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There is a similar question on SO which suggests using NumberFormat which is what I have done.

I am using the parse() method of NumberFormat.

public static void main(String[] args) throws ParseException{

    DecToTime dtt = new DecToTime();
    dtt.decToTime("1.930000000000E+02");

}

public void decToTime(String angle) throws ParseException{

    DecimalFormat dform = new DecimalFormat();
    //ParsePosition pp = new ParsePosition(13);
    Number angleAsNumber = dform.parse(angle);

    System.out.println(angleAsNumber);
}

The result I get is

1.93

I didn't really expect this to work because 1.930000000000E+02 is a pretty unusual looking number, do I have to do some string parsing first to remove the zeros? Or is there a quick and elegant way?

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3 Answers 3

up vote 2 down vote accepted

When you use DecimalFormat with an expression in scientific notation, you need to specify a pattern. Try something like

DecimalFormat dform = new DecimalFormat("0.###E0");

See the javadocs for DecimalFormat -- there's a section marked "Scientific Notation".

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If you take your angle as a double, rather than a String, you could use printf magic.

System.out.printf("%.2f", 1.930000000000E+02);

displays the float to 2 decimal places. 193.00 .

If you instead used "%.2e" as the format specifier, you would get "1.93e+02"

(not sure exactly what output you want, but it might be helpful.)

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Memorize the String.format syntax so you can convert your doubles and BigDecimals to strings of whatever precision without e notation:

This java code:

double dennis = 0.00000008880000d;
System.out.println(dennis);
System.out.println(String.format("%.7f", dennis));
System.out.println(String.format("%.9f", new BigDecimal(dennis)));
System.out.println(String.format("%.19f", new BigDecimal(dennis)));

Prints:

8.88E-8
0.0000001
0.000000089
0.0000000888000000000
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