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I'm getting in an int with a 6 digit value. I want to display it as a String with a decimal point (.) at 2 digits from the end of int. I wanted to use a float but was suggested to use String for a better display output (instead of 1234.5 will be 1234.50). Therefore I need a function that will take an int as paramter and return the properly formatted String with a decimal point 2 digits from the end.

say:

int j= 123456 
Integer.toString(j); 

//processing...

//output : 1234.56
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5 Answers 5

up vote 37 down vote accepted
int j = 123456;
String x = Integer.toString(j);
x = x.substring(0, 4) + "." + x.substring(4, x.length());
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Strings are immutable. While this works, using something like StringBuilder is morally correct, not to mention will make your code faster. –  Robert Kotcher Jul 20 '13 at 19:39
1  
Forget StringBuilder. With formatting such as this, String.format is the best option available. –  NobleUplift Jul 24 '13 at 16:06
3  
There is no loop, it's a simple concatenation case and compiler should optimize it using a string builder, for readability I prefer to use the + operator, there is no need in this case to use StringBuilder explicitly. Using "StringBuilder" solution because it's faster don't respect optimization rules. Code for readability. Optimize after profiling and only where it is require. en.wikipedia.org/wiki/Program_optimization#Quotes –  Remi Morin Oct 7 '13 at 20:06

As mentioned in comments, a StringBuilder is probably a faster implementation then using a StringBuffer. As mentioned in the Java docs :

This class provides an API compatible with StringBuffer, but with no guarantee of synchronization. This class is designed for use as a drop-in replacement for StringBuffer in places where the string buffer was being used by a single thread (as is generally the case). Where possible, it is recommended that this class be used in preference to StringBuffer as it will be faster under most implementations.

Usage :

String str = Integer.toString(j);
str = new StringBuilder(str).insert(str.length()-2, ".").toString();

Or if you need synchronization use the StringBuffer with similar usage :

String str = Integer.toString(j);
str = new StringBuffer(str).insert(str.length()-2, ".").toString();
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1  
the correct solution... +1 –  Manikandan Apr 4 '13 at 13:19
1  
Thanks. I like the solution. :) –  Duane May 30 '13 at 6:33
1  
This answer should probably be edited to use StringBuilder –  Snekse Jun 4 '13 at 14:06
    
@Snekse Very good point. Have edited the answer on you suggestion. –  blo0p3r Jun 4 '13 at 15:04
1  
This should be marked like the correct answer. –  calbertts Feb 18 at 2:52
int your_integer = 123450;
String s = String.format("%6.2f", your_integer / 100.0);
System.out.println(s);
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You could use

System.out.printf("%4.2f%n", ((float)12345)/100));

As per the comments, 12345/100.0 would be better, as would the use of double instead of float.

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1  
double might be a better choice. float is only accurate to 6 digits. –  Peter Lawrey May 4 '11 at 14:10
1  
Yeah, another example someone responded with was to use 12345/100.0, which is smarter (although it ends up with the same result.) –  Joseph Ottinger May 4 '11 at 14:11
    
Nitpicking: I think this wont't give the right result, because 12345/100 = 123 in integer and is only cast to 123.00 afterwards. ((float)12345/100) would work. –  rurouni May 5 '11 at 13:20
    
Heh, good point - I wasn't taking the precedence into account, mostly because the very first time he ran it it'd give him the truncated result. Will fix the post (which used to say 12345/100, then cast the result, instead of widening the value first.) –  Joseph Ottinger May 5 '11 at 13:46

If you are using a system where float is expensive (e.g. no FPU) or not allowed (e.g. in accounting) you could use something like this:

    for (int i = 1; i < 100000; i *= 2) {
        String s = "00" + i;
        System.out.println(s.substring(Math.min(2, s.length() - 2), s.length() - 2) + "." + s.substring(s.length() - 2));
    }

Otherwise the DecimalFormat is the better solution. (the StringBuilder variant above won't work with small numbers (<100)

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2  
In the case of accounting, you'd be better off with BigDecimal. –  Joseph Ottinger May 4 '11 at 14:07
    
@Joseph: You are right. I'm not in accounting and I mostly use ints as a fixedpoint representation for performance reasons (in embedded java), so BigDecimal is not my choice ;-) –  rurouni May 4 '11 at 14:35

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