1

I was working on one my projects, and while I was making the constructor for a class, I was setting some of my variables to a default value. I went to set an std::string to NULL, and it gave me an error. But when I define an std::string and set it to NULL on the same line, it works without any errors. I was wondering why

First Example

std::string text = NULL;

worked, and

Second Example

std::string text;
text = NULL;

didn't work. Now I know you shouldn't set a string to NULL, or 0, but I found this on accident.

Does the first example call a constructor that takes a char*, and thinking that 0 is a pointer to a char? I thought = called a constructor too, so I don't get why they wouldn't both work, unless std::string specifically overloads the = operator.

I am using Microsoft Visual Studio Express 2013

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    Aren't you getting run-time error, at line std::string text = NULL;? – 0x6773 Nov 14 '15 at 7:45
  • @mnciitbhu nope, I am using Visual Studio 2013 Express. No errors at all. – Greg M Nov 14 '15 at 7:52
  • @mnciitbhu so there's apparently some sort of discrepancy between the two – Greg M Nov 14 '15 at 7:57
3
0

Value of NULL evaluates to 0.

Now, std::string text = NULL; will call constructor taking const char* and try to copy the data, but since NULL doesn't point to anything, an error will occur at run-time, I am getting (with gcc 5.2) :

terminate called after throwing an instance of 'std::logic_error'
  what():  basic_string::_M_construct null not valid

Since, there is no operator= defined for std::string and int(or size_t), text = NULL; will not compile.

| improve this answer | |
  • But doesn't the = call the size_t ctor again? – Greg M Nov 14 '15 at 7:33
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    @GregM It calls the assignment operator. It's a bit confusing but using operator= in the context of initialization invokes an implicit constructor, while doing it post-initialization invokes an assignment operator. – Dragon Energy Nov 14 '15 at 7:34
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    It does, but where it gets hairy is implicit construction. For example, if you have implicit: Foo(int x), and no overloaded assignment operator for int, then trying to do: Foo f; f = 123; ... will actually call the parameterized constructor for Foo to implicitly construct it, and then the implicitly-generated assignment Foo& operator=(const Foo&); – Dragon Energy Nov 14 '15 at 7:51
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    @GregM: Basically, yes. Performance-wise, the compiler can do shortcuts as long as the semantics don't change (i.e. creating the "temporary" in-place, or -- since C++11 -- move-constructing it.) The idea is, since there is no way to assign an int to Foo, the compiler looks for alternatives, and finds that it's possible to assign a Foo to Foo and possible to construct a Foo from int, so that's what it does. – DevSolar Nov 14 '15 at 8:12
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    @GregM you can check if copy constructor is also used by deleting copy constructor, and checking if there are any errors. See ideone.com/nLke48 – 0x6773 Nov 14 '15 at 8:15

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