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What is the simplest way to write an if statement in Erlang, where a part of the guard is member(E, L), i.e., testing if E is a member of the list L? The naive approach is:

if 
  ... andalso member(E,L) -> ...
end

But is does not work becuase, if I understand correctly, member is not a guard expression. Which way will work?

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3 Answers 3

up vote 12 down vote accepted

Member functionality is, as you say, not a valid guard. Instead you might consider using a case pattern? It's possibly to include your other if-clauses in the case expression.

case {member(E,L),Expr} of
  {true,true} -> do(), is_member;
  {true,false} -> is_member;
  {false,_} -> no_member
end
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Nice. I hoped to avoid using booleans as case clauses, but at least it spares me the need to nest a case statement inside an if statement. –  Little Bobby Tables Aug 4 '11 at 8:03
1  
Using booleans in case statements is quite common, probably more common than any use of "if". –  YOUR ARGUMENT IS VALID Aug 4 '11 at 13:54

It is not possible to test list membership in a guard in Erlang. You have to do this:

f(E, L) ->
    case lists:member(E, L) of
        true  -> ...;
        false -> ...
    end.
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The easiest thing is to consider guards as a part of pattern matching, the part which cannot, or is difficult to, express in the pattern itself. So a guard is a sequence of guard tests and not boolean expressions. The original guard syntax made it easier to see the difference but now they look like boolean expressions, which they are not.

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