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Why should I use #' together with lambda? It is usually written that way, so I guess it is good form. But these lines seem equal to me:

> (mapcar #'(lambda (x) (+ x 1)) '(1 2 3))
(2 3 4)
> (mapcar (lambda (x) (+ x 1)) '(1 2 3))
(2 3 4)

Anyone care to enlighten a beginner about the difference?

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2 Answers 2

up vote 10 down vote accepted

#' is shorthand for function, which returns a pointer to a function (instead of applying it). lambda returns a function, and it's usual to want a pointer to that function. Since this is so common, there is also a macro (in variable space) that does it for you, which is called lambda as well. Both lines of code are identical.

Which is better comes down to the Lisp-1/Lisp-2 debate: in Common Lisp you can do either, thanks to the macro. As always, be consistent.

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Lisp has not function pointers, macros are not in variable space, ... –  Rainer Joswig Apr 11 '13 at 8:32

It is different in various Lisp dialects. The following uses Common Lisp:

First #' is a short notation for (function ...). So the following are only textually different, but Common Lisp reads them as the same:

#'(lambda (x) (* x 2))

and

(function (lambda (x) (* x 2)))

#' is a readmacro, and transforms when Lisp code is read by the Lisp system.

If Lisp evaluates

(function (lambda (x) (* x 2)))

the Lisp system creates an function object and FUNCTION returns it as its value.

So, whenever you need a function as a value, then you need to write it like that. A function as a value is needed, when you want to pass it to another functions as an argument, when you want to return it from a function or when you want to store it in a variable. Examples:

(map #'(lambda (x) (* x 2)) '(1 2 3))

(defun (y) #'(lambda (x) (* x y)))

(defparameter *twice-fn* #'(lambda (x) (* x 2)))

Now, what is (lambda (x) (* x 2)) ?

It is two different things depending on context.

Lambda expression

The lambda expression can be used instead of a function name:

(function foo)   and    (function (lambda (x) (* x 2)))

and

(foo 17)    and  ((lambda (x) (* x 2)) 17)

Above two are legal Common Lisp syntax. There a lambda expression can be used directly.

Note that the following two forms are illegal in Common Lisp:

(#'(lambda (x) (* x 2)) 17)   ; illegal in Common Lisp

(function #'(lambda (x) (* x 2)))  ; illegal in Common Lisp

Macro

During the Common Lisp standardization process a macro LAMBDA has been added (it was not part of the first description, CLtL1, of Common Lisp). It makes it possible to write slightly shorter code. Example:

(lambda (x) (* x 2))

In above case LAMBDA is a macro. During macro expansion it will be expanded to:

(function (lambda (x) (* x 2)))

Remember that in above FUNCTION form, the inner lambda is part of a lambda expression, denotes the function and will not be expanded.

So, now the three examples from above can be written as:

(map (lambda (x) (* x 2)) '(1 2 3))

(defun (y) (lambda (x) (* x y)))

(defparameter *twice-fn* (lambda (x) (* x 2)))

It is slightly shorter, looks a little bit less cluttered and looks slightly more similar to Scheme code. It is just looking a bit better for programmers used to read and write Scheme code.

Summary

a) (function (lambda (x) (* x 2))) is the 'true' way to write code that returns a function as a value.

b) #'(lambda (x) (* x 2)) is a shorter notation of above

c) (lambda (x) (* x 2)) is even shorter, but uses macro expansion to create the form of a).

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