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i has a int:

int f=1234;//or f=23 f=456 ...

i want to get:

float result=0.1234; // or 0.23 0.456 ...

dont useing:

float result = parseFloat ("0."+f);

what's best way to do?

thanks

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4 Answers 4

up vote 10 down vote accepted

How about?

float result = f/1000.0f;

More generally, if you need to size the integer for various values of f you can do something like this:

int divisor;
for(divisor = 1; f / divisor > 0; divisor *= 10);
float result = (float)f/(float)divisor;

Or more concisely with logarithms:

float result = f / Math.pow(10, Math.floor(Math.log10(f))+1);
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thanks, i writed comment, f maybe to f=23 f=456 ,i dont know f's length –  Zenofo Oct 13 '10 at 22:09
1  
Needs moar log, christ don't they teach math in high school anymore? –  BlueRaja - Danny Pflughoeft Oct 13 '10 at 22:15
    
sorry for my stupid question, this solution (f/f.length*10) run speed better to parseFloat("0."+f) ? –  Zenofo Oct 13 '10 at 22:19
2  
@Zenofo: I'm sure the differences are negligible, do what makes sense to you or is the most readable...i.e. do the most maintainable thing. –  Mark Elliot Oct 13 '10 at 22:21
    
Did you test float result = f / Math.pow(10,Math.floor(Math.log10(f))); because it fails for 1234? Off by one? –  Ishtar Oct 13 '10 at 22:35
f/Math.pow(10,Integer.toString(f).length());

Find the length of the Integer by first converting it to String and using the String length() method.

  • There probably are more clever ways of doing it.

___EDIT____

f/Math.pow(10,Math.ceil(Math.log10(Math.abs(f)+1)));

Handles negatives(and uses log).

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1  
Needs moar log. –  BlueRaja - Danny Pflughoeft Oct 13 '10 at 22:13
    
f/Math.pow(10,Math.ceil(Math.log10(Math.abs(f)+1))); \\ Uses log and handles negative numbers –  kasgoku Oct 13 '10 at 22:29

I think your solution works better than most suggested answers... Changed it a bit to cover negative numbers as well.

int f=1234;
if (f<0)
    result = -1.0f*parseFloat ("0."+(-f));
else
    result = parseFloat ("0."+f);

Still fails at Integer.MIN_VALUE though and note the loss in precision. For example:

int f=2147483647; //gives 
result == 0.21474837f
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I think he means, "how do I specify a literal float?"

float f = .1234f;  // Note the trailing f
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