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Just wanted to know if this function's results will always hold?

private int calcHourDiff(int start, int end) {

    int diff;

    if(start > end) {
        diff = ((2400 - start) + end) / 100;
    } else if(start < end) {
        diff = (end - start) / 100;
    } else {
        diff = 0;
    }

    return diff;

}

Functions are passed in as military time and it should return the amount of hours in between. Passed in values will always be "easy" numbers such as 1200, 1400, 2100 not 2134 or 015. It needs to be able to properly calculate all possible cases, will this function hold?

I had trouble for values ranging from the night (8PM or 2000) to the next day (6AM or 600) and I think this should fix it?

Thanks for the time.

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1  
Should it take in account daylight saving time? –  kan Nov 15 '11 at 16:55
    
You don't need the unconditional else; it's already handled by the else if. –  Oli Charlesworth Nov 15 '11 at 16:55
    
You can use JUnit to test if it holds. –  John B Nov 15 '11 at 16:56
    
@OliCharlesworth I assume you mean that the else if should be changed to an else to handle the 0 case. –  John B Nov 15 '11 at 16:57
1  
When it comes to date/time manipulation, in 99% of the cases I prefer using a library rather than rolling my own. Even simple tasks tend to grow more complicated over time. –  Eli Acherkan Nov 15 '11 at 17:01

3 Answers 3

up vote 2 down vote accepted

Just to be different, here's a version without any conditionals at all:

private int calcHourDiff(int start, int end) {
    return ((end - start + 2400) % 2400) / 100;
}
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This looks interesting. Should I divide the result of that by 100 to get the hours? –  jsn Nov 15 '11 at 17:04
    
@skynorth: Ah yes, of course! –  Oli Charlesworth Nov 15 '11 at 17:05
    
That is very interesting. Thanks. –  jsn Nov 15 '11 at 17:05
    
+1 Very slick, but given how long it took me to figure out that this was right, I would suggest it might be too slick. Maybe his teammates are smarter than me though. ;) –  John B Nov 15 '11 at 17:06
    
@John: This is somewhat idiomatic. It's almost equivalent to (end - start) % 2400, except that whether that gives the "correct" result for negative input is implementation-defined, so offset the range to ensure it's always positive. –  Oli Charlesworth Nov 15 '11 at 17:09

Looks good.

When comparing two numbers, x and y, there are only 3 possible outcomes: x == y, x < y, x > y

Your if block covers all three, and the math for each condition looks good.

Just would be worried about the assumption that the data passed will always be "easy" and correct.

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private int calcHourDiff(int start, int end) {

  int newEnd = (start > end)?end + 2400 : end;
  return (newEnd - start) / 100;
}
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