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Suppose I have the following function:

void myFunc(P& first, P& last) {
    std::cout << first.child.grandchild[2] << endl;
    // ...
}

Now, let's assume that first.child.grandchild[2] is too long for my purposes. For example, suppose it will appear frequently in equations inside myFunc(P&,P&). So, I'd like to create some sort of symbolic reference inside the function so that my equations would be less messy. How could I do this?

In particular, consider the code below. I need to know what statement I could insert so that not only would the output from line_1a always be the same as the output from line_1b, but also so that the output from line_2a would always be the same as the output from line_2b. In other words, I don't want a copy of the value of first.child.grandchild, but a reference or symbolic link to the object first.child.grandchild.

void myFunc(P& first, P& last) {
    // INSERT STATEMENT HERE TO DEFINE "g"

    std::cout << first.child.grandchild[2] << endl; // line_1a
    std::cout << g[2] << endl;                      // line_1b

    g[4] = X; // where X is an in-scope object of matching type

    std::cout << first.child.grandchild[4] << endl; // line_2a
    std::cout << g[4] << endl;                      // line_2b
    //...
}    
share|improve this question
4  
const auto& g = first.child.grandchild? – Seth Carnegie Aug 22 '12 at 3:21
    
To clarify, do you mean the array, like this? ideone.com/QKTAv It would work the same way as Seth's comment for a plain, non-C++11-environment array. A vector's even easier: std::vector<int> &shortName, and C++11 has auto for something even easier. – chris Aug 22 '12 at 3:28
    
auto is going to be the bane of maintenance programmers for many year to come ;-) – Adrian Cornish Aug 22 '12 at 3:32
    
@SethCarnegie I would like to use auto, but my code will be compiled on different grid environments that I don't administer, so I doubt I can depend on have a C++11 compliant compiler :( Thank you though, it's quite a simple (and therefore elegant) solution. – synaptik Aug 22 '12 at 3:36
1  
@AdrianCornish On the contrary, experience with other languages shows that type inference is a very good thing. Not having to figure out the type of something (which can be very obscure, and changes as the code changes) just to get a ref or make a copy will be a blessing to all C++ programmers, including maint programmers. edit: casting? It's nothing like casting. Concern about programmers being lazy isn't a reason, it's pointless authoritarianism. – Jim Balter Aug 22 '12 at 3:47
up vote 1 down vote accepted

Say that the type of grandchild is T and size is N; then below is the way to create a reference for an array.

void myFunc(P& first, P& last) {
  T (&g)[N] = first.child.grandchild;
  ...
}

I would not prefer pointer here, though it's also a possible way. Because, the static size of array is helpful to a static analyzer for range checking.

If you are using C++11 compiler then auto is the best way (mentioned by @SethCarnegie already):

auto &g = first.child.grandchild;
share|improve this answer
    
Disagree - it means hard coding array size into the function but the use of N. – Adrian Cornish Aug 22 '12 at 3:40
    
@AdrianCornish Hmm, that's a good point. Although I will have N accessible, I'm also interested in solutions that do not require N. I see your pointer-based solution. Is there an equivalent reference-based solution not requiring N that you can think of? – synaptik Aug 22 '12 at 3:44
    
And also grandchild may or may not be an array. – Seth Carnegie Aug 22 '12 at 3:55
    
@SethCarnegie, if it's not array, then the trivial solution is to have pointer; which is quite known fact. I think the OP has a question regarding particular case of array and his comment above also says that. – iammilind Aug 22 '12 at 4:05
1  
@AdrianCornish I actually wouldn't have thought of that either if you hadn't mentioned it. – Seth Carnegie Aug 22 '12 at 4:15

Use a pointer - then you can change it in the function.

WhateverGrandchildIs *ptr=&first.child.grandchild[2];

std::cout << *ptr << std::endl; 

ptr=&first.child.grandchild[4];

std::cout << *ptr << std::endl; 
share|improve this answer
    
Pointers really aren't necessary here, where a reference is more than possible. – chris Aug 22 '12 at 3:24
    
Agree but I get the feeling the OP wants to change what the reference points too - could be totally wrong though. – Adrian Cornish Aug 22 '12 at 3:24
1  
The reference is for the whole array is what I gathered. Seth's comment should work fine for that. – chris Aug 22 '12 at 3:25
2  
@chris yeah, just noticed that and updated it. – Seth Carnegie Aug 22 '12 at 3:28
1  
I could if you can guarantee the container used for grandchild uses contiguous memory allocation. If it was a std::map for example it would not work – Adrian Cornish Aug 22 '12 at 3:48

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