allocation.go 32 KB

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  1. package costmodel
  2. import (
  3. "fmt"
  4. "time"
  5. "github.com/opencost/opencost/pkg/util/timeutil"
  6. "github.com/opencost/opencost/pkg/env"
  7. "github.com/opencost/opencost/pkg/kubecost"
  8. "github.com/opencost/opencost/pkg/log"
  9. "github.com/opencost/opencost/pkg/prom"
  10. )
  11. const (
  12. queryFmtPods = `avg(kube_pod_container_status_running{}) by (pod, namespace, %s)[%s:%s]`
  13. queryFmtPodsUID = `avg(kube_pod_container_status_running{}) by (pod, namespace, uid, %s)[%s:%s]`
  14. queryFmtRAMBytesAllocated = `avg(avg_over_time(container_memory_allocation_bytes{container!="", container!="POD", node!=""}[%s])) by (container, pod, namespace, node, %s, provider_id)`
  15. queryFmtRAMRequests = `avg(avg_over_time(kube_pod_container_resource_requests{resource="memory", unit="byte", container!="", container!="POD", node!=""}[%s])) by (container, pod, namespace, node, %s)`
  16. queryFmtRAMUsageAvg = `avg(avg_over_time(container_memory_working_set_bytes{container!="", container_name!="POD", container!="POD"}[%s])) by (container_name, container, pod_name, pod, namespace, instance, %s)`
  17. queryFmtRAMUsageMax = `max(max_over_time(container_memory_working_set_bytes{container!="", container_name!="POD", container!="POD"}[%s])) by (container_name, container, pod_name, pod, namespace, instance, %s)`
  18. queryFmtCPUCoresAllocated = `avg(avg_over_time(container_cpu_allocation{container!="", container!="POD", node!=""}[%s])) by (container, pod, namespace, node, %s)`
  19. queryFmtCPURequests = `avg(avg_over_time(kube_pod_container_resource_requests{resource="cpu", unit="core", container!="", container!="POD", node!=""}[%s])) by (container, pod, namespace, node, %s)`
  20. queryFmtCPUUsageAvg = `avg(rate(container_cpu_usage_seconds_total{container!="", container_name!="POD", container!="POD"}[%s])) by (container_name, container, pod_name, pod, namespace, instance, %s)`
  21. queryFmtCPUUsageMax = `max(rate(container_cpu_usage_seconds_total{container!="", container_name!="POD", container!="POD"}[%s])) by (container_name, container, pod_name, pod, namespace, instance, %s)`
  22. queryFmtGPUsRequested = `avg(avg_over_time(kube_pod_container_resource_requests{resource="nvidia_com_gpu", container!="",container!="POD", node!=""}[%s])) by (container, pod, namespace, node, %s)`
  23. queryFmtGPUsAllocated = `avg(avg_over_time(container_gpu_allocation{container!="", container!="POD", node!=""}[%s])) by (container, pod, namespace, node, %s)`
  24. queryFmtNodeCostPerCPUHr = `avg(avg_over_time(node_cpu_hourly_cost[%s])) by (node, %s, instance_type, provider_id)`
  25. queryFmtNodeCostPerRAMGiBHr = `avg(avg_over_time(node_ram_hourly_cost[%s])) by (node, %s, instance_type, provider_id)`
  26. queryFmtNodeCostPerGPUHr = `avg(avg_over_time(node_gpu_hourly_cost[%s])) by (node, %s, instance_type, provider_id)`
  27. queryFmtNodeIsSpot = `avg_over_time(kubecost_node_is_spot[%s])`
  28. queryFmtPVCInfo = `avg(kube_persistentvolumeclaim_info{volumename != ""}) by (persistentvolumeclaim, storageclass, volumename, namespace, %s)[%s:%s]`
  29. queryFmtPodPVCAllocation = `avg(avg_over_time(pod_pvc_allocation[%s])) by (persistentvolume, persistentvolumeclaim, pod, namespace, %s)`
  30. queryFmtPVCBytesRequested = `avg(avg_over_time(kube_persistentvolumeclaim_resource_requests_storage_bytes{}[%s])) by (persistentvolumeclaim, namespace, %s)`
  31. queryFmtPVActiveMins = `count(kube_persistentvolume_capacity_bytes) by (persistentvolume, %s)[%s:%s]`
  32. queryFmtPVBytes = `avg(avg_over_time(kube_persistentvolume_capacity_bytes[%s])) by (persistentvolume, %s)`
  33. queryFmtPVCostPerGiBHour = `avg(avg_over_time(pv_hourly_cost[%s])) by (volumename, %s)`
  34. queryFmtNetZoneGiB = `sum(increase(kubecost_pod_network_egress_bytes_total{internet="false", sameZone="false", sameRegion="true"}[%s])) by (pod_name, namespace, %s) / 1024 / 1024 / 1024`
  35. queryFmtNetZoneCostPerGiB = `avg(avg_over_time(kubecost_network_zone_egress_cost{}[%s])) by (%s)`
  36. queryFmtNetRegionGiB = `sum(increase(kubecost_pod_network_egress_bytes_total{internet="false", sameZone="false", sameRegion="false"}[%s])) by (pod_name, namespace, %s) / 1024 / 1024 / 1024`
  37. queryFmtNetRegionCostPerGiB = `avg(avg_over_time(kubecost_network_region_egress_cost{}[%s])) by (%s)`
  38. queryFmtNetInternetGiB = `sum(increase(kubecost_pod_network_egress_bytes_total{internet="true"}[%s])) by (pod_name, namespace, %s) / 1024 / 1024 / 1024`
  39. queryFmtNetInternetCostPerGiB = `avg(avg_over_time(kubecost_network_internet_egress_cost{}[%s])) by (%s)`
  40. queryFmtNetReceiveBytes = `sum(increase(container_network_receive_bytes_total{pod!=""}[%s])) by (pod_name, pod, namespace, %s)`
  41. queryFmtNetTransferBytes = `sum(increase(container_network_transmit_bytes_total{pod!=""}[%s])) by (pod_name, pod, namespace, %s)`
  42. queryFmtNodeLabels = `avg_over_time(kube_node_labels[%s])`
  43. queryFmtNamespaceLabels = `avg_over_time(kube_namespace_labels[%s])`
  44. queryFmtNamespaceAnnotations = `avg_over_time(kube_namespace_annotations[%s])`
  45. queryFmtPodLabels = `avg_over_time(kube_pod_labels[%s])`
  46. queryFmtPodAnnotations = `avg_over_time(kube_pod_annotations[%s])`
  47. queryFmtServiceLabels = `avg_over_time(service_selector_labels[%s])`
  48. queryFmtDeploymentLabels = `avg_over_time(deployment_match_labels[%s])`
  49. queryFmtStatefulSetLabels = `avg_over_time(statefulSet_match_labels[%s])`
  50. queryFmtDaemonSetLabels = `sum(avg_over_time(kube_pod_owner{owner_kind="DaemonSet"}[%s])) by (pod, owner_name, namespace, %s)`
  51. queryFmtJobLabels = `sum(avg_over_time(kube_pod_owner{owner_kind="Job"}[%s])) by (pod, owner_name, namespace ,%s)`
  52. queryFmtPodsWithReplicaSetOwner = `sum(avg_over_time(kube_pod_owner{owner_kind="ReplicaSet"}[%s])) by (pod, owner_name, namespace ,%s)`
  53. queryFmtReplicaSetsWithoutOwners = `avg(avg_over_time(kube_replicaset_owner{owner_kind="<none>", owner_name="<none>"}[%s])) by (replicaset, namespace, %s)`
  54. queryFmtLBCostPerHr = `avg(avg_over_time(kubecost_load_balancer_cost[%s])) by (namespace, service_name, %s)`
  55. queryFmtLBActiveMins = `count(kubecost_load_balancer_cost) by (namespace, service_name, %s)[%s:%s]`
  56. queryFmtOldestSample = `max_over_time(timestamp(group(node_cpu_hourly_cost))[%s:%s])`
  57. queryFmtNewestSample = `max_over_time(timestamp(group(node_cpu_hourly_cost))[%s:%s])`
  58. )
  59. // Constants for Network Cost Subtype
  60. const (
  61. networkCrossZoneCost = "NetworkCrossZoneCost"
  62. networkCrossRegionCost = "NetworkCrossRegionCost"
  63. networkInternetCost = "NetworkInternetCost"
  64. )
  65. // CanCompute should return true if CostModel can act as a valid source for the
  66. // given time range. In the case of CostModel we want to attempt to compute as
  67. // long as the range starts in the past. If the CostModel ends up not having
  68. // data to match, that's okay, and should be communicated with an error
  69. // response from ComputeAllocation.
  70. func (cm *CostModel) CanCompute(start, end time.Time) bool {
  71. return start.Before(time.Now())
  72. }
  73. // Name returns the name of the Source
  74. func (cm *CostModel) Name() string {
  75. return "CostModel"
  76. }
  77. // ComputeAllocation uses the CostModel instance to compute an AllocationSet
  78. // for the window defined by the given start and end times. The Allocations
  79. // returned are unaggregated (i.e. down to the container level).
  80. func (cm *CostModel) ComputeAllocation(start, end time.Time, resolution time.Duration) (*kubecost.AllocationSet, error) {
  81. // If the duration is short enough, compute the AllocationSet directly
  82. if end.Sub(start) <= cm.MaxPrometheusQueryDuration {
  83. return cm.computeAllocation(start, end, resolution)
  84. }
  85. // If the duration exceeds the configured MaxPrometheusQueryDuration, then
  86. // query for maximum-sized AllocationSets, collect them, and accumulate.
  87. // s and e track the coverage of the entire given window over multiple
  88. // internal queries.
  89. s, e := start, start
  90. // Collect AllocationSets in a range, then accumulate
  91. // TODO optimize by collecting consecutive AllocationSets, accumulating as we go
  92. asr := kubecost.NewAllocationSetRange()
  93. for e.Before(end) {
  94. // By default, query for the full remaining duration. But do not let
  95. // any individual query duration exceed the configured max Prometheus
  96. // query duration.
  97. duration := end.Sub(e)
  98. if duration > cm.MaxPrometheusQueryDuration {
  99. duration = cm.MaxPrometheusQueryDuration
  100. }
  101. // Set start and end parameters (s, e) for next individual computation.
  102. e = s.Add(duration)
  103. // Compute the individual AllocationSet for just (s, e)
  104. as, err := cm.computeAllocation(s, e, resolution)
  105. if err != nil {
  106. return kubecost.NewAllocationSet(start, end), fmt.Errorf("error computing allocation for %s: %s", kubecost.NewClosedWindow(s, e), err)
  107. }
  108. // Append to the range
  109. asr.Append(as)
  110. // Set s equal to e to set up the next query, if one exists.
  111. s = e
  112. }
  113. // Populate annotations, labels, and services on each Allocation. This is
  114. // necessary because Properties.Intersection does not propagate any values
  115. // stored in maps or slices for performance reasons. In this case, however,
  116. // it is both acceptable and necessary to do so.
  117. allocationAnnotations := map[string]map[string]string{}
  118. allocationLabels := map[string]map[string]string{}
  119. allocationServices := map[string]map[string]bool{}
  120. // Also record errors and warnings, then append them to the results later.
  121. errors := []string{}
  122. warnings := []string{}
  123. for _, as := range asr.Allocations {
  124. for k, a := range as.Allocations {
  125. if len(a.Properties.Annotations) > 0 {
  126. if _, ok := allocationAnnotations[k]; !ok {
  127. allocationAnnotations[k] = map[string]string{}
  128. }
  129. for name, val := range a.Properties.Annotations {
  130. allocationAnnotations[k][name] = val
  131. }
  132. }
  133. if len(a.Properties.Labels) > 0 {
  134. if _, ok := allocationLabels[k]; !ok {
  135. allocationLabels[k] = map[string]string{}
  136. }
  137. for name, val := range a.Properties.Labels {
  138. allocationLabels[k][name] = val
  139. }
  140. }
  141. if len(a.Properties.Services) > 0 {
  142. if _, ok := allocationServices[k]; !ok {
  143. allocationServices[k] = map[string]bool{}
  144. }
  145. for _, val := range a.Properties.Services {
  146. allocationServices[k][val] = true
  147. }
  148. }
  149. }
  150. errors = append(errors, as.Errors...)
  151. warnings = append(warnings, as.Warnings...)
  152. }
  153. // Accumulate to yield the result AllocationSet. After this step, we will
  154. // be nearly complete, but without the raw allocation data, which must be
  155. // recomputed.
  156. resultASR, err := asr.Accumulate(kubecost.AccumulateOptionAll)
  157. if err != nil {
  158. return kubecost.NewAllocationSet(start, end), fmt.Errorf("error accumulating data for %s: %s", kubecost.NewClosedWindow(s, e), err)
  159. }
  160. if resultASR != nil && len(resultASR.Allocations) == 0 {
  161. return kubecost.NewAllocationSet(start, end), nil
  162. }
  163. if length := len(resultASR.Allocations); length != 1 {
  164. return kubecost.NewAllocationSet(start, end), fmt.Errorf("expected 1 accumulated allocation set, found %d sets", length)
  165. }
  166. result := resultASR.Allocations[0]
  167. // Apply the annotations, labels, and services to the post-accumulation
  168. // results. (See above for why this is necessary.)
  169. for k, a := range result.Allocations {
  170. if annotations, ok := allocationAnnotations[k]; ok {
  171. a.Properties.Annotations = annotations
  172. }
  173. if labels, ok := allocationLabels[k]; ok {
  174. a.Properties.Labels = labels
  175. }
  176. if services, ok := allocationServices[k]; ok {
  177. a.Properties.Services = []string{}
  178. for s := range services {
  179. a.Properties.Services = append(a.Properties.Services, s)
  180. }
  181. }
  182. // Expand the Window of all Allocations within the AllocationSet
  183. // to match the Window of the AllocationSet, which gets expanded
  184. // at the end of this function.
  185. a.Window = a.Window.ExpandStart(start).ExpandEnd(end)
  186. }
  187. // Maintain RAM and CPU max usage values by iterating over the range,
  188. // computing maximums on a rolling basis, and setting on the result set.
  189. for _, as := range asr.Allocations {
  190. for key, alloc := range as.Allocations {
  191. resultAlloc := result.Get(key)
  192. if resultAlloc == nil {
  193. continue
  194. }
  195. if resultAlloc.RawAllocationOnly == nil {
  196. resultAlloc.RawAllocationOnly = &kubecost.RawAllocationOnlyData{}
  197. }
  198. if alloc.RawAllocationOnly == nil {
  199. // This will happen inevitably for unmounted disks, but should
  200. // ideally not happen for any allocation with CPU and RAM data.
  201. if !alloc.IsUnmounted() {
  202. log.DedupedWarningf(10, "ComputeAllocation: raw allocation data missing for %s", key)
  203. }
  204. continue
  205. }
  206. if alloc.RawAllocationOnly.CPUCoreUsageMax > resultAlloc.RawAllocationOnly.CPUCoreUsageMax {
  207. resultAlloc.RawAllocationOnly.CPUCoreUsageMax = alloc.RawAllocationOnly.CPUCoreUsageMax
  208. }
  209. if alloc.RawAllocationOnly.RAMBytesUsageMax > resultAlloc.RawAllocationOnly.RAMBytesUsageMax {
  210. resultAlloc.RawAllocationOnly.RAMBytesUsageMax = alloc.RawAllocationOnly.RAMBytesUsageMax
  211. }
  212. }
  213. }
  214. // Expand the window to match the queried time range.
  215. result.Window = result.Window.ExpandStart(start).ExpandEnd(end)
  216. // Append errors and warnings
  217. result.Errors = errors
  218. result.Warnings = warnings
  219. return result, nil
  220. }
  221. // DateRange checks the data (up to 90 days in the past), and returns the oldest and newest sample timestamp from opencost scraping metric
  222. // it supposed to be a good indicator of available allocation data
  223. func (cm *CostModel) DateRange() (time.Time, time.Time, error) {
  224. ctx := prom.NewNamedContext(cm.PrometheusClient, prom.AllocationContextName)
  225. resOldest, _, err := ctx.QuerySync(fmt.Sprintf(queryFmtOldestSample, "90d", "1h"))
  226. if err != nil {
  227. return time.Time{}, time.Time{}, fmt.Errorf("querying oldest sample: %w", err)
  228. }
  229. oldest := time.Unix(int64(resOldest[0].Values[0].Value), 0)
  230. resNewest, _, err := ctx.QuerySync(fmt.Sprintf(queryFmtNewestSample, "90d", "1h"))
  231. if err != nil {
  232. return time.Time{}, time.Time{}, fmt.Errorf("querying oldest sample: %w", err)
  233. }
  234. newest := time.Unix(int64(resNewest[0].Values[0].Value), 0)
  235. return oldest, newest, nil
  236. }
  237. func (cm *CostModel) computeAllocation(start, end time.Time, resolution time.Duration) (*kubecost.AllocationSet, error) {
  238. // 1. Build out Pod map from resolution-tuned, batched Pod start/end query
  239. // 2. Run and apply the results of the remaining queries to
  240. // 3. Build out AllocationSet from completed Pod map
  241. // Create a window spanning the requested query
  242. window := kubecost.NewWindow(&start, &end)
  243. // Create an empty AllocationSet. For safety, in the case of an error, we
  244. // should prefer to return this empty set with the error. (In the case of
  245. // no error, of course we populate the set and return it.)
  246. allocSet := kubecost.NewAllocationSet(start, end)
  247. // (1) Build out Pod map
  248. // Build out a map of Allocations as a mapping from pod-to-container-to-
  249. // underlying-Allocation instance, starting with (start, end) so that we
  250. // begin with minutes, from which we compute resource allocation and cost
  251. // totals from measured rate data.
  252. podMap := map[podKey]*pod{}
  253. // clusterStarts and clusterEnds record the earliest start and latest end
  254. // times, respectively, on a cluster-basis. These are used for unmounted
  255. // PVs and other "virtual" Allocations so that minutes are maximally
  256. // accurate during start-up or spin-down of a cluster
  257. clusterStart := map[string]time.Time{}
  258. clusterEnd := map[string]time.Time{}
  259. // If ingesting pod UID, we query kube_pod_container_status_running avg
  260. // by uid as well as the default values, and all podKeys/pods have their
  261. // names changed to "<pod_name> <pod_uid>". Because other metrics need
  262. // to generate keys to match pods but don't have UIDs, podUIDKeyMap
  263. // stores values of format:
  264. // default podKey : []{edited podkey 1, edited podkey 2}
  265. // This is because ingesting UID allows us to catch uncontrolled pods
  266. // with the same names. However, this will lead to a many-to-one metric
  267. // to podKey relation, so this map allows us to map the metric's
  268. // "<pod_name>" key to the edited "<pod_name> <pod_uid>" keys in podMap.
  269. ingestPodUID := env.IsIngestingPodUID()
  270. podUIDKeyMap := make(map[podKey][]podKey)
  271. if ingestPodUID {
  272. log.Debugf("CostModel.ComputeAllocation: ingesting UID data from KSM metrics...")
  273. }
  274. // TODO:CLEANUP remove "max batch" idea and clusterStart/End
  275. err := cm.buildPodMap(window, resolution, env.GetETLMaxPrometheusQueryDuration(), podMap, clusterStart, clusterEnd, ingestPodUID, podUIDKeyMap)
  276. if err != nil {
  277. log.Errorf("CostModel.ComputeAllocation: failed to build pod map: %s", err.Error())
  278. }
  279. // (2) Run and apply remaining queries
  280. // Query for the duration between start and end
  281. durStr := timeutil.DurationString(end.Sub(start))
  282. if durStr == "" {
  283. return allocSet, fmt.Errorf("illegal duration value for %s", kubecost.NewClosedWindow(start, end))
  284. }
  285. // Convert resolution duration to a query-ready string
  286. resStr := timeutil.DurationString(resolution)
  287. ctx := prom.NewNamedContext(cm.PrometheusClient, prom.AllocationContextName)
  288. queryRAMBytesAllocated := fmt.Sprintf(queryFmtRAMBytesAllocated, durStr, env.GetPromClusterLabel())
  289. resChRAMBytesAllocated := ctx.QueryAtTime(queryRAMBytesAllocated, end)
  290. queryRAMRequests := fmt.Sprintf(queryFmtRAMRequests, durStr, env.GetPromClusterLabel())
  291. resChRAMRequests := ctx.QueryAtTime(queryRAMRequests, end)
  292. queryRAMUsageAvg := fmt.Sprintf(queryFmtRAMUsageAvg, durStr, env.GetPromClusterLabel())
  293. resChRAMUsageAvg := ctx.QueryAtTime(queryRAMUsageAvg, end)
  294. queryRAMUsageMax := fmt.Sprintf(queryFmtRAMUsageMax, durStr, env.GetPromClusterLabel())
  295. resChRAMUsageMax := ctx.QueryAtTime(queryRAMUsageMax, end)
  296. queryCPUCoresAllocated := fmt.Sprintf(queryFmtCPUCoresAllocated, durStr, env.GetPromClusterLabel())
  297. resChCPUCoresAllocated := ctx.QueryAtTime(queryCPUCoresAllocated, end)
  298. queryCPURequests := fmt.Sprintf(queryFmtCPURequests, durStr, env.GetPromClusterLabel())
  299. resChCPURequests := ctx.QueryAtTime(queryCPURequests, end)
  300. queryCPUUsageAvg := fmt.Sprintf(queryFmtCPUUsageAvg, durStr, env.GetPromClusterLabel())
  301. resChCPUUsageAvg := ctx.QueryAtTime(queryCPUUsageAvg, end)
  302. queryCPUUsageMax := fmt.Sprintf(queryFmtCPUUsageMax, durStr, env.GetPromClusterLabel())
  303. resChCPUUsageMax := ctx.QueryAtTime(queryCPUUsageMax, end)
  304. queryGPUsRequested := fmt.Sprintf(queryFmtGPUsRequested, durStr, env.GetPromClusterLabel())
  305. resChGPUsRequested := ctx.QueryAtTime(queryGPUsRequested, end)
  306. queryGPUsAllocated := fmt.Sprintf(queryFmtGPUsAllocated, durStr, env.GetPromClusterLabel())
  307. resChGPUsAllocated := ctx.QueryAtTime(queryGPUsAllocated, end)
  308. queryNodeCostPerCPUHr := fmt.Sprintf(queryFmtNodeCostPerCPUHr, durStr, env.GetPromClusterLabel())
  309. resChNodeCostPerCPUHr := ctx.QueryAtTime(queryNodeCostPerCPUHr, end)
  310. queryNodeCostPerRAMGiBHr := fmt.Sprintf(queryFmtNodeCostPerRAMGiBHr, durStr, env.GetPromClusterLabel())
  311. resChNodeCostPerRAMGiBHr := ctx.QueryAtTime(queryNodeCostPerRAMGiBHr, end)
  312. queryNodeCostPerGPUHr := fmt.Sprintf(queryFmtNodeCostPerGPUHr, durStr, env.GetPromClusterLabel())
  313. resChNodeCostPerGPUHr := ctx.QueryAtTime(queryNodeCostPerGPUHr, end)
  314. queryNodeIsSpot := fmt.Sprintf(queryFmtNodeIsSpot, durStr)
  315. resChNodeIsSpot := ctx.QueryAtTime(queryNodeIsSpot, end)
  316. queryPVCInfo := fmt.Sprintf(queryFmtPVCInfo, env.GetPromClusterLabel(), durStr, resStr)
  317. resChPVCInfo := ctx.QueryAtTime(queryPVCInfo, end)
  318. queryPodPVCAllocation := fmt.Sprintf(queryFmtPodPVCAllocation, durStr, env.GetPromClusterLabel())
  319. resChPodPVCAllocation := ctx.QueryAtTime(queryPodPVCAllocation, end)
  320. queryPVCBytesRequested := fmt.Sprintf(queryFmtPVCBytesRequested, durStr, env.GetPromClusterLabel())
  321. resChPVCBytesRequested := ctx.QueryAtTime(queryPVCBytesRequested, end)
  322. queryPVActiveMins := fmt.Sprintf(queryFmtPVActiveMins, env.GetPromClusterLabel(), durStr, resStr)
  323. resChPVActiveMins := ctx.QueryAtTime(queryPVActiveMins, end)
  324. queryPVBytes := fmt.Sprintf(queryFmtPVBytes, durStr, env.GetPromClusterLabel())
  325. resChPVBytes := ctx.QueryAtTime(queryPVBytes, end)
  326. queryPVCostPerGiBHour := fmt.Sprintf(queryFmtPVCostPerGiBHour, durStr, env.GetPromClusterLabel())
  327. resChPVCostPerGiBHour := ctx.QueryAtTime(queryPVCostPerGiBHour, end)
  328. queryNetTransferBytes := fmt.Sprintf(queryFmtNetTransferBytes, durStr, env.GetPromClusterLabel())
  329. resChNetTransferBytes := ctx.QueryAtTime(queryNetTransferBytes, end)
  330. queryNetReceiveBytes := fmt.Sprintf(queryFmtNetReceiveBytes, durStr, env.GetPromClusterLabel())
  331. resChNetReceiveBytes := ctx.QueryAtTime(queryNetReceiveBytes, end)
  332. queryNetZoneGiB := fmt.Sprintf(queryFmtNetZoneGiB, durStr, env.GetPromClusterLabel())
  333. resChNetZoneGiB := ctx.QueryAtTime(queryNetZoneGiB, end)
  334. queryNetZoneCostPerGiB := fmt.Sprintf(queryFmtNetZoneCostPerGiB, durStr, env.GetPromClusterLabel())
  335. resChNetZoneCostPerGiB := ctx.QueryAtTime(queryNetZoneCostPerGiB, end)
  336. queryNetRegionGiB := fmt.Sprintf(queryFmtNetRegionGiB, durStr, env.GetPromClusterLabel())
  337. resChNetRegionGiB := ctx.QueryAtTime(queryNetRegionGiB, end)
  338. queryNetRegionCostPerGiB := fmt.Sprintf(queryFmtNetRegionCostPerGiB, durStr, env.GetPromClusterLabel())
  339. resChNetRegionCostPerGiB := ctx.QueryAtTime(queryNetRegionCostPerGiB, end)
  340. queryNetInternetGiB := fmt.Sprintf(queryFmtNetInternetGiB, durStr, env.GetPromClusterLabel())
  341. resChNetInternetGiB := ctx.QueryAtTime(queryNetInternetGiB, end)
  342. queryNetInternetCostPerGiB := fmt.Sprintf(queryFmtNetInternetCostPerGiB, durStr, env.GetPromClusterLabel())
  343. resChNetInternetCostPerGiB := ctx.QueryAtTime(queryNetInternetCostPerGiB, end)
  344. var resChNodeLabels prom.QueryResultsChan
  345. if env.GetAllocationNodeLabelsEnabled() {
  346. queryNodeLabels := fmt.Sprintf(queryFmtNodeLabels, durStr)
  347. resChNodeLabels = ctx.QueryAtTime(queryNodeLabels, end)
  348. }
  349. queryNamespaceLabels := fmt.Sprintf(queryFmtNamespaceLabels, durStr)
  350. resChNamespaceLabels := ctx.QueryAtTime(queryNamespaceLabels, end)
  351. queryNamespaceAnnotations := fmt.Sprintf(queryFmtNamespaceAnnotations, durStr)
  352. resChNamespaceAnnotations := ctx.QueryAtTime(queryNamespaceAnnotations, end)
  353. queryPodLabels := fmt.Sprintf(queryFmtPodLabels, durStr)
  354. resChPodLabels := ctx.QueryAtTime(queryPodLabels, end)
  355. queryPodAnnotations := fmt.Sprintf(queryFmtPodAnnotations, durStr)
  356. resChPodAnnotations := ctx.QueryAtTime(queryPodAnnotations, end)
  357. queryServiceLabels := fmt.Sprintf(queryFmtServiceLabels, durStr)
  358. resChServiceLabels := ctx.QueryAtTime(queryServiceLabels, end)
  359. queryDeploymentLabels := fmt.Sprintf(queryFmtDeploymentLabels, durStr)
  360. resChDeploymentLabels := ctx.QueryAtTime(queryDeploymentLabels, end)
  361. queryStatefulSetLabels := fmt.Sprintf(queryFmtStatefulSetLabels, durStr)
  362. resChStatefulSetLabels := ctx.QueryAtTime(queryStatefulSetLabels, end)
  363. queryDaemonSetLabels := fmt.Sprintf(queryFmtDaemonSetLabels, durStr, env.GetPromClusterLabel())
  364. resChDaemonSetLabels := ctx.QueryAtTime(queryDaemonSetLabels, end)
  365. queryPodsWithReplicaSetOwner := fmt.Sprintf(queryFmtPodsWithReplicaSetOwner, durStr, env.GetPromClusterLabel())
  366. resChPodsWithReplicaSetOwner := ctx.QueryAtTime(queryPodsWithReplicaSetOwner, end)
  367. queryReplicaSetsWithoutOwners := fmt.Sprintf(queryFmtReplicaSetsWithoutOwners, durStr, env.GetPromClusterLabel())
  368. resChReplicaSetsWithoutOwners := ctx.QueryAtTime(queryReplicaSetsWithoutOwners, end)
  369. queryJobLabels := fmt.Sprintf(queryFmtJobLabels, durStr, env.GetPromClusterLabel())
  370. resChJobLabels := ctx.QueryAtTime(queryJobLabels, end)
  371. queryLBCostPerHr := fmt.Sprintf(queryFmtLBCostPerHr, durStr, env.GetPromClusterLabel())
  372. resChLBCostPerHr := ctx.QueryAtTime(queryLBCostPerHr, end)
  373. queryLBActiveMins := fmt.Sprintf(queryFmtLBActiveMins, env.GetPromClusterLabel(), durStr, resStr)
  374. resChLBActiveMins := ctx.QueryAtTime(queryLBActiveMins, end)
  375. resCPUCoresAllocated, _ := resChCPUCoresAllocated.Await()
  376. resCPURequests, _ := resChCPURequests.Await()
  377. resCPUUsageAvg, _ := resChCPUUsageAvg.Await()
  378. resCPUUsageMax, _ := resChCPUUsageMax.Await()
  379. resRAMBytesAllocated, _ := resChRAMBytesAllocated.Await()
  380. resRAMRequests, _ := resChRAMRequests.Await()
  381. resRAMUsageAvg, _ := resChRAMUsageAvg.Await()
  382. resRAMUsageMax, _ := resChRAMUsageMax.Await()
  383. resGPUsRequested, _ := resChGPUsRequested.Await()
  384. resGPUsAllocated, _ := resChGPUsAllocated.Await()
  385. resNodeCostPerCPUHr, _ := resChNodeCostPerCPUHr.Await()
  386. resNodeCostPerRAMGiBHr, _ := resChNodeCostPerRAMGiBHr.Await()
  387. resNodeCostPerGPUHr, _ := resChNodeCostPerGPUHr.Await()
  388. resNodeIsSpot, _ := resChNodeIsSpot.Await()
  389. resPVActiveMins, _ := resChPVActiveMins.Await()
  390. resPVBytes, _ := resChPVBytes.Await()
  391. resPVCostPerGiBHour, _ := resChPVCostPerGiBHour.Await()
  392. resPVCInfo, _ := resChPVCInfo.Await()
  393. resPVCBytesRequested, _ := resChPVCBytesRequested.Await()
  394. resPodPVCAllocation, _ := resChPodPVCAllocation.Await()
  395. resNetTransferBytes, _ := resChNetTransferBytes.Await()
  396. resNetReceiveBytes, _ := resChNetReceiveBytes.Await()
  397. resNetZoneGiB, _ := resChNetZoneGiB.Await()
  398. resNetZoneCostPerGiB, _ := resChNetZoneCostPerGiB.Await()
  399. resNetRegionGiB, _ := resChNetRegionGiB.Await()
  400. resNetRegionCostPerGiB, _ := resChNetRegionCostPerGiB.Await()
  401. resNetInternetGiB, _ := resChNetInternetGiB.Await()
  402. resNetInternetCostPerGiB, _ := resChNetInternetCostPerGiB.Await()
  403. var resNodeLabels []*prom.QueryResult
  404. if env.GetAllocationNodeLabelsEnabled() {
  405. if env.GetAllocationNodeLabelsEnabled() {
  406. resNodeLabels, _ = resChNodeLabels.Await()
  407. }
  408. }
  409. resNamespaceLabels, _ := resChNamespaceLabels.Await()
  410. resNamespaceAnnotations, _ := resChNamespaceAnnotations.Await()
  411. resPodLabels, _ := resChPodLabels.Await()
  412. resPodAnnotations, _ := resChPodAnnotations.Await()
  413. resServiceLabels, _ := resChServiceLabels.Await()
  414. resDeploymentLabels, _ := resChDeploymentLabels.Await()
  415. resStatefulSetLabels, _ := resChStatefulSetLabels.Await()
  416. resDaemonSetLabels, _ := resChDaemonSetLabels.Await()
  417. resPodsWithReplicaSetOwner, _ := resChPodsWithReplicaSetOwner.Await()
  418. resReplicaSetsWithoutOwners, _ := resChReplicaSetsWithoutOwners.Await()
  419. resJobLabels, _ := resChJobLabels.Await()
  420. resLBCostPerHr, _ := resChLBCostPerHr.Await()
  421. resLBActiveMins, _ := resChLBActiveMins.Await()
  422. if ctx.HasErrors() {
  423. for _, err := range ctx.Errors() {
  424. log.Errorf("CostModel.ComputeAllocation: query context error %s", err)
  425. }
  426. return allocSet, ctx.ErrorCollection()
  427. }
  428. // We choose to apply allocation before requests in the cases of RAM and
  429. // CPU so that we can assert that allocation should always be greater than
  430. // or equal to request.
  431. applyCPUCoresAllocated(podMap, resCPUCoresAllocated, podUIDKeyMap)
  432. applyCPUCoresRequested(podMap, resCPURequests, podUIDKeyMap)
  433. applyCPUCoresUsedAvg(podMap, resCPUUsageAvg, podUIDKeyMap)
  434. applyCPUCoresUsedMax(podMap, resCPUUsageMax, podUIDKeyMap)
  435. applyRAMBytesAllocated(podMap, resRAMBytesAllocated, podUIDKeyMap)
  436. applyRAMBytesRequested(podMap, resRAMRequests, podUIDKeyMap)
  437. applyRAMBytesUsedAvg(podMap, resRAMUsageAvg, podUIDKeyMap)
  438. applyRAMBytesUsedMax(podMap, resRAMUsageMax, podUIDKeyMap)
  439. applyGPUsAllocated(podMap, resGPUsRequested, resGPUsAllocated, podUIDKeyMap)
  440. applyNetworkTotals(podMap, resNetTransferBytes, resNetReceiveBytes, podUIDKeyMap)
  441. applyNetworkAllocation(podMap, resNetZoneGiB, resNetZoneCostPerGiB, podUIDKeyMap, networkCrossZoneCost)
  442. applyNetworkAllocation(podMap, resNetRegionGiB, resNetRegionCostPerGiB, podUIDKeyMap, networkCrossRegionCost)
  443. applyNetworkAllocation(podMap, resNetInternetGiB, resNetInternetCostPerGiB, podUIDKeyMap, networkInternetCost)
  444. // In the case that a two pods with the same name had different containers,
  445. // we will double-count the containers. There is no way to associate each
  446. // container with the proper pod from the usage metrics above. This will
  447. // show up as a pod having two Allocations running for the whole pod runtime.
  448. // Other than that case, Allocations should be associated with pods by the
  449. // above functions.
  450. // At this point, we expect "Node" to be set by one of the above functions
  451. // (e.g. applyCPUCoresAllocated, etc.) -- otherwise, node labels will fail
  452. // to correctly apply to the pods.
  453. var nodeLabels map[nodeKey]map[string]string
  454. if env.GetAllocationNodeLabelsEnabled() {
  455. nodeLabels = resToNodeLabels(resNodeLabels)
  456. }
  457. namespaceLabels := resToNamespaceLabels(resNamespaceLabels)
  458. podLabels := resToPodLabels(resPodLabels, podUIDKeyMap, ingestPodUID)
  459. namespaceAnnotations := resToNamespaceAnnotations(resNamespaceAnnotations)
  460. podAnnotations := resToPodAnnotations(resPodAnnotations, podUIDKeyMap, ingestPodUID)
  461. applyLabels(podMap, nodeLabels, namespaceLabels, podLabels)
  462. applyAnnotations(podMap, namespaceAnnotations, podAnnotations)
  463. podDeploymentMap := labelsToPodControllerMap(podLabels, resToDeploymentLabels(resDeploymentLabels))
  464. podStatefulSetMap := labelsToPodControllerMap(podLabels, resToStatefulSetLabels(resStatefulSetLabels))
  465. podDaemonSetMap := resToPodDaemonSetMap(resDaemonSetLabels, podUIDKeyMap, ingestPodUID)
  466. podJobMap := resToPodJobMap(resJobLabels, podUIDKeyMap, ingestPodUID)
  467. podReplicaSetMap := resToPodReplicaSetMap(resPodsWithReplicaSetOwner, resReplicaSetsWithoutOwners, podUIDKeyMap, ingestPodUID)
  468. applyControllersToPods(podMap, podDeploymentMap)
  469. applyControllersToPods(podMap, podStatefulSetMap)
  470. applyControllersToPods(podMap, podDaemonSetMap)
  471. applyControllersToPods(podMap, podJobMap)
  472. applyControllersToPods(podMap, podReplicaSetMap)
  473. serviceLabels := getServiceLabels(resServiceLabels)
  474. allocsByService := map[serviceKey][]*kubecost.Allocation{}
  475. applyServicesToPods(podMap, podLabels, allocsByService, serviceLabels)
  476. // TODO breakdown network costs?
  477. // Build out the map of all PVs with class, size and cost-per-hour.
  478. // Note: this does not record time running, which we may want to
  479. // include later for increased PV precision. (As long as the PV has
  480. // a PVC, we get time running there, so this is only inaccurate
  481. // for short-lived, unmounted PVs.)
  482. pvMap := map[pvKey]*pv{}
  483. buildPVMap(resolution, pvMap, resPVCostPerGiBHour, resPVActiveMins)
  484. applyPVBytes(pvMap, resPVBytes)
  485. // Build out the map of all PVCs with time running, bytes requested,
  486. // and connect to the correct PV from pvMap. (If no PV exists, that
  487. // is noted, but does not result in any allocation/cost.)
  488. pvcMap := map[pvcKey]*pvc{}
  489. buildPVCMap(resolution, pvcMap, pvMap, resPVCInfo)
  490. applyPVCBytesRequested(pvcMap, resPVCBytesRequested)
  491. // Build out the relationships of pods to their PVCs. This step
  492. // populates the pvc.Count field so that pvc allocation can be
  493. // split appropriately among each pod's container allocation.
  494. podPVCMap := map[podKey][]*pvc{}
  495. buildPodPVCMap(podPVCMap, pvMap, pvcMap, podMap, resPodPVCAllocation, podUIDKeyMap, ingestPodUID)
  496. applyPVCsToPods(window, podMap, podPVCMap, pvcMap)
  497. // Identify PVCs without pods and add pv costs to the unmounted Allocation for the pvc's cluster
  498. applyUnmountedPVCs(window, podMap, pvcMap)
  499. // Identify PVs without PVCs and add PV costs to the unmounted Allocation for the PV's cluster
  500. applyUnmountedPVs(window, podMap, pvMap, pvcMap)
  501. lbMap := make(map[serviceKey]*lbCost)
  502. getLoadBalancerCosts(lbMap, resLBCostPerHr, resLBActiveMins, resolution)
  503. applyLoadBalancersToPods(window, podMap, lbMap, allocsByService)
  504. // Build out a map of Nodes with resource costs, discounts, and node types
  505. // for converting resource allocation data to cumulative costs.
  506. nodeMap := map[nodeKey]*nodePricing{}
  507. applyNodeCostPerCPUHr(nodeMap, resNodeCostPerCPUHr)
  508. applyNodeCostPerRAMGiBHr(nodeMap, resNodeCostPerRAMGiBHr)
  509. applyNodeCostPerGPUHr(nodeMap, resNodeCostPerGPUHr)
  510. applyNodeSpot(nodeMap, resNodeIsSpot)
  511. applyNodeDiscount(nodeMap, cm)
  512. cm.applyNodesToPod(podMap, nodeMap)
  513. // (3) Build out AllocationSet from Pod map
  514. for _, pod := range podMap {
  515. for _, alloc := range pod.Allocations {
  516. cluster := alloc.Properties.Cluster
  517. nodeName := alloc.Properties.Node
  518. namespace := alloc.Properties.Namespace
  519. podName := alloc.Properties.Pod
  520. container := alloc.Properties.Container
  521. // Make sure that the name is correct (node may not be present at this
  522. // point due to it missing from queryMinutes) then insert.
  523. alloc.Name = fmt.Sprintf("%s/%s/%s/%s/%s", cluster, nodeName, namespace, podName, container)
  524. allocSet.Set(alloc)
  525. }
  526. }
  527. return allocSet, nil
  528. }