4

In the following line, can buffer be assumed to be filled with zeroes?

byte buffer[] = new byte[120];
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  • 5
    This only takes 10 sec to test yourself...
    – AppX
    Sep 30, 2013 at 12:32
  • 7
    @AppX For instance in C, this would work sometimes depending on compiler and lucky memory allocation. I didn't know whether it was the same for Java.
    – Andreas
    Sep 30, 2013 at 12:33
  • 3
    @AppX But then you don't know if it only applies in your environment or is consistent over all the different ones and won't change over time. Sep 30, 2013 at 12:34
  • 1
    Java is much more system independant than C, unless you're doing something crazy it will be the same on all systems. cc @AngeloNeuschitzer Sep 30, 2013 at 12:50

4 Answers 4

10

http://docs.oracle.com/javase/tutorial/java/nutsandbolts/datatypes.html

The default value of a byte is 0.

enter image description here

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  • 3
    That's only part of the answer.
    – user207421
    Oct 1, 2013 at 2:18
10

Language-lawyer-answer completely based on Java Language Specification:

10.3. Array Creation

An array is created by an array creation expression (§15.10) or an array initializer (§10.6).

10.6. Array initializers

ArrayInitializer:

{ VariableInitializersopt ,opt }

So, we can conclude that your expression is not an array initializer (it isn't wrapped in braces). So we move to array creation:

15.10.1 Run-Time Evaluation of Array Creation Expressions

...Then, if a single DimExpr appears, a one-dimensional array is created of the specified length, and each component of the array is initialized to its default value (§4.12.5).

Otherwise, if n DimExpr expressions appear, then array creation effectively executes a set of nested loops of depth n-1 to create the implied arrays of arrays.

And finally:

4.12.5. Initial Values of Variables

...For type byte, the default value is zero, that is, the value of (byte)0.

So the answer is Yes any implementation of java is expected to initialize byte array with zeroes.

8

All objects and arrays are initialised with zeros or the equivalent (null, false) on construction.

The default values are listed in JLS 4.12.5 and thus are guaranteed.


FROM 4.12.5. Initial Values of Variables

Each class variable, instance variable, or array component is initialized with a default value when it is created (§15.9, §15.10):

  • For type byte, the default value is zero, that is, the value of (byte)0.

  • For type short, the default value is zero, that is, the value of (short)0.

  • For type int, the default value is zero, that is, 0.

  • For type long, the default value is zero, that is, 0L.

  • For type float, the default value is positive zero, that is, 0.0f.

  • For type double, the default value is positive zero, that is, 0.0d.

  • For type char, the default value is the null character, that is, '\u0000'.

  • For type boolean, the default value is false.

  • For all reference types (§4.3), the default value is null.

6
  • Local object references are not initialized with null on construction. {Byte b; System.out.print(b);} Will not compile since b is a local variable and not a field
    – Ron
    Sep 30, 2013 at 12:38
  • @RonE Could you expand, please? Would using byte b solve that?
    – Andreas
    Sep 30, 2013 at 12:42
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    IMHO, Local variables are not constructed. There is no new for a local variable. ;) Sep 30, 2013 at 12:45
  • @Andreas No, the compiler checks all local variables to ensure they have an initial value before being used. Sep 30, 2013 at 12:45
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    @Andreas They have been initialised before the read, even if they didn't need to be. See the quote from the JLS I have added. ;) Sep 30, 2013 at 12:50
-1

Why you didn't try this one.

       byte buffer[] = new byte[120];
        for (int i = 0; i < buffer.length; i++)
        {
            System.out.println(buffer[i]);
        }    

Please find the reference

http://docs.oracle.com/javase/tutorial/java/nutsandbolts/datatypes.html

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  • 12
    Because there's no way of testing whether it's guaranteed. What if I were just lucky with memory allocation?
    – Andreas
    Sep 30, 2013 at 12:34
  • 3
    This is not an answer. There is nothing here or in the link that answers the question. It should have been posted as a comment.
    – user207421
    Oct 1, 2013 at 2:17

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