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Let me ask my question by code:

char* apples = "apples";
std::string str("I like .....");
// need to copy apples to str to have "I like apples", without creating new objects

There is assign function but unfortunately it seems is not possible to provide std::string offset.

I do not want to allocate new object as this is low-latency and frequently part of code.

upd by mistake i've put 5 dots above but I meant 6 dots to fit "apples" perfectly :) Of course if string capacity is not enought some objects have to be created. In my question I assume that string capacity is enough.

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What are you trying to do? Overwrite string's tail, like in my answer, or to append arbitrary string to your? –  kassak Apr 23 '13 at 7:37
    
well i need overwrite "....". however append will also work. i can resize original string cutting ... and then append... –  javapowered Apr 23 '13 at 7:40
    
Did you intend there to be six dots in the string, so that they could be overwritten with "apples" without resizing the string? As it is, the string will need to grow if you want to replace five dots with six letters. –  Mike Seymour Apr 23 '13 at 7:51
    
@MikeSeymour 5 dots is not intentional. string may grow if capacity is not enough, but it will grow once and then i can reuse it many times, so this is ok. Moreover i call reserve before using so actually it should never grow. –  javapowered Apr 23 '13 at 7:53

5 Answers 5

up vote 1 down vote accepted

Why not use std::string::replace?

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if it works then the question is what is better std::copy or std::string::replace –  javapowered Apr 23 '13 at 7:43
    
@javapowered They don't do the same thing. –  James Kanze Apr 23 '13 at 7:46
    
@javapowered: replace does (I think) what you want, replacing a substring with another string even if they have different lengths. copy will overwrite part of the string, and will go horribly wrong if the string isn't long enough (which is the case in your example). –  Mike Seymour Apr 23 '13 at 7:48
    
@MikeSeymour Yes. That's what I meant in another comment: replace is the safest solution. And once the string has reached it's maximum capacity, there probably won't be any additional allocations. (With CoW implementations, like g++, you might have to do something to "isolate" the implementation as well if you really must avoid all allocations.) –  James Kanze Apr 23 '13 at 7:56
    
I'm afraid my answer is not what you are looking for, as replace does allocate a new string. –  Nicola Musatti Apr 23 '13 at 7:56

You can use std::copy algorithm http://www.cplusplus.com/reference/algorithm/copy/

std::copy(apples, apples + sz, str.begin() + offset);

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what OP is trying to do is to add the string without copying, which is not possible. –  Ivaylo Strandjev Apr 23 '13 at 7:35
    
@IvayloStrandjev I think, he was talking about overwriting string's tail. I'll ask him for clarification =) –  kassak Apr 23 '13 at 7:36
    
@IvayloStrandjev i don't want to introduce "intermediate" objects. for example i don't want to convert char* apples to intermediate std::string. Instead I want to copy string directly to str but i need to provide position. I think kassak answered my question. –  javapowered Apr 23 '13 at 7:41
2  
If his desire is to append, rather than overwrite, using std::back_inserter( str ) as the third argument will also do the trick. There are also a number of member functions: append, insert, etc.; in this case, the "safest" solution is probably something like str.replace( offset, std::string::npos, apples ); this will replace any characters after offset with the characters in apples, extending or reducing the size of str as necessary. –  James Kanze Apr 23 '13 at 7:45

Even assign will copy the content of whatever you pass to it. You will not be able to do what you try to. A string holds a pointer to a continuous block of characters in the memory. You can not just glue arbitrary things to it.

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i'm ok to copy! that's what i want to do. well it seems my question is too simple and i confuse people. I think I just should use replace. –  javapowered Apr 23 '13 at 7:48
1  
@perreal It depends. First, the standard makes no guarantees for std::string; a conforming implementation can do a reallocation any time a non-const function is called. If you need guarantees, use std::vector<char>. Second, all of the implementations I've seen do behave more or less like std::vector<char>, at least most of the time. (E.g. g++ may do a reallocation if you use [] on a non-const string. But only the first time; after that, there will be no more reallocation until the capacity is exceeded.) –  James Kanze Apr 23 '13 at 7:49
    
@JamesKanze, thanks very informative –  perreal Apr 23 '13 at 7:51
    
@javapowered That's my impression as well. If replace needs to increase the capacity of the string, it will reallocate. You can avoid this by ensuring sufficient capacity up front. Also: some implementations (e.g. g++) use reference counting and copy on write. These may reallocated at odd moments, even when you don't modify the string. The conditions controlling this are rather complex, and I doubt that it will really be an issue, but if you want guarantees, use std::vector<char>. –  James Kanze Apr 23 '13 at 7:53

The answer of using the std::copy() algorithm is the best one AFAIK. You could also use plain old C (you understand, it is not actually C, C style would be a better name) to achieve the same thing:

char* apples = "apples";
std::string str("I like .....");

char * ptr = apples;
while( *ptr != 0 ) {
    str.push_back( *ptr );
    ++ptr;
}

As you can see, there is no temporary object created here, but... Does that mean there are no allocations in the process? Indeed they are.

A std::string is basically a vector of chars. The string has a capacity() method that returns how many extra chars can be appended without triggering another allocation (which can involve a reallocation, thus copying the whole vector). The best you can do in order to avoid allocations is to ensure that the string will have enough space for all characters to insert.

char* apples = "apples";
std::string str("I like .....");

str.reserve( str.length() + strlen( apples ) );

char * ptr = apples;
while( *ptr != 0 ) {
    str.push_back( *ptr );
    ++ptr;
}

This way you can ensure that there will be one allocation only in the std::string: the one triggered with reserve().

Hope this helps.

share|improve this answer
    char * apples = "apples";
string something = "I like ....";
    for (int i = 0; i < something.length() - 1; i++)
    {
        if (something.find('.'))
            something.pop_back();
    }
    something.resize(something.length() + 1);
    for (int i = 0; i < strlen(apples); i++)
        something.push_back(apples[i]);
cout << something <<endl;
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