8 divided by 4 is 2. 10 divided by 5 is 2. 6 divided by 3 is 2. Numbers that, when divided, don't generate a floating point number. Nov 25, 2017 at 22:08
  • Make one of them the answer instead and the other either the bottom or top divisor. And use them(multiply them with eachother) to get the second divisor. Nov 25, 2017 at 22:08

1 Answer 1

6

Here's what I had in mind:

int divisor_one = 1+rand()%5 * 2;
int result = 1+rand()%5 * 2;
int divsor_two = divisor_one * result;

That way you make sure the result is always an even product of whatever the factors are.

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