I saw there are other questions about the dot "." I followed but it didn't work for my code.... it's a part of code, the implementation is not focused to this symbol. but output should be included this dot. when I give input of two lists '(1 2 3) '(4 5) my expected output => (1 . 4) (2 . 5)

I managed to get (1 4) (2 5) just need to add "." in the middle.

Part of mycode 
(cons (list (car lst1) (car lst2))
....

for the "." symbol , if I try

**trial-1**
 (cons '(list (car lst1) (car lst2)) ...)

then the output : ((list (car lst1) (car lst2))

**trail-2**
(cons (list (car lst1) '. (car lst2)) ...)

then.. it says : illegal use of `.'

what are the rules to use the dot? any documents I can look at? btw, I am using Racket(R5RS).

up vote 1 down vote accepted

The dot symbol is displayed when you build a cons-pair or a list which is not proper (meaning: it doesn't end with the empty list). For example:

(cons 1 2) 
=> (1 . 2) ; a cons-pair

(cons 1 (cons 2 (cons 3 4)))
=> '(1 2 3 . 4) ; an improper list

For instance, to display an output such as the one shown in the question try this:

(define lst1 '(1 2 3))
(define lst2 '(4 5))

(list (cons (car lst1) (car lst2))
      (cons (cadr lst1) (cadr lst2)))

=> '((1 . 4) (2 . 5))
  • my code was ... cons(list... and your code... list(cons... => (I just try with my own words, to see I understand it correctly) ; so because the dotted symbol will be "automatically" displayed when I build cons-pair. but my mistake was I build a list first and then cons-pair so it doesn't show the dotted symbol because a list is not proper to display the dotted symbol. but if the code is build cons-pair first, then build a list from the cons-pair result, so that will show the the dotted symbol.... right? – user1915570 May 12 '14 at 23:43
  • @user1915570 mmm, I'd better say that the dot symbol has a special meaning, so you can't use is as a "normal" symbol. It's shown when you display cons cells with a certain structure, but you can't add it explicitly to your lists – Óscar López May 12 '14 at 23:57
  • there is also you explained "meaning:it doesn't end with the empty list". what exactly this mean? because my original code actually a part of tail recursion practice again.. so when I did... (a part of code) ...(list (cons (car lst1) (car lst2)) (myFunc (cdr lst1) (cdr lst2)).... myFunc is the tail recursion part... output is like this : (myFunc '(1 2 3) '(a b c)) => ((1 . a) ((2 . b) ((3 . c) ()))) .... I get the empty list in the end. – user1915570 May 13 '14 at 0:15
  • It means that this is an improper list (it doesn't end in an empty list): (cons 1 (cons 2 3)), and on the other hand this is a proper list (it ends with an empty list): (cons 1 (cons 2 (cons 3 '()))). Evaluate them and see the difference. – Óscar López May 13 '14 at 0:21
  • 1
    There is such a thing as a "normal" dot symbol, and in R7RS, you write it using |.|. However, that's completely different from the dot you're talking about here. :-) For the OP's benefit, I mean: '(a . b) is a single cons cell, with symbol a as its car, and symbol b as its cdr. '(a |.| b) is a proper list with 3 elements (i.e., 3 cons cells), the symbols a, ., and b. – Chris Jester-Young May 13 '14 at 1:35

From R7RS:

The most general notation (external representation) for Scheme pairs is the “dotted” notation (c1 . c2) where c1 is the value of the car field and c2 is the value of the cdr field. For example (4 . 5) is a pair whose car is 4 and whose cdr is 5. Note that (4 . 5) is the external repre- sentation of a pair, not an expression that evaluates to a pair.

. is not a symbol.

  • using R5RS.. probably same.. – user1915570 May 12 '14 at 23:22

Although . can be a part of a symbol, . is not in itself a valid symbol. . is used in list structure as a divider between the car and the cdr. eg. (a . (b . (c . ()))) ; ==> (a b c).

Practical application is the historic use as a rest argument in the prototype of a procedure and you can use it as template an transformation of macros. Also, read can read it in and you can use it as data like (define lst '((a) . (b))).

So to recap:

(a . b) is a pair of a and b, while (a.b) is the same as (a.b . ()) thus a pair of the symbol a.b and the empty list.

As for how to create a pair you use cons. (cons 'a 'b) => (a . b) while (list a b) => (cons 'a (cons b '())). Now you can make a pair with two lists as arguments, (cons '(1 4) '(2 5)) but if you print it you know that (a . (b)) is the same as (a b) thus (cons '(1 4) '(2 5)) will display as ((1 4) 2 5) since it will prefer not to display the dot. If it would prefer to show dots it would have displayed it as ((1 . (4 . ())) . ((2 . (5 . ())))) instead since thats how many pairs there are in that data structure.

If you have managed to get the output ((1 4) (2 5)) and really wanted ((1 . 4) (2 . 5)) you need to replace a list with cons.

  • yes, I did.. but then I get empty list at the end.. I think I didn't understand completely. I will put new question with my entire code - I try to avoid that.. but I think I need to show what I did... – user1915570 May 13 '14 at 7:13
  • @user1915570 You've switched the outer cons with list. When iterating a list you need to join by pairs using cons since the tail recursion creates a list and (cons 'first '(the rest of the result)) becomes (first the rest of the result) while every part with list becomes (first (the (rest (of (the (result ())))))). Since (list a b) is (cons a (cons b '())). Try keep from using list at all for a while to get a hang of it at least for small lists. so instead of (list (list a) b c) do (cons (cons a '()) (cons b (cons c '()))) – Sylwester May 13 '14 at 7:57

It's called a dotted pair and is produced when you cons an item with a non-list, such as:

> (cons 1 2)
(1 . 2)

See: http://download.plt-scheme.org/doc/html/guide/Pairs__Lists__and_Scheme_Syntax.html

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