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(defun highest (lat)
    (cond
        ((null lat) nil)
        ((null (cdr lat)) (car lat))
        (T (higher (car lat) (highest (cdr lat))))))

(defun higher (a1 a2)
    (cond
        ((> a1 a2) a1)
        (T a2)))

This function works as expected:

> (highest '(3 5 1 2 3))    
3. Trace: (HIGHEST '(3 5 1 2 3))
4. Trace: (HIGHEST '(5 1 2 3))
5. Trace: (HIGHEST '(1 2 3))
6. Trace: (HIGHEST '(2 3))
7. Trace: (HIGHEST '(3))
7. Trace: HIGHEST ==> 3    
6. Trace: HIGHEST ==> 3
5. Trace: HIGHEST ==> 3
4. Trace: HIGHEST ==> 5    
3. Trace: HIGHEST ==> 5

But if I change the parameter to &rest:

(defun highest (&rest args)
    (cond
        ((null args) nil)
        ((null (cdr args)) (car args))
        (T (higher (car args) (highest (cdr args))))))

It doesn't behave the same.

> (highest 3 5 1 2 3)
3. Trace: (HIGHEST '3 '5 '1 '2 '3)
4. Trace: (HIGHEST '(5 1 2 3))
4. Trace: HIGHEST ==> (5 1 2 3)
*** - >: (5 1 2 3) is not a real number

EDIT: Sorry, I forgot to mention that I pass the arguments a atoms in the second case. I edited the question to make it more clear.

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2 Answers 2

up vote 5 down vote accepted

Try to evaluate (trace highest) before calling (highest 3 2 10). You will then see that the second call looks like this: (highest '(2 10)) Then the &rest parameter sees one object which happens to be a list.

To correct this, use APPLY. APPLY is like funcall but its last argument must be a list and is treated as if it was 'spliced onto' the function call. Like this: (apply #'highest (cdr args))

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I was looking for that hint for a good couple of hours...! –  PawelP Nov 14 '14 at 11:55

The &rest form collects all the rest of the parameters passed as a list itself. In the case of the highest (&rest args), args is actually a list with an element, a list. That is, in the call, args value is ((3 2 10)).

The second version of highest with the &rest modifier always enters in the second test of the condition, as args is just a list with one element (that happens to be a list). You return the first element of args, which is the list itself, (3 2 10).

The difference with both constructs is that the first version, in which you pass the list as a parameter, the function receives the list as the only parameter of the function. In the case of &rest, all the arguments (in this case just one) are collected into a list (in this case with just one element).

EDIT: As per your edit, as Thomas states in his comment, using &rest implies you have to use apply to call recursively. This is the correct implementation:

(defun highest (&rest args)
    (cond
        ((null args) nil)
        ((null (cdr args)) (car args))
        (T (higher (car args) (apply #'highest (cdr args))))))

(note the apply in the last line).

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