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I have noticed java will not allow me to store large numbers such as 2000000000, i.e 2 billion obviously to an integer type, but if i store the corresponding hex value i.e int largeHex = 0x77359400; this is fine,

So my program is going to need to increment up2 2^32, just over 4.2 billion, I tested out the hex key 0xffffffff and it allows me to store as type int in this form,

my problem is i have to pull a HEX string from the program.

Example

sT = "ffffffff";

int hexSt = Integer.valueOf(sT, 16).intValue();

this only works for smaller integer values

I get an error

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

All i need to do is have this value in an integer variable such as

int largeHex = 0xffffffff

which works fine?

Im using integers because my program will need to generate many values

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1  
Why does int j = 2000000000 not work? Two billion fits within 31 bits. –  David R Tribble Dec 7 '10 at 0:30

6 Answers 6

up vote 2 down vote accepted

Well, it seems there is nothing to add to the answers, but it's worth it to clarify:

  • It throws an exception on parsing, because ffffffff is too big for an integer. Consider Integer.parseInt(""+Long.MAX_VALUE);, without using hex representation. The same exception is thrown here.
  • int i = 0xffffffff; sets i to -1.
  • If you already decided to use longs instead of ints, note that long l = 0xffffffff; will set l to -1 as well, since 0xffffffff is treated as an int. The correct form is long l = 0xffffffffL;.
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nothing to add to the answers? am i missing something?, i have no problem declaring 0xffffffff as an integer, and i can read the value back –  user524156 Dec 4 '10 at 21:24
    
sorry example int test = 0xffffffff System.out.println("test = "+Integer.toHexString(test)); –  user524156 Dec 4 '10 at 21:25
    
so my question is if i can decalre an integer to that value, why if i have it in a string can i not assign an int to that value?? –  user524156 Dec 4 '10 at 21:27
    
Because James Gosling wanted it :) You can write int i = (int)Long.MAX_VALUE; and it will be -1. I agree that it is weird, because compiler complains on int i = 4294967295; but doesn't complain on int i = 0xffffffff;. I think, basically this is because 0x... is treated as a bit sequence and then is casted to the desired type. –  khachik Dec 4 '10 at 21:40
    
ye im stumped, it sounds so simple what i need to do:|, there has to be a way, –  user524156 Dec 5 '10 at 0:27
String hex = "FFFFFFFF"; // or whatever... maximum 8 hex-digits
int i = (int) Long.parseLong(hex, 16);

Gives you the result as a signed int ...

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How about using:


System.out.println(Long.valueOf("ffffffff", 16).longValue());

Which outputs:

4294967295
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i need to convert from a hex string to an integer hex,not print it out, as i said i can assign an int as 0xffffffff and use it increment it read it back etc.. but say if i have a string "ffffffff" how can i assign it to a hex int like before w/o getting major erros –  user524156 Dec 4 '10 at 21:29
    
You have to use the "long" Java primitive type instead of the "int" one in order to be able to work with such a large value, i.e.: <code>long value = Long.valueOf("ffffffff", 16).longValue();</code> –  Jiri Patera Dec 4 '10 at 21:54

The int data type, being signed will store values up to about 2^31, only half of what you need. However, you can use long which being 64 bits long will store values up to about 2^63.

Hopefully this will circumvent your entire issue with hex values =)

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No i have had no problem storing integer values up2 2^32-1 aslong!! as there in hex, –  user524156 Dec 4 '10 at 21:21
    
You shoudn't need to use hex at all as long as you declare your variables as long. Simnply replace int with long in your code above. –  gsteinert Dec 5 '10 at 14:24
    
yes, i am using longs now, the fact of the matter was that java allows signing of integer up2 4.3 billion alsong as its represented in hex, i though great ill use ints as it will save on disk space when writing these billions of keys out, but in the end behaviour just got to strange so i resorted to long –  user524156 Dec 5 '10 at 15:12
    
I think the naming of the data types is what is causing the confusion. Both int and long are Integer data types (along with byte and short), but they are different sized Integer types. If you look at how C++ defines them it may make more sense - a long in java is defined as long int in C++ just as you can have short int and unsigned int as well. All Integer types, but allowing the storage of a different range of values. –  gsteinert Dec 5 '10 at 23:00

Consider using BigInteger

http://download.oracle.com/javase/6/docs/api/java/math/BigInteger.html

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I cannot as stated im generating 2^32 keys, i will have to write them to a file also no way can i use a big int –  user524156 Dec 4 '10 at 21:26
    
You can always write a <code>BigInteger</code> instance to a file as a <code>String</code>. <pre><code> BigInteger bi = new BigInteger("ffffffff", 16); String s = bi.toString(); Writer w = null; try { w = new BufferedWriter(new FileWriter("filename.txt")); w.write(s); } finally { if (w != null) { w.close(); } } </code></pre> –  Jiri Patera Dec 4 '10 at 22:19

int test = 0xFFFFFF; int test2 = Integer.parseInt(Integer.toHexString(test), 16);

^---That works as expected... but:

int test = 0xFFFFFFFF; int test2 = Integer.parseInt(Integer.toHexString(test), 16);

^--That throws a number format exception.

int test = 0xFFFFFFFF; int test2 = (int)Long.parseLong(Integer.toHexString(test), 16);

^--That works fine.

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