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I have list - Sep1:

[
   ....
   ["Message-ID", "AAAAAAAAAAAAAAAAAAA"],
   ["To", "BBBBBBBBBBBBBBBBB"]
   ...
]

I try get element where first item = Message_ID for example:

lists:filter(fun(Y) -> (lists:nth(1,lists:nth(1,Y)) =:= "Message-ID") end, Sep1).

But i get error:

 exception error: no function clause matching lists:nth(1,[])

 in function  utils:'-parse_to/1-fun-1-'/1

 in call from lists:'-filter/2-lc$^0/1-0-'/2

But if i:

io:format(lists:nth(1,lists:nth(1,Sep1))).
> Message-ID

What's wrong?

Thank you.

share|improve this question
1  
lists:filter calls the fun for every element in the list. Your code below just passes the whole list to lists:nth. – ZeissS Feb 23 '11 at 17:03
    
Theb how can i filter my list by first element each of list? – 0xAX Feb 23 '11 at 17:37
    
I suspect that you have another problem somewhere. When I copy your Sep1 and your lists:filter call into my Erlang shell, I get [] - not the right answer, of course, but different from the error you are getting. Are you sure that you pasted your Sep1 correctly? – legoscia Feb 23 '11 at 17:51

It's better to change representation to [{Key, Value}, ...] so you can use lists:key* functions, proplists module, or convert it to dict with dict:from_list/1.

But if you still want to use lists:filter/2 you can filter list of lists by first element as following:

lists:filter(fun ([K | _]) -> K =:= "Message-ID" end, ListOfLists).

If you want to extract tails of lists which first element match with "Message-ID" you can use list comprehensions:

[Tail || ["Message-ID" | Tail] <- ListOfLists].
share|improve this answer
    
This fails if one element of the initial list is an empty list. – Alin Feb 23 '11 at 18:13
    
lists:key* functions and the lists:filter example works as expected with 3 element tuples and 3 element lists correspondingly – hdima Feb 23 '11 at 18:20
    
fun ([K | _]) -> K =:= ExpectedValue; (_) -> false end will work with any type of elements. But shouldn't you check your input data first? – hdima Feb 23 '11 at 18:26
2  
Also, you could directly pattern match, i.e. fun (["Message-ID" | _]) -> true; (_) -> false end. – 3lectrologos Feb 23 '11 at 18:55
    
Yes, if second clause is used (as in the comment above) but it doesn't work with the original example. Actually I don't like examples in comments because anything can match, but you must know your data instead. – hdima Feb 23 '11 at 19:05

Why do you use two nested lists:nth calls?

lists:filter(fun(Y) -> lists:nth(1, Y) =:= "Message-ID" end, Sep1) works for me and returns a list containing the elements you want (lists where the first element is "Message-ID"). Just pattern match on that list to get the element you want, e.g. if you want only one such element you can do:

case lists:filter(fun(Y) -> lists:nth(1, Y) =:= "Message-ID" end, Sep1) of
  [Result] -> % do something with it;
  [] -> % no such element found
end
share|improve this answer
    
To downvoter: When you downvote, please leave a comment explaining what you find false and/or misleading... – 3lectrologos Feb 23 '11 at 18:58

What you probably want is this:

[B || [A,B|_] <- L, A =:= "Message-ID"].

This does not assume any length of the nested lists:

It will return a list of the second elements of all inner lists whose first element is "Message-ID"

If you are sure there is only one "Message-ID" and want to throw an error otherwise:

[X] = [B || [A,B|_] <- L, A =:= "Message-ID"].

If you only want the first one (still throwing error when there is none):

[X|_] = [B || [A,B|_] <- L, A =:= "Message-ID"].

To understand what this code does I recommend reading official Erlang documentation about list comprehensions and the Learn You Some Erlang-chapter about the same topic: List Comprehensions.

share|improve this answer

Assuming that your list contains only elements each of them with 2 elements, you could use lists comprehension doing something like this:

1> L = [["Message-ID","AAAAAAAA"],["To","BBBBBBBBBBB"]].
[["Message-ID","AAAAAAAA"],["To","BBBBBBBBBBB"]]
2> [[A,B]||[A,B] <- L, A =:= "Message-ID"].
[["Message-ID","AAAAAAAA"]]

Hope this helps.

share|improve this answer
    
No, There are not 2 elements in the list. – 0xAX Feb 23 '11 at 17:44
1  
His code only supposes that the insider lists have 2 elements – Peer Stritzinger Feb 23 '11 at 17:57
    
-1: This assumes that the inner lists contain two elements, in which case there is no reason to use lists in the first place. – 3lectrologos Feb 23 '11 at 17:59
    
Yeah, in that case, this solution is wrong. – Alin Feb 23 '11 at 18:10
1  
And please use =:= in the comparison, using ==for no good reason is bad example. – Peer Stritzinger Feb 23 '11 at 18:26

You could create your own filter (which doesn't care about the number of the elements):

    filter(List) -> filter(List,[]).

    filter([],Acc) -> lists:reverse(Acc);
    filter([[]|Tail],Acc) -> filter(Tail,Acc);
    filter([[H|T]|Tail],Acc) ->
      case H =:= "Message-ID" of
        true -> filter(Tail,[[H|T]|Acc]);
        _ -> filter(Tail,Acc)
      end.
share|improve this answer
    
I'd probably define it on the already built-in: my_filter(F, L) -> lists:filter(fun(["Message-ID"|T]) -> F(T); (_) -> false end, L). or something such. – I GIVE CRAP ANSWERS Feb 23 '11 at 20:18

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