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How can one calculate the seconds in a Excel serial date/time, linke in the example below, without the use of the SECOND() function which (I believe) rounds or cell-formatting? How can i extend this for minutes?

The serial values for the bottom example below (last row in the image) are:

     Right: 41165.4444365394
     Left: 41165.4444321412

The above example is being conditional formatted with the below two formula (With stop if true turned on, and order of precedence shown).

Seems to me that the second function cannot see the difference between 10:39:58 and 10:39:59, hence is not matching the 'Display only seconds' resolution one, and is carrying on to the 'Display milliseconds resolution' given that the calculation I have for milliseconds works fine.

    To see if the seconds are different, first: =SECOND($B2)<>SECOND($C2)
    To see if only milliseconds have passed between the two times:
    =ROUND(($B2*86400-INT($B2*86400))*1000,0)<>ROUND(($C2*86400-INT($C2*86400))*1000,0)

What am I to multiply the serial number against to provide the unrounded seconds and minutes (seperately)?

share|improve this question
    
can you clarify again: do you wan't the unrouded minutes or seconds? Is this the date you're working on: 13.09.2012 10:39:59? and are 371 the ms you calculated or is it 3556694399.371, which is what I get by your formula. –  Jook Sep 20 '12 at 7:51
    
would mind to expand, if you are working with formulars or with VBA or both and give a little more detail on the whole process? you know you could just "ss" as the cell-format i.e. to display only the seconds - or "ss.000" to display seconds & ms. –  Jook Sep 20 '12 at 8:08
    
by the way, got it from here: stackoverflow.com/questions/3095407/… –  Jook Sep 20 '12 at 8:18
    
@Jook - I cannot use VBA. I will edit my post. –  user66001 Sep 20 '12 at 12:13
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2 Answers

up vote 0 down vote accepted

You were almost there, try it with this:

B2 = 41165.4444365394
C2 = 41165.4444321412

=(VALUE(TEXT(B2,"ss.000"))-ROUND(MOD(B2*86400,INT(B2*86400)),3))<>(VALUE(TEXT(C2,"ss.000"))-ROUND(MOD(C2*86400,INT(C2*86400)),3)


VALUE(TEXT(B2,"ss.000")) -> gives you 59,317

VALUE(TEXT(C2,"ss.000")) -> gives you 58,937

MOD(B2*86400,INT(B2*86400)) 
-> is more appropriate here than substracting, but basically the same thing

edit: using only math

i am not 100% sure about this, but it is not as straight forward with the time-values as it was for millisecs, and this is why:

excel interprets a value like 1.00001 as the January 1. 1900 00:00:01.

the part before . is the date, the part after is the time.

unfortunately time runs between .00000 and .99999, but your average day has only 86400 seconds - so 0.0000115740740740741 is the factor between them.

By dividing 0.00038 with this factor or multiplying it with 86400 you get 32.832 - which rounds to 33 seconds, as excel would do. You can use this to get the number of seconds in the given time.

edit:

here is my end solution for now

=INT(MOD(B2,INT(B2))/0.0000115740740740741))

this will transform you any time into seconds, so that you can compare by them without text formats - like this:

  =INT(MOD(B2,INT(B2))/0.0000115740740740741))<>INT(MOD(C2,INT(C2))/0,0000115740740740741))

you don't have to worry about the ms, they will cut off by INT.

oh, and here is my source, that gave me the right clue:

http://support.microsoft.com/kb/214094/EN-US

edit thanks to barry houdini, I'll add some additional informations:

=INT(MOD(B2,INT(B2))/0.0000115740740740741)
=INT(MOD(B2,INT(B2))*86400)
=INT(MOD(B2,1)*86400)
-> 38399 seconds of the day, without ms
-> shows only time differences regardless of date
=MOD(B2,1)*86400
-> 38399.317 seconds of the day, with ms
=INT(B2*86400)
-> 3556697399 seconds since 1.1.1900
-> shows time & date differences

=INT(MOD(B2*24*60*60,60)) (=INT(MOD(B2*86400,60)))
-> 59 seconds, regardless of time & date, only the current seconds part
=INT(MOD(B2*24*60,60))
-> 39 minutes
=INT(MOD(B2*24,60))
-> 10 hours
share|improve this answer
    
Thanks, but I wanted to learn how to calculate seconds without the use of formatting functions. As for Mod, I have read (which are not handy right now) threads on how it fails when used with some form of date (Can't recall the specifics, but hopefully you know what I mean). There must be a way to calculate this with pure maths, no? –  user66001 Sep 20 '12 at 14:41
    
Thanks @Jook. I follow up until you introduce 0,00038 into the explanation. Is this an arbitary value, or arrived at through the previous step? –  user66001 Sep 20 '12 at 16:08
    
yes - i tested this by setting up two cols with values from 0,00001 to 0,99999 - and formatted them - one as number, one as time. then picked 0,00038 to test my formulars with it. –  Jook Sep 20 '12 at 16:10
    
Thanks again, I think you are almost there, but when I c&p =ROUND(MOD(B2,INT(B2))/0,0000115740740740741)),0) into the spreadsheet as a test, it is complaining (I think about the , in 0,0000115740740740741, though I can't figure out how to fix it. –  user66001 Sep 20 '12 at 16:36
    
oh, yeah - your english it has to be . not , in 0,00001 - but houdini astonished me with an even nicer solution to this –  Jook Sep 20 '12 at 16:39
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Try using FLOOR function to differentiate, i.e.

=FLOOR($B2,"0:00:01")<>FLOOR($C2,"0:00:01")

This will also distinguish between times when, say, the seconds are the same but the minutes are different.

Edit: this will do the same

=INT($B2*86400)<>INT($C2*86400)

share|improve this answer
    
the part with the "0:00:01" -> shouldn't this be the number of parts to round to? - otherwise, nice, i knew i was missing some point there ^^ –  Jook Sep 20 '12 at 16:41
    
Thanks Jook, "0:00:01" is a time value - 1 second - so using FLOOR with that value rounds the time down to the previous whole second, hence it will distinguish between 12:34:56.999 and 12:34:57.001. Equally you could use CEILING –  barry houdini Sep 20 '12 at 16:46
    
.....also you could use a shorter version with INT....edited my answer to that effect –  barry houdini Sep 20 '12 at 16:51
1  
Can I just clarify? Is my suggested formula working for what you need or do you need it to do something different...or are you just trying to understand how it works? Your date/time in B10 is stored as a number, in this case 41162.3726578357 the integer part is the date (count of days since 1/1/1900) and the fractional part is the time. If you use =MOD(B10,1) that extracts just the fractional part, i.e. 0.3726578357, then multiply that by 86400 gives you the seconds in the day (since midnight), i.e. 32197.64 - INT then just rounds that down to 32197. –  barry houdini Sep 20 '12 at 18:38
1  
To extract 57 and 41 from the above, either use this version =SECOND($B2-1/86400/2) - which deducts half a second from your time value then takes the SECOND value, the deduction counteracts the inherent rounding of SECOND....or use this formula =INT(MOD($B2*86400,60)) - B2*86400 gets the total seconds, MOD gives you the reainder when dividing by 60, effectively removing minutes, INT again to round down –  barry houdini Sep 20 '12 at 22:52
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