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I'm reading this example

The real "Hello World!" for CUDA!
What does the \0 in

char str[16] = "Hello \0\0\0\0\0\0";

stand for?

I'm not sure why the 16 char str has "Hello " inside it and then all zeroes then (this isn't a global variable). How can I be sure that it just contains zeroes?"

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4  
This is as good as char str[16] = "Hello"; –  iammilind Jun 17 '13 at 7:33
2  
@iammilind I'm quite sure it's worse. And the fact that it caused this question is proof of that. –  Will Jun 17 '13 at 7:35
3  
You can't expect that everyone follows the link or reads it. You should mention that its about CUDA which is important in this case. With CUDA or GPU calculation in general it could be cheaper to pad with \0 instead of adding length logic. –  t.niese Jun 17 '13 at 7:47
2  
@busy_wait Perhaps, but it really has nothing at all to do with the fact that it is CUDA. –  Jonathon Reinhart Jun 17 '13 at 8:52
3  
@iammilind: You surely mean char str[16] = "Hello "; — mind the gap, err space. –  celtschk Jun 17 '13 at 20:00

3 Answers 3

up vote 21 down vote accepted

'\0' is the ASCII NUL null character (ASCII code zero).

There is no point in specifying all of the zero bytes in the array. The following are equivalent:

char str[16] = "Hello \0\0\0\0\0\0";
char str[16] = "Hello ";

If an array is partially initialized, elements that are not initialized receive the value 0 of the appropriate type. [IBM]

Since the length was given to be 16, the compiler will automatically ensure the rest of the array (after "Hello " is zeroed.) The author did this either to "be sure" the rest of the array was zero, or to serve as documentation for the reader.

Contrary to our initial analyses, the CUDA kernel is not "poking in bytes" to append World! to the existing string. Hello is printed first. Then the kernel modifies the string to be World!, which is finally printed.

The only reason the string is specified to be 16 bytes, is because that is the block size the kernel is designed to work with, and they have to make sure that the kernel is not messing with memory it shouldn't be.

I've added some comments to the (partial) original code to make this all more clear:

__global__                              // The kernel which is run in parallel
void hello(char *a, int *b) 
{
    a[threadIdx.x] += b[threadIdx.x];
}

int main()
{
    // The line in question. There's really no point in padding it with zeros.
    // The zeros are *not* replaced, and only 12+1 bytes are being specified.
    char a[N] = "Hello \0\0\0\0\0\0";

    // These values are added (by the CUDA kernel) to the array above. Again,
    // since partial arrays are zero-filled, there's no point in filling this in.
    int b[N] = {15, 10, 6,  0, -11,  1, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0};

    // 'H' + 15 = 'W'
    // 'e' + 10 = 'o'
    // 'l' + 6  = 'r'
    // 'l' + 0  = 'l'
    // 'o' - 11 = 'd'
    // ' ' + 1  = '!'

    char *ad;
    int *bd;
    const int csize = N*sizeof(char);
    const int isize = N*sizeof(int);

    printf("%s", a);                  // Print "Hello "

    cudaMalloc( (void**)&ad, csize ); 
    cudaMalloc( (void**)&bd, isize ); 
    cudaMemcpy( ad, a, csize, cudaMemcpyHostToDevice ); 
    cudaMemcpy( bd, b, isize, cudaMemcpyHostToDevice ); 

    dim3 dimBlock( blocksize, 1 );
    dim3 dimGrid( 1, 1 );
    hello<<<dimGrid, dimBlock>>>(ad, bd);   // Add the values in b to a


    cudaMemcpy( a, ad, csize, cudaMemcpyDeviceToHost ); 
    cudaFree( ad );
    cudaFree( bd );

    printf("%s\n", a);               // print "World!"
    return EXIT_SUCCESS;
}
share|improve this answer
    
@glglgl I approve of your edit. Had I realized it, I would have done the same :-) –  Jonathon Reinhart Jun 17 '13 at 7:56
    
[printf past a buffer] "print a bunch of garbage"... or crash. –  Tony D Jun 17 '13 at 8:13
    
@TonyD edited. Thanks. –  Jonathon Reinhart Jun 17 '13 at 8:17
    
I doubt that the author is trying to ensure anything ... those \0 are just placeholders for the bytes that will be replaced with "World!" ... they're a form of documentation. What they certainly aren't (contrary to some other answers and comments here) are string terminators. –  Jim Balter Jun 17 '13 at 8:21
    
@JimBalter Explain to me more about how they "certainly aren't ... string terminators". –  Jonathon Reinhart Jun 17 '13 at 8:22

\0 stands for NUL, Nul is used as a string termination character. Meaning it states the end of a string. The value of a NUL byte is 0x00

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12  
No, it's NUL (as in the ASCII character) not NULL as in (void *)0. –  trojanfoe Jun 17 '13 at 7:35
7  
@DevZer0 I wasn't going to downvote, but you're not getting the point. '\0' is the NUL ASCII character. NULL is a pointer, often defined as (void*)0. Yes, they're both zero, but they are differently typed values with different meanings. –  Jonathon Reinhart Jun 17 '13 at 7:40
5  
That says it's the "null character", abbreviated NUL (as it appears in the ASCII table). It says nothing about NULL. –  trojanfoe Jun 17 '13 at 7:40
3  
your != you're :D –  trojanfoe Jun 17 '13 at 7:42
3  
@DevZer0 in the same way that "a vector" isn't the same as std::vector. Same name, used for similar reasons, but to describe different things: ASCII defines a character value named NUL to be "the null character" with value 0. C++ defines NULL to be a constant with the value 0. Of course they're related, but they're not the same. –  jalf Jun 17 '13 at 7:45

As stated it has little sense. \0 just places the character with code 0 there, but it happens anyway. The good use of this is where array bounds are not given, as the extra 0 will count in, or where you have more characters after the 0.

char foo_and_bar[] = "Foo\0Bar";

will separate the parts with 0.

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As stated it has plenty of sense. Those six \0 are placeholders marking the bytes that will be replaced by "World!". They aren't necessary, but they are meant to make the code clearer. –  Jim Balter Jun 17 '13 at 8:30
    
@JimBalter Just pointing out that the zero bytes are not replaced with "World!". –  Jonathon Reinhart Jun 17 '13 at 8:43
    
@JonathonReinhart Yes, I misunderstood the code; thanks for the clarity of your answer above. –  Jim Balter Jun 17 '13 at 19:21

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