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I did a test here, but the output is a loop without ending, I don't know why.

Actually, I am doing another test, but when I wrote this, I don't understand how the loop occurred. It is output "ABC" repeatedly.

#include <map>
#include <string>
#include <iostream>

class test
{
public:
   std::map <int, int> _b;
   test();
   test (std::map<int, int> & im);
   ~test();
   };

test::test()
{
  std::cout<<"abc";
  _b.clear();
  _b[1]=1;
  test(_b);
}

test::test(std::map <int, int>& im)
{
   std::cout<<im[1];
}

test::~test() {};

int main ()
{
   test a;  
}
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1  
It's recursion due to test(_b); but I'm unsure exactly why. –  Roddy Apr 24 '13 at 20:07
    
@Roddy- I just figured it out; see my answer for details. –  templatetypedef Apr 24 '13 at 20:09
1  
Cleaned up version with unimportant stuff removed: ideone.com/z0yc7Q –  Yakk Apr 24 '13 at 20:15
3  
Possible dupe: Why does this call the default constructor? ... maybe? –  Xeo Apr 24 '13 at 20:42
1  
may be a candidate here? codegolf.stackexchange.com/questions/11441/… –  user13267 Apr 25 '13 at 6:26

4 Answers 4

up vote 88 down vote accepted

The issue here is that the compiler interprets

test(_b);

Not as code that creates a temporary object of type test passing in parameter _b, but as a variable declaration for a variable named _b of type test, using the default constructor. Consequently, what looks like a piece of code that creates a temporary test object using the second constructor is instead recursively creating a new object of type test and invoking the constructor another time.

To fix this, you can give the variable an explicit name, such as

test t(_b);

This can only be interpreted as a variable of type test named t, initialized using the second constructor.

I have never seen this before, and I've been programming in C++ for years. Thanks for showing me yet another corner case of the language!

For an official explanation: According to the C++03 ISO spec, §6.8:

There is an ambiguity in the grammar involving expression-statements and declarations: An expression-statement with a function-style explicit type conversion (5.2.3) as its leftmost subexpression can be indistinguishable from a declaration where the first declarator starts with a (. In those cases the statement is a declaration.

(My emphasis). In other words, any time C++ could interpret a statement as either an expression (the temporary object cast) or as a declaration (of a variable), it will pick the declaration. The C++ spec explicitly gives

T(a);

As an example of a declaration, not a cast of a to something of type T.

This is C++'s Most Vexing Parse - what looks like an expression is instead getting interpreted as a declaration. I've seen the MVP before, but I have never seen it in this context.

Hope this helps!

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1  
Thanks, this is surprisingly hard to Google for. –  Antimony Apr 24 '13 at 20:11
    
Good answer! Any specification references available to prove/disprove that the compiler is interpreting this correctly? FWIW, codepad.org exhibited the same behavior –  Tom Apr 24 '13 at 20:11
    
Ah, I found an explanation. It's called "Most Vexing Parse". By the way, in C++11 you can fix this by changing it to a test{_b}. (Use braces instead of parenthesis) en.wikipedia.org/wiki/Most_vexing_parse –  Antimony Apr 24 '13 at 20:16
    
@Antimony or (test)_b; –  Yakk Apr 24 '13 at 20:16
1  
+1 great answer. –  taocp Apr 24 '13 at 20:19

the problem is from constructor you again calling the contructor test(_b)

test::test(){std::cout<<"abc";_b.clear();_b[1]=1;test(_b);}

here is what happens

everytime you call test(_b) it first calls default constructor test::test and it in turns calls the test(_b) and the loop goes on and on untill the stack overflows.

remove the test(_b) from the default constructor

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Why is this calling the default constructor? I figured this would call the implicit conversion constructor test::test(std::map<int, int>&), since it explicitly passes in _b. –  templatetypedef Apr 24 '13 at 19:59
    
Why does it call the default constructor? C++ doesn't chain constructors. –  Antimony Apr 24 '13 at 19:59
    
In C++ you should not call another constructor. This is different from Java for example. –  OlivierD Apr 24 '13 at 20:00
    
@Oliver yes but that doesn't explain why the loop is occuring –  Antimony Apr 24 '13 at 20:00

I'm pretty sure that you are not actually "calling the constructor" since they are not directly callable IIRC. The legalese had to do with constructors not being named functions - I don't have a copy of the Standard handy or I might quote it. I believe what you are doing with test(_b) is creating an unnamed a temporary which invokes the default constructor again.

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It's not creating an unnamed temporary and calling the default constructor; instead, it's creating a variable named _b and invoking the default constructor on it. See my answer for more details. –  templatetypedef Apr 24 '13 at 20:10
    
Thanks. I remembered what it was doing just not the exact reason. I had forgotten how twisted the C/C++ declaration rules actually are. –  D.Shawley Apr 24 '13 at 20:11

I'm not familiar with the particularities of the standard, but it may be that calling a constructor within a constructor is undefined. As such it could be compiler dependent. In this particular case it causes infinite recursion of your default constructor without ever calling your constructor with the map argument.

C++ FAQ 10.3 has an example with a constructor that has two parameters. If you add an int parameters to your second constructor such as test(map, int), it exhibits a somewhat normal behaviour.

For good form I would simply change test::test(std::map <int, int>& im) for test::testInit(std::map <int, int>& im), and test(_b) to testInit(_b).

share|improve this answer
    
It does call another constructor, but it's not the same constructor as before. I don't see why that would cause the infinite recursion that's exhibited here. –  templatetypedef Apr 24 '13 at 20:02

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