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I want to summation in java.

So,

For example,

1.123 + 1.123E-4 = 0.0123411234

So, How can i processing "E" in java?

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That's scientific notation. Your number is relatively small. –  Makoto Aug 8 '12 at 2:20
4  
Your question is totally not about summation, which you clearly already know how to do. It's about representing numbers in such a way that you can perform arithmetic on them. The answer changes depending on the range of numbers you are working with and what precision you need, so you should provide that information. –  bdares Aug 8 '12 at 2:22
    
Note that the equation you posted is incorrect. The two numbers should sum to (approximately) 1.1231123. –  Hot Licks Aug 8 '12 at 2:24
    
@HotLicks that's an approximation? –  oldrinb Aug 8 '12 at 2:51
    
@veer -- Floating point is always an approximation. –  Hot Licks Aug 8 '12 at 14:13

5 Answers 5

up vote 0 down vote accepted

You mean something like this?

String a = "1.123";
String b = "1.123E-4";

double d1 = Double.valueOf(a);
double d2 = Double.valueOf(b);

System.out.println("sum = " + (d1 + d2));

Double's valueOf() method can parse te E notation for you.

And actually, the result is: 1.1231123

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Use BigDecimal:

public static void main( String[] args ) {
    BigDecimal bigDecimal1 = new BigDecimal( "1.123" );
    BigDecimal bigDecimal2 = new BigDecimal( "1.123E-4" );
    BigDecimal sum = bigDecimal1.add( bigDecimal2 );
    System.out.println( sum );
}

Output:

1.1231123
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Why BigDecimal necessarily? A double might be fine. –  yshavit Aug 8 '12 at 2:30
1  
Not necessary, but it removes all precision problems –  Bohemian Aug 8 '12 at 6:01

Use the BigDecimal class. See http://docs.oracle.com/javase/1.5.0/docs/api/java/math/BigDecimal.html#BigDecimal(java.lang.String) for a constructor that will take a string like "1.123E-4".

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Well, did you even try it?

final class SciNotationTest {

  public static void main(final String[] argv) {
    final double sum = 1.123 + 1.123E-4;
    System.out.println(sum);
    assert 1.1231123 == sum;
  }
}

C:\dev\scrap>javac SciNotationTest.java

C:\dev\scrap>java -ea SciNotationTest
1.1231123

You should be careful when using double and testing equality without tolerance, as floating-point can often be imprecise. If high-precision is what you're striving for, indeed use BigDecimal.

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Use Double.parseDouble() to do this...

String n1 = "1.123";
String n2 = "1.123E-4";

double dn1 = Double.parseDouble(n1);
double dn2 = Double.parseDouble(n2);


System.out.println("Total : " + (dn1 + dn2));

Output:

1.1231123
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