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test262 test suite has test containing source:

var x=0, y=0;
var z=
x
++
++
y

The annotation says:

Since LineTerminator(LT) between Postfix Increment/Decrement Operator(I/DO) and operand is not allowed, two IO(just as two DO and their combination) between two references separated by [LT] after automatic semicolon insertion lead to syntax error

Why does this code lead to syntax error? I think it's a valid code snippet. The code above equals to var z=x; ++ ++ y;. Expression ++ ++ y is allowed by javascript grammar. So what's the problem?

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1  
++ ++ y is not allowed at all! –  Neal Jan 14 '13 at 19:18
    
@Neal but what about this production UnaryExpression : ++UnaryExpression ? –  sergeyz Jan 14 '13 at 19:36
    
@sergeyz: Productions aren't everything. You could say it's sort of a runtime error, but it's detectable at compile time, since ++ can only take a reference as its operand, but can never yield one. –  Rhymoid Jan 14 '13 at 20:05
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3 Answers

up vote 3 down vote accepted

This code will become:

var z = x;
++ ++ y;

The ++ ++ y is the root of the problem. Let’s look at why...

++ ++ y gets evaluated as ++(++y). The first step is to evaluate (++y). The ++ operator increments the value referenced by the variable it is next to, and returns the incremented value. The important part here is that it does not return a reference, just a value. So the second step would be ++(1), (or whatever ++y yielded), which is an error, since only references can be incremented.

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1  
Just as I find the same explanation in ECMA-262, you post this answer :) It's hard to extract these rules from the standard, but it's basically step 1 of PutValue, which is invoked by step 5 of the prefix increment operator. –  Rhymoid Jan 14 '13 at 20:03
    
@Tinctorius PutValue rules say If Type(V) is not Reference, throw a ReferenceError exception. So de jure expression ++ ++ y; leads to runtime error (exception) ? Not parse error? –  sergeyz Jan 14 '13 at 20:15
    
It's usually caught by static analysis. If the compiler is certain that the types are safe (e.g. only if Type(V) is a Reference, in this case) at compile-time, you can skip a lot of type checking at run-time. It's not a parse error, it could be a runtime error, but it's usually a compile-time error during analysis. –  Rhymoid Jan 14 '13 at 20:20
    
Actually I'm trying to implement js parser. I believe it's better to correct original grammar from specification and report syntax error: UnaryExpression: ++LeftHandSideExpression –  sergeyz Jan 15 '13 at 5:55
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That evaluates to:

var x = 0, y = 0;
var z = x ++ ++ y; //MAKES NO SENSE!
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2  
No, it doesn't. Postfix increment may not be separated by a line terminator. It really is var z = x; ++ ++ y;. –  Rhymoid Jan 14 '13 at 19:27
    
@Tinctorius still illegal. –  Neal Jan 14 '13 at 19:38
    
@Neal why ++ ++ y; is illegal? Is it parsing error or runtime error? –  sergeyz Jan 14 '13 at 19:42
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The grammar does not allow a new-line to precede a ++ or -- operator; such a new-line must be converted to a ;. Consequently, the expression must be parsed as though it had been:

var x = 0 , y = 0 ;
var z = x ;
++ ;
++ y ;

The third line is illegal.

References:

Section 7.9.1, "Rules of Automatic Semicolon Insertion", rule 3

Section 11.3, "11.3 Postfix Expressions".

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That's not how it is interpreted. You're allowed to have line terminators between prefix increment/decrement and its operand. –  Rhymoid Jan 14 '13 at 19:59
    
Only postfix operators have the “no line break” rule. Prefix operators can consume as many line breaks as they want. Of course, why you would ever want to is beyond me :) –  Mark Hubbart Jan 14 '13 at 20:06
    
@rici this production allows expressions like ++ ++ y;. It means your code equals to var z = x; ++ ++ y;, not var z = x; ++; ++ y;. So according to grammar parser accepts input and error actually is runtime exception? –  sergeyz Jan 14 '13 at 20:07
    
@sergeyz: indeed, the UnaryExpression production allows multiple autoincrements, even though the PostfixExpression does not. (Truly odd, since in almost no case is a repeated prefix operator meaningful.) So, I agree, I was wrong, and so is the test case. –  rici Jan 14 '13 at 20:31
1  
@sergeyz, i checked both mozilla js implementations (SpiderMonkey and JägerMonkey) and both of them implement UnaryExpression as though it included ++ LeftSideExpression | -- LeftSideExpression, as is also shown in this old Mozilla grammar: www-archive.mozilla.org/js/language/grammar14.html . The Google V8 engine parses according to the actual standard, but checks if the argument of prefix ++/-- is a LeftSideExpression and, if not, converts it to a runtime exception; there's a comment which says this is for compatibility with JSC. –  rici Jan 14 '13 at 22:14
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