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I'd like to see if a migration of a dataset from PostgreSQL to Redis has a positive influence on a particular search query. Unfortunately, I don't really know how to organize the keys and values.

What I want is a that users are able to supply a list of properties and the application delivers a list of items in an ascending order of properties that have not been entered.

For example:

Item #1 { prop1, prop2, prop4, prop7 }     Query: "prop1 prop3 prop4 prop5"
Item #2 { prop7, prop8 }                   Result: Item #3
Item #3 { prop2, prop3, prop5 }                    Item #1
                                                   Item #2

What I have come up with so far:

#!/usr/bin/python
properties = (1, 3, 4, 5)
items = ["Properties:%s:items" % id for property in properties ]
redis.zunionstore("query:related_items", items)
redis.zinterstore("query:result", { "Items:all": 1, "query:related_items": -1 })

This builds a sorted set of Items (all with a score of 1) that are connected with the user-entered Propertys. Afterwards, an intersection with the sorted set of all Items (where each value's score is the number of Propertys) is calculated. The weights are set to create a score of 0 if all Propertys of an Item are supplied in the query.

As the number of Items is about 600.000 entries this query takes approximately 4-6 seconds. Is there a better way to accomplish this?

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2  
This question is asking for a bounty :) –  Niloct Dec 19 '11 at 21:14
    
Another small step in the direction of increasing performance that I made is this: As the web interface allows users to filter on other criteria as well, I built separate ZSETs for each filter setting which have fewer entries than one single ZSET with all entries would have (i.e. Properties:%s:filter1-on:filter2-off:items). This helps a lot, but only if other filters are in use. Without filters the huge ZSET is used as usually. –  jnns Jan 9 '12 at 10:13
1  
How many different properties are there? The question is a bit cryptic to me, e.g. what are the sorting conditions? –  The Nail Jan 10 '12 at 20:44
1  
Thanks for asking. I'll try to clarify: There are about 2000 properties and this is not going to change much in the future. The sorting condition is that those Items whose properties have all been met are displayed on top. Followed by Items where only one property was not specified, followed again by those with two missing properties and so on... –  jnns Jan 13 '12 at 14:19
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2 Answers 2

I imagine you're looking for a Python solution, but the Ohm library for Ruby is my favorite of the Redis-based database analogues. Considering the similarities between Python and Ruby and Ohm's exceptional documentation, you might find some inspiration.

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Thank you! I'll look into that. –  jnns Jan 13 '12 at 14:20
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EDIT: Used real properties as stated in comments.

I think I did it (once more). I used PHPRedis.

I used sorted sets too, but I inverted your schema: Each zset represents an ingredient, and each recipe id is a member of that zset. So every zset has the same number of members, i.e., every recipe on the application. Every recipe uses or not a ingredient. That defines the score.

Loading is somewhat expensive, but query is done under 3s, for a sample with 12 ingredients and 600.000 recipes. (you've got a lot of them for sure!).


Loading

Pseudo-code:

For every ingredient i on the system
   For every recipe j on the system
      If recipe j uses the ingredient i Then
         score = 1
         INCR recipe:j:ing_count //Will help sorting
         RPUSH recipe:j:ing_list i //For listing all ingredients in recipe
      Else
         score = 0
      End If
      ZADD ing:i score j
   End For
End For

Code:

#!/usr/bin/php
<?
### Total of ingredients
define('NUM_OF_ING',12);

### Total of recipes
define('NUM_OF_RECIPES',600000);

$redis = new \Redis();
$redis->connect('localhost');

for ($ing=1; $ing<=NUM_OF_ING; $ing++) {
    for ($recipe=1; $recipe<=NUM_OF_RECIPES; $recipe++) {
        $score = rand() % 2;
        if ($score == 1) {
            $redis->incr("recipe:$recipe:ing_count");
            $redis->rpush("recipe:$recipe:ing_list", $ing);
        }
        $redis->zAdd("ing:$ing", $score, $recipe);
    }
}
echo "Done.\n";
?>

Querying

Before I paste the PHP code and measured running time, let me do some observations:

Sorting is done based on the number of ingredients used (sum of the zsets in query). If two recipes use all ingredients that are in query, then the tie-break is done by the number of additional ingredients that one recipe has. More ingredients, higher position.

The sum is handled by ZINTERSTORE. The zset with sums is stored in result.

Then a SORT command looks in the count key for each recipe, tailoring the order with this additional constraint.

Code:

#!/usr/bin/php
<?
$redis = new \Redis();
$redis->connect('localhost');

//properties in query
$query = array('ing:2', 'ing:4', 'ing:5');
$weights = array(1, 1, 1);

//intersection
$redis->zInter('result', $query, $weights, 'sum');

//sorting
echo "Result:\n";
var_dump($redis->sort('result', array('by'=>'recipe:*:ing_count', 'sort'=>'desc', 'limit'=>array(0,10))));
echo "End.\n";
?>

Output and running time:

niloct@Impulse-Ubuntu:~$ time ./final2.php 
Result:
array(10) {
  [0]=>
  string(4) "5230"
  [1]=>
  string(5) "79549"
  [2]=>
  string(4) "2871"
  [3]=>
  string(3) "336"
  [4]=>
  string(6) "109279"
  [5]=>
  string(4) "5352"
  [6]=>
  string(5) "16868"
  [7]=>
  string(3) "690"
  [8]=>
  string(4) "3174"
  [9]=>
  string(4) "8795"
}
End.

real    0m2.930s
user    0m0.016s
sys 0m0.004s
niloct@Impulse-Ubuntu:~$ redis-cli lrange recipe:5230:ing_list 0 -1
 1) "12"
 2) "11"
 3) "10"
 4) "9"
 5) "8"
 6) "7"
 7) "6"
 8) "5"
 9) "4"
10) "3"
11) "2"
12) "1"

Hope that helps.

PS: Can you post your performance measures after trying this ?

share|improve this answer
    
So, have you tried the solution ? I presume you didn't reply because the timing was different to you. The machine I'm now (from which I posted) keeps consistently taking 2.5s for the ZINTERSTORE, which is the command that matters. –  Niloct Jan 15 '12 at 17:09
    
Thanks for taking the time to help me with it. I just tried your solution and it performs fast enough for my needs. One problem that remains is that I not only want Items that have the most matching properties to appear first, but rather those with the least missing properties. As a secondary sorting condition the plain number of properties. That's why Item #3 is ranked higer than Item #1 in the example. Do you have an idea how to accomplish that in your solution? –  jnns Jan 15 '12 at 21:02
    
You're welcome. Answer is above. –  Niloct Jan 16 '12 at 14:41
    
Thanks again. I noticed that this is not quite what I want because, now, Items rank high when plenty properties match, but it shouldn't be about how many properties match but rather how few properties didn't match. Think of items as recipes and properties as ingredients and I want those recipes for that all ingredients are specified by the user. I hope that made it clearer. –  jnns Jan 17 '12 at 12:18
    
Show me a real test case which behaves oddly, and the expected behavior please. –  Niloct Jan 17 '12 at 15:59
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