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How to convert string to int in Java?

MY code is supposed to read strings and then take the corresponding actions, but if that string is a line of numbers i need this line as a full number (an int) not as a string anymore.can this be done?

marked as duplicate by Alex W, Dave Newton, Matt Ball, user554546, A--C Jan 5 '13 at 23:57

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6

Use Integer.valueOf:

int i = Integer.valueOf(someString);

(There are other options as well.)

  • yup,that will do. Thanks – Angelo Mico Jan 5 '13 at 23:30
  • 2
    This will work, but has unnecessary boxing and unboxing. Better to use Integer.parseInt(...) for primitive int. – msandiford Jan 5 '13 at 23:48
  • yep. As per the documentation, valueOf returns an Integer Object whereas parseInt returns a primitive int and that's what you want. (docs.oracle.com/javase/7/docs/api/java/lang/…) – wullxz Jan 6 '13 at 0:03
  • It wasn't clear to me since the title said "integer" (but lower-case) and the text said "int". I find it unlikely the boxing is going to cause the OP timing issues. – Dave Newton Jan 6 '13 at 0:05
  • It might not be a problem for the OP but it might be a problem for a future answer seeking coder. It should at least be mentioned when proposing the valueOf method. – wullxz Jan 6 '13 at 0:07
3

Look at the static method Integer.parseInt(String string). This method is overloaded and is also capable of reading values in other numeral systems than the decimal system. If stringcan't be parsed as Integer, the method throws a NumberFormatException which can be catched as follows:

string = "1234"
try {
   int i = Integer.parseInt(string);
} catch (NumberFormatException e) {
   System.err.println(string + " is not a number!");
}
2

In addition to what Dave and wullxz said, you could also user regular expressions to find out if tested string matches your format e.g.

import java.util.regex.Pattern;
...

String value = "23423423";

if(Pattern.matches("^\\d+$", value)) {
   return Integer.valueOf(value);
}

Using regular expression you could also recover other type of numbers like doubles e.g.

String value = "23423423.33";
if(Pattern.matches("^\\d+$", value)) {
    System.out.println(Integer.valueOf(value));
}
else if(Pattern.matches("^\\d+\\.\\d+$", value)) {
    System.out.println(Double.valueOf(value));
}

I hope that will help to solve your problem.

EDIT

Also, as suggested by wullxz, you could use Integer.parseInt(String) instead of Integer.valueOf(String). parseInt returns int whereas valueOf returns Integer instance. From performance point of view parseInt is recommended.

  • 1
    I'd suggest you to change your use of valueOf to parseInt respectively parseDouble. (see the comments under Dave's answer) – wullxz Jan 6 '13 at 0:05
  • @wullxz very good; from performance point of view that method is recommended (+1). – Tom Jan 6 '13 at 0:13

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