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I have a list, which may contain elements that will compare as equal. I would like a similar list, but with one element removed. So from (:a :b :c :b :d) I would like to be able to "remove" just one :b to get (:a :c :b :d).

The context is a hand in a card game where two decks of standard cards are in play, so there may be duplicate cards but still played one at a time.

I have working code, see below. Are there more idiomatic ways to do this in Clojure?

(defn remove-one [c left right]
  (if (= right ())
    left
    (if (= c (first right))
      (concat (reverse left) (rest right))
      (remove-one c (cons (first right) left) (rest right)))))

(defn remove-card [c cards]
  (remove-one c () cards))

Here are the Scala answers I got a while ago: What is an idiomatic Scala way to "remove" one element from an immutable List?

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As a footnote, I looked into the source code of the preferred answer to my Scala version of this question. It turns out the diff function in Scala uses a mutable hash to count the number of occurrences to remove from a multi-set. –  James Petry Oct 7 '11 at 9:21
    
Just for clarification : does it matter which :b counts as a duplicate here ? From the example output , you 'dropped' the first :b, but would it still be equivalent to have dropped the second :b instead ? [abcbd -> acdb, but would abcd also be acceptable?] –  monojohnny Jan 22 '14 at 17:29
    
@monojohnny, abcd is just as good for my use case. –  James Petry Jan 27 '14 at 14:45

3 Answers 3

up vote 18 down vote accepted

How about:

(let [[n m] (split-with (partial not= :b) [:a :b :c :b :d])] (concat n (rest m)))

Which splits the list at :b and then removes the :b and concats the two lists.

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Beat me to it! It's really convenient that split-with does the Right Thing when the element is not found in the list, so that this solution is easy to write. –  mquander Oct 5 '11 at 14:16
1  
Very elegant. I think it worth noteing that split-with is built on top of take-while and drop-while which are more basic building blocks for tackling similar problems. –  Alex Stoddard Oct 5 '11 at 17:28
    
+1 – it's very elegant! It's also worth mentioning that this will not remove all occurrences of :b but only the first one (actually I thought the former). Quick link to doc: clojure.github.com/clojure/clojure.core-api.html#clojure.core/… –  kgadek Oct 5 '11 at 23:01

I usually solve these problems with a higher-order function like split-with, but someone's already done that. Sometimes it's more readable or more efficient to work at a more primitive level, so here's a better version of your original looping code, using lazy sequences and generalized to take a predicate for removal instead of being constrained to equality checks:

(defn remove-once [pred coll]
  ((fn inner [coll]
     (lazy-seq
      (when-let [[x & xs] (seq coll)]
        (if (pred x)
          xs
          (cons x (inner xs))))))
   coll))


user> (remove-once #{:b} [:a :b :c :b :d])
(:a :c :b :d)
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1  
Note I'm not claiming this is more readable, but it is more efficient and it can be good practice if you're familiar with HOFs like split-with and need some practice with "good" recursive code. –  amalloy Oct 5 '11 at 18:20
    
Thanks also for a nice example of using lazy-seq! The "canonical" explanation of laziness is a bit confusing. –  Carl Smotricz Oct 6 '11 at 15:14

It is surprising there is not a high-level API to do something like this. Here is another version similar to @amalloy and @James that uses recur in order not to stack overflow.

(defn remove-once [x c]                                                                                                                                                                                                                     
  (letfn [(rmv [x c1 c2 b]                                                                                                                                                                                                                  
            (if-let [[v & c] (seq c1)]                                                                                                                                                                                                      
              (if  (and (= x v) b)                                                                                                                                                                                                          
                (recur x c c2 false)                                                                                                                                                                                                        
                (recur x c (cons v c2) b))                                                                                                                                                                                                  
              c2))]                                                                                                                                                                                                                         
    (lazy-seq (reverse (rmv x c '() true)))))                                                                                                                                                                                               

(remove-once :b [:a :b :c :b :d])
;; (:a :c :b :d)
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1  
Sorry, but I hate this implementation. You're solving a non-problem - my version doesn't blow the stack either, and I don't waste a bunch of energy calling reverse - I build it the right way round to begin with. –  amalloy Oct 6 '11 at 2:15

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