Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Why does for ([] in object); work fine but [void 0 for ([] in object)] or (void 0 for ([] in object)) throw a syntax error for invalid left-hand assignment?

For example, I would expect the following code to work, but it doesn't (the assertion isn't even done due to the syntax error):

let (
  i = 0,
  iterable = {__iterator__:function() { var i = 5; while (i--) yield i; } }
) {
  for ([] in iterable) i++;
  console.assertEquals([void 0 for ([] in iterable)].length, i);
}
share|improve this question
1  
My guess is that they hit different grammar rules: the first for is NOT a generator (it is a for-statement), while the latter is. It doesn't appear that decomposition is supported in that position. –  user166390 Mar 26 '10 at 0:23
1  
@Eli: what JS version and engine are you working with? Destructuring in comprehensions and generators works for me in FF 3.6.2/JS 1.8.?, though it chokes on the let. –  outis Mar 26 '10 at 1:36
    
@outis: Oh sorry I was missing a parenthesis at the end of that generator. It's plain JS 1.8+. –  Eli Grey Mar 26 '10 at 3:38
    
@Eli: something else strange was going on. I had added the parentheses, but was getting an error message about the let keyword. The same thing happens w/ FF 3.6 under both Vista and OS X. I think it all basically comes down to the language features being new. –  outis Mar 26 '10 at 4:03
    
@Eli: also note that the assert will fail, because gen will reach its end in the first for loop. Can generators be rewound? I haven't seen anything about it in the MDC page, but haven't exactly made an effort to find out. –  outis Mar 26 '10 at 4:05

1 Answer 1

up vote 7 down vote accepted

I did a little digging in jsparse.c of SpiderMonkey (which I assume is the JS parser you're using for 1.8 features?)

The [code for (... in ...)] format or generator expression uses a different parse function than the standard for ([] in obj) uses.

Your LHS error is being created here: (jsparse.c line 4200)

4194           case TOK_LB:
4195           case TOK_LC:
4196             pn3 = DestructuringExpr(cx, &data, tc, tt);
4197             if (!pn3)
4198                 return NULL;
4199 
4200             if (pn3->pn_type != TOK_RB || pn3->pn_count != 2) {
4201                 js_ReportCompileErrorNumber(cx, ts, NULL, JSREPORT_ERROR,
4202                                             JSMSG_BAD_FOR_LEFTSIDE);
4203                 return NULL;
4204             }

When it sees the [ it finds the Destructuring Expression, and ensures the count of the parser node is at 2.

Interestingly enough [void 0 for ([a,b] in iterator)] should work, although for reasons I don't care to go digging for, the b from [a,b] is always undefined:

js> [[l1,typeof l2] for ([l1,l2] in {a:1, b:2})]
a,undefined,b,undefined

For reference - The standard for([] in {}) uses the following logic to determine the LHS validity:

2775 #if JS_HAS_DESTRUCTURING
2776                    ((JSVERSION_NUMBER(cx) == JSVERSION_1_7 &&
2777                      pn->pn_op == JSOP_FORIN)
2778                     ? (pn1->pn_type != TOK_RB || pn1->pn_count != 2)
2779                     : (pn1->pn_type != TOK_RB && pn1->pn_type != TOK_RC)) &&
2780 #endif

Which seems to mean that versions other than 1.7 don't require 2 left hand values for this syntax. The generator expression might be using older parsing logic. This might be worth submitting as a report to the SpiderMonkey maintainers.

share|improve this answer
    
Wow, thanks for the great answer! I'm going to use either [code for ([,] in ...)] or [code for ({} in ...)] as a workaround until it's fixed. –  Eli Grey Jun 18 '10 at 14:48
1  
@Eli Grey - No problem, it was actually kinda fun to dig into SpiderMonkey and learn how the JS parser actually works on this one. :) –  gnarf Jun 18 '10 at 21:47

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.