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{1 + ''} + 10 // 10
{1 + ''} + '' // 0

Why does this happen? Do BlockStatements return 0, and why?

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1 Answer

up vote 10 down vote accepted

Do BlockStatements return 0...?

No, blocks return the value of the last expression within them (thank you Felix for pointing out my early error on that). You can see this by just doing:

{1 + 8}

...in the JavaScript console, which will show 9.

{1 + ''} + 10 // 10
{1 + ''} + '' // 0
Why does this happen?

Because although the block does return a value, that value is not used. Your code is evaluated as two distinct items:

{1 + ''} // "1"
+10      // 10

...and you're seeing the result of the second one, as though the first one weren't there at all. The + there isn't the addition operator, it's the unary + (the positive equivalent of the unary -). +10 is, of course, 10; and +'' is 0 because applying the operator to a string converts the string to a number, and Number('') is 0.

You can prove that you're seeing the unary + rather than the addition operator by trying this:

{1 + ''} * 10

It fails with a syntax error because there is no unary *.

As Felix kindly points out in the comments below, for the + in your example to be the addition operator (which would have ended up concatenating strings, in your case), it would have to be between two expressions, and a block is a statement, not an expression.

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Thanks! I had initially been confused because {''}+'a' returns NaN, but now I've realised that it is because of the +. –  callumacrae Mar 21 '12 at 11:25
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That's not 100% correct: es5.github.com/#x12.1 "Return the result of evaluating StatementList.". It does not make a difference though as you a block is a statement and therefore cannot be used inside an expression (at least that's how I understand it). –  Felix Kling Mar 21 '12 at 11:25
    
@FelixKling: Thanks for that! I've removed the incorrect bit ("Blocks don't return anything"). And now I have to go digging into the grammar (which I don't have time to do at the moment) to understand the underlying reason the block and the expression following it are kept distinct and separate. They are, and I knew they are, but I don't know what precise part of the grammar dictates that... :-) It's probably, as you said, to do with statements vs. expressions. –  T.J. Crowder Mar 21 '12 at 11:31
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Looking, for example, at the addition operator, the production rule is AdditiveExpression : AdditiveExpression + MultiplicativeExpression and a block is neither an AdditiveExpression nor a MultiplicativeExpression. I don't know if there is a single rule stating that statements cannot be used as expressions (the for statement definition has an explicit rule for the variable statement, for example), but it at least explains why the parser treats the + in this case as unary plus. –  Felix Kling Mar 21 '12 at 11:39
    
@FelixKling: Cheers, saved me the time there. I edited some of that info into the answer. –  T.J. Crowder Mar 21 '12 at 11:53
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