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Is it possible to do something like:

const char* str = "AaBbCc";
string str_up = boost::to_upper_copy(str); // str_up will be "AABBCC"

Last line doesn't compile.

Of course I can as below, but it less "canonical":

const char* str = "AaBbCc";

string str_up = str;
boost::to_upper(str_up);
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3 Answers 3

up vote 2 down vote accepted

Why not post the right solution as an answer to the question?

 const char* str = "AaBbCc";
 std::string str_up = boost::to_upper_copy(std::string(str));

Credits to Konrad.

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Or, equivalently, std::string str_up = boost::to_upper_copy<std::string>(str);, credit to UncleBens –  Robᵩ Mar 17 '11 at 21:32
    
I think that UncleBens posted earlier. (I can't delete own my answer, as I want, because it was accepted.) +1 UncleBens –  alfC Mar 18 '11 at 1:01

The declaration of to_upper_copy is:

template<typename SequenceT> 
SequenceT to_upper_copy(const SequenceT &, const std::locale & = std::locale());

From this it should be clear that SequenceT can't be a pointer to char, or even a char array, because there's no (good) way how the returned copy could have the same type.

You can explicitly force the type to be string:

string str_up = boost::to_upper_copy<string>(str); 

Here's explanation what SequenceT and RangeT mean in the documentation: String Representation. In short, neither can be a const char*, but RangeT arguments accept arrays (char [X]).

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Sure!

inline std::string to_upper_copy(std::string const & src) {
   std::string res(src);
   boost::to_upper(res);
   return res;
}
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This is not what I'm trying to achieve. I want to convert chat* to std::string in upper case in one expression. –  dimba Mar 17 '11 at 18:09
    
@dimba: Which you can do by calling this function. –  Erik Mar 17 '11 at 18:09
    
@Erik: Can I do it by boost only, without forcing user to write an auxiliary function? –  dimba Mar 17 '11 at 18:13
1  
@dimba: Sure. Just put the conversion to string into the call: string result = to_upper_copy(string(src)) – but why? And no, there is no direct way since the Boost function expects a range, and a C-style string isn’t one. –  Konrad Rudolph Mar 17 '11 at 18:15
    
@Konrad Rudolph: thanks. Why not, it's shorter. Do you see with this for some problem, except that some programmers can not love chaining of too functions? –  dimba Mar 17 '11 at 18:21

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