问题
I would like to convert double into String. I want it to have as few digits as possible and maximally 6.
So I found String.format("%.6f", d) which converts my 100.0 into 100.000000.
Max precision works correctly, but I would like it to be converted to 100 (minimum precision).
Have you got any idea what method is working like that?
回答1:
Use DecimalFormat: new DecimalFormat("#.0#####").format(d).
This will produce numbers with 1 to 6 decimal digits.
Since DecimalFormat will use the symbols of the default locale, you might want to provide which symbols to use:
//Format using english symbols, e.g. 100.0 instead of 100,0
new DecimalFormat("#.0#####", DecimalFormatSymbols.getInstance( Locale.ENGLISH )).format(d)
In order to format 100.0 to 100, use the format string #.######.
Note that DecimalFormat will round by default, e.g. if you pass in 0.9999999 you'll get the output 1. If you want to get 0.999999 instead, provide a different rounding mode:
DecimalFormat formatter = new DecimalFormat("#.######", DecimalFormatSymbols.getInstance( Locale.ENGLISH ));
formatter.setRoundingMode( RoundingMode.DOWN );
String s = formatter.format(d);
回答2:
This is a cheap hack that works (and does not introduce any rounding issues):
String string = String.format("%.6f", d).replaceAll("(\\.\\d+?)0*$", "$1");
回答3:
String.format("%.0", d) will give you no decimal places
-or-
String.format("%d", (int)Math.round(f))
回答4:
Couldn't you just make a setPrecision function, sort of like this
private static String setPrecision(double amt, int precision){
return String.format("%." + precision + "f", amt);
}
then of course to call it
setPrecision(variable, 2); //
Obviously you can tweek it up for rounding or whatever it is you need to do.
来源:https://stackoverflow.com/questions/20353319/java-double-to-string-with-specific-precision