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I am trying to return a 2D vector from a function, but i receive the "there is no user defined conversion" error.

std::vector<double> fillMatrix(double *data, int rows, int cols) {
    std::vector < std::vector<double> > matrix;
    int cnt = 0;
    for (int i = 0; i < rows; i++) {
        std::vector<double>temp;
        for (int j = 0; j < cols; j++) {
            temp.push_back(data[cnt++]);
        }
        matrix.push_back(temp);
    }
    return  matrix;
}
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  • 1
    Just change the return type of your function to std::vector < std::vector<double> >. – πάντα ῥεῖ Nov 18 '18 at 13:18
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If you want the function to return a 2D vector you should not declare it to return an 1D vector. I.e., it should be

std::vector<std::vector<double>> fillMatrix(double *data, int rows, int cols) {

However, I strongly recommend not to do so. If return value optimization is not available for some reason, there will be a significant overhead by the invocation of rows + 1 copy constructors of vector at the return statement. If things go worse another rows + 1 copy constructors are called at the assignment operator, e.g. myMatrix = fillMatrix(...).

Furthermore, the statement matrix.push_back(temp) also copies all the elements in temp.

Dealing with large objects you should consider to pass objects by reference rather than by value. Use smart pointers to do the memory management or pass the target object as reference to fillMatrix rather than assigning the return value.


At least the function name is misleading. It creates a matrix rather than filling one. The signature of fillMatrix should be like

void fillMatrix(const double *data, std::vector<std::vector<double>> &matrix) {

Note that there is no more need for the rows and cols parameter, since the matrix already has its size. Of course, you should not populate the matrix with push_back() in this case.

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