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I want something that seems simple but can't figure out :

I have an integer which in my program is an hour, in a 24h format (ie '18') and I want to add X (ie '7') hours to it.

How do I add hours to something that is not at date object whatsoever. Something that would work like this :

18 + 7 = 1
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  • 1
    You could utilize the modulus % operator? (18 + 7) % 24 == 1
    – Blake
    Sep 7, 2016 at 19:42
  • do you need to keep track of how many days this result is, or are you purely interested in the resulting hour value?
    – Marc B
    Sep 7, 2016 at 19:47
  • @MarcB I'd presume he only cares about hours, because he says it's "not [a] date object whatsoever"
    – Blake
    Sep 7, 2016 at 19:47
  • @Blake: doesn't matter. intervals aren't date objects, but there's going to be someone who needs to know that something took 10 days and 1 hour, v.s. only 1 hour.
    – Marc B
    Sep 7, 2016 at 19:48
  • @MarcB I only care about the hour in my case
    – Gunga Din
    Sep 7, 2016 at 19:49

3 Answers 3

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Using the modulus operator is what you're after. See this example:

echo ((18 + 7) % 24); // Output: 1

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Please use % (modulus) for this.

(18 + 7) % 24 = 1
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% operator could come to your rescue:

  <?php
    $hour_24_format =18;
    $x_hours = 7;
    define("_TWENTY_FOUR_",24);
     $result = ($hour_24_format + $x_hours)% _TWENTY_FOUR_ ; 
  ?>

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