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As an exercise in learning Erlang, I'm trying to write a simple database (from O'Reilly's Programming Erlang).

Basically I have a list of Tuples like this:

Db1 = [{person1,charleston},{person2,charleston},{person3,chicago}].

I need to create function such that

db:match(charleston,Db1).

returns

[person1,person2]

Here's the method that I wrote:

match(Element, Db) -> match(Element, Db, []).
match(_Element,[], Results) -> Results;
match(Element, [{Key,Value}|T], Results) ->
    case Value == Element of
        true -> match(Element, T, [Results,Key]);
        false -> match(Element,T,Results)
    end.

The result I'm getting back is this:

[[[],person1],person2]

I know there are ways of combining lists with the lists.erl module, but I'm trying to bypass it in an effort to learn more about the language. Any ideas what I'm doing wrong?

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1  
your case Value == Element can be folded into the clause: match(Value, [{Key, Value}|T], ...) -> and so on. –  I GIVE CRAP ANSWERS Feb 28 '11 at 13:37
    
And your case is so simple I wouldn't use a tail recursive accumulator here, but rather use [Key|match(Element, T)] as a recurser. –  I GIVE CRAP ANSWERS Feb 28 '11 at 13:38

3 Answers 3

up vote 5 down vote accepted

the problem is how you are building up your list, try this instead:

case Value == Element of
    true -> match(Element, T, [Key|Results]);
    false -> match(Element,T,Results)
end.
  • [A,B] builds a new list with elements A and B.
  • [A|B] prepends A to the list B.
share|improve this answer
    
This is the problem of the original code. And that you swap Key and Results. –  I GIVE CRAP ANSWERS Feb 28 '11 at 13:34
    
Why is [Key|Results] different then [Results|Key]. I thought the latter part was appended to the first part. No? –  Micah Feb 28 '11 at 14:19
2  
Key is a value while Results is a list of values. The [_|_] construct is normally used in the way of [Value|ListofValues] to prepend the first part to the second part. Using it in the reverse order is legal but it is not the normal way of working with lists and there is no support for this. Appending a value to a list is another much less efficient operation which is generally avoided if possible. –  rvirding Feb 28 '11 at 14:24
    
@rvirding so as a side-effect then this would actually wind up building a reversed list right? –  Micah Feb 28 '11 at 15:06
    
@Micah yes as you are in effect pushing the elements on to a list/stack which you then return. –  rvirding Mar 2 '11 at 13:26

You're re-inventing the wheel. Just use list comprehension:

match(X, Db) -> [P || {P, E} <- Db, E == X].
share|improve this answer
2  
Even shorter with pattern matching: match(X, Db) -> [P || {P, X} <- Db]. –  hdima Feb 28 '11 at 7:13
2  
@hdima That solution doesn't work because X in the List Comprehensions generator will shadow the match/2 argument X. –  D.Nibon Feb 28 '11 at 8:11
    
Only reason I didn't mark this as the answer is that I haven't done anything with pattern matching yet and was looking for specifically a recursion solution. But great answer. –  Micah Mar 2 '11 at 16:33
    
@D.Nibon You're right. I didn't check the code. –  hdima Apr 16 '11 at 9:21

An alternate way to write the code directly is

match(_Value, []) -> [];
match(Value, [{Key,Value}|T]) ->
    [Key|match(Value, T)];
match(Value, [_|T]) ->
    match(Value, T).

The list comprehension in @Little Bobby Tables solution is equivalent to this.

share|improve this answer
    
It doesn't look like your last match/3 ever gets called. All calls to match are for match/2. –  Micah Feb 28 '11 at 18:11
    
@Micah a typo which @Hynek has corrected –  rvirding Mar 2 '11 at 13:27

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