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The Java code is as follows:

String s = "0.01";
int i = Integer.parseInt(s);

However this is throwing a NumberFormatException... What could be going wrong?

0

10 Answers 10

100
String s = "0.01";
double d = Double.parseDouble(s);
int i = (int) d;

The reason for the exception is that an integer does not hold rational numbers (= basically fractions). So, trying to parse 0.3 to a int is nonsense. A double or a float datatype can hold rational numbers.

The way Java casts a double to an int is done by removing the part after the decimal separator by rounding towards zero.

int i = (int) 0.9999;

i will be zero.

4
  • 2
    Your cast will completely lose the fractional information. I'm not sure that's a good idea to advise.
    – Joren
    Sep 20 '09 at 13:18
  • 1
    Ok! maybe I will have to do something like this Double d = Double.parseDouble(s); right?
    – Kevin Boyd
    Sep 20 '09 at 13:21
  • 1
    @Kevin: yes, but you can use also 'double' instead of 'Double' Sep 20 '09 at 13:22
  • 1
    He says he wants an integer, but are we sure that's what he needs?
    – Joren
    Sep 20 '09 at 13:32
69

0.01 is not an integer (whole number), so you of course can't parse it as one. Use Double.parseDouble or Float.parseFloat instead.

29

Use,

String s="0.01";
int i= new Double(s).intValue();
20
String s="0.01";
int i = Double.valueOf(s).intValue();
9

This kind of conversion is actually suprisingly unintuitive in Java

Take for example a following string : "100.00"

C : a simple standard library function at least since 1971 (Where did the name `atoi` come from?)

int i = atoi(decimalstring);

Java : mandatory passage by Double (or Float) parse, followed by a cast

int i = (int)Double.parseDouble(decimalstring);

Java sure has some oddities up it's sleeve

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  • C simply ignore the rest of the string, and parse whatever it can parse (in this case, it is 100). There is no way for you to know whether atoi actually parsed everything in the string or not, whether the string contains number or whether the number overflows the type. strtol is an better alternative where all the things above can be detected. Java is stricter, but it makes sure that all those cases are covered.
    – nhahtdh
    Sep 9 '13 at 13:27
  • I agree with Raywell because this works Double.valueOf("16543").intValue(); So Java wants to be a PITA when you want to quickly convert to int, yet Double is a lot more general. Dec 12 '13 at 21:49
4

Using BigDecimal to get rounding:

String s1="0.01";
int i1 = new BigDecimal(s1).setScale(0, RoundingMode.HALF_UP).intValueExact();

String s2="0.5";
int i2 = new BigDecimal(s2).setScale(0, RoundingMode.HALF_UP).intValueExact();
3

suppose we take a integer in string.

String s="100"; int i=Integer.parseInt(s); or int i=Integer.valueOf(s);

but in your question the number you are trying to do the change is the whole number

String s="10.00";

double d=Double.parseDouble(s);

int i=(int)d;

This way you get the answer of the value which you are trying to get it.

2

use this one

int number = (int) Double.parseDouble(s);

2

Use Double.parseDouble(String a) what you are looking for is not an integer as it is not a whole number.

1

One more solution is possible.

int number = Integer.parseInt(new DecimalFormat("#").format(decimalNumber))  

Example:

Integer.parseInt(new DecimalFormat("#").format(Double.parseDouble("010.021")))  

Output

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