答案 1
double d = ...;
BigDecimal bd = new BigDecimal(d);
bd = bd.round(new MathContext(3));
double rounded = bd.doubleValue();
答案 2
如果你想手工做:
import java.lang.Math;
public class SigDig {
public static void main(String[] args) {
System.out.println(" -123.456 rounded up to 2 sig figures is " + sigDigRounder(-123.456, 2, 1));
System.out.println(" -0.03394 rounded down to 3 sig figures is " + sigDigRounder(-0.03394, 3, -1));
System.out.println(" 474 rounded up to 2 sig figures is " + sigDigRounder(474, 2, 1));
System.out.println("3004001 rounded down to 4 sig figures is " + sigDigRounder(3004001, 4, -1));
}
public static double sigDigRounder(double value, int nSigDig, int dir) {
double intermediate = value/Math.pow(10,Math.floor(Math.log10(Math.abs(value)))-(nSigDig-1));
if(dir > 0) intermediate = Math.ceil(intermediate);
else if (dir< 0) intermediate = Math.floor(intermediate);
else intermediate = Math.round(intermediate);
double result = intermediate * Math.pow(10,Math.floor(Math.log10(Math.abs(value)))-(nSigDig-1));
return(result);
}
}
上述方法将双倍数舍入为所需数量的有效数字,处理负数,并且可以明确地告诉向上或向下舍入
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