Created
February 13, 2013 15:00
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Spark Streaming with CountMinSketch from Twitter Algebird
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import spark.streaming.{Seconds, StreamingContext} | |
import spark.storage.StorageLevel | |
import spark.streaming.examples.twitter.TwitterInputDStream | |
import com.twitter.algebird._ | |
import spark.streaming.StreamingContext._ | |
import spark.SparkContext._ | |
/** | |
* Example of using CountMinSketch monoid from Twitter's Algebird together with Spark Streaming's | |
* TwitterInputDStream | |
*/ | |
object StreamingCMS { | |
def main(args: Array[String]) { | |
if (args.length < 3) { | |
System.err.println("Usage: TwitterStreamingCMS <master> <twitter_username> <twitter_password>" + | |
" [filter1] [filter2] ... [filter n]") | |
System.exit(1) | |
} | |
val DELTA = 1E-3 | |
val EPS = 0.01 | |
val SEED = 1 | |
val PERC = 0.001 | |
val Array(master, username, password) = args.slice(0, 3) | |
val filters = args.slice(3, args.length) | |
val ssc = new StreamingContext(master, "TwitterStreamingCMS", Seconds(10)) | |
val stream = new TwitterInputDStream(ssc, username, password, filters, | |
StorageLevel.MEMORY_ONLY_SER) | |
ssc.registerInputStream(stream) | |
val users = stream.map(status => status.getUser.getId) | |
var globalCMS = new CountMinSketchMonoid(DELTA, EPS, SEED, PERC).zero | |
var globalExact = Map[Long, Int]() | |
val mm = new MapMonoid[Long, Int]() | |
val approxTopUsers = users.mapPartitions(ids => { | |
val cms = new CountMinSketchMonoid(DELTA, EPS, SEED, PERC) | |
ids.map(id => cms.create(id)) | |
}).reduce(_ ++ _) | |
val exactTopUsers = users.map(id => (id, 1)) | |
.reduceByKey((a, b) => a + b) | |
approxTopUsers.foreach(rdd => { | |
if (rdd.count() != 0) { | |
val partial = rdd.first() | |
globalCMS ++= partial | |
val globalTopK = globalCMS.heavyHitters.map(id => (id, globalCMS.frequency(id).estimate)).toSeq.sortBy(_._2).reverse.slice(0, 5) | |
println("Approx heavy hitters at %2.2f%% users this batch: %s".format(PERC, partial.heavyHitters.mkString("[", ",", "]"))) | |
println("Approx heavy hitters at %2.2f%% users overall: %s".format(PERC, globalTopK.mkString("[", ",", "]"))) | |
} | |
}) | |
exactTopUsers.foreach(rdd => { | |
if (rdd.count() != 0) { | |
val partialMap = rdd.collect().toMap | |
val partialTopK = rdd.map({case (id, count) => (count, id)}).sortByKey(ascending = false).take(5) | |
globalExact = mm.plus(globalExact.toMap, partialMap) | |
val globalTopK = globalExact.toSeq.sortBy(_._2).reverse.slice(0, 5) | |
println("Exact heavy hitters this batch: %s".format(partialTopK.mkString(","))) | |
println("Exact heavy hitters overall: %s".format(globalTopK.mkString(","))) | |
} | |
}) | |
ssc.start() | |
} | |
} |
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Hi MLnick, is there any advice for how to keep the value globalCMS safe in a long running spark streming job? I keep thinking I may lost it. And I can not figure out one way to save the cms value to a out store. Thanks.