Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have qlc

RefsBlocked = qlc:e(qlc:q([
    Ref1 ||
    {{Ref1, {pattern, {_Status1, _Pattern1, Limit1}}}, Count} <- dict:to_list(
        qlc:fold(
            fun({Key, _Ref2}, Acc) ->
                dict:update_counter(Key, 1, Acc)
            end,
            dict:new(),
            qlc:q([
                {{Ref1, {pattern, {Status1, Pattern1, Limit1}}}, Ref2} ||
                {Ref2, {status, Status2}} <- ets:table(Tmp),
                {Ref3, {tag, Tag3}} <- ets:table(Tmp),
                Ref2 =:= Ref3,
                {Ref1, {pattern, {Status1, Pattern1, Limit1}}} <- ets:table(Tmp),
                Ref =:= Ref1,
                Status1 =:= Status2,
                Pattern1 =:= Tag3
            ])
        )
    ),
    Count >= Limit1
], unique))

where Tmp is an ets of type bag and Ref is a particular identifier I need to test.

Ets contains from hundreds to thousands of entries like

{Ref1, {definition, {Tuple1}}}
{Ref1, {status, scheduled}}
{Ref1, {status, blocked}}
{Ref1, {pattern, {scheduled, Pattern11, Limit11}}}
{Ref1, {pattern, {dispatched, Pattern12, Limit12}}}
{Ref1, {tag, Tag11}}
{Ref2, {definition, {Tuple2}}}
{Ref2, {status, scheduled}}
{Ref2, {status, dispatched}}
{Ref2, {pattern, {scheduled, Pattern21, Limit21}}}
{Ref2, {pattern, {dispatched, Pattern22, Limit22}}}
{Ref2, {tag, Tag21}}
{Ref3, {definition, Tuple3}}
{Ref3, {status, error}}

i. e. for each Ref there is one definition, one or two (of four) statuses, zero or more (in most cases no more than 3) patterns and zero or more (in most cases no more than 3) tags.

I need to test whether one particular identifier is blocked by others. It is blocked when the number of identifiers matching any of its patterns on their Tag = its Pattern and their Status = its pattern Status is more or equal to its pattern Limit.

Is there a way to optimize qlc?

share|improve this question
3  
Is it called Erlang because people read it and go, err... ? Just kidding :) –  Russ C May 31 '11 at 3:40
add comment

1 Answer

Unless you have a different, more efficient equality relation to use, the code you have there is as good as it gets. I imagine you've profiled this code and found it too slow? In what way?

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.