9

I am trying to write following code.but it gives me error kindly help me.

    int six=06;
    int seven=07;
    int abc=018;
    int nine=011;
    System.out.println("Octal 011 ="+nine);
    System.out.println("octal O18 =" + abc);

why i cant give 018 and 019 to variable.i can give value 020 and 021 to variable. Why this happen? what's the reason behind this Kindly tell me.
I got Following error

            integer number too large: 018
            int eight=018;
  • 3
    octal Number consist only 0 to 7. and you are breaking that restriction. – joshua May 8 '13 at 6:11
  • 6
    What result did you expect for abc? It feels like you haven't really understood what octal is about... – Jon Skeet May 8 '13 at 6:12
26

Octal is base-8 number system, so it means digit can be from 0 to 7, you can't use digit 8 (and 9 too) in octal number system.

20

why i cant give 018 and 019 to variable.

Because an integer literal prefixed with 0 is treated as octal, and '8' and '9' aren't valid octal digits.

From section 3.10.1 of the JLS:

An octal numeral consists of an ASCII digit 0 followed by one or more of the ASCII digits 0 through 7 interspersed with underscores, and can represent a positive, zero, or negative integer.

Trying to use '8' in an octal number is like trying to use 'G' in hex... it's simple not part of the set of symbols used in that base.

  • 1
    thank you this is my answer – Kapil May 8 '13 at 6:13
17
// Decimal declaration and possible chars are [0-9]
int decimal    =  495;        

// HexaDecimal declaration starts with 0X or 0x and possible chars are [0-9A-Fa-f]
int hexa       =  0X1EF; 

// Octal declaration starts with 0 and possible chars are [0-7] 
int octal      =  0757;  

// Binary representation starts with 0B or 0b and possible chars are [0-1]  
int binary     =  0b111101111; 

If the number is string format then you can convert it into int using the below

String text = "0b111101111";
int value = text.toLowerCase().startsWith("0b") ? Integer.parseInt(text.substring(2), 2)
                                  : Integer.decode(text);
7

Octal numbers (base 8) can only use the following figures: 01234567. The same way that decimal numbers (base 10) can only use 0123456789.

So in octal representation, 17 + 1 is 20.

  • 1
    017+01 = 16 not 20 – newman Oct 18 '15 at 15:29
  • 1
    @miliu you are mixing octal and decimal - I meant: 017 + 01 = 020. – assylias Oct 19 '15 at 7:43
6

why i cant give 018 and 019 to variable.i can give value 020 and 021 to variable.

The leading zero signifies an octal literal. However, 8 and 9 are not valid octal digits. This makes 018 and 019 invalid.

6

The prefix 0 indicates octal(8 base)(digits 0-7).

public class MainClass{

  public static void main(String[] argv){

    int intValue = 034;  // 28 in decimal
    int six = 06; // Equal to decimal 6
    int seven = 07; // Equal to decimal 7
    int eight = 010; // Equal to decimal 8
    int nine = 011; // Equal to decimal 9

    System.out.println("Octal 010 = " + eight);

  }

}
  • Thank you, I forget about for the prefix and I was looking for it :) – Henrique de Sousa Oct 10 '14 at 23:06
4

When an integer literal starts with 0 in Java, it's assumed to be in octal notation. The digits 8 and 9 are illegal in octal—the digits can range only between 0 and 7.

  • 1
    .........that's the point i got my ans. – Kapil May 8 '13 at 6:12
3

Because it's octal, an octal number has 8 digits which spans from 0 to 7 inclusive. For the same reason 12 would be an invalid binary number.

You need at least base 9 to have 18 and a normal decimal base for 19.

  • thank you.. i got it.. thank you – Kapil May 8 '13 at 6:12

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.