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I have in C++

char *s, mask;
// Some code

If(*s == 0){ //Some more code}

If(*s & mask){ //Some code}

In Java can I write this like

byte s,mask;
//Some code 
If(s == (byte)0x0){ //Some more code}   
If((s & mask) != (byte)0x0){ //Some Code} 

Is the java code correct?

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Are you writing character set conversion ? <whistle/> –  sehe Jun 20 '11 at 6:49
    
Yes we are initializing the s variable both in C++ and Java. –  JavaBits Jun 20 '11 at 6:56
    
What does *s means? –  JavaBits Jun 20 '11 at 6:56
    
Pointers and Pointer arithmetic –  sehe Jun 20 '11 at 8:36

5 Answers 5

up vote 1 down vote accepted

Does the C++ code really say if (*s == 0), or does it really say if (s == 0)? In the first, you're checking if what s points to is 0, while in the second, you're checking if s is a null pointer. Those are two very different things.

Java doesn't have pointers, so this code cannot be translated to Java directly.

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Yes after initializing s the ccode says (*s==0). –  JavaBits Jun 20 '11 at 6:57
    
in *s == 0 . *s points to the object or what? So is it checking the object is empty or wat? –  JavaBits Jun 20 '11 at 7:16
    
*s is the thing that s points to - it is checking if the thing that s points to is 0. There's no object involved, s is a pointer to char. It's checking if the char that s points to is 0. In C, strings are usually zero-terminated, so this looks like checking if a string is empty. –  Jesper Jun 20 '11 at 7:21

In C++ the default value of an uninitialized pointers in undefined. You have to initialize it explicitly. In Java, the default value of a variable of type byte is 0, unless it is a local variable, in which case you have to initialize it explicitly too.

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But only for member variables; local variables are not initialized to a default value, you must initialize to some value explicitly, and if you don't you get a compilation error. –  Jesper Jun 20 '11 at 6:48
    
@Jesper: Thanks, fixed that. –  Björn Pollex Jun 20 '11 at 6:49

In C++ this code is undefined behavior:

If(*s == 0)  // 's' is not initialized

I think in Java, eclipse type of editor might complain for uninitialized s. It's a good practice to initialize a variable in any of the language before reading it.

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The most likely translation you'd want to do (this looks like some kind of lowlevel parsing; for scanning of binary byte arrays, 'unsigned char' would have been expected):

byte[] s; // with some kind of value
for (int i=0; i<s.Length; i++)
{
     if (s[i] == 0x0){ //Some more code}   
     if ((s[i] & mask) != 0x0){ //Some Code}
}

(untouched by compilees, and my java is swamped by years of C++ and C# :))

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this should be equivalent to your C++ code:

    byte s[], mask;

    if (s[0] == 0) { /*Some more code*/ }

    if ((s[0] & mask) != 0) {/*Some code*/}

@sehe pointed out s is likely to get incremented in the C++ code -- in which case s[0] should change to s[pos] in the Java example:

    byte s[], mask;
    // initialize s[] to store enough bytes
    int pos;
    if (s[pos = 0] == 0) { pos++; /* Some code */ }

    if ((s[pos] & mask) != 0) {/*Some code*/}
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1  
this defies the fact that the code not shown will almost certainly increment s –  sehe Jun 20 '11 at 8:35
    
Interesting guess. Even so, this is a decent C++ to Java mapping assuming char* s is an array of bytes. I will update the answer to reflect the potential increment of s –  Nick Jun 20 '11 at 9:33
    
mmm... assignment inside the indexer, single post-increment at start of 'some code'; I think my version of it looks a lot more 'canonical' (even if pos++ is at the right spot, you'd write continue in my for loop) –  sehe Jun 20 '11 at 9:40
    
@sehe, sure, whatever. we don't even knwo what the OP wants –  Nick Jun 20 '11 at 10:03
    
hehe -- funny how SO works like that :). I usually leave these questions alone. My goal is not to add confusion. –  sehe Jun 20 '11 at 10:18

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