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is there a way to convert from char[] to unsigned char*? like if char buf[50] ="this is a test"; so I want convert it to unsigned char* conbuf=buf; or something like that

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don't you mean Convert from char array to unsigned char *? –  Devendra D. Chavan Feb 9 '11 at 11:58
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@Paul R I am not sure if there is any question that is considered "too basic" for Stackoverflow.com –  CashCow Feb 9 '11 at 12:00
    
I fixed the title –  CashCow Feb 9 '11 at 12:02
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@CashCow, I agree sorta - but some questions come with such a lack of understanding of the language that they are not helpful for anyone, even beginners. Questions that can't really be answered without a lesson on basic fundamentals. Questions that end in "or something like that" tend to fall into this category :P A teacher would probably begin answering this with, "hold on. let's talk about strings." or "hold on. what are you trying to do?" –  tenfour Feb 9 '11 at 12:08
    
@tenfour Then answer with, "Hold on, let's talk about strings" and talk about strings. TQCopier came to learn; "get a book" was utterly dismissive and gave no useful information (other than, "You know nothing"). It was not in the spirit of StackOverflow. –  Nathan Fig Aug 4 '11 at 14:19

2 Answers 2

Although it may not be technically 100% legal this will work reinterpret_cast<unsigned char*>(buf).


The reason this is not 100% technically legal is due to section 5.2.10 expr.reinterpret.cast bullet 7.

A pointer to an object can be explicitly converted to a pointer to an object of a different type. original type yields the original pointer value, the result of such a pointer conversion is unspecified.

Which I take to mean that *reinterpret_cast<unsigned char*>(buf) = 'a' is unspecified but *reinterpret_cast<char*>(reinterpret_cast<unsigned char*>(buf)) = 'a' is OK.

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apart from too many f's in buf I can't see why it would not be legal. –  CashCow Feb 9 '11 at 12:01
    
@CashCow thanks for the typo fix, please see my explanation why this isn't really legal. –  Motti Feb 9 '11 at 14:35

Just cast it?

unsigned char *conbuf = (unsigned char *)buf;
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in C++, "Just cast it" always needs a disclaimer :) –  tenfour Feb 9 '11 at 12:08
    
Heh-heh! Disclaimer: This answer is fine for the text you show in the question. Don't try it on arrays of signed 8 bit numbers. –  Dave Feb 9 '11 at 12:11

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