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EI have function which takes as parameter pointer to vector:

void Function(std::vector<type>* aa)

Now inside this function I want to filter out data from that vector to another vector and I want to change data of original vector by changing values of this temporary one. Damn it's hard to understand something like:

void Function(std::vector<type>* aa)
{
    std::vector<type*> temp; //to this vector I filter out data and by changning 
    //values of this vector I want to autmatically change values of aa vector
}

I have something like that:

void Announce_Event(std::vector<Event>& foo)
{
    std::vector<Event> current;
    tm current_time = {0,0,0,0,0,0,0,0,0};
    time_t thetime;
    thetime = time(NULL);
    localtime_s(&current_time, &thetime);
    for (unsigned i = 0; i < foo.size(); ++i) {
        if (foo[i].day == current_time.tm_mday &&
            foo[i].month == current_time.tm_mon &&
            foo[i].year == current_time.tm_year+1900)
        {
            current.push_back(foo[i]);
        }
    }
    std::cout << current.size() << std::endl;
    current[0].title = "Changed"; //<-- this is suppose to change value.
}

That does not change original value.

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1  
Why a pointer? Why not a reference? And it's not clear what your question is. –  nbt May 15 '11 at 16:20
4  
where is your question? –  Constantinius May 15 '11 at 16:20
    
Question is how can I achieve it? –  adadad May 15 '11 at 16:21
    
You seem to want to do two things. Can you do either one? What have you tried? –  Beta May 15 '11 at 16:22
    
I want to do one thing. I want to know how can I change values of aa vector by changing data in temp, shouldn't I use pointers which will point to elements of aa vector? I am trying all the time but I'm getting compilator errors. –  adadad May 15 '11 at 16:25
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3 Answers

I think you may be having trouble communicating your intentions, so this calls for a psychic answer.

void Func(std::vector<type> & aa)
{
    std::vector<type*> temp;

    // I wish <algorithm> had a 'transform_if'    
    for(int i=0; i<aa.size(); ++i)
    {
        if( some_test(aa[i]) )
            temp.push_back(&aa[i])
    }

    // This leaves temp with pointers to some of the elements of aa.
    // Only those elements which passed some_test().  Now any modifications
    // to the dereferenced pointers in temp will modify those elements
    // of aa.  However, keep in mind that if elements are added or
    // removed from aa, it may invalidate the pointers in temp.
}
share|improve this answer
    
Thanks, this worked. –  adadad May 15 '11 at 16:52
    
If you want to be sure that the pointers aren't invalidated, use a std::deque for your main container. If the elements are added at the beginning or the end, the pointers are still valid. –  Xeo May 15 '11 at 21:07
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Do not use a pointer to a vector, use a reference instead:

void Function(std::vector<type>& aa)

inside the function you can now access the vectors contents as usual.

void Function(std::vector<type>& aa)
{
    std::vector<type>& temp = aa;

    // if you now append something to temp, it is also appended to aa
    aa.push_back(type());
}

I don't know why you want two references to one vector, but hey, you asked :)

EDIT: removed typo, see comments. thanx

share|improve this answer
    
Your code doesn't work. temp is not the same type as aa. –  Benjamin Lindley May 15 '11 at 16:31
    
fixed. Thanks a lot –  Constantinius May 15 '11 at 16:33
    
I have somthing like: 'code'void Oglos_Wydarzenie(std::vector<Wydarzenie>& zmienna) { std::vector<Wydarzenie> obecne; tm AktualnyCzas = {0,0,0,0,0,0,0,0,0}; time_t czas; czas = time(NULL); localtime_s(&AktualnyCzas,&czas); for (unsigned i = 0; i < zmienna.size(); ++i) if (zmienna[i].dzien == AktualnyCzas.tm_mday && zmienna[i].miesiac == AktualnyCzas.tm_mon && zmienna[i].rok == AktualnyCzas.tm_year+1900) obecne.push_back(zmienna[i]); std::cout << obecne.size() << std::endl; obecne[0].tytul = "Zmienione"; }'code' and it does not change original value –  adadad May 15 '11 at 16:42
1  
@adadad: Edit that into your question. –  Omnifarious May 15 '11 at 16:44
    
@adadad It's a good idea to write code in English, for a variety of reasons. –  nbt May 15 '11 at 16:47
show 1 more comment

As an aside, start formatting your code better. Messy code is difficult to understand and makes it harder for you to figure out what you're trying to do.

This will do what you want:

void Oglos_Wydarzenie(std::vector<Wydarzenie>& zmienna)
{
    std::vector<Wydarzenie *> obecne;
    tm AktualnyCzas = {0,0,0,0,0,0,0,0,0};
    time_t czas;
    czas = time(NULL);
    localtime_s(&AktualnyCzas,&czas);
    for (unsigned i = 0; i < zmienna.size(); ++i) {
        if (zmienna[i].dzien == AktualnyCzas.tm_mday &&
            zmienna[i].miesiac ==  AktualnyCzas.tm_mon &&
            zmienna[i].rok == AktualnyCzas.tm_year+1900)
        {
            obecne.push_back(&zmienna[i]);
        }
    }
    std::cout << obecne.size() << std::endl;
    obecne[0]->tytul = "Changed"; //<-- this is suppose to change value.
}

You could do this with all pointers and no references at all, but then it looks much more confusing:

void Oglos_Wydarzenie(std::vector<Wydarzenie>* zmienna)
{
    std::vector<Wydarzenie *> obecne;
    tm AktualnyCzas = {0,0,0,0,0,0,0,0,0};
    time_t czas;
    czas = time(NULL);
    localtime_s(&AktualnyCzas,&czas);
    for (unsigned i = 0; i < zmienna->size(); ++i) {
        if ((*zmienna)[i].dzien == AktualnyCzas.tm_mday &&
            (*zmienna)[i].miesiac ==  AktualnyCzas.tm_mon &&
            (*zmienna)[i].rok == AktualnyCzas.tm_year+1900)
        {
            obecne.push_back(&((*zmienna)[i]));
        }
    }
    std::cout << obecne.size() << std::endl;
    obecne[0]->tytul = "Changed"; //<-- this is suppose to change value.
}
share|improve this answer
    
All pointers and no references make Jack a dull boy. –  Joey Adams May 15 '11 at 19:58
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