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I got a web widget with 15,000,000 hits/months and I log every session. When I want to generate a report I'd like to know how many unique IP there are. In normal SQL that would be easy as I'd just do a:


But as that's not possible with the app engine, I'm now looking into solutions on how to do it. It doesn't need to be fast.

A solution I was thinking of was to have an empty Unique-IP table, then have a MapReduce job to go through all session entities, if the entity's IP is not in the table I'll add it and add one to a counter. Then I'd have another MapReduce job that would clear the table. Would this be crazy? If so, how would you do it?


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Using this tactic I explained I seem to be able to process 6000 tracked sessions / minute (Tried it on 60k). So it seemed okay-ish. –  Nixarn Apr 6 '11 at 18:08
FYI. Using memcache instead of another table resultet in 9000 tracked session / minute. But that might not be so safe to use. –  Nixarn Apr 8 '11 at 8:02
Normal SQL statement should be this: SELECT COUNT(DISTINCT IP) FROM SESSIONS –  topchef Sep 19 '11 at 4:54
@topchef not possible on the app engine –  Nixarn Oct 4 '11 at 11:34
I referred to the question's "normal SQL". –  topchef Oct 4 '11 at 13:03
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2 Answers 2

up vote 1 down vote accepted

The mapreduce approach you suggest is exactly what you want. Don't forget to use transactions to update the record in your task queue task, which will allow you to run it in parallel with many mappers.

In future, reduce support will make this possible with a single straightforward mapreduce and no hacking around with your own transactions and models.

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Thanks Nick! As you seem to be working on the app engine. One question, how safe would you say it would be to store the unique IP:s in memcache instead of the datastore? –  Nixarn Apr 8 '11 at 10:36
@Nixarn That depends if you care about losing some of your data. –  Nick Johnson Apr 11 '11 at 0:35
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If time is not important and you may try taskqueue with a task limit of 1. Basically you'd use a recursive task that queries through a batch of log records until it hits DeadlineExceededError. Then you'd write the results to datastore and the task would enqueue itself with the query end cursor/last record's key value to start the fetch operation where it stopped last time.

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