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I am learning the concept of sequence and nil in Clojure. This was the result of a small experimentation.

1:6 user=> (first '())
nil
1:7 user=> (rest '())
()
1:8 user=> (first (rest '()))
nil

Does this mean that '() is actually a sequence of nils?

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5 Answers 5

up vote 7 down vote accepted

If you want to test whether the "rest" of a collection is empty, use next.

user> (next '(foo bar))
(bar)
user> (next '())
nil
user> (doc next)
-------------------------
clojure.core/next
([coll])
  Returns a seq of the items after the first. Calls seq on its
  argument.  If there are no more items, returns nil.

"nil-punning" (treating an empty collection/seq and nil as the same thing) was removed last year in favor of fully-lazy sequences. See here for a discussion leading up to this change.

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When I write cond clauses to recur in a sequence, my first check is usually (empty? obj). Is that the correct way to recur in Clojure? –  unj2 Jul 24 '09 at 1:54
3  
I think usually people test (seq obj) rather than (empty? obj). –  Brian Carper Jul 24 '09 at 9:04
    
@BrianCarper Why? Is there a significant different between the two expressions? –  wrongusername Jan 3 '12 at 18:19
1  
@wrongusername - it's mostly convention, but (seq x) is shorter than the equivalent (not (empty? x)) –  mikera Jan 10 '12 at 2:25
    
@mikera aha, thanks for the clarification! :D –  wrongusername Jan 10 '12 at 4:04

first and rest are functions that apply to a logical structure (a seq) and not on the linked cons structure of a list (as in other lisps).

Clojure defines many algorithms in terms of sequences (seqs). A seq is a logical list, and unlike most Lisps where the list is represented by a concrete, 2-slot structure, Clojure uses the ISeq interface to allow many data structures to provide access to their elements as sequences.

http://clojure.org/sequences

The behavior is a result of the definition of the function and not determined by the primitive structure of the data.

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No - an empty list is not the same as an infinite sequence of nils

This is relatively easy to show. Suppose we have:

(def infinite-nils (repeat nil)) ; an infinite lazy sequence of nils
(def empty-list    '())          ; an empty list

They have different numbers of elements:

(count infinite-nils) => doesn't terminate
(count empty-list)    => 0

Taking from them:

(take 10 infinite-nils)  => (nil nil nil nil nil nil nil nil nil nil)
(take 10 empty-list)     => ()

If you call seq on them you get

(seq inifinite-nils) => sequence of infinite nils
(seq empty-list)     => nil

The confusion in the original can largely be resolved by understanding the following facts:

  • '() is a collection (a persistent list), not a sequence. However it is sequential, so you can call seq on it to convert it into sequence.
  • nil is the empty sequence - so therefore (seq '()) returns nil, as does (seq (rest '()))
  • first returns nil on an empty sequence - hence why (first (rest '())) is nil.
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Also learning Clojure.

For empty sequences, rest returns a sequence for which seq returns nil.

That's why you get that behavior.

I assume this is to simplify recursing on sequences until they are empty, and probably other smartypants reasons...

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Technically yes though not in a useful way.

"Does the sequence that is created by calling (seq '()) have an infinite number of nulls?"
the answer is yes becase the (rest) of an empty sequence is sill an empty sequence which it's self can have a (rest)

This output is misleading by the way:

1:7 user=> (rest '())
()

the first '() in this is the empty list.
the secong () in this is the empty sequence.
sequences are printed the same as lists in the repl even though they are not the same.

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