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I have a std::vector<char*> list; I have strings I want to add there at runtime that is stored in std::vector<std::vector<unsigned char>> splitted;

std::vector<char*> list; //my list

for (int i = 0; i < splitted.size(); i++)
/* splitted is a vector, that is holding another
 * vector<unsigned char> */
{
    /* Allocate new memory... is this really needed? Because
     * if I use static var, then every list element will be
     * the same as that var. */
    char *temp_name = new char[splitted[i].size() + 1]; 

    //copy bytes from source to new var
    memcpy(temp_name, &splitted[i][0],
           sizeof(unsigned char) * splitted[i].size());
    temp_name[splitted[i].size()] = 0; //add zero byte
    list.push_back(temp_name); //push in vector
}

I ask because I am not sure if there is no memory leak will occur when list will be out of scope. Maybe there is some better way to fill such vectors.

share|improve this question
6  
Just use a vector of std::string. –  chris Jun 22 at 16:14
1  
'Is it a good idea to fill std::vector<char*> elements with elements created with new operator?' Certainly not! :P ... –  πάντα ῥεῖ Jun 22 at 16:17
    
@chris std::unique_ptr<char*> is not bad either... depending on use-case. Might even be far more efficient. –  Deduplicator Jun 22 at 16:19
    
@Deduplicator, Sure, but chances are a string is ok. I guess having both choices available could be better. –  chris Jun 22 at 16:22

1 Answer 1

up vote 1 down vote accepted

Like chris said in the comments, just use a std::string. It's (1) shorter code and (2) safer.

std::vector<std::string> list;

for(const auto & vec : splitted){
    list.emplace_back(vec.begin(), vec.end());
}

Or if your C++ implementation doesn't have emplace_back support or range-based for loops (I'm looking at you, VS2010), then do something like

std::vector<std::string> list;

for(int i = 0; i < splitted.size(); i++){
    list.push_back(std::string(splitted[i].begin(), splitted[i].end()));
}
share|improve this answer
    
code do not compile in VS2010 express. I remake it to: std::vector<std::string> list; for (int i = 0; i < splitted.size(); i++) list.push_back((char*)&splitted[i][0]); –  Kosmos Jun 22 at 16:32
    
@Kosmos Don't do that unless the last character stored in the vectors in splitted is guaranteed to be '\0'. –  T.C. Jun 22 at 17:18

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