I have this line of Java code that will throw NumberFormatException if the number represented as a String is above 2,147,483,647.

Because:

The int data type is a 32-bit signed two's complement integer. It has a minimum value of -2,147,483,648 and a maximum value of 2,147,483,647

Code Throwing the NumberFormatException:

String largeNumberAsAString = "9999999999";
Integer.toHexString(Integer.parseInt(largeNumberAsAString)); // NumberFormatException

How can I get the same functionality of theInteger.toHexString() with a String parameter and not an int parameter due to NumberFormatException?

  • 2
    What about Long.parseLong? – Oliver Charlesworth Dec 5 '17 at 15:16
  • Integer.toHexString() takes an int so I dont think that will work. – javaPlease42 Dec 5 '17 at 15:21
  • 1
    Then how about Long.toHexString? ;) – Oliver Charlesworth Dec 5 '17 at 15:26
  • @OliverCharlesworth You should submit that answer. Seems legit. – javaPlease42 Dec 5 '17 at 16:09
  • @OliverCharlesworth this is a cleaner solution. I prefer using Long.toHexString(Long.parseLong(largeNumberAsAString)); – javaPlease42 Dec 5 '17 at 16:16
up vote 1 down vote accepted

If your input value can be arbitrarily large, then @dasblinkenlight's answer involving BigInteger is your best bet.

However, if your value is less than 263, then you can just use Long instead of Integer:

String dec = "9999999999";
String hex = Long.toHexString(Long.parseLong(dec));
System.out.println(hex);                             // 2540be3ff

Live demo.

  • Long should suffice and this code is cleaner. – javaPlease42 Dec 5 '17 at 16:33
  • @javaPlease42 - FWIW, I'm not sure there's any difference in cleanliness between this and the BigInteger version - they both involve two method calls. – Oliver Charlesworth Dec 5 '17 at 16:34

Use BigInteger to avoid numeric limits of primitive int and long:

BigInteger x = new BigInteger("9999999999999999999999"); // Default radix is 10
String x16 = x.toString(16);                             // Radix 16 indicates hex
System.out.println(x16);

The class conveniently exposes a constructor that takes a String, which gets interpreted as a decimal representation of a number.

Demo.

  • I would suggest that Long has a pretty similar method as what integer is providing. – GhostCat Dec 5 '17 at 15:20
  • 1
    @GhostCat That's right, using long would push the limit quite a bit further. However, the limit would still be there, and OP would have to be careful not to run into it. – dasblinkenlight Dec 5 '17 at 15:23
  • I checked out the demo. Then I used rapidtables.com/convert/number/hex-to-decimal.html to verify the hex was correct. This seems like a good solution. – javaPlease42 Dec 5 '17 at 15:24
  • @javaPlease42 Yes, this is, in effect, a conversion from decimal to hex, limited only by the amount of memory available to your Java virtual machine. – dasblinkenlight Dec 5 '17 at 15:24
  • 1
    @javaPlease42 - Hexadecimal? – Oliver Charlesworth Dec 5 '17 at 15:27

Use Integer.parseUnsignedInt

When the number is above 2^31 but below 2^32, thus in the negative int range, you can do:

int n = Integer.parseUnsignedInt("CAFEBABE", 16);

(I used hexadecimal here, as it is easier to see that above we are just in that range.)

However 9_999_999_999 is above the unsigned int range too.

  • 9999999999 won't fit either way... – Oliver Charlesworth Dec 5 '17 at 15:42
  • @OliverCharlesworth quite right; I will add that mention. But the OP mentions the twos complement problem of int, and seems somehow to focus on ints. I alread mentioned 2^32, and it being a solution for ints above 2^31. – Joop Eggen Dec 5 '17 at 15:52

Try this way:

 String largeNumberAsAString = "9999999999";
    System.out.println(Integer.toHexString(BigDecimal.valueOf(Double.valueOf(largeNumberAsAString)).intValue())); 

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