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I'd like to define the variable in condition expression so that the variable scope would be within the if clause. This works fine,

if (int* x = new int(123)) { }

When I was trying to do a similar thing with map::iterator,

if ((map<string, Property>::iterator it = props.find(PROP_NAME)) != props.end()) { it->do_something(); }

I got error: expected primary-expression before ‘it’

What makes the difference between int* and map::iterator?

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Please don't allocate dynamic memory like this. You are wide open to a memory leak in case of an exception. Either use a smart pointer, or consider whether a simple int needs to be in dynamic memory in the first place. –  Branko Dimitrijevic Jul 12 '13 at 21:35
1  
Uhm... just don't. –  David Rodríguez - dribeas Jul 12 '13 at 22:33

3 Answers 3

up vote 5 down vote accepted

There's no difference between int * and map::iterator in that regard. There's a difference in the surrounding semantic constructs that you are using with int * and map::iterator, which is why one compiles and other doesn't.

With if you have a choice of either

if (declaration)

or

if (expression)

Declaration is not an expression. You can't use a declaration as a subexpression in a larger expression. You cannot use a declaration as a part of explicit comparison, which is exactly what you attempt to do.

For example, if you attempted to do the same thing with int *, like this

if ((int* x = new int(123)) != NULL)

the code would not not compile for exactly the same reasons your map::iterator code does not compile.

You have to use

if (int* x = new int(123))

or

int* x = new int(123);
if (x != NULL)

or

int* x;
if ((x = new int(123)) != NULL)

As you can see above, int * exhibits exactly the same behavior as map::iterator.

In your example, it is impossible to declare it and perform its comparison with props.end() in ifs condition. You will have to use one of the above variants instead, i.e. either

map<string, Property>::iterator it = props.find(PROP_NAME);
if (it != props.end())

or

map<string, Property>::iterator it;
if ((it = props.find(PROP_NAME)) != props.end())

Choose whichever you like more.

P.S. Of course, formally you can also write

if (map<string, Property>::iterator it = props.find(PROP_NAME))

but it does not do what you want it to do (does not compare the iterator value to props.end()) and might not compile at all, since the iterator type is probably not convertible to bool.

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Regarding 'Declaration is not an expression', what's the value of (int* x = new int(123))? That can be put in if() –  woodings Jul 12 '13 at 21:41
1  
@woodings: As I said above, this form is treated by a separate, dedicated branch of C++ language semantics. It is not an if (expression) branch, it is an if (declaration) branch. The language defines it separately. It basically says that the declared variable gets implicitly converted to bool and that value is used for making the branching decision. This does not turn a declaration into an expression and does not allow you to use declarations within other, bigger expressions. –  AndreyT Jul 12 '13 at 21:44

Here is one way to limit it to a scope:

{
    auto it = props.find(PROP_NAME);
    if (it != props.end()) {
       it->do_something();
    }
}

Granted, this scope is not technically the "if scope", but should serve just as well for all practical intents and purposes.

As AndreyT already explained (+1), declaration can't transcend ( and ), which you did not use for int but you did for the iterator.

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Map iterators contain first and second, which point to the key and value, respectively. To access a member of the value, use it->second.do_Something()

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