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I have 2 Tables in Postgres:

CREATE TABLE "images" (
    "id" serial NOT NULL PRIMARY KEY,
    "title" varchar(300) NOT NULL,
    "relative_url" varchar(500) NOT NULL)


    "id" serial NOT NULL PRIMARY KEY,
    "name" varchar(50) NOT NULL)

To establish many to many relationship between images and tags I have another table as:

CREATE TABLE "tags_image_relations" (
    "id" serial NOT NULL PRIMARY KEY,
    "image_id" integer NOT NULL REFERENCES "images" ("id") DEFERRABLE INITIALLY DEFERRED)

Now I have to write a query like "select relative_url of all images tagged with 'apple' and 'microsoft' and 'google' "

What can the most optimized query for this?

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This is relational division. Various approaches are discussed here. Don't know which would be most performant in postgres – Martin Smith Oct 13 '11 at 10:22
@jerrymouse. You should check various solutions in your db. Performance will be different depending on the solution chosen and the data distribution of the tables. (what precent of images are tagged 'apple', 'google', etc) – ypercube Oct 13 '11 at 10:42

2 Answers 2

up vote 1 down vote accepted

Here's the working query I wrote:

SELECT, i.relative_url, count(*) as number_of_tags_matched
FROM   images i
    join tags_image_relations ti on = ti.image_id
    join tags t on = ti.tag_id
    where in ('google','microsoft','apple')
    group by having count( <= 3
    order by count(

This query will first show the images matching all three tags, then the images matching at least 2 of the 3 tags, finally at least 1 tag.

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tags table should be indexed on name,id for efficient queries. – jerrymouse Oct 19 '11 at 12:25

You'd join images to tags_image_relations, then tags_image_relations to tags, then filter WHERE the name field is IN a list of tag names desired. It's the simplest, most obvious, and cleanest?

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This returns Any not All. To do All would require a GROUP BY and COUNT – Martin Smith Oct 13 '11 at 10:20
Exactly, That was the problem. I need images with all these tags. Infact, I need to order images matching all 3 tags, then at least 2 tags, then at least 1 tag. Thanks for your answers anyways @MartinSmith – jerrymouse Oct 13 '11 at 10:28
Thanks for your answer @KierenJohnstone – jerrymouse Oct 13 '11 at 10:28
@jerrymouse - Well for your need given in the comments (which is different from the question you asked) GROUP BY and COUNT would seem to be the only way. – Martin Smith Oct 13 '11 at 10:31

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