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In order to implement a tiny compiler that emits ECMAScript I need to know how strong a function object expression binds, i.e. what is the precedence of the "operator" function(a1, a2, ...) { ... }?

For example, how is function(a1, a2, ...) { ... } (b1, b2, ...) supposed to be parsed? To get the wished for result, namely the application of b1, b2, ... to the function object, I have to use parentheses around the function object in the Rhino interpreter.

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2 Answers 2

up vote 4 down vote accepted

Your function(a1, a2, ...) { ... } (b1, b2, ...) is invalid, and should return a Syntax Error. ECMAScript has the concept of a FunctionDeclaration as well as that of a FunctionExpression. You may want to check out the following:

While a FunctionExpression is an operator, the FunctionDeclaration is a special syntax used for declaring functions, which are automatically hoisted to the top of the enclosing scope.

Wrapping a function in the grouping operator (parenthesis) will force the interpreter to treat it as a FunctionExpression.

If you try the following in Firebug:

function () { alert('test'); }();       // Syntax Error
(function () { alert('test'); })();     // Works fine
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Thanks a lot! Your answer was exactly what I was looking for. (Actually to me it seems that this particular feature of ECMAScript hasn't been well thought of.) – Marc Oct 2 '10 at 12:00
@Marc: Yes, I agree. Function expressions should have been enough. There are many situations where function declarations are confusing in this language... This topic was recently discusses in another Stack Overflow post:… – Daniel Vassallo Oct 2 '10 at 12:37

To execute a function literal, it needs to be enclosed in parentheses. Either:




Without the parentheses it produces a syntax error.

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It just has to be made into an r-value. Thus, !funcion() { ... } works too. – Pointy Oct 2 '10 at 11:42

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