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How to pass a lambda expression in Elisp

I have following code:

(defun my-map (p l)
  (mapcar (lambda (el) (p el)) l))

(defun test ()
  (my-map (lambda (x) (+ x 1)) (list 1 2 3)))

(It's example - not actual code I tried to write). It complains that it cannot find function p:

Debugger entered--Lisp error: (void-function p)
  (p el)
  (lambda (el) (p el))(1)
  mapcar((lambda (el) (p el)) (1 2 3))
  my-map((lambda (x) (x + 1)) (1 2 3))
  test()
  eval((test) nil)
  eval-expression((test) nil)
  call-interactively(eval-expression nil nil)
  recursive-edit()
  debug(error (void-variable test))
  eval(test nil)
  eval-expression(test nil)
  call-interactively(eval-expression nil nil

I guess that it treats a p as symbol and not variable bounded in outer scope. How to make it work?

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marked as duplicate by phils, Maciej Piechotka, Rainer Joswig, CharlesB, Graviton May 28 '12 at 8:43

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
    
@wvxvw: I meant (+ x 1). –  Maciej Piechotka May 25 '12 at 6:19
    
@phils: You're right (I voted to close - strange I assumed that author can close it's own question as duplicate). –  Maciej Piechotka May 25 '12 at 6:22
    
This might also be useful: stackoverflow.com/questions/9942675/… –  phils May 25 '12 at 6:23

1 Answer 1

up vote 6 down vote accepted

You want to use funcall.

funcall is a built-in function in `C source code'.

(funcall FUNCTION &rest ARGUMENTS)

Call first argument as a function, passing remaining arguments to it. Return the value that function returns. Thus, (funcall 'cons 'x 'y) returns (x . y).

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