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I want a macro my-macro which can expand to 1 2 3 rather than (1 2 3), so that

(list (my-macro) 4 5) -> (1 2 3 4 5)

Is this possible?

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I am quite convinced that not, as to explode a list you usually use @ but this requires that it is within list to explode into. I cannot find any reference that explizitly states that though. If you got a specific problem on your heart you want to solve with this question, you might want to post that one. –  Sim Sep 19 '13 at 5:53
    
@Sim I want to expand the macro as args of a function call. Now I have to use (apply #'foo (append (my-macro) (list 4 5))) instead of (foo (my-macro) 4 5). The latter is much more simple and clear. –  SaltyEgg Sep 19 '13 at 5:59
    
@Sim It seems that a read macro can not do this, right? –  SaltyEgg Sep 19 '13 at 6:03
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@wvxvw apply will take as many arguments as you give it, and the last must be a list. So you can do (apply 'frob bar1 bar2 (list bar3 bar4)) and it's the same as (frob bar1 bar2 bar3 bar4), but by the same process, (apply 'frob (list bar1 bar2) (list bar3 bar4)) is equivalent to (frob (list bar1 bar2) bar3 bar4). SaltyEgg would still need to append the argument lists. –  Joshua Taylor Sep 19 '13 at 13:16
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@SaltyEgg use apply, it actually is more clear as everybody knows what it does instead of your (actually impossible) macro. lispworks.com/documentation/HyperSpec/Body/f_apply.htm#apply –  Sim Sep 19 '13 at 13:45

2 Answers 2

up vote 6 down vote accepted

No, macros cannot expand to more than one value. The typical thing to do when you need a macro to expand to multiple pieces of code is to wrap the return value in a progn.

In your example in the comments, it looks as if you are using macros not as syntactic abstractions, but as cheap-and-cheerful function optimizations, the usual response to that is "please don't do it, it is wrong and doesn't actually do what you want".

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No.

Neither a macro nor a read macro can do that in Common Lisp.

The only solution if you really need this is to write a full reader yourself where you don't use read at all (the problem is that read will recursively call itself, and not your version).

A full compliant reader is quite a complex thing to do, but it can be simple if you only need a subset of the features and you don't need to use it for example to read Common Lisp code written by others.

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