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(list '+ 3 5)

(+ 3 5)

(list (+ 3 5))

(8)

(list (list '+ 3 5))

((+ 3 5))

Why the result of the third line is different of the result of the second line ?

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1  
because it's different code...? –  imulsion Mar 24 '13 at 17:21
1  
Please edit your question and change it to a meaningful title! –  Joel Oct 7 '13 at 8:46

2 Answers 2

In the second example, (+ 3 5), the numbers 3 and 5 are evaluated, and then the whole expression is evaluated by applying the function which corresponds to the symbol +, to the numbers 3 and 5. (Numbers evaluate to themselves. That's why you don't need to add ' to them in the first example.)

In the first example, Lisp evaluates '+ (which results in the symbol +) as well as 3 and 5, and then applies the function list to them, which does nothing more than creating a list of its (evaluated) arguments.

The third example does the same thing to the inner list: The whole thing is evaluated, just as in the first example. This results in (+ 3 5). Then the outer instance of the function list is applied to this result, wrapping another list around it.

Instead of the third example, maybe you wanted this:

(list (funcall #'+ 3 5))

In this case, #' tells Lisp to go and get the function associated with +. Common Lisp normally stores functions in a different way than it stores the regular values of symbols. Whereas the normal evaluation of a symbol gets the regular symbol value, evaluating #'your-symbol gets the associated function, if it exists.

Then funcall applies the function that was gotten with #'+ to 3 and 5. Then the value of that operation is passed to list, to produce (8).

(There are more precise ways to say some of this, but I'm trying to get the ideas across to beginners.)

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LIST is a function which creates a list from it's arguments. When an s-expression is evaluated Lisp checks first element of it and if it is a function (LIST is a function) it first iterates over every element in the list, evaluates them and passes values to the function as arguments.

In the second line you have inner form (i.e. (+ 3 5)) evaluated to 8 and outer (list ) call creates a list containing 1 element.

In the third line you have inner call to list evaulated to 3-element list (+ 3 5) as a value. It is not a form lisp will evaluate further, you just created list which has symbol + as a head. Evaluating outer list call will give another 1-element list (which contains 3-element list as head).

Hope it helps.

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