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I'd like to convert a BigDecimal to String for printing purposes but print out all digits without scientific notation. For example:

BigDecimal d = BigDecimal.valueOf(12334535345456700.12345634534534578901);
String out = d.toString(); // Or perform any formatting that needs to be done
System.out.println(out);

I'd like to get 12334535345456700.12345634534534578901 printed. Right now I get: 1.23345353454567E+16.

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System.out.println(out); not System.out.println(output); –  Iswanto San Apr 5 '13 at 13:16
    
Part of the problem is 12334535345456700.12345634534534578901 is truncated to 1.23345353454567E+16 even before the value is passed into the BigDecimal constructor, because constant double values in your code don't have that much precision. You can verify this by simply trying to store it in a double variable instead and printing it out: ideone.com/j5FKp1. You need to start with the value as a string if you want the extra precision. –  mellamokb Apr 5 '13 at 13:17

4 Answers 4

up vote 7 down vote accepted

To preserve the precision for a BigDecimal you need to pass the value in as a String

BigDecimal d = new BigDecimal("12334535345456700.12345634534534578901");
System.out.println(d.toPlainString());
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It will only print 12334535345456700 –  Achintya Jha Apr 5 '13 at 13:17
    
Prints 12334535345456700.12345634534534578901 for me :) –  Reimeus Apr 5 '13 at 13:17
    
Prints out fine for me to. Are you using BigInteger by any chance? –  christopher Apr 5 '13 at 13:18
    
for me it prints 12334535345456700 only . Dont know why? –  Achintya Jha Apr 5 '13 at 13:19
1  
@AchintyaJha: You are including the quotes around the number, right? That was a change from the original code (albeit not clearly explained) –  mellamokb Apr 5 '13 at 13:20

The BigDecimal class has a toPlainString method. Call this method instead of the standard toString and it will print out the full number without scientific notation.

Example

BigDecimal b = new BigDecimal("4930592405923095023950238502395.3259023950235902");
System.out.println(b.toPlainString());

Output: 4930592405923095023950238502395.3259023950235902
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You want to use a DecimalFormat:

DecimalFormat df = new DecimalFormat("#.#");  
String output = df .format(myBD);
System.out.println(value + " " + output);
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You could use this

BigDecimal d = BigDecimal.valueOf(12334535345456700.12345634534534578901);
String out= d.toPlainString();
System.out.println(out);
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-1 The problem is in the precision of the original number being passed as a double. You could at least do your due diligence and test this with ideone, which takes all of 30 seconds: ideone.com/n137Cs –  mellamokb Apr 5 '13 at 13:19
    
how come did you accept that new BigDecimal(String value); from Reimeus can work? i guess BigDecimal.valueOf does not accept Strings in constructor? does it? –  Waqas Memon Apr 5 '13 at 13:24
    
Right, I believe valueOf is only for passing in numeric values. You will need to use the constructor to pass in a string value. –  mellamokb Apr 5 '13 at 13:25
    
BigDecimal d = BigDecimal.valueOf("12334535345456700.12345634534534578901"); //is a compile time error The method valueOf(long) in the type BigDecimal is not applicable for the arguments (String) . . BigDecimal d = new BigDecimal("12334535345456700.12345634534534578901"); //correct one.. –  Waqas Memon Apr 5 '13 at 13:25

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