Re: Many-to-many performance problem

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От Alex Ignatov
Тема Re: Many-to-many performance problem
Дата
Msg-id 3f3b6180-4c67-7b17-601e-1fb0ad16fb17@postgrespro.ru
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Ответ на Many-to-many performance problem  (Rowan Seymour <rowanseymour@gmail.com>)
Ответы Re: Many-to-many performance problem  (Rowan Seymour <rowanseymour@gmail.com>)
Список pgsql-performance

On 10.06.2016 16:04, Rowan Seymour wrote:
In our Django app we have messages (currently about 7 million in table msgs_message) and labels (about 300), and a join table to associate messages with labels (about 500,000 in msgs_message_labels). Not sure you'll need them, but here are the relevant table schemas:

CREATE TABLE msgs_message
(
    id INTEGER PRIMARY KEY NOT NULL,
    type VARCHAR NOT NULL,
    text TEXT NOT NULL,
    is_archived BOOLEAN NOT NULL,
    created_on TIMESTAMP WITH TIME ZONE NOT NULL,
    contact_id INTEGER NOT NULL,
    org_id INTEGER NOT NULL,
    case_id INTEGER,
    backend_id INTEGER NOT NULL,
    is_handled BOOLEAN NOT NULL,
    is_flagged BOOLEAN NOT NULL,
    is_active BOOLEAN NOT NULL,
    has_labels BOOLEAN NOT NULL,
    CONSTRAINT msgs_message_contact_id_5c8e3f216c115643_fk_contacts_contact_id FOREIGN KEY (contact_id) REFERENCES contacts_contact (id),
    CONSTRAINT msgs_message_org_id_81a0adfcc99151d_fk_orgs_org_id FOREIGN KEY (org_id) REFERENCES orgs_org (id),
    CONSTRAINT msgs_message_case_id_51998150f9629c_fk_cases_case_id FOREIGN KEY (case_id) REFERENCES cases_case (id)
);
CREATE UNIQUE INDEX msgs_message_backend_id_key ON msgs_message (backend_id);
CREATE INDEX msgs_message_6d82f13d ON msgs_message (contact_id);
CREATE INDEX msgs_message_9cf869aa ON msgs_message (org_id);
CREATE INDEX msgs_message_7f12ca67 ON msgs_message (case_id);

CREATE TABLE msgs_message_labels
(
    id INTEGER PRIMARY KEY NOT NULL,
    message_id INTEGER NOT NULL,
    label_id INTEGER NOT NULL,
    CONSTRAINT msgs_message_lab_message_id_1dfa44628fe448dd_fk_msgs_message_id FOREIGN KEY (message_id) REFERENCES msgs_message (id),
    CONSTRAINT msgs_message_labels_label_id_77cbdebd8d255b7a_fk_msgs_label_id FOREIGN KEY (label_id) REFERENCES msgs_label (id)
);
CREATE UNIQUE INDEX msgs_message_labels_message_id_label_id_key ON msgs_message_labels (message_id, label_id);
CREATE INDEX msgs_message_labels_4ccaa172 ON msgs_message_labels (message_id);
CREATE INDEX msgs_message_labels_abec2aca ON msgs_message_labels (label_id);

Users can search for messages, and they are returned page by page in reverse chronological order. There are several partial multi-column indexes on the message table, but the one used for the example queries below is

CREATE INDEX msgs_inbox ON msgs_message(org_id, created_on DESC)
WHERE is_active = TRUE AND is_handled = TRUE AND is_archived = FALSE AND has_labels = TRUE;

So a typical query for the latest page of messages looks like (https://explain.depesz.com/s/G9ew):

SELECT "msgs_message".* 
FROM "msgs_message" 
WHERE ("msgs_message"."org_id" = 7 
    AND "msgs_message"."is_active" = true 
    AND "msgs_message"."is_handled" = true 
    AND "msgs_message"."has_labels" = true 
    AND "msgs_message"."is_archived" = false 
    AND "msgs_message"."created_on" < '2016-06-10T07:11:06.381000+00:00'::timestamptz
) ORDER BY "msgs_message"."created_on" DESC LIMIT 50

But users can also search for messages that have one or more labels, leading to queries that look like:

SELECT DISTINCT "msgs_message".* 
FROM "msgs_message" 
INNER JOIN "msgs_message_labels" ON ( "msgs_message"."id" = "msgs_message_labels"."message_id" ) 
WHERE ("msgs_message"."org_id" = 7 
    AND "msgs_message"."is_active" = true 
    AND "msgs_message"."is_handled" = true 
    AND "msgs_message_labels"."label_id" IN (127, 128, 135, 136, 137, 138, 140, 141, 143, 144) 
    AND "msgs_message"."has_labels" = true 
    AND "msgs_message"."is_archived" = false 
    AND "msgs_message"."created_on" < '2016-06-10T07:11:06.381000+00:00'::timestamptz
) ORDER BY "msgs_message"."created_on" DESC LIMIT 50

Most of time, this query performs like https://explain.depesz.com/s/ksOC (~15ms). It's no longer using the using the msgs_inbox index, but it's plenty fast. However, sometimes it performs like https://explain.depesz.com/s/81c (67000ms)

And if you run it again, it'll be fast again. Am I correct in interpreting that second explain as being slow because msgs_message_pkey isn't cached? It looks like it read from that index 3556 times, and each time took 18.559 (?) ms, and that adds up to 65,996ms. The database server says it has lots of free memory so is there something I should be doing to keep that index in memory?

Generally speaking, is there a good strategy for optimising queries like these which involve two tables?
  • I tried moving the label references into an int array on msgs_message, and then using btree_gin to create a multi-column index involving the array column, but that doesn't appear to be very useful for these ordered queries because it's not an ordered index.
  • I tried adding created_on to msgs_message_labels table but I couldn't find a way of avoiding the in-memory sort.
  • Have thought about dynamically creating partial indexes for each label using an array column on msgs_message to hold label ids, and index condition like WHERE label_ids && ARRAY[123] but not sure what other problems I'll run into with hundreds of indexes on the same table.
Server is an Amazon RDS instance with default settings and Postgres 9.3.10, with one other database in the instance.

All advice very much appreciated, thanks

--
Rowan Seymour | +260 964153686
Hello! What do you mean by
"Server is an Amazon RDS instance with default settings and Postgres 9.3.10, with one other database in the instance."
PG is with default config or smth else?
Is it  with default config as it is as from compile version? If so you should definitely have to do some tuning on it.
By looking on plan i saw a lot of disk read. It can be linked to small shared memory dedicated to PG exactly what Tom said.
Can you share pg config or raise for example shared_buffers parameter?


Alex Ignatov
Postgres Professional: http://www.postgrespro.com
The Russian Postgres Company


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