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I'm trying to do my first baby steps with C++.

Can somebody explain why this does not work the way I'd expect?

#include <iostream>
#include <stdio.h>

using namespace std;

int main (int argc, char *argv[]) {
    int i;
    printf("[D] sizeof argv is: %d\n", sizeof(argv) );
    printf("[D] sizeof int  is: %d\n", sizeof(int) );
    printf(
        "[D] sizeof argv / sizeof int is: %d\n",
        sizeof(argv) / sizeof(int)
    );

    for (i = 0; i < (sizeof(argv) / sizeof(int)); i++ ) {
        printf("[D] i is: %d\n", i );
        cout << argv[i] << endl;
    }

    if (cout.fail()) {
        printf("cout failed!\n");
    }

    cout << "Hello world" << endl;
}

Now the testing:

aloism@azzgoat:~/sandbox/tuts$ g++ string02-d.cpp
aloism@azzgoat:~/sandbox/tuts$ ./a.out hello world
[D] sizeof argv is: 8
[D] sizeof int  is: 4
[D] sizeof argv / sizeof int is: 2
[D] i is: 0
./a.out
[D] i is: 1
hello
Hello world
aloism@azzgoat:~/sandbox/tuts$ ./a.out
[D] sizeof argv is: 8
[D] sizeof int  is: 4
[D] sizeof argv / sizeof int is: 2
[D] i is: 0
./a.out
[D] i is: 1
cout failed!
aloism@azzgoat:~/sandbox/tuts$ echo $?
0
aloism@azzgoat:~/sandbox/tuts$

Why when there is only one item in argv (argv[0], being "./a.out"), the "Hello world" is skipped? I can't find any reason at all why this would be skipped, no matter the argc or argv!

The OS is Debian Squeeze on 64-bit (so sizeof(int) == 4).

Update: Removed #include noise, added some debugging.

Update 2: Added some debugging based on user315052's answer. (Now it shows that he's right.)

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2  
It should be for (i = 0; i < argc; i++)... What, do you think, is that ARGument Count parameter for? –  Griwes Jun 17 '12 at 15:41
3  
By the way that's not C++, that's not even a valid function declaration in C++! It should be int main... –  K-ballo Jun 17 '12 at 15:42
2  
You don't use either <string> or <stdlib.h>. In a C++ program, you should probably use <cstdlib> when you need services from the C <stdlib.h> header. –  Jonathan Leffler Jun 17 '12 at 15:56
2  
@AloisMahdal Whatever you do, please don't explain where "azzgoat" comes from. I don't want to know. –  Mr Lister Jun 17 '12 at 15:56
1  
You should try your program as ./a.out hello world this is the universe calling; it will probably produce just ./a.out, hello, and Hello world. –  Jonathan Leffler Jun 17 '12 at 15:59
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3 Answers

up vote 3 down vote accepted

Edit: since undefined behavior is invoked, anything can happen. Adjusting answer.

The "Hello World" is probably not being skipped. Realize your for loop is improper. One reason that it may not be appearing is that you have printed something that is covering up the appearance of the message. To test this, redirect the output into something that will reveal binary contents of the output stream.

./a.out | xxd

Another reason may be that the output is being blocked because std::cout suffered a failure from an attempt to print a NULL pointer as a string. To test for this, check for std::cout.fail() after the print statement in your loop, and direct a message to std::err if you encounter one.

The program may also crash, as indicated by Boann. However, the operating system would have provided a diagnostic to that effect, and you reported no such behavior.

For arrays that are function parameters, the compiler treats them as a pointer. This is a behavior inherited from C, where arrays are passed by "reference" by allowing the name of an array to decay to the address of its first element (with a few exceptions, sizeof being one of them). So, using sizeof to determine the number of elements in argv won't work. Both C and C++ provide two ways to determine when the end of the argv vector is reached. One is argc which is the argument count. The second is that the last element of argv must be a NULL pointer.

The next time you have a true array, you can calculate the number of elements with sizeof using the following:

SomeThing array[] = { /* ... things ... */ };
size_t array_size = sizeof(array)/sizeof(array[0]);

This way, if SomeThing changes, the array size is still properly calculated.

share|improve this answer
    
Or, better yet, ./a.out | hd. –  Griwes Jun 17 '12 at 15:45
    
xxd nor hd did not reveal "Hello world" anywhere :/ –  Alois Mahdal Jun 17 '12 at 15:57
    
@Griwes: Thanks for the input, I don't have hd on my system, but I do think a pipe is better. Edit made. Regards –  jxh Jun 17 '12 at 16:13
    
@AloisMahdal: I updated my answer, there is another reason it might not be printing. –  jxh Jun 17 '12 at 16:13
    
You are right that cout is blocked and fails silently, and cout.fail() returns true to indicate it. OS does not seem to care :) (Updated Q to show why I'm accepting this A.) –  Alois Mahdal Jun 17 '12 at 16:22
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Your sizeof check is faulty and always evaluates to 2 [on 64-bit]. Consequently, when you don't give the program at least one argument, it tries to print from unmapped memory at argv[1], and crashes.

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I am not able to reproduce your error. "Hello World" is printed in both cases for me.

kjp@vbox:~/Dev/ScratchDir$ ./a.out 
./a.out
Hello world
kjp@vbox:~/Dev/ScratchDir$ ./a.out Hello
./a.out
Hello world
kjp@vbox:~/Dev/ScratchDir$ 

Can you check if there is any core dump maybe?

share|improve this answer
    
There is no core dump, and $? is zero. –  Alois Mahdal Jun 17 '12 at 15:56
    
Ok so possibly it is printing some junk that is backspacing over your Hello World. Can you do ./a.out | hd like @Griwes says –  kjp Jun 17 '12 at 16:00
3  
"I am not able to reproduce your error." kjp meet undefined behaviour, undefined behaviour meet kjp. –  R. Martinho Fernandes Jun 17 '12 at 16:01
    
@kjp 32-bit system? –  Daniel Fischer Jun 17 '12 at 16:02
    
@DanielFischer yes. 32 bit VirtualBox –  kjp Jun 17 '12 at 16:11
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