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Summary: Why is the '=' assignment operator inaccessible with two objects of the same type std::unique_ptr<Expression, std::default_delete<Expression>>? Mind you, in the code the types are written std::unique_ptr<Expression> but expand to the former in the IntelliSense error.

[Info] IDE - Running Visual C++ 2010 OS - Windows Vista Target - Console Application attempting to use whats implemented of C++11

[Some Background] I've been provided an example of an expression evaluator in C++ which apparently is up to the new standard alright, because what should be solid code is giving me errors and I'm guessing it's because VC++ has no support for the feature. The first error I got was with the 'make_unique' method, VC++ said "identifier doesn't exist", so I implemented it myself

template<typename T>
std::unique_ptr<T> make_unique()
{
    return std::unique_ptr<T>(new T());
} // Basically just wrapping 'new'? Not sure why

Found a better one online but it gave errors, this ^ gives no errors. All I did was remove the ...Args template parameter. I have a set of Expression classes that looks like this:

class Expression {
    virtual ~Expression() {}
};

class BinaryExpression : public Expression {
public:
     std::unique_ptr<Expression> lhs;
     std::unique_ptr<Expression> rhs;
     virtual char GetType() const = 0; // +,-,/,*
};
// Then MulExpression, DivExpression, PlusExpression, blah blah

Now here's where I get the error, mind you, ParseAdditiveExpression()'s return type is

// expr, lhs, and rhs are all of the same type
std::unique_ptr<Expression>:
auto rhs = ParseAdditiveExpression();
auto expr = make_unique<MulExpression>(); // Tried using: std::unique_ptr<Expression> expr;
expr->lhs = lhs; // Trouble Makers
expr->rhs = rhs; // All produce
lhs = expr; // The same errors

The error is as follows:

1   IntelliSense: "std::unique_ptr<_Ty, _Dx> &std::unique_ptr<_Ty, _Dx>::operator=(const std::unique_ptr<_Ty, _Dx> &) [with _Ty=Expression, _Dx=std::default_delete<Expression>]" 
(declared at line 2352 of "C:\Program Files\Microsoft Visual Studio 10.0\VC\include\memory")
is inaccessible 
c:\users\s_miller47\documents\visual studio 2010\projects\_vc++\powercalc\mathparser.h  133

Now, I think this may have something to do with the 'const' at the right size of the '=', but I've tried changing the functions return type to fit, with * or & after the return type, tried de-referencing ('*') the value before I set it to expr->lhs, even tried ('&')

So if the operator is inaccessible how do I fix it? Do I have to define the operator myself? (nonsense) Well, here is the full code, maybe somebody can give me an answer to this long, long question. PasteBin Source Code Link

Thanks in advance to anyone who offers their help! :)

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2  
unique_ptr is not copyable. Try expr->lhs = std::move(lhs);. –  R. Martinho Fernandes Sep 4 '12 at 11:07
1  
"not sure why": Exception safety. –  Kerrek SB Sep 4 '12 at 11:08
1  
@R.MartinhoFernandes Yes, it seems pretty obvious now considering 'unique' facepalm. Lol and I give all this info thinking the problem was complicated or something, thanks for the help. –  Brandon Miller Sep 4 '12 at 11:32
    
Wow, forget to put ONE thing in a body and get downvoted. Heh, oh well :p I think the rest of my post was well formatted, lol could give me credit for not just saying "uh hey i have operator inaccessible error whats to do naow!!???" –  Brandon Miller Sep 4 '12 at 11:41
1  
Upvoted to compensate. It's a well asked and meaningful question that someone searching for might find if they have the same problem. The fact that the answer is simple does not invalidate the question. –  jcoder Sep 4 '12 at 11:55
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3 Answers 3

up vote 5 down vote accepted

std::unique_ptr is non-assignable and non-copyable. If you want to make such assignment, you will need to use std::move():

lhs = std::move(expr);
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1  
Such a simple solution to what I thought was not a simple problem. Thanks! :) –  Brandon Miller Sep 4 '12 at 11:33
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Instantiations of std::unique_ptr cannot be copied; they can only be moved (hence the "unique"). So, for assignment, you have to say that you want to move the pointer:

lhs = std::move(expr);
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Yeah, lol, I guess I didn't quite think about 'unique' to hard when I was trying to copy it. –  Brandon Miller Sep 4 '12 at 11:34
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The problem is that unique_ptr, as the name suggests, maintains a unique pointer. That's one of the main reasons why autp_ptr was deprecated: it actually "moved" the pointer in an assignment, instead of copying it. This is considered a bad thing; if you do "a=b" then you expect to have two reasonably identical objects "a" and "b". You don't expect "b" to be emptied out.

Thus, to maintain the uniqueness of the pointer, unique_ptr doesn't allow any form of copying.

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