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Possible Duplicate:
Calculate DateDiff in SQL in Days:Hours:Mins:Seconds format

I have this MySql query:

SELECT DATEDIFF(MAX(hit_date), MIN(hit_date)) / (COUNT(hit_date) - 1) AS hitavg FROM my_table

This returns a value (average days between recorded rows from hit_date column, this column is in TIMESTAMP format, so YY:MM:DD HH:MM:SS)

Assuming that this value is 385.500 (returned from the query), how can I format in PHP this number as 385 Days, "n" Hours (where "n" is the decimal value, in this case 500)?

Thanks in advance to all!

marked as duplicate by user557846, tereško, EdChum, code_burgar, hohner Jan 23 '13 at 22:12

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  • Do you simply want days and hours, or did you want days, hours, minutes, seconds? – crush Jan 23 '13 at 21:34
  • @crush Simply days and hours. Sorry, I'm learning PHP. – David Madhatter Jan 23 '13 at 21:36
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Well, if you only want Days and Hours, then:

$value = 385.500;

$days = (int) $value;
$hours = 24 * ($value - $days);

echo "$days Days, $hours Hours";
  • Thank you! Simply excellent! – David Madhatter Jan 23 '13 at 21:40
  • I replaced floor() with (int) because casting to int is 2x faster than calling floor() and achieves the same result. – crush Jan 23 '13 at 21:42
  • Yes, I see. Thank you again! – David Madhatter Jan 23 '13 at 21:46

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