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I may be completely missing the point here but I have the following method to print out the args in a cpp program in visual studio:

int _tmain(int argc, char* argv[])

    char* fu = "Bar";

    std::cout << "Test, " << argc << ", " << argv[0] << ", " << argv[1] << ", " << fu << endl;
        printf("%s, %s, %s", argv[0], argv[1], fu);
    return 0;

The problem I am having is it only seems to print the first character of the args and not the whole string.

From what I can tell, argv[0] dereferences the argv array to get a char*, and this is what I am passing into the cout/printf functions. They should then print all the characters up to a \0 character.

I created the test char* fu to see if the problem was with passing in a char* to the functions, but 'Bar' is successfully printed.

The only thing I can think is because the size of fu is known at compile time and the size of argv isn't something funny is going on with the way it is compiled.

I know I can print out the contents by looping through the characters but this seems to defeat the point, for example what if I want to work with the strings for comparison or something. Can someone please explain what's going on?

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What are you giving as command line arguments ? – P0W Aug 10 '13 at 12:46
Are you sure the argv[] isn't supposed to be TCHAR rather than char, and you may be using the Unicode version of input, which means that you are trying to print 16-bit per character string as 8-bit per character string - which almost always leads to this particular type of result. – Mats Petersson Aug 10 '13 at 13:07
Command line arguments are: argv[0] is the path/filename of the executable (I think that's correct?), then argv[1] is a string of characters such as "marrrrr" or something. And you are correct Mats, it was TCHAR and I changed it to char just to see if that was anything to do with it but it didnt help just output the same thing.. – Blue42 Aug 10 '13 at 13:55
So use std::wcout to print "wide" characters. – Mats Petersson Aug 10 '13 at 14:19
10 points! How annoying of Microsoft to pass in 16 bit values laugh. I assume then that the bytes are passed in little-endian style (intel i5-3570k) and as the second byte is all 0's it reads that as end of string? If I was on a big endian processor then it would of printed nothing (like a ghost!)? – Blue42 Aug 10 '13 at 14:46

2 Answers 2

The problem is, you are using probabbly Uni-Code char set. so its assumed to be 16 Bit (wide char) per char. But your parsed in chars are only 8 Bits, so your placing the lower 8 Bits in to the 16 Bit area. And you let the other 8 Bits free. So inside your application, you are treating it as not-wide char-array and you are reading it Byte per Byte, so you get the first 8 Bits and the second time, you are reading from a uninitialized block, which is probably just 0000 0000 (what would set in your case a '\0' token) but it could be anything, as you haven't placed some thing in.

The best way of solving this problem would be (As far you wasn't expected to use wide chars) just go into your MSVC project properties, and choose under General->CharacterSet "use multi-byte characterset" instead of "use unicode". Then you should just rename the main into "main" and it should work in scope of your question.

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Well, I forgot to say, whether the second Byte is initialized or not, depends on the input of the args is treat as char or wide char. – Zaibis Aug 11 '13 at 15:41

Either change _tmain to main, or change char to TCHAR and printf to _tprintf. You should be using TCHAR-based facilities consistently, or not at all.

It's clear you are building a Unicode build, and the parameters passed to you are wchar_t* pointers, not char*. By treating them as if they were char*, your program exhibits undefined behavior.

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