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i'm sending a string(sequence of characters) to a function in c++ and then the function would receive it in a pointer of char type. but when i increase the pointer to reach each character it goes out of the string after 19th character and just points to somewhere else in my program. here's the string i'm sending:

\xe1\x0c\x01\x00\x00\x01\x00\x00\x00\x00\x00\x00\x06google\x03com\x00\x00\x01\x00\x01

and here's my code:

char* request_process(char *request)
{
     for (int j = 0; j< 27; j++)
     {
        cout << (request[j] << 0) << "\n";
     }
 .
 .
 .    
 }

after "google" it goes wrong. so what should i do to have it as (binary)"00000011" and then 'c'?

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closed as not constructive by Stony, Masi, Joel Berger, Reuben Mallaby, Praveen Kumar Dec 31 '12 at 17:38

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2  
What do you mean by "goes wrong"? (See also ideone.com/xoLJxU) –  Oliver Charlesworth Dec 31 '12 at 13:06
1  
Your actual question is a red herring. The answer is platform-dependent, but you should be able to rely on the compiler to lay out your memory so that pointers cannot go out of bounds. Your problem lies elsewhere. –  tripleee Dec 31 '12 at 13:08

1 Answer 1

The pointer is almost certainly not the problem. On the other hand, cout is opened in text mode, and outputing non-printing characters other than a few specially reserved (like '\n') to a file opened in text mode is undefined behavior. In practice, the implementation will probably let the characters through, but who knows what effect they will have on the output device.

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so what should i do to have it as (binary)"00000011" and then 'c'? –  sia Dec 31 '12 at 14:43
    
You shouldn't output "\x03" to a console device, period. –  James Kanze Dec 31 '12 at 17:45

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