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So, I thought I was trying to do something simple, but apparently not...

I wrote this function so I could extend it later and have a quick way to give the user a menu when required by going menu(mystrings):

int menu(string a[]) {
    int choice(0);
    cout << "Make a selection" << endl;
    for(int i=0; i<a.size(); i++) {
        cout << i << ") " << a[i] << endl;
    }
    cin >> choice;
    cout << endl;
    return choice;
}

But for some reason I get:

main.cpp: In function ‘int menu(std::string*)’:
main.cpp:38:12: error: request for member ‘size’ in ‘a’, which is of pointer type ‘std::string* {aka std::basic_string<char>*}’ (maybe you meant to use ‘->’ ?)
  int n = a.size();

when I try compiling. Could anyone translate that error for me and explain what -> is, thank you.

share|improve this question
1  
Arrays aren't classes. They don't have member functions. Use std::array or std::vector depending on your needs. – chris Apr 7 '14 at 20:08
    
because a[] is a* – paulm Apr 7 '14 at 20:08
    
I suppose you are doing using namespace std;. – Deduplicator Apr 7 '14 at 20:08
7  
What's with all the downvotes? This isn't unclear, and isn't necessarily a lack of effort/research; it's one of the more awkward things about C++. – T.J. Crowder Apr 7 '14 at 20:09
    
@T.J.Crowder Thank you very much, I'm also wondering what I've done wrong, could someone who downvoted please let me know how I could improve my questions in future? I was genuinely confused by the error saying I had a pointer when I hadn't asked for one. – captainjamie Apr 7 '14 at 20:22
up vote 6 down vote accepted

You are passing an array of strings and trying to call size() on the array. Arrays degenerate to pointers when passed to a function, which explains your error.

The -> operator, or "arrow operator" (name I use), is just shorthand for (*obj).func(). This is useful if you have a pointer to a class object. Example:

string *s = &someotherstring;
s->size(); //instead of (*s).size(), saves keystrokes
share|improve this answer
    
Not degrade, degenerate. Anyway full on. – Deduplicator Apr 7 '14 at 20:11
    
Could I trouble you for some more information? I'm not used to using pointers, how exactly would I use the -> operator, and does it have a name so I can learn more about it? Thank you. – captainjamie Apr 7 '14 at 20:16
    
@captainjamie See edit – awesomeyi Apr 7 '14 at 20:22

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