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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?

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4 Answers 4

up vote 30 down vote accepted

Will this help?

Integer.parseInt("ff0000", 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.

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Thank you! I didn't know that Integer.parseInt(..) could take another parameter! Thanks for clearing that up for me! –  thatJavaNerd Jul 7 '12 at 22:57
    
Oh man I was a victim of this as well –  JohnMerlino Jul 24 '14 at 21:09

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");

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2  
How is Integer.decode not the right answer? –  ubiquibacon Jan 9 '14 at 15:49
    
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
    
I have 8char color string like "803BB9FF" now i want to convert it in int value like 0x803BB9FF (int) i tryied with "003bb9ff " then it's working but not working with 80 prefix –  Ashish Sahu May 24 '14 at 2:07
    
But thanks for reply my vote+. now i got another solution : int color=Color.parseColor("#"+"803bb9ff"); –  Ashish Sahu May 24 '14 at 2:11

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);
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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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toHexString()? what is that? –  Jeremy Holovacs Mar 3 '13 at 19:48
    
@JeremyHolovacs check this out docs.oracle.com/javase/1.4.2/docs/api/java/lang/… –  GETah Mar 3 '13 at 20:54
    
Duh... feel stupid now, I thought this was a c# question... –  Jeremy Holovacs Mar 3 '13 at 21:55

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