176 lines
5.2 KiB
Go
176 lines
5.2 KiB
Go
package pcp
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import (
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"bitbucket.org/sunybingcloud/electron/rapl"
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"bufio"
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"container/ring"
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"log"
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"os"
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"os/exec"
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"sort"
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"strconv"
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"strings"
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"syscall"
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"math"
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"bitbucket.org/sunybingcloud/electron/constants"
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)
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func round(num float64) int {
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return int(math.Floor(num + math.Copysign(0.5, num)))
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}
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func getNextCapValue(curCapValue float64, precision int) float64 {
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output := math.Pow(10, float64(precision))
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return float64(round(curCapValue * output)) / output
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}
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func StartPCPLogAndProgressiveExtremaCap(quit chan struct{}, logging *bool, prefix string, hiThreshold, loThreshold float64) {
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const pcpCommand string = "pmdumptext -m -l -f '' -t 1.0 -d , -c config"
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cmd := exec.Command("sh", "-c", pcpCommand)
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cmd.SysProcAttr = &syscall.SysProcAttr{Setpgid: true}
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if hiThreshold < loThreshold {
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log.Println("High threshold is lower than the low threshold")
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}
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logFile, err := os.Create("./" + prefix + ".pcplog")
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if err != nil {
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log.Fatal(err)
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}
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defer logFile.Close()
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pipe, err := cmd.StdoutPipe()
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if err != nil {
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log.Fatal(err)
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}
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//cmd.Stdout = stdout
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scanner := bufio.NewScanner(pipe)
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go func(logging *bool, hiThreshold, loThreshold float64) {
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// Get names of the columns
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scanner.Scan()
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// Write to logfile
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logFile.WriteString(scanner.Text() + "\n")
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headers := strings.Split(scanner.Text(), ",")
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powerIndexes := make([]int, 0, 0)
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powerHistories := make(map[string]*ring.Ring)
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indexToHost := make(map[int]string)
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for i, hostMetric := range headers {
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metricSplit := strings.Split(hostMetric, ":")
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//log.Printf("%d Host %s: Metric: %s\n", i, split[0], split[1])
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if strings.Contains(metricSplit[1], "RAPL_ENERGY_PKG") ||
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strings.Contains(metricSplit[1], "RAPL_ENERGY_DRAM") {
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//fmt.Println("Index: ", i)
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powerIndexes = append(powerIndexes, i)
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indexToHost[i] = metricSplit[0]
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// Only create one ring per host
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if _, ok := powerHistories[metricSplit[0]]; !ok {
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powerHistories[metricSplit[0]] = ring.New(20) // Two PKGS, two DRAM per node, 20 = 5 seconds of tracking
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}
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}
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}
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// Throw away first set of results
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scanner.Scan()
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//cappedHosts := make(map[string]bool)
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// Keep track of the capped victims and the corresponding cap value.
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cappedVictims := make(map[string]float64)
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orderCapped := make([]string, 0, 8)
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clusterPowerHist := ring.New(5)
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seconds := 0
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for scanner.Scan() {
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if *logging {
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log.Println("Logging PCP...")
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split := strings.Split(scanner.Text(), ",")
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logFile.WriteString(scanner.Text() + "\n")
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totalPower := 0.0
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for _, powerIndex := range powerIndexes {
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power, _ := strconv.ParseFloat(split[powerIndex], 64)
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host := indexToHost[powerIndex]
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powerHistories[host].Value = power
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powerHistories[host] = powerHistories[host].Next()
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log.Printf("Host: %s, Power: %f", indexToHost[powerIndex], (power * RAPLUnits))
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totalPower += power
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}
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clusterPower := totalPower * RAPLUnits
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clusterPowerHist.Value = clusterPower
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clusterPowerHist = clusterPowerHist.Next()
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clusterMean := averageClusterPowerHistory(clusterPowerHist)
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log.Printf("Total power: %f, %d Sec Avg: %f", clusterPower, clusterPowerHist.Len(), clusterMean)
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if clusterMean >= hiThreshold {
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log.Printf("Need to cap a node")
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// Create statics for all victims and choose one to cap
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victims := make([]Victim, 0, 8)
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// TODO: Just keep track of the largest to reduce fron nlogn to n
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for name, history := range powerHistories {
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histMean := averageNodePowerHistory(history)
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// Consider doing mean calculations using go routines if we need to speed up
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victims = append(victims, Victim{Watts: histMean, Host: name})
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}
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sort.Sort(VictimSorter(victims)) // Sort by average wattage
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// Finding the best victim to cap.
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for i := 0; i < len(victims); i++ {
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if curCapValue, ok := cappedVictims[victims[i].Host]; ok {
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// checking whether we can continue to cap this host.
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// If yes, then we cap it to half the current cap value.
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// Else, we push it to the orderedCapped and continue.
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if curCapValue > constants.CapThreshold {
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newCapValue := getNextCapValue(curCapValue/2.0, 1)
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if err := rapl.Cap(victims[0].Host, "rapl", newCapValue); err != nil {
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log.Print("Error capping host")
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}
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// Updating the curCapValue in cappedVictims
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cappedVictims[victims[0].Host] = newCapValue
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break
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} else {
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// deleting entry in cappedVictims
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delete(cappedVictims, victims[i].Host)
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// Now this host can be uncapped.
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orderCapped = append(orderCapped, victims[i].Host)
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}
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}
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}
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} else if clusterMean < loThreshold {
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if len(orderCapped) > 0 {
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host := orderCapped[len(orderCapped)-1]
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orderCapped = orderCapped[:len(orderCapped)-1]
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// cappedVictims would contain the latest cap value for this host.
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newCapValue := getNextCapValue(cappedVictims[host]/2.0, 1)
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if err := rapl.Cap(host, "rapl", newCapValue); err != nil {
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log.Print("Error capping host")
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}
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// Adding entry for the host to cappedVictims
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cappedVictims[host] = newCapValue // Now this host can be capped again.
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}
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}
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}
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seconds++
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}
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}(logging, hiThreshold, loThreshold)
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}
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