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An exercise from C++ Primer 5 Edition made me stuck, which goes like

Exercise 12.3: Does this class need const versions of push_back and pop_back? If so, add them. If not, why aren’t they needed? (Page 458)

Below is the class. Definitions for members front and back are omitted to simplify the codes.

class StrBlob 
{
public:
    typedef std::vector<std::string>::size_type size_type;
    StrBlob();
    StrBlob(std::initializer_list<std::string> il);
    size_type size() const { return data->size(); }
    bool empty() const { return data->empty(); }
    // add and remove elements
    void push_back(const std::string &t) {data->push_back(t);}
    void pop_back();
    // element access
    std::string& front();
    std::string& back();
private:
    std::shared_ptr<std::vector<std::string>> data;
    // throws msg if data[i] isn't valid
    void check(size_type i, const std::string &msg) const;
};

StrBlob::StrBlob(): data(make_shared<vector<string>>()) { }
StrBlob::StrBlob(initializer_list<string> il):
          data(make_shared<vector<string>>(il)) { }

void StrBlob::check(size_type i, const string &msg) const
{
    if (i >= data->size())
        throw out_of_range(msg);
}

void StrBlob::pop_back()
{
    check(0, "pop_back on empty StrBlob");
    data->pop_back();
}

I tried to overload a const member void StrBlob::pop_back() const as below.

void StrBlob::pop_back() const
{
    check(0, "pop_back on empty wy_StrBlob");
    data->pop_back();
}

Compiler complained nothing about this const member. wondering am I doing right? Is there any possibility that this const member can be called? Is it meaningful to add this const member? Why?

share|improve this question
1  
You can test your hypothesis by not adding the const member functions, then declaring a const StrBlob object, and finally trying to call push_back() and/or pop_back() on it. If you get a compiler error, then you do need the const version of the member functions in question. – user529758 Dec 22 '13 at 1:13
2  
The compiler doesn't complain in this case, as data is a pointer (semantically), so pointer semantics apply: a some_type* const is different from a some_type const*. The "type" of this->data in a const member function is shared_ptr<vector<string>>> const, not shared_ptr<vector<string> const>. – dyp Dec 22 '13 at 1:15
up vote 3 down vote accepted

You can certainly do this if you want to, but there doesn't seem to be any logical reason. The compiler doesn't complain because this doesn't modify data (which is a pointer) but rather the thing data points to, which is perfectly legal to do with a const pointer.

share|improve this answer
    
Wouldn't const overloads break the convention of const member functions not modifying the observable state (size(), empty()) of the object? – dyp Dec 22 '13 at 1:26
    
@DyP Absolutely. That's why there doesn't seem to be any logical reason to do it. – David Schwartz Dec 22 '13 at 1:27
    
Ah, you've hidden it there ;) I thought you were referring to void pop_back() and void pop_back() const having the same "functionality" (as opposed to iter begin() vs. const_iter begin() const). – dyp Dec 22 '13 at 1:29
    
@DavidSchwartz Can I sum up this way: void pop_back() and void pop_back() const provide different functionality, but adding the latter one has little logical meaning? – Yue Wang Dec 22 '13 at 1:38
    
@Alan.W Exactly. It's just a way to make const behave illogically for the class. – David Schwartz Dec 22 '13 at 6:31

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