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The regular "ROUND" function will round down when < 0.5, and will round up when >= 0.5

I need 0.5 to be rounded down, but anything above that to be rounded up.

So:
10.4 should be 10
10.5 should be 10
10.6 should be 11

Edit: Here is the solution i came up with

If the value to be rounded is in B1
And the decimal precision is in A1 (0 = no decimals, 1 = one decimal place, etc)
=IF(MOD(ABS(B1),(1/(10^A1)))<=0.5*(1/(10^A1)),ROUNDDOWN(B1,A1),ROUNDUP(B1,A1))

The ABS() makes sure it works with negative numbers.
The (1/(10^A1)) makes sure that my precision (which is a second argument to Google's rounding functions) scales my boundary condition (0.5) accordingly.
And the MOD() is what actually determines my boundary condition.

Edit2:

More elegant solution thanks to @Jayen

=ROUNDUP(B1 - sign(B1) * (10 ^ -A1) / 2, A1)

share|improve this question
    
the 'more elegant' solution by Jayen has a bug. try it with .2 and you get 1 instead of 0! Also -.2 yeilds -1 instead of 0 too. Zero yeilds 0. But any number between 0 and .5 yields 1 instead of 0. People really need to test things out more thoroughly. – Shawn Kovac Feb 10 at 11:28
up vote 2 down vote accepted

It is possible to create an IF statement that would do this =IF(A1-int(A1)>0.5,int(A1)+1,int(A1))

But seams a strange request, the normal convention (in the west) is to round .5 up, not down.

share|improve this answer
    
This is a fitting tool for EvE-Online (if that rings a bell). Who knows why that game uses round-half-down method, but it does. I will accept this answer, as i did end up using an IF statement (however differently) – Slav Jun 13 '13 at 17:54
    
xero seems to round a half cent down on my paycheck :( – Jayen Jul 4 '15 at 23:46

I'm creating C1 = (10 ^ -A1) / 2 which is 0.5 if you round to 0 decimal places, 0.05 if you round to 1, etc.

Then it is simply:

=ROUNDUP(B1 - C1, A1)

Or substituting:

=ROUNDUP(B1 - (10 ^ -A1) / 2, A1)

EDIT:

Not sure if you want negative half numbers to round towards or away from 0, but is this ok?

=ROUNDUP(B1 - sign(B1) * (10 ^ -A1) / 2, A1)

That would be rounding towards 0 on the half.

EDIT2:

But in case you want negative half numbers to round away from 0 (all half numbers round towards negative infinity):

=CEILING(B1 - 10 ^ -A1 / 2, 10 ^ -A1)

EDIT3:

@ShawnKovac found an issue with my original answer when B1 < C1, so I've taken his and adapted it for any A1:

=ROUNDUP(MAX(ABS(B1) - 10 ^ -A1 / 2, 0), A1) * SIGN(B1)

Also my answer for rounding towards negative infinity throws an error when B1 < C1, so here's an update:

=CEILING(B1 - 10 ^ -A1 / 2, SIGN(B1 - 10 ^ -A1 / 2) * 10 ^ -A1)

share|improve this answer
    
Much more elegant, but it doesn't work with negative numbers. At precision 0 and value to round being -10.60, then result is -12.00 – Slav Jul 6 '15 at 13:51
    
Roundup rounds away from zero instead of positively? Egads! – Jayen Jul 6 '15 at 22:24
    
Great that works. It's not fair to change accepted answer, since that had helped me 2 years ago when I needed it, but I will give you a bounty for a more elegant solution. Need to wait 23 hours, ping me if I forget. – Slav Jul 7 '15 at 14:46
1  
The ROUNDUP function rounds away from zero. The CEILING function rounds towards a numerically larger number. Ask two mathematicians whether -2 is larger than -1 and you will get six answers. – Jeeped Jul 7 '15 at 16:07
    
thanks @Jeeped I updated my answer in case Slav wanted to round towards a numerically smaller number rather than towards 0. – Jayen Jul 8 '15 at 3:21

Warning: this credited 'solution' has a bug:

=ROUNDUP(B1 - sign(B1) * (10 ^ -A1) / 2, A1)

Plug in .1, .2, .3, .4 or negative values of those to see the unintended results. The solution i went with is:

=ROUNDUP(MAX(ABS(B1)-1/2,0))*SIGN(B1)

So i used Jayen's clever formula, but used MAX with the ABS to eliminate the bug, then multiplied by the SIGN to allow it to work for positive and negative numbers.

share|improve this answer

Depending on the dataset, you could just subtract from your value, so long as you know that none of your numbers would be invalidated by doing so.

 =round(A1 - 0.00001)
share|improve this answer
    
Unfortunately it would invalidate some calculations – Slav Jun 13 '13 at 17:46

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