12

I get this error when I try to use Integer.parseInt() with a single char.

String s = "s";
System.out.println((char) Integer.parseInt(s));

Is what gives me the error is this:

Exception in thread "main" java.lang.NumberFormatException: For input string: "S"

closed as off-topic by Colonel Thirty Two, Denys Séguret, Wyetro, ColdFire, Tunaki Sep 17 '16 at 19:46

This question appears to be off-topic. The users who voted to close gave this specific reason:

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29

The letter S is not a number. Did you mean to write the number 5?

String s = "5";
System.out.println((char) Integer.parseInt(s));

Or did you mean to print the ASCII or Unicode value of the character S?

char s = 's';
System.out.println((int) s);
  • How do I parse to int it if mystring="No" and the function returns an int? because for me parseInt(mystring) throws NumberFormatexception.... – Eswar Sep 18 '18 at 6:07
1

parseInt(String s) is used to convert integers in string form like "42" to value they represent in decimal. Use String.charAt(0) if you want first character.

0

yes of course.. Integer.parseInt can make the integer representation of only numeric strings.Try:

String s="98"

0

To parse an string to a number you must have valid number into the string.

Here your S is not a number.

String s = "s"; System.out.println((char) Integer.parseInt(s));

It should be something like this:

String s = "100";//or whatever integer you want to parse.
System.out.println((char) Integer.parseInt(s));
0

it is nothing to do with single or multichar value. A simple test of this is that, if you remove the ' (quotes) from the value, would you find a Integer?

If no, the Integer.parseiInt() is bound to fail.

I would recomend you to go for really quick and short tutorial located at http://www.tutorialspoint.com/java/number_parseint.htm

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