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This is presented as a solution to the sleeping barber problem. (Attributed to CGrand, but I found the reference here)

yanked from cgrand

I'm curious about the dosync block in enter-the-shop. My understanding is that this is a transaction, and so empty-seats will remain consistent because of STM. However, isn't there the possibility of send-off being called multiple times if the transaction gets retried? If not, why, and if so, how would one resolve it?

UPDATE

While the accepted answer is still correct, one thing I just noticed is there's an optimization that could be made--there's no reason to call send-off inside the transaction. It can be sent afterwards once you have the return value of the transaction, as follows:

(if (dosync
       (when (pos? @empty-seats)
         (alter empty-seats dec)))
    (send-off barber cut-hair n)
    (debug "(s) turning away customer" n))

Interestingly I figured this out while working on the Haskell equivalent, which forces you to use different types for "agents" inside STM and outside STM. The original solution above wouldn't compile, as they had to be either both in a transaction or both outside any transaction. (My first reaction was to put them both inside the transaction, until I realized there was no need for this and they could both be extracted).

I think the modified transaction should be superior in that it closes the transaction faster, removes a variable from the transaction, and I think is easier to read (there's no need to even wonder about the possibility of it being sent twice--which actually makes this whole question moot) Still, I'll leave the question up anyway for anyone else who needs to know about how STM and agents interact.

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1 Answer 1

up vote 5 down vote accepted

Quoting the clojure.org page on agents:

Agents are integrated with the STM - any dispatches made in a transaction are held until it commits, and are discarded if it is retried or aborted.

So the send-off will only get run once, when(/if) the STM transaction is successfully committed.

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So does that mean the transaction is held open for the entire duration of the haircut? And does it mean the dosync in cut-hair is unnecessary? –  Dax Fohl May 28 '13 at 0:07
    
If the transaction is held open that whole time, doesn't that imply there will be a huge number of fail/retry transactions stacking up? –  Dax Fohl May 28 '13 at 0:16
    
@DaxFohl The send-off action will be run after the transaction commits, not during it. cut-hair will only be added to the agent's queue after the transaction commits, then at some unspecified point in future cut-hair will be run by the agent. The dosync in cut-hair is necessary, because cut-hair is not run in a transaction. –  mange May 28 '13 at 0:18
    
Awesome, makes total sense now. Far easier to follow than the equivalent Actor solution or the lock-based solution once you understand the grammar. –  Dax Fohl May 28 '13 at 0:33

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