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I am trying to figure out how to round prices - both ways. For example:

Round down
43 becomes 40
143 becomes 140
1433 becomes 1430

Round up
43 becomes 50
143 becomes 150
1433 becomes 1440

I have the situation where I have a price range of say:

£143 - £193

of which I want to show as:

£140 - £200

as it looks a lot cleaner

Any ideas on how I can achieve this?

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1  
What have you tried? –  Jens Kloster Mar 1 '13 at 9:31
    
I've tried Math.Floor –  dhardy Mar 1 '13 at 9:32
    
Floor is floor is for doubles. –  evanmcdonnal Mar 1 '13 at 9:33
    
divide by 10, round, multiply by 10 –  Karthik T Mar 1 '13 at 9:33
    
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5 Answers

up vote 17 down vote accepted

I would just create a couple methods;

int RoundUp(int toRound)
{
     return (10 - toRound % 10) + toRound;
}

int RoundDown(int toRound)
{
    return toRound - toRound % 10;
}

Modulus gives us the remainder, in the case of rounding up 10 - r takes you to the nearest tenth, to round down you just subtract r. Pretty straight forward.

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The RoundUp is broken. If you pass 20, it gets rounded up to 30 which is most likely not what you want. You can either do a conditional test (if ((toRound % 10) == 0) return toRound;) or use an unconditional rounding, for example return ((toRound + 9) / 10) * 10; –  DarkDust Dec 10 '13 at 9:00
1  
Note that the logic above only works for positive numbers (as I just found out). –  Knightsy Dec 12 '13 at 14:01
    
Change to Math.Abs(toRound) % 10 if you have negatives anywhere in price calc or otherwise. –  Knightsy Dec 12 '13 at 14:09
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You don't need to use modulus (%) or floating point...

This works:

public static int RoundUp(int value)
{
    return 10*((value + 9)/10);
}

public static int RoundDown(int value)
{
    return 10*(value/10);
}
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Might not give you what you want for very large numbers (e.g. Int32.MaxValue) –  Joe Mar 1 '13 at 10:19
    
Yes, RoundUp will fail for numbers higher than (int32.MaxValue-10). Don't think that's an issue for prices in pounds though. And it's not possible to round those numbers up anyway, by any means (unless you return a long). –  Matthew Watson Mar 1 '13 at 13:28
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Divide the number by 10.

        number = number / 10;
        Math.Ceiling(number);//round up
        Math.Round(number);//round down

Then multiply by 10.

        number = number * 10;
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Gives the wrong answer for 1433 according to the spec –  Matthew Watson Mar 1 '13 at 10:18
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This should work both way : RoundUp & RoundDown

int RoundNum(int num)
{
     int rem = num % 10;
     return rem >= 5 ? (num - rem + 10) : (num - rem;)
}

Very simple usage :

Console.WriteLine(RoundNum(143)); // prints 140
Console.WriteLine(RoundNum(193)); // prints 190
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Gives the wrong answer for 1433 according to the spec. –  Matthew Watson Mar 1 '13 at 10:16
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You could use Math.Ceiling() and Math.Floor(). You'll have to cast them to doubles though.

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