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I've googled around a bit but could not find examples to find a solution. Here is my problem:

String s = "100.000";
long l = Long.parseLong(s);

The 2nd line of code which tries to parse the string 's' into a long throws a NumberFormatException.

Is there a way around this? the problem is the string representing the decimal number is actually time in milliseconds so I cannot cast it to int because I lose precision.

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1  
what that dot stands for? is it separator between 0's or decimal mark? –  user902383 Oct 26 '12 at 15:40

6 Answers 6

You could use a BigDecimal to handle the double parsing (without the risk of precision loss that you might get with Double.parseDouble()):

BigDecimal bd = new BigDecimal(s);
long value = bd.longValue();
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as i don't know is your 100.000 equals 100 or 100 000 i think safest solution which i can recommend you will be:

NumberFormat nf = NumberFormat.getInstance();
Number number = nf.parse("100.000");
long l = number.longValue();
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'long' is an integer type, so the String parse is rejected due to the decimal point. Selecting a more appropriate type may help, such as a double.

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Yeah, I realized a bit late that this may be European notation. I may just delete this answer, as it seems others have covered the gamut of good possible solutions. –  Kenogu Labz Oct 26 '12 at 16:21

Just remove all spaceholders for the thousands, the dot...

s.replaceAll(".","");
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this would result in wrong number, 100.00 would be 10000 –  Smith Jun 22 at 14:32

You should use NumberFormat to parse the values

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If you don't want to loose presision then you should use multiplication

    BigDecimal bigDecimal = new BigDecimal("100.111");
    long l = (long) (bigDecimal.doubleValue() * 1000);<--Multiply by 1000 as it
                                                         is miliseconds
    System.out.println(l);

Output:

100111
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This is an extremely bad idea. Doubles are not lossless! Following this advice will likely lead to data corruption. –  Torque May 16 at 20:35

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