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/* *
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* Copyright ( C ) 2009 - 2014 Typesafe Inc . < http : //www.typesafe.com>
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*/
package akka.persistence
import java.lang. { Iterable ⇒ JIterable }
import scala.collection.immutable
import akka.japi. { Procedure , Util }
import akka.persistence.JournalProtocol._
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import akka.actor.AbstractActor
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/* *
* INTERNAL API .
*
* Event sourcing mixin for a [ [ Processor ] ] .
*/
private [ persistence ] trait Eventsourced extends Processor {
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// TODO consolidate these traits as PersistentActor #15230
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/* *
* Processor recovery state . Waits for recovery completion and then changes to
* `processingCommands`
*/
private val recovering : State = new State {
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// cache the recoveryBehavior since it's a def for binary compatibility in 2.3.x
private val _recoveryBehavior : Receive = recoveryBehavior
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override def toString : String = "recovering"
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def aroundReceive ( receive : Receive , message : Any ) {
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// Since we are recovering we can ignore the receive behavior from the stack
Eventsourced . super . aroundReceive ( _recoveryBehavior , message )
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message match {
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case _ : ReadHighestSequenceNrSuccess | _ : ReadHighestSequenceNrFailure ⇒
currentState = processingCommands
case _ ⇒
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}
}
}
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/* *
* Command processing state . If event persistence is pending after processing a
* command , event persistence is triggered and state changes to `persistingEvents` .
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*
* There 's no need to loop commands though the journal any more i . e . they can now be
* directly offered as `LoopSuccess` to the state machine implemented by `Processor` .
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*/
private val processingCommands : State = new State {
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override def toString : String = "processing commands"
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def aroundReceive ( receive : Receive , message : Any ) = message match {
case _ : ConfirmablePersistent ⇒
doAroundReceive ( receive , message )
case PersistentBatch ( b ) ⇒
throw new UnsupportedOperationException ( "Persistent command batches not supported" )
case _ : PersistentRepr ⇒
throw new UnsupportedOperationException ( "Persistent commands not supported" )
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case WriteMessageSuccess ( p ) ⇒
withCurrentPersistent ( p ) ( p ⇒ persistInvocations . get ( 0 ) . handler ( p . payload ) )
onWriteComplete ( )
case s @ WriteMessagesSuccessful ⇒ Eventsourced . super . aroundReceive ( receive , s )
case f : WriteMessagesFailed ⇒ Eventsourced . super . aroundReceive ( receive , f )
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case _ ⇒
doAroundReceive ( receive , message )
}
private def doAroundReceive ( receive : Receive , message : Any ) : Unit = {
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Eventsourced . super . aroundReceive ( receive , LoopMessageSuccess ( message ) )
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if ( pendingStashingPersistInvocations > 0 ) {
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currentState = persistingEvents
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}
if ( persistentEventBatch . nonEmpty ) {
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Eventsourced . super . aroundReceive ( receive , PersistentBatch ( persistentEventBatch . reverse ) )
persistentEventBatch = Nil
} else {
processorStash . unstash ( )
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}
}
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private def onWriteComplete ( ) : Unit = {
persistInvocations . remove ( 0 )
val nextIsStashing = ! persistInvocations . isEmpty && persistInvocations . get ( 0 ) . isInstanceOf [ StashingPersistInvocation ]
if ( nextIsStashing ) {
currentState = persistingEvents
}
if ( persistInvocations . isEmpty ) {
processorStash . unstash ( )
}
}
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}
/* *
* Event persisting state . Remains until pending events are persisted and then changes
* state to `processingCommands` . Only events to be persisted are processed . All other
* messages are stashed internally .
*/
private val persistingEvents : State = new State {
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override def toString : String = "persisting events"
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def aroundReceive ( receive : Receive , message : Any ) = message match {
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case _ : ConfirmablePersistent ⇒
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processorStash . stash ( )
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case PersistentBatch ( b ) ⇒
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b . foreach ( p ⇒ deleteMessage ( p . sequenceNr , permanent = true ) )
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throw new UnsupportedOperationException ( "Persistent command batches not supported" )
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case p : PersistentRepr ⇒
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deleteMessage ( p . sequenceNr , permanent = true )
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throw new UnsupportedOperationException ( "Persistent commands not supported" )
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case WriteMessageSuccess ( p ) ⇒
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val invocation = persistInvocations . get ( 0 )
withCurrentPersistent ( p ) ( p ⇒ invocation . handler ( p . payload ) )
onWriteComplete ( invocation )
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case e @ WriteMessageFailure ( p , _ ) ⇒
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Eventsourced . super . aroundReceive ( receive , message ) // stops actor by default
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onWriteComplete ( persistInvocations . get ( 0 ) )
case s @ WriteMessagesSuccessful ⇒ Eventsourced . super . aroundReceive ( receive , s )
case f : WriteMessagesFailed ⇒ Eventsourced . super . aroundReceive ( receive , f )
case other ⇒ processorStash . stash ( )
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}
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private def onWriteComplete ( invocation : PersistInvocation ) : Unit = {
if ( invocation . isInstanceOf [ StashingPersistInvocation ] ) {
// enables an early return to `processingCommands`, because if this counter hits `0`,
// we know the remaining persistInvocations are all `persistAsync` created, which
// means we can go back to processing commands also - and these callbacks will be called as soon as possible
pendingStashingPersistInvocations -= 1
}
persistInvocations . remove ( 0 )
if ( persistInvocations . isEmpty || pendingStashingPersistInvocations == 0 ) {
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currentState = processingCommands
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processorStash . unstash ( )
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}
}
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}
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/* *
* INTERNAL API .
*
* This is a def and not a val because of binary compatibility in 2.3 . x .
* It is cached where it is used .
*/
private def recoveryBehavior : Receive = {
case Persistent ( payload , _ ) if recoveryRunning && receiveRecover . isDefinedAt ( payload ) ⇒
receiveRecover ( payload )
case s : SnapshotOffer if receiveRecover . isDefinedAt ( s ) ⇒
receiveRecover ( s )
case f : RecoveryFailure if receiveRecover . isDefinedAt ( f ) ⇒
receiveRecover ( f )
}
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sealed trait PersistInvocation {
def handler : Any ⇒ Unit
}
/* * forces processor to stash incoming commands untill all these invocations are handled */
final case class StashingPersistInvocation ( evt : Any , handler : Any ⇒ Unit ) extends PersistInvocation
/* * does not force the processor to stash commands */
final case class AsyncPersistInvocation ( evt : Any , handler : Any ⇒ Unit ) extends PersistInvocation
/* * Used instead of iterating `persistInvocations` in order to check if safe to revert to processing commands */
private var pendingStashingPersistInvocations : Long = 0
/* * Holds user-supplied callbacks for persist / persistAsync calls */
private val persistInvocations = new java . util . LinkedList [ PersistInvocation ] ( ) // we only append / isEmpty / get(0) on it
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private var persistentEventBatch : List [ PersistentRepr ] = Nil
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private var currentState : State = recovering
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private val processorStash = createStash ( )
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/* *
* Asynchronously persists `event` . On successful persistence , `handler` is called with the
* persisted event . It is guaranteed that no new commands will be received by a processor
* between a call to `persist` and the execution of its `handler` . This also holds for
* multiple `persist` calls per received command . Internally , this is achieved by stashing new
* commands and unstashing them when the `event` has been persisted and handled . The stash used
* for that is an internal stash which doesn 't interfere with the user stash inherited from
* [ [ Processor ] ] .
*
* An event `handler` may close over processor state and modify it . The `sender` of a persisted
* event is the sender of the corresponding command . This means that one can reply to a command
* sender within an event `handler` .
*
* Within an event handler , applications usually update processor state using persisted event
* data , notify listeners and reply to command senders .
*
* If persistence of an event fails , the processor will be stopped . This can be customized by
* handling [ [ PersistenceFailure ] ] in [ [ receiveCommand ] ] .
*
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* @param event event to be persisted
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* @param handler handler for each persisted `event`
*/
final def persist [ A ] ( event : A ) ( handler : A ⇒ Unit ) : Unit = {
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pendingStashingPersistInvocations += 1
persistInvocations addLast StashingPersistInvocation ( event , handler . asInstanceOf [ Any ⇒ Unit ] )
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persistentEventBatch = PersistentRepr ( event ) : : persistentEventBatch
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}
/* *
* Asynchronously persists `events` in specified order . This is equivalent to calling
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* `persist[A](event: A)(handler: A => Unit)` multiple times with the same `handler` ,
* except that `events` are persisted atomically with this method .
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*
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* @param events events to be persisted
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* @param handler handler for each persisted `events`
*/
final def persist [ A ] ( events : immutable.Seq [ A ] ) ( handler : A ⇒ Unit ) : Unit =
events . foreach ( persist ( _ ) ( handler ) )
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/* *
* Asynchronously persists `event` . On successful persistence , `handler` is called with the
* persisted event .
*
* Unlike `persist` the processor will continue to receive incomming commands between the
* call to `persist` and executing it 's `handler` . This asynchronous , non - stashing , version of
* of persist should be used when you favor throughput over the " command - 2 only processed after
* command - 1 effects ' have been applied " guarantee , which is provided by the plain [ [ persist ] ] method .
*
* An event `handler` may close over processor state and modify it . The `sender` of a persisted
* event is the sender of the corresponding command . This means that one can reply to a command
* sender within an event `handler` .
*
* If persistence of an event fails , the processor will be stopped . This can be customized by
* handling [ [ PersistenceFailure ] ] in [ [ receiveCommand ] ] .
*
* @param event event to be persisted
* @param handler handler for each persisted `event`
*/
final def persistAsync [ A ] ( event : A ) ( handler : A ⇒ Unit ) : Unit = {
persistInvocations addLast AsyncPersistInvocation ( event , handler . asInstanceOf [ Any ⇒ Unit ] )
persistentEventBatch = PersistentRepr ( event ) : : persistentEventBatch
}
/* *
* Asynchronously persists `events` in specified order . This is equivalent to calling
* `persistAsync[A](event: A)(handler: A => Unit)` multiple times with the same `handler` ,
* except that `events` are persisted atomically with this method .
*
* @param events events to be persisted
* @param handler handler for each persisted `events`
*/
final def persistAsync [ A ] ( events : immutable.Seq [ A ] ) ( handler : A ⇒ Unit ) : Unit =
events . foreach ( persistAsync ( _ ) ( handler ) )
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/* *
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* Recovery handler that receives persisted events during recovery . If a state snapshot
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* has been captured and saved , this handler will receive a [ [ SnapshotOffer ] ] message
* followed by events that are younger than the offered snapshot .
*
* This handler must not have side - effects other than changing processor state i . e . it
* should not perform actions that may fail , such as interacting with external services ,
* for example .
*
* @see [ [ Recover ] ]
*/
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def receiveRecover : Receive
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/* *
* Command handler . Typically validates commands against current state ( and / or by
* communication with other actors ) . On successful validation , one or more events are
* derived from a command and these events are then persisted by calling `persist` .
* Commands sent to event sourced processors should not be [ [ Persistent ] ] messages .
*/
def receiveCommand : Receive
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override def unstashAll ( ) {
// Internally, all messages are processed by unstashing them from
// the internal stash one-by-one. Hence, an unstashAll() from the
// user stash must be prepended to the internal stash.
processorStash . prepend ( clearStash ( ) )
}
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/* *
* INTERNAL API .
*/
final override protected [ akka ] def aroundReceive ( receive : Receive , message : Any ) {
currentState . aroundReceive ( receive , message )
}
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/* *
* Calls `super.preRestart` then unstashes all messages from the internal stash .
*/
override def preRestart ( reason : Throwable , message : Option [ Any ] ) {
processorStash . unstashAll ( )
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super . preRestart ( reason , message )
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}
/* *
* Calls `super.postStop` then unstashes all messages from the internal stash .
*/
override def postStop ( ) {
processorStash . unstashAll ( )
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super . postStop ( )
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}
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/* *
* INTERNAL API .
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*
* Only here for binary compatibility in 2.3 . x .
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*/
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protected [ persistence ] val initialBehavior : Receive = recoveryBehavior orElse {
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case msg if receiveCommand . isDefinedAt ( msg ) ⇒
receiveCommand ( msg )
}
}
/* *
* An event sourced processor .
*/
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@deprecated ( "EventsourcedProcessor will be removed in 2.4.x, instead extend the API equivalent `akka.persistence.PersistentProcessor`" , since = "2.3.4" )
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trait EventsourcedProcessor extends Processor with Eventsourced {
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// TODO remove Processor #15230
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def receive = receiveCommand
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}
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/* *
* An persistent Actor - can be used to implement command or event sourcing .
*/
// TODO remove EventsourcedProcessor / Processor #15230
trait PersistentActor extends EventsourcedProcessor
/* *
* Java API : an persistent actor - can be used to implement command or event sourcing .
*/
abstract class UntypedPersistentActor extends UntypedEventsourcedProcessor
/* *
* Java API : an persistent actor - can be used to implement command or event sourcing .
*/
abstract class AbstractPersistentActor extends AbstractEventsourcedProcessor
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/* *
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* Java API : an event sourced processor .
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*/
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@deprecated ( "UntypedEventsourcedProcessor will be removed in 2.4.x, instead extend the API equivalent `akka.persistence.PersistentProcessor`" , since = "2.3.4" )
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abstract class UntypedEventsourcedProcessor extends UntypedProcessor with Eventsourced {
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final def onReceive ( message : Any ) = onReceiveCommand ( message )
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final def receiveRecover : Receive = {
case msg ⇒ onReceiveRecover ( msg )
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}
final def receiveCommand : Receive = {
case msg ⇒ onReceiveCommand ( msg )
}
/* *
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* Java API : asynchronously persists `event` . On successful persistence , `handler` is called with the
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* persisted event . It is guaranteed that no new commands will be received by a processor
* between a call to `persist` and the execution of its `handler` . This also holds for
* multiple `persist` calls per received command . Internally , this is achieved by stashing new
* commands and unstashing them when the `event` has been persisted and handled . The stash used
* for that is an internal stash which doesn 't interfere with the user stash inherited from
* [ [ UntypedProcessor ] ] .
*
* An event `handler` may close over processor state and modify it . The `getSender()` of a persisted
* event is the sender of the corresponding command . This means that one can reply to a command
* sender within an event `handler` .
*
* Within an event handler , applications usually update processor state using persisted event
* data , notify listeners and reply to command senders .
*
* If persistence of an event fails , the processor will be stopped . This can be customized by
* handling [ [ PersistenceFailure ] ] in [ [ onReceiveCommand ] ] .
*
* @param event event to be persisted .
* @param handler handler for each persisted `event`
*/
final def persist [ A ] ( event : A , handler : Procedure [ A ] ) : Unit =
persist ( event ) ( event ⇒ handler ( event ) )
/* *
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* Java API : asynchronously persists `events` in specified order . This is equivalent to calling
* `persist[A](event: A, handler: Procedure[A])` multiple times with the same `handler` ,
* except that `events` are persisted atomically with this method .
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*
* @param events events to be persisted .
* @param handler handler for each persisted `events`
*/
final def persist [ A ] ( events : JIterable [ A ] , handler : Procedure [ A ] ) : Unit =
persist ( Util . immutableSeq ( events ) ) ( event ⇒ handler ( event ) )
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/* *
* JAVA API : asynchronously persists `event` . On successful persistence , `handler` is called with the
* persisted event .
*
* Unlike `persist` the processor will continue to receive incomming commands between the
* call to `persist` and executing it 's `handler` . This asynchronous , non - stashing , version of
* of persist should be used when you favor throughput over the " command - 2 only processed after
* command - 1 effects ' have been applied " guarantee , which is provided by the plain [ [ persist ] ] method .
*
* An event `handler` may close over processor state and modify it . The `sender` of a persisted
* event is the sender of the corresponding command . This means that one can reply to a command
* sender within an event `handler` .
*
* If persistence of an event fails , the processor will be stopped . This can be customized by
* handling [ [ PersistenceFailure ] ] in [ [ receiveCommand ] ] .
*
* @param event event to be persisted
* @param handler handler for each persisted `event`
*/
final def persistAsync [ A ] ( event : A ) ( handler : Procedure [ A ] ) : Unit =
super [ Eventsourced ] . persistAsync ( event ) ( event ⇒ handler ( event ) )
/* *
* JAVA API : asynchronously persists `events` in specified order . This is equivalent to calling
* `persistAsync[A](event: A)(handler: A => Unit)` multiple times with the same `handler` ,
* except that `events` are persisted atomically with this method .
*
* @param events events to be persisted
* @param handler handler for each persisted `events`
*/
final def persistAsync [ A ] ( events : JIterable [ A ] ) ( handler : A ⇒ Unit ) : Unit =
super [ Eventsourced ] . persistAsync ( Util . immutableSeq ( events ) ) ( event ⇒ handler ( event ) )
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/* *
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* Java API : recovery handler that receives persisted events during recovery . If a state snapshot
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* has been captured and saved , this handler will receive a [ [ SnapshotOffer ] ] message
* followed by events that are younger than the offered snapshot .
*
* This handler must not have side - effects other than changing processor state i . e . it
* should not perform actions that may fail , such as interacting with external services ,
* for example .
*
* @see [ [ Recover ] ]
*/
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def onReceiveRecover ( msg : Any ) : Unit
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/* *
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* Java API : command handler . Typically validates commands against current state ( and / or by
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* communication with other actors ) . On successful validation , one or more events are
* derived from a command and these events are then persisted by calling `persist` .
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* Commands sent to event sourced processors must not be [ [ Persistent ] ] or
* [ [ PersistentBatch ] ] messages . In this case an `UnsupportedOperationException` is
* thrown by the processor .
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*/
def onReceiveCommand ( msg : Any ) : Unit
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}
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/* *
* Java API : compatible with lambda expressions ( to be used with [ [ akka . japi . pf . ReceiveBuilder ] ] ) :
* command handler . Typically validates commands against current state ( and / or by
* communication with other actors ) . On successful validation , one or more events are
* derived from a command and these events are then persisted by calling `persist` .
* Commands sent to event sourced processors must not be [ [ Persistent ] ] or
* [ [ PersistentBatch ] ] messages . In this case an `UnsupportedOperationException` is
* thrown by the processor .
*/
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@deprecated ( "AbstractEventsourcedProcessor will be removed in 2.4.x, instead extend the API equivalent `akka.persistence.PersistentProcessor`" , since = "2.3.4" )
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abstract class AbstractEventsourcedProcessor extends AbstractActor with EventsourcedProcessor {
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/* *
* Java API : asynchronously persists `event` . On successful persistence , `handler` is called with the
* persisted event . It is guaranteed that no new commands will be received by a processor
* between a call to `persist` and the execution of its `handler` . This also holds for
* multiple `persist` calls per received command . Internally , this is achieved by stashing new
* commands and unstashing them when the `event` has been persisted and handled . The stash used
* for that is an internal stash which doesn 't interfere with the user stash inherited from
* [ [ UntypedProcessor ] ] .
*
* An event `handler` may close over processor state and modify it . The `getSender()` of a persisted
* event is the sender of the corresponding command . This means that one can reply to a command
* sender within an event `handler` .
*
* Within an event handler , applications usually update processor state using persisted event
* data , notify listeners and reply to command senders .
*
* If persistence of an event fails , the processor will be stopped . This can be customized by
* handling [ [ PersistenceFailure ] ] in [ [ receiveCommand ] ] .
*
* @param event event to be persisted .
* @param handler handler for each persisted `event`
*/
final def persist [ A ] ( event : A , handler : Procedure [ A ] ) : Unit =
persist ( event ) ( event ⇒ handler ( event ) )
/* *
* Java API : asynchronously persists `events` in specified order . This is equivalent to calling
* `persist[A](event: A, handler: Procedure[A])` multiple times with the same `handler` ,
* except that `events` are persisted atomically with this method .
*
* @param events events to be persisted .
* @param handler handler for each persisted `events`
*/
final def persist [ A ] ( events : JIterable [ A ] , handler : Procedure [ A ] ) : Unit =
persist ( Util . immutableSeq ( events ) ) ( event ⇒ handler ( event ) )
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/* *
* Java API : asynchronously persists `event` . On successful persistence , `handler` is called with the
* persisted event .
*
* Unlike `persist` the processor will continue to receive incomming commands between the
* call to `persistAsync` and executing it 's `handler` . This asynchronous , non - stashing , version of
* of persist should be used when you favor throughput over the strict ordering guarantees that `persist` guarantees .
*
* If persistence of an event fails , the processor will be stopped . This can be customized by
* handling [ [ PersistenceFailure ] ] in [ [ receiveCommand ] ] .
*
* @param event event to be persisted
* @param handler handler for each persisted `event`
*/
final def persistAsync [ A ] ( event : A , handler : Procedure [ A ] ) : Unit =
persistAsync ( event ) ( event ⇒ handler ( event ) )
/* *
* Java API : asynchronously persists `events` in specified order . This is equivalent to calling
* `persistAsync[A](event: A)(handler: A => Unit)` multiple times with the same `handler` ,
* except that `events` are persisted atomically with this method .
*
* @param events events to be persisted
* @param handler handler for each persisted `events`
*/
final def persistAsync [ A ] ( events : JIterable [ A ] , handler : Procedure [ A ] ) : Unit =
persistAsync ( Util . immutableSeq ( events ) ) ( event ⇒ handler ( event ) )
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override def receive = super [ EventsourcedProcessor ] . receive
override def receive ( receive : Receive ) : Unit = {
throw new IllegalArgumentException ( "Define the behavior by overriding receiveRecover and receiveCommand" )
}
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}