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I am trying to create a very simple recursive function to delete all element that have a particular value that the user decides on from a list.

In haskell I would use guards and do:

deleteAll_rec _ [] = []
deleteAll_rec del (x:xs) | del==x = deleteAll_rec del xs
                         | otherwise = x:deleteAll_rec del xs

I am trying to code up an Erlang equivalent, however, I am not sure how to handle the otherwise case:

deleteAll_rec(_, []) -> [];
deleteAll_rec(DEL, [X|XS]) when DEL =:= X -> deleteAll_rec(DEL, XS).

I was wondering if someone can demonstrate how this can be done?

Many thanks in advance!

share|improve this question
up vote 5 down vote accepted

The otherwise becomes a separate clause in Erlang:

delete_all_rec(_, []) -> [];
delete_all_rec(Del, [Del|Xs]) ->
    delete_all_rec(Del, Xs);
delete_all_rec(Del, [X|Xs]) ->
    [X|delete_all_rec(Del, Xs)].

An alternative is to use an if like:

delete_all_rec(_, []) -> [];
delete_all_rec(Del, [X|Xs]) ->
    if Del =:= X ->
            delete_all_rec(Del, Xs);
        true ->
            [X|delete_all_rec(Del, Xs)]
    end.

The resultant code is the same but I think the first version looks better. Whether you put the terminating case first or last is irrelevant in this example, I prefer putting it last.

share|improve this answer
    
Thanks for the reply. How are we checking if DEL equals the Head of the list? in the middle clause of the first implementation? – AnchovyLegend Apr 16 '13 at 21:16
    
Yes this delete_all_rec(Del, [Del|Xs]) matches when Del is the first argument of the function and the list's head. – David Dossot Apr 16 '13 at 21:36
1  
@AnchovyLegend Sorry for not mentioning this. When a variable occurs more than once in a pattern or head there is an implicit equality check. In this case the first argument Del is equal to the first element Del of the list. IIRC in Haskell you always have to explicitly test for equality. – rvirding Apr 16 '13 at 23:42

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