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I use Choco constraint solver to solve a problem.
I use RealVariables x, y and z.
The solution looks like this

x[3.9999999999999996, 4.000000000000001]
y[-3.1434555694057773E-162, 3.1434555694057773E-162]
z[-3.1434555694057773E-162, 3.1434555694057773E-162]

And I try to parse the solutions to double variables.

Here is my code:

String X = s.getVar(x).toString();
String Y = s.getVar(y).toString();
String Z = s.getVar(z).toString();

Matcher match = Pattern.compile("-?\\d+(\\.\\d+)?").matcher(X);
while(match.find())
{
     double d = Double.parseDouble(match.group());
     System.out.println("value= " + d);
}
match = Pattern.compile("-?\\d+(\\.\\d+)?").matcher(Y);
while(match.find())
{
     DecimalFormat format = new DecimalFormat("0.00"); 
     Double d = Double.parseDouble(match.group());
     System.out.println("value= " + format.format(d));
}
match = Pattern.compile("-?\\d+(\\.\\d+)?").matcher(Z);
while(match.find())
{
     double d = Double.parseDouble(match.group());
     System.out.println("parsed: " + d);
}

The output is:

parsed: 3.9999999999999996
parsed: 4.000000000000001
parsed: -3,14
parsed: -162,00
parsed: 3,14
parsed: -162,00
parsed: -3.143455569405777
parsed: -162.0
parsed: 3.143455569405777
parsed: -162.0

Which means, -162 is parsed like another double. How do I prevent this? How can I parse a String to Double using scientific notation?

Does this happen because E-162 is too long for Double?

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1  
E doesn't match your regex, so it finds 4 matches on both y and z. You need to take into account the number might have an E. –  Danny May 23 at 15:05

2 Answers 2

up vote 2 down vote accepted

You need to change your pattern to take account of the exponant:

Matcher match = Pattern.compile("-?\\d+(\\.\\d+)?(E-?\\d+)?").matcher(X);

Note: The capturing groups are not needed here, you can replace them by non-capturing groups (?:...).

Since you will use the same regex several times, it is better to define the pattern once and for all, instead of repeating Pattern.compile("-?\\d+(\\.\\d+)?(E-?\\d+)?"). You can use this:

static Pattern pattern = Pattern.compile("-?\\d+(?:\\.\\d+)?(?:E-?\\d+)?");
....
Matcher match = pattern.matcher(X);
....
match = pattern.matcher(Y);
....
match = pattern.matcher(Z);
share|improve this answer

Double#parseDouble parses doubles from Strings and it parses the exponet aswell.

System.out.println(Double.parseDouble("1.2345e5"));

--> 123450.0

Example: https://ideone.com/ACTVQT

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