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I have a number, for example 1234567897865; how do I max it out and create 99999999999999 ?

I did this this way:

        int len = ItemNo.ToString().Length;
        String maxNumString = "";

        for (int i = 0; i < len; i++)
        {
            maxNumString += "9";
        }

        long maxNumber = long.Parse(maxNumString);

what would be the better, proper and shorter way to approach this task?

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4 Answers

up vote 11 down vote accepted
var x = 1234567897865;  
return Math.Pow(10, Math.Ceiling(Math.Log10(x+1e-6))) - 1;

To expand on comments below, if this problem was expressed in hex or binary, it could be done very simply using shift operators

i.e., "I have a number, in hex,, for example 3A67FD5C; how do I max it out and create FFFFFFFF?"

I'd have to play with this to make sure it works exactly, but it would be something like this:

var x = 0x3A67FD5C;  
var p = 0;
while((x=x>>1)>0) p++;          // count how many binary values are in the number
  return (1L << 4*(1+p/4)) - 1; // using left shift, generate 2 to 
                                // that power and subtract one
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BigInteger has comparable methods if you outgrow long. –  Austin Salonen Mar 28 '12 at 21:24
2  
This is incorrect. Due to the properties of the floating point arithmetic when x=10^n log(x) may be slightly smaller than n. When this happens your function returns 10^n-1 instead of 10^(n+1)-1. For example in double precision arithmetic x=1000 gives 999 instead of 9999 because log(1000) = 2.99999999999999955591e+00. –  Adam Zalcman Mar 28 '12 at 21:46
    
ahhh .... picky ! [but correct]. I fixed to handle this... @adam, why just just suggest/provide the fix yourself ?? –  Charles Bretana Mar 28 '12 at 23:12
    
@CharlesBretana Yeah, this should fix it. –  Adam Zalcman Mar 28 '12 at 23:15
1  
@CharlesBretana I haven't edited the post, because I think it isn't very pretty to employ floating point to solve this in the first place. The fix with 1e-6 makes it even uglier. –  Adam Zalcman Mar 28 '12 at 23:23
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long maxNumber = long.Parse(new String('9', ItemNo.ToString().Length));
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1  
Like your answer better than accepted one. Why bother with FPU when CPU can do. More predictable than floating point, less testing headache. Helps to save some electricity as well –  user215054 Mar 29 '12 at 2:36
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Try this:

int v = 1;
do {
    v = v * 10;
} while (v <= number);
return v - 1;
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int numDigits = (int)Math.Ceiling(Math.Log10(number));
int result = (int)(Math.Pow(10, numDigits) - 1)

I don't have a compiler available at the moment, so some additional string/double conversions may need to happen here.

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