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if()//first if
{
  if()//second if
   statement;
}
else
 statement;

I know that else matches with the first if but my question is why?I think of it like this,first if and else are in the same scope(mains local scope for example) and the second if is in the first if local scope in which else has no visibility?Is this correct?

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2  
Your explanation sounds about right - is that all you're asking? –  Carl Norum Jun 28 '13 at 21:05
    
else matches the last if statement, excluding the ones wrapped in brackets (in a more local scope). so yes, that is correct –  Taylor Flores Jun 28 '13 at 21:05
    
@TaylorFlores i know that i have written lots of code as a university student but when i ask professors on questions like this they reply,"if there is an if statement in an if block then it is invisible to the else outside of the block".I was hoping to get a better explanation here. –  user1478167 Jun 28 '13 at 21:10
    
I do not understqand the question –  Sam I am Jun 28 '13 at 21:10
1  
If you really want to understand how stuff like this is parsed you have to understand context free grammars –  aaronman Jun 28 '13 at 21:11

4 Answers 4

up vote 9 down vote accepted

The basic syntax of if....else is:

              --optional-
if(expr) stmt [else stmt]

and if you just had your example minus the braces they'd nest this way:

         ---------stmt----------
if(expr) if(expr) stmt else stmt

basically meaning that the else gets bound with the most recent available if, and the syntax for the outer if is satisfied, since the inner if...else is a statement

Adding the braces gives (with the overall syntax shown again first):

if(expr)       stmt       [else stmt]

         --compound-stmt--
if(expr) { if(expr) stmt } else stmt

Here, then inner if(expr)..stmt is enclosed inside a compound statement (which is a subvariety of a statement), and the most recently still-open (read: in scope) if is the first one. You could also view the end of a compound statement - the close brace - as closing off all contained syntactic structures.

There is no compound if, only an if controlling a compound statement.

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"I know that else matches the first if but my question is why?"

Why was it designed that way?

So that there could be statements like this:

if (istrue)
    if (thatstrue) dosomething ();
    else donothing2 ();
else donothing1 ();

Without otherwise having to write brackets, like this:

if (istrue){
    if (thatstrue) dosomething ();
    else donothing2 ();
} else donothing1 ();

Also note that the tabbing is irrelevant - it does not affect which else statement is executed.

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The reason else matches the first if is because you're forcing it to with the { and }

what { and } do is they take any number of statements and turn it into a "block" of code, which is treated by control statements(like if)similar to a single statement

IF your code didn't put the second if statement into a block like the following

if()//first if
  if()//second if
   statement;
else
 statement;

then the else would actually correspond to the second if

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The syntax goes as follows:

'if' '(' <condition> ')' <statement-1> [ 'else' <statement-2> ]

There is one statement that follows if, and one statement that follows the optional else. Each statement could be a block statement, in which case you must enclose it in a pair of curly braces.

Since you do have curly braces, the nested if is a <statement-1> in the syntax above; therefore, else belongs to the outer if.

Note that if you remove the curly braces, else would belong to the inner if.

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