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Asked: 2026-05-23T07:25:07+00:00

I am writing a programm in C++. In my programm I need to create

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I am writing a programm in C++. In my programm I need to create an array with dynamic size inside one function, but this array should be also accessable for other functions. I will not post here my code, just write one dummy example.

char *array;


void function_1() {
    array = new char(3);
    array[0] = "value 1";
    array[1] = "value 2";
    array[2] = "value 3";
}

void function_2() {
    array[0] = "new value 1";
}

int main() {
    function_1();
    function_2();

    delete[] array;
}

My question is: I am not sure, if the array will exist outside the function_1, where it was initialised, until I delocate a memory of array.
Or the array will have just a behaviour of local variable inside one function. What means, that the memory, which stores the array values, will be dellocated after the function is finished and the memory addresses of my array can be rewroten with something else later in my programm.

Thank you.

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1 Answer

  1. Editorial Team

    First, of course it will exist outside, that’s all what dynamic allocation is about. Also, the variable itself is global. Also, it should be a char const** array; and the allocation should be new char const*[3] (note the square brackets). The const because you won’t change the contents of the strings here.

    Second, don’t do that. Just put it in a class and use a std::vector!

    #include <vector>

class Foo{
public:
  function_1(){
    _array.push_back("value 1");
    _array.push_back("value 2");
    _array.push_back("value 3");
  }

  function_2(){
    _array[0] = ("new value 1");
  }

private:
  std::vector<std::string> _array;
};

int main(){
  Foo f;
  f.function_1();
  f.function_2();
}

    Even better, have a std::vector<std::string>, so you can safely modify the contents without having to worry about memory management. Though, to this won’t be a single block any more. Now I got to ask, how exactly do you want to pass the buffer to the socket?

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