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I started learning Common Lisp recently, and (just for fun) decided to rename the lambda macro.

My attempt was this:

> (defmacro λ (args &body body) `(lambda ,args ,@body))

It seems to expand correctly when by itself:

> (macroexpand-1 '(λ (x) (* x x)))
(LAMBDA (X) (* X X))

But when it's nested inside an expression, execution fails:

> ((λ (x) (* x x)) 2)
(Λ (X) (* X X)) is not a function name; try using a symbol instead

I am probably missing something obvious about macro expansion, but couldn't find out what it is.

Maybe you can help me out?

edit: It does work with lambda:

> ((lambda (x) (* x x)) 2)
4

edit 2: One way to make it work (as suggested by Rainer):

> (set-macro-character #\λ (lambda (stream char) (quote lambda)))

(tested in Clozure CL)

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2 Answers 2

up vote 13 down vote accepted

In Common Lisp LAMBDA is two different things: a macro and a symbol which can be used in a LAMBDA expression.

The LAMBDA expression:

(function (lambda (x) (foo x)))

shorter written as

#'(lambda (x) (foo x))

An applied lambda expression is also valid:

((lambda (x) (+ x x)) 4)

Above both forms are part of the core syntax of Common Lisp.

Late in the definition of Common Lisp a macro called LAMBDA has been added. Confusingly enough, but with good intentions. ;-) It is documented as Macro LAMBDA.

(lambda (x) (+ x x))

expands into

(function (lambda (x) (+ x x))

It makes Common Lisp code look slightly more like Scheme code and then it is not necessary to write

(mapcar #'(lambda (x) (+ x x)) some-list)

With the LAMBDA macro we can write

(mapcar (lambda (x) (+ x x)) some-list)

Your example fails because

((my-lambda (x) (* x x)) 2)

is not valid Common Lisp syntax.

Common Lisp expects either

  • a data object
  • a variable
  • a function call in the form (function args...)
  • a function call in the form ((lambda (arglist ...) body) args...)
  • a macro form like (macro-name forms...)
  • a special form using one of the built-in special operators like FUNCTION, LET, ... defined in the list of special operators in Common Lisp

As you can see a syntax of

((macro-name forms...) forms...)

is not a part of Common Lisp.

It is possible to read the character λ as LAMBDA:

(defun λ-reader (stream char)
  (declare (ignore char stream))
  'LAMBDA)

(set-macro-character #\λ #'λ-reader)

Example:

CL-USER 1 > ((λ (x) (* x x)) 3)
9

CL-USER 2 > '(λ (x) (* x x))
(LAMBDA (X) (* X X))
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2  
It's not the function in the expansion of lambda that is a problem, it's the hard-wired behavior of function applications with lambda. So in your explanation I'd change: "An applied lambda expression is also valid" into "An applied lambda expression is also valid (only for lambda and not for macros that expand to it)". –  Eli Barzilay Mar 4 '12 at 18:37
    
It makes sense now, thanks! So there's no way to get (λ ...) to emulate a lambda expression? –  ibab Mar 4 '12 at 18:39
3  
@qrl: the ((λ (x) ...) 4) syntax is possible with a read-macro in CL implementations which support that character. The Lisp reader would have to expand λ into LAMBDA. –  Rainer Joswig Mar 4 '12 at 18:45
1  
Awesome, looks like a good opportunity to get into read-macros. –  ibab Mar 4 '12 at 18:47
    
Rainer, this is an excellent explanation! –  Huw Mar 5 '12 at 1:46

You might also think of LAMBDA as an operator which, given a term and a list of free variables, returns a function. This p.o.v. takes LAMBDA out of the family of basic functions and elementary macros -- at least as far as the interpreter is concerned.

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