35

So, In Java, you know how you can declare integers like this:

int hex = 0x00ff00;

I thought that you should be able to reverse that process. I have this code:

Integer.valueOf(primary.getFullHex());

where primary is an object of a custom Color class. It's constructor takes an Integer for opacity (0-99) and a hex String (e.g. 00ff00).

This is the getFullHex method:

public String getFullHex() {
    return ("0x" + hex);
}

When I call this method it gives my this NumberFormatException:

java.lang.NumberFormatException: For input string: "0xff0000"

I can't understand what's going on. Can someone please explain?

80

Will this help?

Integer.parseInt("00ff00", 16)

16 means that you should interpret the string as 16-based (hexadecimal). By using 2 you can parse binary number, 8 stands for octal. 10 is default and parses decimal numbers.

In your case Integer.parseInt(primary.getFullHex(), 16) won't work due to 0x prefix prepended by getFullHex() - get rid of and you'll be fine.

  • 1
    Thank you! I didn't know that Integer.parseInt(..) could take another parameter! Thanks for clearing that up for me! – mattbdean Jul 7 '12 at 22:57
  • Oh man I was a victim of this as well – JohnMerlino Jul 24 '14 at 21:09
  • not work java.lang.NumberFormatException: Invalid int: "0x920B540C", color2 = Integer.parseInt(color_2,16); (with argbA) – delive Aug 5 '15 at 15:08
  • Even if you remove the 0x prefix from the input string "0x920B540C" and parse it in base 16, hex 920B540C is decimal 2450215948, which is more than the max value that a 32bit signed int can hold (dec 2147483647, hex 0x7FFFFFFF - see Integer.MAX_VALUE). You would have to use a 64bit signed long instead (Java doesn't have unsigned integer types). – Remy Lebeau Dec 13 '17 at 2:52
  • I came here searching for an elegant solution for getting rid of 0x. So -1 for not mentionig Integer.decode(). – Line Aug 17 '18 at 18:37
37

Integer.valueOf(string) assumes a decimal representation. You have to specify that the number is in hex format, e.g.

int value = Integer.valueOf("00ff0000", 16); 

Note that Integer.valueOf(string,16); does not accept a prefix of 0x. If your string contains the 0x prefix, you can use Integer.decode("0x00ff0000");

  • 9
    How is Integer.decode not the right answer? – ubiquibacon Jan 9 '14 at 15:49
  • 1
    Hey this is working only for 00ff0000 not for 80ff0000 . I have string like String hex="803BB9FF"; and i want to covert this into int color=0x803BB9FF please help – Ashish Sahu May 24 '14 at 1:48
  • @AshishSahu It's impossible to help when you don't describe what happens, and what you expect to happen. 0x803BB9FF is -2143569409 (since int in Java is signed). So what's "not working" about -2143569409 ? – nos May 24 '14 at 1:52
  • 3
    But thanks for reply my vote+. now i got another solution : int color=Color.parseColor("#"+"803bb9ff"); – Ashish Sahu May 24 '14 at 2:11
  • 3
    Integer.decode was exactly what I needed! - it's basically parseInt but handles more variety of input formats – Krease Sep 28 '15 at 22:25
24

Try to use decode method:

Integer.decode("0x00ff00");

DecodableString:

  • Signopt DecimalNumeral
  • Signopt 0x HexDigits
  • Signopt 0X HexDigits
  • Signopt # HexDigits
  • Signopt 0 OctalDigits

You can read about it here https://docs.oracle.com/javase/7/docs/api/java/lang/Integer.html#decode(java.lang.String)

3

The parseInt method only accepts the number part, not any kind of "base" indicator such as "0x" for hexadecimal or "0" for octal. Use it like this

int decimal = Integer.parseInt("1234", 10);
int octal = Integer.parseInt("1234", 8);
int hex = Integer.parseInt("1234", 16);
1

This should do it:

String hex = "FA"; 
int intValue = Integer.parseInt(hex, 16);

And if you want to generate hex representation of an integer, use

String hex = Integer.toHexString(12); 

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