cluster.go 59 KB

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  1. package costmodel
  2. import (
  3. "fmt"
  4. "net"
  5. "strconv"
  6. "time"
  7. "github.com/opencost/opencost/pkg/cloud/provider"
  8. prometheus "github.com/prometheus/client_golang/api"
  9. "golang.org/x/exp/slices"
  10. "github.com/opencost/opencost/core/pkg/log"
  11. "github.com/opencost/opencost/core/pkg/opencost"
  12. "github.com/opencost/opencost/core/pkg/util/timeutil"
  13. "github.com/opencost/opencost/pkg/cloud/models"
  14. "github.com/opencost/opencost/pkg/env"
  15. "github.com/opencost/opencost/pkg/prom"
  16. )
  17. const (
  18. queryClusterCores = `sum(
  19. avg(avg_over_time(kube_node_status_capacity_cpu_cores{%s}[%s] %s)) by (node, %s) * avg(avg_over_time(node_cpu_hourly_cost{%s}[%s] %s)) by (node, %s) * 730 +
  20. avg(avg_over_time(node_gpu_hourly_cost{%s}[%s] %s)) by (node, %s) * 730
  21. ) by (%s)`
  22. queryClusterRAM = `sum(
  23. avg(avg_over_time(kube_node_status_capacity_memory_bytes{%s}[%s] %s)) by (node, %s) / 1024 / 1024 / 1024 * avg(avg_over_time(node_ram_hourly_cost{%s}[%s] %s)) by (node, %s) * 730
  24. ) by (%s)`
  25. queryStorage = `sum(
  26. avg(avg_over_time(pv_hourly_cost{%s}[%s] %s)) by (persistentvolume, %s) * 730
  27. * avg(avg_over_time(kube_persistentvolume_capacity_bytes{%s}[%s] %s)) by (persistentvolume, %s) / 1024 / 1024 / 1024
  28. ) by (%s) %s`
  29. queryTotal = `sum(avg(node_total_hourly_cost{%s}) by (node, %s)) * 730 +
  30. sum(
  31. avg(avg_over_time(pv_hourly_cost{%s}[1h])) by (persistentvolume, %s) * 730
  32. * avg(avg_over_time(kube_persistentvolume_capacity_bytes{%s}[1h])) by (persistentvolume, %s) / 1024 / 1024 / 1024
  33. ) by (%s) %s`
  34. queryNodes = `sum(avg(node_total_hourly_cost{%s}) by (node, %s)) * 730 %s`
  35. )
  36. const maxLocalDiskSize = 200 // AWS limits root disks to 100 Gi, and occasional metric errors in filesystem size should not contribute to large costs.
  37. // Costs represents cumulative and monthly cluster costs over a given duration. Costs
  38. // are broken down by cores, memory, and storage.
  39. type ClusterCosts struct {
  40. Start *time.Time `json:"startTime"`
  41. End *time.Time `json:"endTime"`
  42. CPUCumulative float64 `json:"cpuCumulativeCost"`
  43. CPUMonthly float64 `json:"cpuMonthlyCost"`
  44. CPUBreakdown *ClusterCostsBreakdown `json:"cpuBreakdown"`
  45. GPUCumulative float64 `json:"gpuCumulativeCost"`
  46. GPUMonthly float64 `json:"gpuMonthlyCost"`
  47. RAMCumulative float64 `json:"ramCumulativeCost"`
  48. RAMMonthly float64 `json:"ramMonthlyCost"`
  49. RAMBreakdown *ClusterCostsBreakdown `json:"ramBreakdown"`
  50. StorageCumulative float64 `json:"storageCumulativeCost"`
  51. StorageMonthly float64 `json:"storageMonthlyCost"`
  52. StorageBreakdown *ClusterCostsBreakdown `json:"storageBreakdown"`
  53. TotalCumulative float64 `json:"totalCumulativeCost"`
  54. TotalMonthly float64 `json:"totalMonthlyCost"`
  55. DataMinutes float64
  56. }
  57. // ClusterCostsBreakdown provides percentage-based breakdown of a resource by
  58. // categories: user for user-space (i.e. non-system) usage, system, and idle.
  59. type ClusterCostsBreakdown struct {
  60. Idle float64 `json:"idle"`
  61. Other float64 `json:"other"`
  62. System float64 `json:"system"`
  63. User float64 `json:"user"`
  64. }
  65. // NewClusterCostsFromCumulative takes cumulative cost data over a given time range, computes
  66. // the associated monthly rate data, and returns the Costs.
  67. func NewClusterCostsFromCumulative(cpu, gpu, ram, storage float64, window, offset time.Duration, dataHours float64) (*ClusterCosts, error) {
  68. start, end := timeutil.ParseTimeRange(window, offset)
  69. // If the number of hours is not given (i.e. is zero) compute one from the window and offset
  70. if dataHours == 0 {
  71. dataHours = end.Sub(start).Hours()
  72. }
  73. // Do not allow zero-length windows to prevent divide-by-zero issues
  74. if dataHours == 0 {
  75. return nil, fmt.Errorf("illegal time range: window %s, offset %s", window, offset)
  76. }
  77. cc := &ClusterCosts{
  78. Start: &start,
  79. End: &end,
  80. CPUCumulative: cpu,
  81. GPUCumulative: gpu,
  82. RAMCumulative: ram,
  83. StorageCumulative: storage,
  84. TotalCumulative: cpu + gpu + ram + storage,
  85. CPUMonthly: cpu / dataHours * (timeutil.HoursPerMonth),
  86. GPUMonthly: gpu / dataHours * (timeutil.HoursPerMonth),
  87. RAMMonthly: ram / dataHours * (timeutil.HoursPerMonth),
  88. StorageMonthly: storage / dataHours * (timeutil.HoursPerMonth),
  89. }
  90. cc.TotalMonthly = cc.CPUMonthly + cc.GPUMonthly + cc.RAMMonthly + cc.StorageMonthly
  91. return cc, nil
  92. }
  93. type Disk struct {
  94. Cluster string
  95. Name string
  96. ProviderID string
  97. StorageClass string
  98. VolumeName string
  99. ClaimName string
  100. ClaimNamespace string
  101. Cost float64
  102. Bytes float64
  103. // These two fields may not be available at all times because they rely on
  104. // a new set of metrics that may or may not be available. Thus, they must
  105. // be nilable to represent the complete absence of the data.
  106. //
  107. // In other words, nilability here lets us distinguish between
  108. // "metric is not available" and "metric is available but is 0".
  109. //
  110. // They end in "Ptr" to distinguish from an earlier version in order to
  111. // ensure that all usages are checked for nil.
  112. BytesUsedAvgPtr *float64
  113. BytesUsedMaxPtr *float64
  114. Local bool
  115. Start time.Time
  116. End time.Time
  117. Minutes float64
  118. Breakdown *ClusterCostsBreakdown
  119. }
  120. type DiskIdentifier struct {
  121. Cluster string
  122. Name string
  123. }
  124. func ClusterDisks(client prometheus.Client, provider models.Provider, start, end time.Time) (map[DiskIdentifier]*Disk, error) {
  125. // Start from the time "end", querying backwards
  126. t := end
  127. // minsPerResolution determines accuracy and resource use for the following
  128. // queries. Smaller values (higher resolution) result in better accuracy,
  129. // but more expensive queries, and vice-a-versa.
  130. resolution := env.GetETLResolution()
  131. //Ensuring if ETL_RESOLUTION_SECONDS is less than 60s default it to 1m
  132. var minsPerResolution int
  133. if minsPerResolution = int(resolution.Minutes()); int(resolution.Minutes()) == 0 {
  134. minsPerResolution = 1
  135. log.DedupedWarningf(3, "ClusterDisks(): Configured ETL resolution (%d seconds) is below the 60 seconds threshold. Overriding with 1 minute.", int(resolution.Seconds()))
  136. }
  137. durStr := timeutil.DurationString(end.Sub(start))
  138. if durStr == "" {
  139. return nil, fmt.Errorf("illegal duration value for %s", opencost.NewClosedWindow(start, end))
  140. }
  141. ctx := prom.NewNamedContext(client, prom.ClusterContextName)
  142. queryPVCost := fmt.Sprintf(`avg(avg_over_time(pv_hourly_cost{%s}[%s])) by (%s, persistentvolume,provider_id)`, env.GetPromClusterFilter(), durStr, env.GetPromClusterLabel())
  143. queryPVSize := fmt.Sprintf(`avg(avg_over_time(kube_persistentvolume_capacity_bytes{%s}[%s])) by (%s, persistentvolume)`, env.GetPromClusterFilter(), durStr, env.GetPromClusterLabel())
  144. queryActiveMins := fmt.Sprintf(`avg(kube_persistentvolume_capacity_bytes{%s}) by (%s, persistentvolume)[%s:%dm]`, env.GetPromClusterFilter(), env.GetPromClusterLabel(), durStr, minsPerResolution)
  145. queryPVStorageClass := fmt.Sprintf(`avg(avg_over_time(kubecost_pv_info{%s}[%s])) by (%s, persistentvolume, storageclass)`, env.GetPromClusterFilter(), durStr, env.GetPromClusterLabel())
  146. queryPVUsedAvg := fmt.Sprintf(`avg(avg_over_time(kubelet_volume_stats_used_bytes{%s}[%s])) by (%s, persistentvolumeclaim, namespace)`, env.GetPromClusterFilter(), durStr, env.GetPromClusterLabel())
  147. queryPVUsedMax := fmt.Sprintf(`max(max_over_time(kubelet_volume_stats_used_bytes{%s}[%s])) by (%s, persistentvolumeclaim, namespace)`, env.GetPromClusterFilter(), durStr, env.GetPromClusterLabel())
  148. queryPVCInfo := fmt.Sprintf(`avg(avg_over_time(kube_persistentvolumeclaim_info{%s}[%s])) by (%s, volumename, persistentvolumeclaim, namespace)`, env.GetPromClusterFilter(), durStr, env.GetPromClusterLabel())
  149. resChPVCost := ctx.QueryAtTime(queryPVCost, t)
  150. resChPVSize := ctx.QueryAtTime(queryPVSize, t)
  151. resChActiveMins := ctx.QueryAtTime(queryActiveMins, t)
  152. resChPVStorageClass := ctx.QueryAtTime(queryPVStorageClass, t)
  153. resChPVUsedAvg := ctx.QueryAtTime(queryPVUsedAvg, t)
  154. resChPVUsedMax := ctx.QueryAtTime(queryPVUsedMax, t)
  155. resChPVCInfo := ctx.QueryAtTime(queryPVCInfo, t)
  156. resPVCost, _ := resChPVCost.Await()
  157. resPVSize, _ := resChPVSize.Await()
  158. resActiveMins, _ := resChActiveMins.Await()
  159. resPVStorageClass, _ := resChPVStorageClass.Await()
  160. resPVUsedAvg, _ := resChPVUsedAvg.Await()
  161. resPVUsedMax, _ := resChPVUsedMax.Await()
  162. resPVCInfo, _ := resChPVCInfo.Await()
  163. // Cloud providers do not always charge for a node's local disk costs (i.e.
  164. // ephemeral storage). Provide an option to opt out of calculating &
  165. // allocating local disk costs. Note, that this does not affect
  166. // PersistentVolume costs.
  167. //
  168. // Ref:
  169. // https://docs.aws.amazon.com/AWSEC2/latest/UserGuide/RootDeviceStorage.html
  170. // https://learn.microsoft.com/en-us/azure/virtual-machines/managed-disks-overview#temporary-disk
  171. // https://cloud.google.com/compute/docs/disks/local-ssd
  172. resLocalStorageCost := []*prom.QueryResult{}
  173. resLocalStorageUsedCost := []*prom.QueryResult{}
  174. resLocalStorageUsedAvg := []*prom.QueryResult{}
  175. resLocalStorageUsedMax := []*prom.QueryResult{}
  176. resLocalStorageBytes := []*prom.QueryResult{}
  177. resLocalActiveMins := []*prom.QueryResult{}
  178. if env.GetAssetIncludeLocalDiskCost() {
  179. // hourlyToCumulative is a scaling factor that, when multiplied by an
  180. // hourly value, converts it to a cumulative value; i.e. [$/hr] *
  181. // [min/res]*[hr/min] = [$/res]
  182. hourlyToCumulative := float64(minsPerResolution) * (1.0 / 60.0)
  183. costPerGBHr := 0.04 / 730.0
  184. // container_fs metrics contains metrics for disks that are not local storage of the node. While not perfect to
  185. // attempt to identify the correct device which is being used as local storage we first filter for devices mounted
  186. // at paths `/dev/nvme.*` or `/dev/sda.*`. There still may be multiple devices mounted at paths matching the regex
  187. // so later on we will select the device with the highest `container_fs_limit_bytes` per instance to create a local disk asset
  188. queryLocalStorageCost := fmt.Sprintf(`sum_over_time(sum(container_fs_limit_bytes{device=~"/dev/(nvme|sda).*", id="/", %s}) by (instance, device, %s)[%s:%dm]) / 1024 / 1024 / 1024 * %f * %f`, env.GetPromClusterFilter(), env.GetPromClusterLabel(), durStr, minsPerResolution, hourlyToCumulative, costPerGBHr)
  189. queryLocalStorageUsedCost := fmt.Sprintf(`sum_over_time(sum(container_fs_usage_bytes{device=~"/dev/(nvme|sda).*", id="/", %s}) by (instance, device, %s)[%s:%dm]) / 1024 / 1024 / 1024 * %f * %f`, env.GetPromClusterFilter(), env.GetPromClusterLabel(), durStr, minsPerResolution, hourlyToCumulative, costPerGBHr)
  190. queryLocalStorageUsedAvg := fmt.Sprintf(`avg(sum(avg_over_time(container_fs_usage_bytes{device=~"/dev/(nvme|sda).*", id="/", %s}[%s])) by (instance, device, %s, job)) by (instance, device, %s)`, env.GetPromClusterFilter(), durStr, env.GetPromClusterLabel(), env.GetPromClusterLabel())
  191. queryLocalStorageUsedMax := fmt.Sprintf(`max(sum(max_over_time(container_fs_usage_bytes{device=~"/dev/(nvme|sda).*", id="/", %s}[%s])) by (instance, device, %s, job)) by (instance, device, %s)`, env.GetPromClusterFilter(), durStr, env.GetPromClusterLabel(), env.GetPromClusterLabel())
  192. queryLocalStorageBytes := fmt.Sprintf(`avg_over_time(sum(container_fs_limit_bytes{device=~"/dev/(nvme|sda).*", id="/", %s}) by (instance, device, %s)[%s:%dm])`, env.GetPromClusterFilter(), env.GetPromClusterLabel(), durStr, minsPerResolution)
  193. queryLocalActiveMins := fmt.Sprintf(`count(node_total_hourly_cost{%s}) by (%s, node)[%s:%dm]`, env.GetPromClusterFilter(), env.GetPromClusterLabel(), durStr, minsPerResolution)
  194. resChLocalStorageCost := ctx.QueryAtTime(queryLocalStorageCost, t)
  195. resChLocalStorageUsedCost := ctx.QueryAtTime(queryLocalStorageUsedCost, t)
  196. resChLocalStoreageUsedAvg := ctx.QueryAtTime(queryLocalStorageUsedAvg, t)
  197. resChLocalStoreageUsedMax := ctx.QueryAtTime(queryLocalStorageUsedMax, t)
  198. resChLocalStorageBytes := ctx.QueryAtTime(queryLocalStorageBytes, t)
  199. resChLocalActiveMins := ctx.QueryAtTime(queryLocalActiveMins, t)
  200. resLocalStorageCost, _ = resChLocalStorageCost.Await()
  201. resLocalStorageUsedCost, _ = resChLocalStorageUsedCost.Await()
  202. resLocalStorageUsedAvg, _ = resChLocalStoreageUsedAvg.Await()
  203. resLocalStorageUsedMax, _ = resChLocalStoreageUsedMax.Await()
  204. resLocalStorageBytes, _ = resChLocalStorageBytes.Await()
  205. resLocalActiveMins, _ = resChLocalActiveMins.Await()
  206. }
  207. if ctx.HasErrors() {
  208. return nil, ctx.ErrorCollection()
  209. }
  210. diskMap := map[DiskIdentifier]*Disk{}
  211. for _, result := range resPVCInfo {
  212. cluster, err := result.GetString(env.GetPromClusterLabel())
  213. if err != nil {
  214. cluster = env.GetClusterID()
  215. }
  216. volumeName, err := result.GetString("volumename")
  217. if err != nil {
  218. log.Debugf("ClusterDisks: pv claim data missing volumename")
  219. continue
  220. }
  221. claimName, err := result.GetString("persistentvolumeclaim")
  222. if err != nil {
  223. log.Debugf("ClusterDisks: pv claim data missing persistentvolumeclaim")
  224. continue
  225. }
  226. claimNamespace, err := result.GetString("namespace")
  227. if err != nil {
  228. log.Debugf("ClusterDisks: pv claim data missing namespace")
  229. continue
  230. }
  231. key := DiskIdentifier{cluster, volumeName}
  232. if _, ok := diskMap[key]; !ok {
  233. diskMap[key] = &Disk{
  234. Cluster: cluster,
  235. Name: volumeName,
  236. Breakdown: &ClusterCostsBreakdown{},
  237. }
  238. }
  239. diskMap[key].VolumeName = volumeName
  240. diskMap[key].ClaimName = claimName
  241. diskMap[key].ClaimNamespace = claimNamespace
  242. }
  243. pvCosts(diskMap, resolution, resActiveMins, resPVSize, resPVCost, resPVUsedAvg, resPVUsedMax, resPVCInfo, provider, opencost.NewClosedWindow(start, end))
  244. for _, result := range resLocalStorageCost {
  245. cluster, err := result.GetString(env.GetPromClusterLabel())
  246. if err != nil {
  247. cluster = env.GetClusterID()
  248. }
  249. name, err := result.GetString("instance")
  250. if err != nil {
  251. log.Warnf("ClusterDisks: local storage data missing instance")
  252. continue
  253. }
  254. cost := result.Values[0].Value
  255. key := DiskIdentifier{cluster, name}
  256. if _, ok := diskMap[key]; !ok {
  257. diskMap[key] = &Disk{
  258. Cluster: cluster,
  259. Name: name,
  260. Breakdown: &ClusterCostsBreakdown{},
  261. Local: true,
  262. }
  263. }
  264. diskMap[key].Cost += cost
  265. //Assigning explicitly the storage class of local storage to local
  266. diskMap[key].StorageClass = opencost.LocalStorageClass
  267. }
  268. for _, result := range resLocalStorageUsedCost {
  269. cluster, err := result.GetString(env.GetPromClusterLabel())
  270. if err != nil {
  271. cluster = env.GetClusterID()
  272. }
  273. name, err := result.GetString("instance")
  274. if err != nil {
  275. log.Warnf("ClusterDisks: local storage usage data missing instance")
  276. continue
  277. }
  278. cost := result.Values[0].Value
  279. key := DiskIdentifier{cluster, name}
  280. if _, ok := diskMap[key]; !ok {
  281. diskMap[key] = &Disk{
  282. Cluster: cluster,
  283. Name: name,
  284. Breakdown: &ClusterCostsBreakdown{},
  285. Local: true,
  286. }
  287. }
  288. diskMap[key].Breakdown.System = cost / diskMap[key].Cost
  289. }
  290. for _, result := range resLocalStorageUsedAvg {
  291. cluster, err := result.GetString(env.GetPromClusterLabel())
  292. if err != nil {
  293. cluster = env.GetClusterID()
  294. }
  295. name, err := result.GetString("instance")
  296. if err != nil {
  297. log.Warnf("ClusterDisks: local storage data missing instance")
  298. continue
  299. }
  300. bytesAvg := result.Values[0].Value
  301. key := DiskIdentifier{cluster, name}
  302. if _, ok := diskMap[key]; !ok {
  303. diskMap[key] = &Disk{
  304. Cluster: cluster,
  305. Name: name,
  306. Breakdown: &ClusterCostsBreakdown{},
  307. Local: true,
  308. }
  309. }
  310. diskMap[key].BytesUsedAvgPtr = &bytesAvg
  311. }
  312. for _, result := range resLocalStorageUsedMax {
  313. cluster, err := result.GetString(env.GetPromClusterLabel())
  314. if err != nil {
  315. cluster = env.GetClusterID()
  316. }
  317. name, err := result.GetString("instance")
  318. if err != nil {
  319. log.Warnf("ClusterDisks: local storage data missing instance")
  320. continue
  321. }
  322. bytesMax := result.Values[0].Value
  323. key := DiskIdentifier{cluster, name}
  324. if _, ok := diskMap[key]; !ok {
  325. diskMap[key] = &Disk{
  326. Cluster: cluster,
  327. Name: name,
  328. Breakdown: &ClusterCostsBreakdown{},
  329. Local: true,
  330. }
  331. }
  332. diskMap[key].BytesUsedMaxPtr = &bytesMax
  333. }
  334. for _, result := range resLocalStorageBytes {
  335. cluster, err := result.GetString(env.GetPromClusterLabel())
  336. if err != nil {
  337. cluster = env.GetClusterID()
  338. }
  339. name, err := result.GetString("instance")
  340. if err != nil {
  341. log.Warnf("ClusterDisks: local storage data missing instance")
  342. continue
  343. }
  344. bytes := result.Values[0].Value
  345. key := DiskIdentifier{cluster, name}
  346. if _, ok := diskMap[key]; !ok {
  347. diskMap[key] = &Disk{
  348. Cluster: cluster,
  349. Name: name,
  350. Breakdown: &ClusterCostsBreakdown{},
  351. Local: true,
  352. }
  353. }
  354. diskMap[key].Bytes = bytes
  355. if bytes/1024/1024/1024 > maxLocalDiskSize {
  356. log.DedupedWarningf(5, "Deleting large root disk/localstorage disk from analysis")
  357. delete(diskMap, key)
  358. }
  359. }
  360. for _, result := range resLocalActiveMins {
  361. cluster, err := result.GetString(env.GetPromClusterLabel())
  362. if err != nil {
  363. cluster = env.GetClusterID()
  364. }
  365. name, err := result.GetString("node")
  366. if err != nil {
  367. log.DedupedWarningf(5, "ClusterDisks: local active mins data missing instance")
  368. continue
  369. }
  370. key := DiskIdentifier{cluster, name}
  371. if _, ok := diskMap[key]; !ok {
  372. log.DedupedWarningf(5, "ClusterDisks: local active mins for unidentified disk or disk deleted from analysis")
  373. continue
  374. }
  375. if len(result.Values) == 0 {
  376. continue
  377. }
  378. s := time.Unix(int64(result.Values[0].Timestamp), 0)
  379. e := time.Unix(int64(result.Values[len(result.Values)-1].Timestamp), 0)
  380. mins := e.Sub(s).Minutes()
  381. // TODO niko/assets if mins >= threshold, interpolate for missing data?
  382. diskMap[key].End = e
  383. diskMap[key].Start = s
  384. diskMap[key].Minutes = mins
  385. }
  386. var unTracedDiskLogData []DiskIdentifier
  387. //Iterating through Persistent Volume given by custom metrics kubecost_pv_info and assign the storage class if known and __unknown__ if not populated.
  388. for _, result := range resPVStorageClass {
  389. cluster, err := result.GetString(env.GetPromClusterLabel())
  390. if err != nil {
  391. cluster = env.GetClusterID()
  392. }
  393. name, _ := result.GetString("persistentvolume")
  394. key := DiskIdentifier{cluster, name}
  395. if _, ok := diskMap[key]; !ok {
  396. if !slices.Contains(unTracedDiskLogData, key) {
  397. unTracedDiskLogData = append(unTracedDiskLogData, key)
  398. }
  399. continue
  400. }
  401. if len(result.Values) == 0 {
  402. continue
  403. }
  404. storageClass, err := result.GetString("storageclass")
  405. if err != nil {
  406. diskMap[key].StorageClass = opencost.UnknownStorageClass
  407. } else {
  408. diskMap[key].StorageClass = storageClass
  409. }
  410. }
  411. // Logging the unidentified disk information outside the loop
  412. for _, unIdentifiedDisk := range unTracedDiskLogData {
  413. log.Warnf("ClusterDisks: Cluster %s has Storage Class information for unidentified disk %s or disk deleted from analysis", unIdentifiedDisk.Cluster, unIdentifiedDisk.Name)
  414. }
  415. for _, disk := range diskMap {
  416. // Apply all remaining RAM to Idle
  417. disk.Breakdown.Idle = 1.0 - (disk.Breakdown.System + disk.Breakdown.Other + disk.Breakdown.User)
  418. // Set provider Id to the name for reconciliation
  419. if disk.ProviderID == "" {
  420. disk.ProviderID = disk.Name
  421. }
  422. }
  423. return diskMap, nil
  424. }
  425. type NodeOverhead struct {
  426. CpuOverheadFraction float64
  427. RamOverheadFraction float64
  428. }
  429. type Node struct {
  430. Cluster string
  431. Name string
  432. ProviderID string
  433. NodeType string
  434. CPUCost float64
  435. CPUCores float64
  436. GPUCost float64
  437. GPUCount float64
  438. RAMCost float64
  439. RAMBytes float64
  440. Discount float64
  441. Preemptible bool
  442. CPUBreakdown *ClusterCostsBreakdown
  443. RAMBreakdown *ClusterCostsBreakdown
  444. Start time.Time
  445. End time.Time
  446. Minutes float64
  447. Labels map[string]string
  448. CostPerCPUHr float64
  449. CostPerRAMGiBHr float64
  450. CostPerGPUHr float64
  451. Overhead *NodeOverhead
  452. }
  453. // GKE lies about the number of cores e2 nodes have. This table
  454. // contains a mapping from node type -> actual CPU cores
  455. // for those cases.
  456. var partialCPUMap = map[string]float64{
  457. "e2-micro": 0.25,
  458. "e2-small": 0.5,
  459. "e2-medium": 1.0,
  460. }
  461. type NodeIdentifier struct {
  462. Cluster string
  463. Name string
  464. ProviderID string
  465. }
  466. type nodeIdentifierNoProviderID struct {
  467. Cluster string
  468. Name string
  469. }
  470. func costTimesMinuteAndCount(activeDataMap map[NodeIdentifier]activeData, costMap map[NodeIdentifier]float64, resourceCountMap map[nodeIdentifierNoProviderID]float64) {
  471. for k, v := range activeDataMap {
  472. keyNon := nodeIdentifierNoProviderID{
  473. Cluster: k.Cluster,
  474. Name: k.Name,
  475. }
  476. if cost, ok := costMap[k]; ok {
  477. minutes := v.minutes
  478. count := 1.0
  479. if c, ok := resourceCountMap[keyNon]; ok {
  480. count = c
  481. }
  482. costMap[k] = cost * (minutes / 60) * count
  483. }
  484. }
  485. }
  486. func costTimesMinute(activeDataMap map[NodeIdentifier]activeData, costMap map[NodeIdentifier]float64) {
  487. for k, v := range activeDataMap {
  488. if cost, ok := costMap[k]; ok {
  489. minutes := v.minutes
  490. costMap[k] = cost * (minutes / 60)
  491. }
  492. }
  493. }
  494. func ClusterNodes(cp models.Provider, client prometheus.Client, start, end time.Time) (map[NodeIdentifier]*Node, error) {
  495. // Start from the time "end", querying backwards
  496. t := end
  497. // minsPerResolution determines accuracy and resource use for the following
  498. // queries. Smaller values (higher resolution) result in better accuracy,
  499. // but more expensive queries, and vice-a-versa.
  500. resolution := env.GetETLResolution()
  501. //Ensuring if ETL_RESOLUTION_SECONDS is less than 60s default it to 1m
  502. var minsPerResolution int
  503. if minsPerResolution = int(resolution.Minutes()); int(resolution.Minutes()) == 0 {
  504. minsPerResolution = 1
  505. log.DedupedWarningf(3, "ClusterNodes(): Configured ETL resolution (%d seconds) is below the 60 seconds threshold. Overriding with 1 minute.", int(resolution.Seconds()))
  506. }
  507. durStr := timeutil.DurationString(end.Sub(start))
  508. if durStr == "" {
  509. return nil, fmt.Errorf("illegal duration value for %s", opencost.NewClosedWindow(start, end))
  510. }
  511. requiredCtx := prom.NewNamedContext(client, prom.ClusterContextName)
  512. optionalCtx := prom.NewNamedContext(client, prom.ClusterOptionalContextName)
  513. queryNodeCPUHourlyCost := fmt.Sprintf(`avg(avg_over_time(node_cpu_hourly_cost{%s}[%s])) by (%s, node, instance_type, provider_id)`, env.GetPromClusterFilter(), durStr, env.GetPromClusterLabel())
  514. queryNodeCPUCoresCapacity := fmt.Sprintf(`avg(avg_over_time(kube_node_status_capacity_cpu_cores{%s}[%s])) by (%s, node)`, env.GetPromClusterFilter(), durStr, env.GetPromClusterLabel())
  515. queryNodeCPUCoresAllocatable := fmt.Sprintf(`avg(avg_over_time(kube_node_status_allocatable_cpu_cores{%s}[%s])) by (%s, node)`, env.GetPromClusterFilter(), durStr, env.GetPromClusterLabel())
  516. queryNodeRAMHourlyCost := fmt.Sprintf(`avg(avg_over_time(node_ram_hourly_cost{%s}[%s])) by (%s, node, instance_type, provider_id) / 1024 / 1024 / 1024`, env.GetPromClusterFilter(), durStr, env.GetPromClusterLabel())
  517. queryNodeRAMBytesCapacity := fmt.Sprintf(`avg(avg_over_time(kube_node_status_capacity_memory_bytes{%s}[%s])) by (%s, node)`, env.GetPromClusterFilter(), durStr, env.GetPromClusterLabel())
  518. queryNodeRAMBytesAllocatable := fmt.Sprintf(`avg(avg_over_time(kube_node_status_allocatable_memory_bytes{%s}[%s])) by (%s, node)`, env.GetPromClusterFilter(), durStr, env.GetPromClusterLabel())
  519. queryNodeGPUCount := fmt.Sprintf(`avg(avg_over_time(node_gpu_count{%s}[%s])) by (%s, node, provider_id)`, env.GetPromClusterFilter(), durStr, env.GetPromClusterLabel())
  520. queryNodeGPUHourlyCost := fmt.Sprintf(`avg(avg_over_time(node_gpu_hourly_cost{%s}[%s])) by (%s, node, instance_type, provider_id)`, env.GetPromClusterFilter(), durStr, env.GetPromClusterLabel())
  521. queryNodeCPUModeTotal := fmt.Sprintf(`sum(rate(node_cpu_seconds_total{%s}[%s:%dm])) by (kubernetes_node, %s, mode)`, env.GetPromClusterFilter(), durStr, minsPerResolution, env.GetPromClusterLabel())
  522. queryNodeRAMSystemPct := fmt.Sprintf(`sum(sum_over_time(container_memory_working_set_bytes{container_name!="POD",container_name!="",namespace="kube-system", %s}[%s:%dm])) by (instance, %s) / avg(label_replace(sum(sum_over_time(kube_node_status_capacity_memory_bytes{%s}[%s:%dm])) by (node, %s), "instance", "$1", "node", "(.*)")) by (instance, %s)`, env.GetPromClusterFilter(), durStr, minsPerResolution, env.GetPromClusterLabel(), env.GetPromClusterFilter(), durStr, minsPerResolution, env.GetPromClusterLabel(), env.GetPromClusterLabel())
  523. queryNodeRAMUserPct := fmt.Sprintf(`sum(sum_over_time(container_memory_working_set_bytes{container_name!="POD",container_name!="",namespace!="kube-system", %s}[%s:%dm])) by (instance, %s) / avg(label_replace(sum(sum_over_time(kube_node_status_capacity_memory_bytes{%s}[%s:%dm])) by (node, %s), "instance", "$1", "node", "(.*)")) by (instance, %s)`, env.GetPromClusterFilter(), durStr, minsPerResolution, env.GetPromClusterLabel(), env.GetPromClusterFilter(), durStr, minsPerResolution, env.GetPromClusterLabel(), env.GetPromClusterLabel())
  524. queryActiveMins := fmt.Sprintf(`avg(node_total_hourly_cost{%s}) by (node, %s, provider_id)[%s:%dm]`, env.GetPromClusterFilter(), env.GetPromClusterLabel(), durStr, minsPerResolution)
  525. queryIsSpot := fmt.Sprintf(`avg_over_time(kubecost_node_is_spot{%s}[%s:%dm])`, env.GetPromClusterFilter(), durStr, minsPerResolution)
  526. queryLabels := fmt.Sprintf(`count_over_time(kube_node_labels{%s}[%s:%dm])`, env.GetPromClusterFilter(), durStr, minsPerResolution)
  527. // Return errors if these fail
  528. resChNodeCPUHourlyCost := requiredCtx.QueryAtTime(queryNodeCPUHourlyCost, t)
  529. resChNodeCPUCoresCapacity := requiredCtx.QueryAtTime(queryNodeCPUCoresCapacity, t)
  530. resChNodeCPUCoresAllocatable := requiredCtx.QueryAtTime(queryNodeCPUCoresAllocatable, t)
  531. resChNodeRAMHourlyCost := requiredCtx.QueryAtTime(queryNodeRAMHourlyCost, t)
  532. resChNodeRAMBytesCapacity := requiredCtx.QueryAtTime(queryNodeRAMBytesCapacity, t)
  533. resChNodeRAMBytesAllocatable := requiredCtx.QueryAtTime(queryNodeRAMBytesAllocatable, t)
  534. resChNodeGPUCount := requiredCtx.QueryAtTime(queryNodeGPUCount, t)
  535. resChNodeGPUHourlyCost := requiredCtx.QueryAtTime(queryNodeGPUHourlyCost, t)
  536. resChActiveMins := requiredCtx.QueryAtTime(queryActiveMins, t)
  537. resChIsSpot := requiredCtx.QueryAtTime(queryIsSpot, t)
  538. // Do not return errors if these fail, but log warnings
  539. resChNodeCPUModeTotal := optionalCtx.QueryAtTime(queryNodeCPUModeTotal, t)
  540. resChNodeRAMSystemPct := optionalCtx.QueryAtTime(queryNodeRAMSystemPct, t)
  541. resChNodeRAMUserPct := optionalCtx.QueryAtTime(queryNodeRAMUserPct, t)
  542. resChLabels := optionalCtx.QueryAtTime(queryLabels, t)
  543. resNodeCPUHourlyCost, _ := resChNodeCPUHourlyCost.Await()
  544. resNodeCPUCoresCapacity, _ := resChNodeCPUCoresCapacity.Await()
  545. resNodeCPUCoresAllocatable, _ := resChNodeCPUCoresAllocatable.Await()
  546. resNodeGPUCount, _ := resChNodeGPUCount.Await()
  547. resNodeGPUHourlyCost, _ := resChNodeGPUHourlyCost.Await()
  548. resNodeRAMHourlyCost, _ := resChNodeRAMHourlyCost.Await()
  549. resNodeRAMBytesCapacity, _ := resChNodeRAMBytesCapacity.Await()
  550. resNodeRAMBytesAllocatable, _ := resChNodeRAMBytesAllocatable.Await()
  551. resIsSpot, _ := resChIsSpot.Await()
  552. resNodeCPUModeTotal, _ := resChNodeCPUModeTotal.Await()
  553. resNodeRAMSystemPct, _ := resChNodeRAMSystemPct.Await()
  554. resNodeRAMUserPct, _ := resChNodeRAMUserPct.Await()
  555. resActiveMins, _ := resChActiveMins.Await()
  556. resLabels, _ := resChLabels.Await()
  557. if optionalCtx.HasErrors() {
  558. for _, err := range optionalCtx.Errors() {
  559. log.Warnf("ClusterNodes: %s", err)
  560. }
  561. }
  562. if requiredCtx.HasErrors() {
  563. for _, err := range requiredCtx.Errors() {
  564. log.Errorf("ClusterNodes: %s", err)
  565. }
  566. return nil, requiredCtx.ErrorCollection()
  567. }
  568. activeDataMap := buildActiveDataMap(resActiveMins, resolution, opencost.NewClosedWindow(start, end))
  569. gpuCountMap := buildGPUCountMap(resNodeGPUCount)
  570. preemptibleMap := buildPreemptibleMap(resIsSpot)
  571. cpuCostMap, clusterAndNameToType1 := buildCPUCostMap(resNodeCPUHourlyCost, cp, preemptibleMap)
  572. ramCostMap, clusterAndNameToType2 := buildRAMCostMap(resNodeRAMHourlyCost, cp, preemptibleMap)
  573. gpuCostMap, clusterAndNameToType3 := buildGPUCostMap(resNodeGPUHourlyCost, gpuCountMap, cp, preemptibleMap)
  574. clusterAndNameToTypeIntermediate := mergeTypeMaps(clusterAndNameToType1, clusterAndNameToType2)
  575. clusterAndNameToType := mergeTypeMaps(clusterAndNameToTypeIntermediate, clusterAndNameToType3)
  576. cpuCoresCapacityMap := buildCPUCoresMap(resNodeCPUCoresCapacity)
  577. ramBytesCapacityMap := buildRAMBytesMap(resNodeRAMBytesCapacity)
  578. cpuCoresAllocatableMap := buildCPUCoresMap(resNodeCPUCoresAllocatable)
  579. ramBytesAllocatableMap := buildRAMBytesMap(resNodeRAMBytesAllocatable)
  580. overheadMap := buildOverheadMap(ramBytesCapacityMap, ramBytesAllocatableMap, cpuCoresCapacityMap, cpuCoresAllocatableMap)
  581. ramUserPctMap := buildRAMUserPctMap(resNodeRAMUserPct)
  582. ramSystemPctMap := buildRAMSystemPctMap(resNodeRAMSystemPct)
  583. cpuBreakdownMap := buildCPUBreakdownMap(resNodeCPUModeTotal)
  584. labelsMap := buildLabelsMap(resLabels)
  585. costTimesMinuteAndCount(activeDataMap, cpuCostMap, cpuCoresCapacityMap)
  586. costTimesMinuteAndCount(activeDataMap, ramCostMap, ramBytesCapacityMap)
  587. costTimesMinute(activeDataMap, gpuCostMap) // there's no need to do a weird "nodeIdentifierNoProviderID" type match since gpuCounts have a providerID
  588. nodeMap := buildNodeMap(
  589. cpuCostMap, ramCostMap, gpuCostMap, gpuCountMap,
  590. cpuCoresCapacityMap, ramBytesCapacityMap, ramUserPctMap,
  591. ramSystemPctMap,
  592. cpuBreakdownMap,
  593. activeDataMap,
  594. preemptibleMap,
  595. labelsMap,
  596. clusterAndNameToType,
  597. resolution,
  598. overheadMap,
  599. )
  600. c, err := cp.GetConfig()
  601. if err != nil {
  602. return nil, err
  603. }
  604. discount, err := ParsePercentString(c.Discount)
  605. if err != nil {
  606. return nil, err
  607. }
  608. negotiatedDiscount, err := ParsePercentString(c.NegotiatedDiscount)
  609. if err != nil {
  610. return nil, err
  611. }
  612. for _, node := range nodeMap {
  613. // TODO take GKE Reserved Instances into account
  614. node.Discount = cp.CombinedDiscountForNode(node.NodeType, node.Preemptible, discount, negotiatedDiscount)
  615. // Apply all remaining resources to Idle
  616. node.CPUBreakdown.Idle = 1.0 - (node.CPUBreakdown.System + node.CPUBreakdown.Other + node.CPUBreakdown.User)
  617. node.RAMBreakdown.Idle = 1.0 - (node.RAMBreakdown.System + node.RAMBreakdown.Other + node.RAMBreakdown.User)
  618. }
  619. return nodeMap, nil
  620. }
  621. type LoadBalancerIdentifier struct {
  622. Cluster string
  623. Namespace string
  624. Name string
  625. }
  626. type LoadBalancer struct {
  627. Cluster string
  628. Namespace string
  629. Name string
  630. ProviderID string
  631. Cost float64
  632. Start time.Time
  633. End time.Time
  634. Minutes float64
  635. Private bool
  636. Ip string
  637. }
  638. func ClusterLoadBalancers(client prometheus.Client, start, end time.Time) (map[LoadBalancerIdentifier]*LoadBalancer, error) {
  639. // Start from the time "end", querying backwards
  640. t := end
  641. // minsPerResolution determines accuracy and resource use for the following
  642. // queries. Smaller values (higher resolution) result in better accuracy,
  643. // but more expensive queries, and vice-a-versa.
  644. resolution := env.GetETLResolution()
  645. //Ensuring if ETL_RESOLUTION_SECONDS is less than 60s default it to 1m
  646. var minsPerResolution int
  647. if minsPerResolution = int(resolution.Minutes()); int(resolution.Minutes()) == 0 {
  648. minsPerResolution = 1
  649. log.DedupedWarningf(3, "ClusterLoadBalancers(): Configured ETL resolution (%d seconds) is below the 60 seconds threshold. Overriding with 1 minute.", int(resolution.Seconds()))
  650. }
  651. // Query for the duration between start and end
  652. durStr := timeutil.DurationString(end.Sub(start))
  653. if durStr == "" {
  654. return nil, fmt.Errorf("illegal duration value for %s", opencost.NewClosedWindow(start, end))
  655. }
  656. ctx := prom.NewNamedContext(client, prom.ClusterContextName)
  657. queryLBCost := fmt.Sprintf(`avg(avg_over_time(kubecost_load_balancer_cost{%s}[%s])) by (namespace, service_name, %s, ingress_ip)`, env.GetPromClusterFilter(), durStr, env.GetPromClusterLabel())
  658. queryActiveMins := fmt.Sprintf(`avg(kubecost_load_balancer_cost{%s}) by (namespace, service_name, %s, ingress_ip)[%s:%dm]`, env.GetPromClusterFilter(), env.GetPromClusterLabel(), durStr, minsPerResolution)
  659. resChLBCost := ctx.QueryAtTime(queryLBCost, t)
  660. resChActiveMins := ctx.QueryAtTime(queryActiveMins, t)
  661. resLBCost, _ := resChLBCost.Await()
  662. resActiveMins, _ := resChActiveMins.Await()
  663. if ctx.HasErrors() {
  664. return nil, ctx.ErrorCollection()
  665. }
  666. loadBalancerMap := make(map[LoadBalancerIdentifier]*LoadBalancer, len(resActiveMins))
  667. for _, result := range resActiveMins {
  668. cluster, err := result.GetString(env.GetPromClusterLabel())
  669. if err != nil {
  670. cluster = env.GetClusterID()
  671. }
  672. namespace, err := result.GetString("namespace")
  673. if err != nil {
  674. log.Warnf("ClusterLoadBalancers: LB cost data missing namespace")
  675. continue
  676. }
  677. name, err := result.GetString("service_name")
  678. if err != nil {
  679. log.Warnf("ClusterLoadBalancers: LB cost data missing service_name")
  680. continue
  681. }
  682. providerID, err := result.GetString("ingress_ip")
  683. if err != nil {
  684. log.DedupedWarningf(5, "ClusterLoadBalancers: LB cost data missing ingress_ip")
  685. providerID = ""
  686. }
  687. key := LoadBalancerIdentifier{
  688. Cluster: cluster,
  689. Namespace: namespace,
  690. Name: name,
  691. }
  692. // Skip if there are no data
  693. if len(result.Values) == 0 {
  694. continue
  695. }
  696. // Add load balancer to the set of load balancers
  697. if _, ok := loadBalancerMap[key]; !ok {
  698. loadBalancerMap[key] = &LoadBalancer{
  699. Cluster: cluster,
  700. Namespace: namespace,
  701. Name: fmt.Sprintf("%s/%s", namespace, name), // TODO:ETL this is kept for backwards-compatibility, but not good
  702. ProviderID: provider.ParseLBID(providerID),
  703. }
  704. }
  705. // Append start, end, and minutes. This should come before all other data.
  706. s := time.Unix(int64(result.Values[0].Timestamp), 0)
  707. e := time.Unix(int64(result.Values[len(result.Values)-1].Timestamp), 0)
  708. loadBalancerMap[key].Start = s
  709. loadBalancerMap[key].End = e
  710. loadBalancerMap[key].Minutes = e.Sub(s).Minutes()
  711. // Fill in Provider ID if it is available and missing in the loadBalancerMap
  712. // Prevents there from being a duplicate LoadBalancers on the same day
  713. if providerID != "" && loadBalancerMap[key].ProviderID == "" {
  714. loadBalancerMap[key].ProviderID = providerID
  715. }
  716. }
  717. for _, result := range resLBCost {
  718. cluster, err := result.GetString(env.GetPromClusterLabel())
  719. if err != nil {
  720. cluster = env.GetClusterID()
  721. }
  722. namespace, err := result.GetString("namespace")
  723. if err != nil {
  724. log.Warnf("ClusterLoadBalancers: LB cost data missing namespace")
  725. continue
  726. }
  727. name, err := result.GetString("service_name")
  728. if err != nil {
  729. log.Warnf("ClusterLoadBalancers: LB cost data missing service_name")
  730. continue
  731. }
  732. providerID, err := result.GetString("ingress_ip")
  733. if err != nil {
  734. log.DedupedWarningf(5, "ClusterLoadBalancers: LB cost data missing ingress_ip")
  735. // only update asset cost when an actual IP was returned
  736. continue
  737. }
  738. key := LoadBalancerIdentifier{
  739. Cluster: cluster,
  740. Namespace: namespace,
  741. Name: name,
  742. }
  743. // Apply cost as price-per-hour * hours
  744. if lb, ok := loadBalancerMap[key]; ok {
  745. lbPricePerHr := result.Values[0].Value
  746. // interpolate any missing data
  747. resultMins := lb.Minutes
  748. if resultMins > 0 {
  749. scaleFactor := (resultMins + resolution.Minutes()) / resultMins
  750. hrs := (lb.Minutes * scaleFactor) / 60.0
  751. lb.Cost += lbPricePerHr * hrs
  752. } else {
  753. log.DedupedWarningf(20, "ClusterLoadBalancers: found zero minutes for key: %v", key)
  754. }
  755. if lb.Ip != "" && lb.Ip != providerID {
  756. log.DedupedWarningf(5, "ClusterLoadBalancers: multiple IPs per load balancer not supported, using most recent IP")
  757. }
  758. lb.Ip = providerID
  759. lb.Private = privateIPCheck(providerID)
  760. } else {
  761. log.DedupedWarningf(20, "ClusterLoadBalancers: found minutes for key that does not exist: %v", key)
  762. }
  763. }
  764. return loadBalancerMap, nil
  765. }
  766. // Check if an ip is private.
  767. func privateIPCheck(ip string) bool {
  768. ipAddress := net.ParseIP(ip)
  769. return ipAddress.IsPrivate()
  770. }
  771. // ComputeClusterCosts gives the cumulative and monthly-rate cluster costs over a window of time for all clusters.
  772. func (a *Accesses) ComputeClusterCosts(client prometheus.Client, provider models.Provider, window, offset time.Duration, withBreakdown bool) (map[string]*ClusterCosts, error) {
  773. if window < 10*time.Minute {
  774. return nil, fmt.Errorf("minimum window of 10m required; got %s", window)
  775. }
  776. // Compute number of minutes in the full interval, for use interpolating missed scrapes or scaling missing data
  777. start, end := timeutil.ParseTimeRange(window, offset)
  778. mins := end.Sub(start).Minutes()
  779. // minsPerResolution determines accuracy and resource use for the following
  780. // queries. Smaller values (higher resolution) result in better accuracy,
  781. // but more expensive queries, and vice-a-versa.
  782. resolution := env.GetETLResolution()
  783. //Ensuring if ETL_RESOLUTION_SECONDS is less than 60s default it to 1m
  784. var minsPerResolution int
  785. if minsPerResolution = int(resolution.Minutes()); int(resolution.Minutes()) < 1 {
  786. minsPerResolution = 1
  787. log.DedupedWarningf(3, "ComputeClusterCosts(): Configured ETL resolution (%d seconds) is below the 60 seconds threshold. Overriding with 1 minute.", int(resolution.Seconds()))
  788. }
  789. windowStr := timeutil.DurationString(window)
  790. // hourlyToCumulative is a scaling factor that, when multiplied by an hourly
  791. // value, converts it to a cumulative value; i.e.
  792. // [$/hr] * [min/res]*[hr/min] = [$/res]
  793. hourlyToCumulative := float64(minsPerResolution) * (1.0 / 60.0)
  794. const fmtQueryDataCount = `
  795. count_over_time(sum(kube_node_status_capacity_cpu_cores{%s}) by (%s)[%s:%dm]%s) * %d
  796. `
  797. const fmtQueryTotalGPU = `
  798. sum(
  799. sum_over_time(node_gpu_hourly_cost{%s}[%s:%dm]%s) * %f
  800. ) by (%s)
  801. `
  802. const fmtQueryTotalCPU = `
  803. sum(
  804. sum_over_time(avg(kube_node_status_capacity_cpu_cores{%s}) by (node, %s)[%s:%dm]%s) *
  805. avg(avg_over_time(node_cpu_hourly_cost{%s}[%s:%dm]%s)) by (node, %s) * %f
  806. ) by (%s)
  807. `
  808. const fmtQueryTotalRAM = `
  809. sum(
  810. sum_over_time(avg(kube_node_status_capacity_memory_bytes{%s}) by (node, %s)[%s:%dm]%s) / 1024 / 1024 / 1024 *
  811. avg(avg_over_time(node_ram_hourly_cost{%s}[%s:%dm]%s)) by (node, %s) * %f
  812. ) by (%s)
  813. `
  814. const fmtQueryTotalStorage = `
  815. sum(
  816. sum_over_time(avg(kube_persistentvolume_capacity_bytes{%s}) by (persistentvolume, %s)[%s:%dm]%s) / 1024 / 1024 / 1024 *
  817. avg(avg_over_time(pv_hourly_cost{%s}[%s:%dm]%s)) by (persistentvolume, %s) * %f
  818. ) by (%s)
  819. `
  820. const fmtQueryCPUModePct = `
  821. sum(rate(node_cpu_seconds_total{%s}[%s]%s)) by (%s, mode) / ignoring(mode)
  822. group_left sum(rate(node_cpu_seconds_total{%s}[%s]%s)) by (%s)
  823. `
  824. const fmtQueryRAMSystemPct = `
  825. sum(sum_over_time(container_memory_usage_bytes{container_name!="",namespace="kube-system", %s}[%s:%dm]%s)) by (%s)
  826. / sum(sum_over_time(kube_node_status_capacity_memory_bytes{%s}[%s:%dm]%s)) by (%s)
  827. `
  828. const fmtQueryRAMUserPct = `
  829. sum(sum_over_time(kubecost_cluster_memory_working_set_bytes{%s}[%s:%dm]%s)) by (%s)
  830. / sum(sum_over_time(kube_node_status_capacity_memory_bytes{%s}[%s:%dm]%s)) by (%s)
  831. `
  832. // TODO niko/clustercost metric "kubelet_volume_stats_used_bytes" was deprecated in 1.12, then seems to have come back in 1.17
  833. // const fmtQueryPVStorageUsePct = `(sum(kube_persistentvolumeclaim_info) by (persistentvolumeclaim, storageclass,namespace) + on (persistentvolumeclaim,namespace)
  834. // group_right(storageclass) sum(kubelet_volume_stats_used_bytes) by (persistentvolumeclaim,namespace))`
  835. queryUsedLocalStorage := provider.GetLocalStorageQuery(window, offset, false, true)
  836. queryTotalLocalStorage := provider.GetLocalStorageQuery(window, offset, false, false)
  837. if queryTotalLocalStorage != "" {
  838. queryTotalLocalStorage = fmt.Sprintf(" + %s", queryTotalLocalStorage)
  839. }
  840. fmtOffset := timeutil.DurationToPromOffsetString(offset)
  841. queryDataCount := fmt.Sprintf(fmtQueryDataCount, env.GetPromClusterFilter(), env.GetPromClusterLabel(), windowStr, minsPerResolution, fmtOffset, minsPerResolution)
  842. queryTotalGPU := fmt.Sprintf(fmtQueryTotalGPU, env.GetPromClusterFilter(), windowStr, minsPerResolution, fmtOffset, hourlyToCumulative, env.GetPromClusterLabel())
  843. queryTotalCPU := fmt.Sprintf(fmtQueryTotalCPU, env.GetPromClusterFilter(), env.GetPromClusterLabel(), windowStr, minsPerResolution, fmtOffset, env.GetPromClusterFilter(), windowStr, minsPerResolution, fmtOffset, env.GetPromClusterLabel(), hourlyToCumulative, env.GetPromClusterLabel())
  844. queryTotalRAM := fmt.Sprintf(fmtQueryTotalRAM, env.GetPromClusterFilter(), env.GetPromClusterLabel(), windowStr, minsPerResolution, fmtOffset, env.GetPromClusterFilter(), windowStr, minsPerResolution, fmtOffset, env.GetPromClusterLabel(), hourlyToCumulative, env.GetPromClusterLabel())
  845. queryTotalStorage := fmt.Sprintf(fmtQueryTotalStorage, env.GetPromClusterFilter(), env.GetPromClusterLabel(), windowStr, minsPerResolution, fmtOffset, env.GetPromClusterFilter(), windowStr, minsPerResolution, fmtOffset, env.GetPromClusterLabel(), hourlyToCumulative, env.GetPromClusterLabel())
  846. ctx := prom.NewNamedContext(client, prom.ClusterContextName)
  847. resChs := ctx.QueryAll(
  848. queryDataCount,
  849. queryTotalGPU,
  850. queryTotalCPU,
  851. queryTotalRAM,
  852. queryTotalStorage,
  853. )
  854. // Only submit the local storage query if it is valid. Otherwise Prometheus
  855. // will return errors. Always append something to resChs, regardless, to
  856. // maintain indexing.
  857. if queryTotalLocalStorage != "" {
  858. resChs = append(resChs, ctx.Query(queryTotalLocalStorage))
  859. } else {
  860. resChs = append(resChs, nil)
  861. }
  862. if withBreakdown {
  863. queryCPUModePct := fmt.Sprintf(fmtQueryCPUModePct, env.GetPromClusterFilter(), windowStr, fmtOffset, env.GetPromClusterLabel(), env.GetPromClusterFilter(), windowStr, fmtOffset, env.GetPromClusterLabel())
  864. queryRAMSystemPct := fmt.Sprintf(fmtQueryRAMSystemPct, env.GetPromClusterFilter(), windowStr, minsPerResolution, fmtOffset, env.GetPromClusterLabel(), env.GetPromClusterFilter(), windowStr, minsPerResolution, fmtOffset, env.GetPromClusterLabel())
  865. queryRAMUserPct := fmt.Sprintf(fmtQueryRAMUserPct, env.GetPromClusterFilter(), windowStr, minsPerResolution, fmtOffset, env.GetPromClusterLabel(), env.GetPromClusterFilter(), windowStr, minsPerResolution, fmtOffset, env.GetPromClusterLabel())
  866. bdResChs := ctx.QueryAll(
  867. queryCPUModePct,
  868. queryRAMSystemPct,
  869. queryRAMUserPct,
  870. )
  871. // Only submit the local storage query if it is valid. Otherwise Prometheus
  872. // will return errors. Always append something to resChs, regardless, to
  873. // maintain indexing.
  874. if queryUsedLocalStorage != "" {
  875. bdResChs = append(bdResChs, ctx.Query(queryUsedLocalStorage))
  876. } else {
  877. bdResChs = append(bdResChs, nil)
  878. }
  879. resChs = append(resChs, bdResChs...)
  880. }
  881. resDataCount, _ := resChs[0].Await()
  882. resTotalGPU, _ := resChs[1].Await()
  883. resTotalCPU, _ := resChs[2].Await()
  884. resTotalRAM, _ := resChs[3].Await()
  885. resTotalStorage, _ := resChs[4].Await()
  886. if ctx.HasErrors() {
  887. return nil, ctx.ErrorCollection()
  888. }
  889. defaultClusterID := env.GetClusterID()
  890. dataMinsByCluster := map[string]float64{}
  891. for _, result := range resDataCount {
  892. clusterID, _ := result.GetString(env.GetPromClusterLabel())
  893. if clusterID == "" {
  894. clusterID = defaultClusterID
  895. }
  896. dataMins := mins
  897. if len(result.Values) > 0 {
  898. dataMins = result.Values[0].Value
  899. } else {
  900. log.Warnf("Cluster cost data count returned no results for cluster %s", clusterID)
  901. }
  902. dataMinsByCluster[clusterID] = dataMins
  903. }
  904. // Determine combined discount
  905. discount, customDiscount := 0.0, 0.0
  906. c, err := a.CloudProvider.GetConfig()
  907. if err == nil {
  908. discount, err = ParsePercentString(c.Discount)
  909. if err != nil {
  910. discount = 0.0
  911. }
  912. customDiscount, err = ParsePercentString(c.NegotiatedDiscount)
  913. if err != nil {
  914. customDiscount = 0.0
  915. }
  916. }
  917. // Intermediate structure storing mapping of [clusterID][type ∈ {cpu, ram, storage, total}]=cost
  918. costData := make(map[string]map[string]float64)
  919. // Helper function to iterate over Prom query results, parsing the raw values into
  920. // the intermediate costData structure.
  921. setCostsFromResults := func(costData map[string]map[string]float64, results []*prom.QueryResult, name string, discount float64, customDiscount float64) {
  922. for _, result := range results {
  923. clusterID, _ := result.GetString(env.GetPromClusterLabel())
  924. if clusterID == "" {
  925. clusterID = defaultClusterID
  926. }
  927. if _, ok := costData[clusterID]; !ok {
  928. costData[clusterID] = map[string]float64{}
  929. }
  930. if len(result.Values) > 0 {
  931. costData[clusterID][name] += result.Values[0].Value * (1.0 - discount) * (1.0 - customDiscount)
  932. costData[clusterID]["total"] += result.Values[0].Value * (1.0 - discount) * (1.0 - customDiscount)
  933. }
  934. }
  935. }
  936. // Apply both sustained use and custom discounts to RAM and CPU
  937. setCostsFromResults(costData, resTotalCPU, "cpu", discount, customDiscount)
  938. setCostsFromResults(costData, resTotalRAM, "ram", discount, customDiscount)
  939. // Apply only custom discount to GPU and storage
  940. setCostsFromResults(costData, resTotalGPU, "gpu", 0.0, customDiscount)
  941. setCostsFromResults(costData, resTotalStorage, "storage", 0.0, customDiscount)
  942. if queryTotalLocalStorage != "" {
  943. resTotalLocalStorage, err := resChs[5].Await()
  944. if err != nil {
  945. return nil, err
  946. }
  947. setCostsFromResults(costData, resTotalLocalStorage, "localstorage", 0.0, customDiscount)
  948. }
  949. cpuBreakdownMap := map[string]*ClusterCostsBreakdown{}
  950. ramBreakdownMap := map[string]*ClusterCostsBreakdown{}
  951. pvUsedCostMap := map[string]float64{}
  952. if withBreakdown {
  953. resCPUModePct, _ := resChs[6].Await()
  954. resRAMSystemPct, _ := resChs[7].Await()
  955. resRAMUserPct, _ := resChs[8].Await()
  956. if ctx.HasErrors() {
  957. return nil, ctx.ErrorCollection()
  958. }
  959. for _, result := range resCPUModePct {
  960. clusterID, _ := result.GetString(env.GetPromClusterLabel())
  961. if clusterID == "" {
  962. clusterID = defaultClusterID
  963. }
  964. if _, ok := cpuBreakdownMap[clusterID]; !ok {
  965. cpuBreakdownMap[clusterID] = &ClusterCostsBreakdown{}
  966. }
  967. cpuBD := cpuBreakdownMap[clusterID]
  968. mode, err := result.GetString("mode")
  969. if err != nil {
  970. log.Warnf("ComputeClusterCosts: unable to read CPU mode: %s", err)
  971. mode = "other"
  972. }
  973. switch mode {
  974. case "idle":
  975. cpuBD.Idle += result.Values[0].Value
  976. case "system":
  977. cpuBD.System += result.Values[0].Value
  978. case "user":
  979. cpuBD.User += result.Values[0].Value
  980. default:
  981. cpuBD.Other += result.Values[0].Value
  982. }
  983. }
  984. for _, result := range resRAMSystemPct {
  985. clusterID, _ := result.GetString(env.GetPromClusterLabel())
  986. if clusterID == "" {
  987. clusterID = defaultClusterID
  988. }
  989. if _, ok := ramBreakdownMap[clusterID]; !ok {
  990. ramBreakdownMap[clusterID] = &ClusterCostsBreakdown{}
  991. }
  992. ramBD := ramBreakdownMap[clusterID]
  993. ramBD.System += result.Values[0].Value
  994. }
  995. for _, result := range resRAMUserPct {
  996. clusterID, _ := result.GetString(env.GetPromClusterLabel())
  997. if clusterID == "" {
  998. clusterID = defaultClusterID
  999. }
  1000. if _, ok := ramBreakdownMap[clusterID]; !ok {
  1001. ramBreakdownMap[clusterID] = &ClusterCostsBreakdown{}
  1002. }
  1003. ramBD := ramBreakdownMap[clusterID]
  1004. ramBD.User += result.Values[0].Value
  1005. }
  1006. for _, ramBD := range ramBreakdownMap {
  1007. remaining := 1.0
  1008. remaining -= ramBD.Other
  1009. remaining -= ramBD.System
  1010. remaining -= ramBD.User
  1011. ramBD.Idle = remaining
  1012. }
  1013. if queryUsedLocalStorage != "" {
  1014. resUsedLocalStorage, err := resChs[9].Await()
  1015. if err != nil {
  1016. return nil, err
  1017. }
  1018. for _, result := range resUsedLocalStorage {
  1019. clusterID, _ := result.GetString(env.GetPromClusterLabel())
  1020. if clusterID == "" {
  1021. clusterID = defaultClusterID
  1022. }
  1023. pvUsedCostMap[clusterID] += result.Values[0].Value
  1024. }
  1025. }
  1026. }
  1027. if ctx.HasErrors() {
  1028. for _, err := range ctx.Errors() {
  1029. log.Errorf("ComputeClusterCosts: %s", err)
  1030. }
  1031. return nil, ctx.ErrorCollection()
  1032. }
  1033. // Convert intermediate structure to Costs instances
  1034. costsByCluster := map[string]*ClusterCosts{}
  1035. for id, cd := range costData {
  1036. dataMins, ok := dataMinsByCluster[id]
  1037. if !ok {
  1038. dataMins = mins
  1039. log.Warnf("Cluster cost data count not found for cluster %s", id)
  1040. }
  1041. costs, err := NewClusterCostsFromCumulative(cd["cpu"], cd["gpu"], cd["ram"], cd["storage"]+cd["localstorage"], window, offset, dataMins/timeutil.MinsPerHour)
  1042. if err != nil {
  1043. log.Warnf("Failed to parse cluster costs on %s (%s) from cumulative data: %+v", window, offset, cd)
  1044. return nil, err
  1045. }
  1046. if cpuBD, ok := cpuBreakdownMap[id]; ok {
  1047. costs.CPUBreakdown = cpuBD
  1048. }
  1049. if ramBD, ok := ramBreakdownMap[id]; ok {
  1050. costs.RAMBreakdown = ramBD
  1051. }
  1052. costs.StorageBreakdown = &ClusterCostsBreakdown{}
  1053. if pvUC, ok := pvUsedCostMap[id]; ok {
  1054. costs.StorageBreakdown.Idle = (costs.StorageCumulative - pvUC) / costs.StorageCumulative
  1055. costs.StorageBreakdown.User = pvUC / costs.StorageCumulative
  1056. }
  1057. costs.DataMinutes = dataMins
  1058. costsByCluster[id] = costs
  1059. }
  1060. return costsByCluster, nil
  1061. }
  1062. type Totals struct {
  1063. TotalCost [][]string `json:"totalcost"`
  1064. CPUCost [][]string `json:"cpucost"`
  1065. MemCost [][]string `json:"memcost"`
  1066. StorageCost [][]string `json:"storageCost"`
  1067. }
  1068. func resultToTotals(qrs []*prom.QueryResult) ([][]string, error) {
  1069. if len(qrs) == 0 {
  1070. return [][]string{}, fmt.Errorf("Not enough data available in the selected time range")
  1071. }
  1072. result := qrs[0]
  1073. totals := [][]string{}
  1074. for _, value := range result.Values {
  1075. d0 := fmt.Sprintf("%f", value.Timestamp)
  1076. d1 := fmt.Sprintf("%f", value.Value)
  1077. toAppend := []string{
  1078. d0,
  1079. d1,
  1080. }
  1081. totals = append(totals, toAppend)
  1082. }
  1083. return totals, nil
  1084. }
  1085. // ClusterCostsOverTime gives the full cluster costs over time
  1086. func ClusterCostsOverTime(cli prometheus.Client, provider models.Provider, startString, endString string, window, offset time.Duration) (*Totals, error) {
  1087. localStorageQuery := provider.GetLocalStorageQuery(window, offset, true, false)
  1088. if localStorageQuery != "" {
  1089. localStorageQuery = fmt.Sprintf("+ %s", localStorageQuery)
  1090. }
  1091. layout := "2006-01-02T15:04:05.000Z"
  1092. start, err := time.Parse(layout, startString)
  1093. if err != nil {
  1094. log.Errorf("Error parsing time %s. Error: %s", startString, err.Error())
  1095. return nil, err
  1096. }
  1097. end, err := time.Parse(layout, endString)
  1098. if err != nil {
  1099. log.Errorf("Error parsing time %s. Error: %s", endString, err.Error())
  1100. return nil, err
  1101. }
  1102. fmtWindow := timeutil.DurationString(window)
  1103. if fmtWindow == "" {
  1104. err := fmt.Errorf("window value invalid or missing")
  1105. log.Errorf("Error parsing time %v. Error: %s", window, err.Error())
  1106. return nil, err
  1107. }
  1108. fmtOffset := timeutil.DurationToPromOffsetString(offset)
  1109. qCores := fmt.Sprintf(queryClusterCores, env.GetPromClusterFilter(), fmtWindow, fmtOffset, env.GetPromClusterLabel(), env.GetPromClusterFilter(), fmtWindow, fmtOffset, env.GetPromClusterLabel(), env.GetPromClusterFilter(), fmtWindow, fmtOffset, env.GetPromClusterLabel(), env.GetPromClusterLabel())
  1110. qRAM := fmt.Sprintf(queryClusterRAM, env.GetPromClusterFilter(), fmtWindow, fmtOffset, env.GetPromClusterLabel(), env.GetPromClusterFilter(), fmtWindow, fmtOffset, env.GetPromClusterLabel(), env.GetPromClusterLabel())
  1111. qStorage := fmt.Sprintf(queryStorage, env.GetPromClusterFilter(), fmtWindow, fmtOffset, env.GetPromClusterLabel(), env.GetPromClusterFilter(), fmtWindow, fmtOffset, env.GetPromClusterLabel(), env.GetPromClusterLabel(), localStorageQuery)
  1112. qTotal := fmt.Sprintf(queryTotal, env.GetPromClusterFilter(), env.GetPromClusterLabel(), env.GetPromClusterFilter(), env.GetPromClusterLabel(), env.GetPromClusterFilter(), env.GetPromClusterLabel(), env.GetPromClusterLabel(), localStorageQuery)
  1113. ctx := prom.NewNamedContext(cli, prom.ClusterContextName)
  1114. resChClusterCores := ctx.QueryRange(qCores, start, end, window)
  1115. resChClusterRAM := ctx.QueryRange(qRAM, start, end, window)
  1116. resChStorage := ctx.QueryRange(qStorage, start, end, window)
  1117. resChTotal := ctx.QueryRange(qTotal, start, end, window)
  1118. resultClusterCores, err := resChClusterCores.Await()
  1119. if err != nil {
  1120. return nil, err
  1121. }
  1122. resultClusterRAM, err := resChClusterRAM.Await()
  1123. if err != nil {
  1124. return nil, err
  1125. }
  1126. resultStorage, err := resChStorage.Await()
  1127. if err != nil {
  1128. return nil, err
  1129. }
  1130. resultTotal, err := resChTotal.Await()
  1131. if err != nil {
  1132. return nil, err
  1133. }
  1134. coreTotal, err := resultToTotals(resultClusterCores)
  1135. if err != nil {
  1136. log.Infof("[Warning] ClusterCostsOverTime: no cpu data: %s", err)
  1137. return nil, err
  1138. }
  1139. ramTotal, err := resultToTotals(resultClusterRAM)
  1140. if err != nil {
  1141. log.Infof("[Warning] ClusterCostsOverTime: no ram data: %s", err)
  1142. return nil, err
  1143. }
  1144. storageTotal, err := resultToTotals(resultStorage)
  1145. if err != nil {
  1146. log.Infof("[Warning] ClusterCostsOverTime: no storage data: %s", err)
  1147. }
  1148. clusterTotal, err := resultToTotals(resultTotal)
  1149. if err != nil {
  1150. // If clusterTotal query failed, it's likely because there are no PVs, which
  1151. // causes the qTotal query to return no data. Instead, query only node costs.
  1152. // If that fails, return an error because something is actually wrong.
  1153. qNodes := fmt.Sprintf(queryNodes, env.GetPromClusterFilter(), env.GetPromClusterLabel(), localStorageQuery)
  1154. resultNodes, warnings, err := ctx.QueryRangeSync(qNodes, start, end, window)
  1155. for _, warning := range warnings {
  1156. log.Warnf(warning)
  1157. }
  1158. if err != nil {
  1159. return nil, err
  1160. }
  1161. clusterTotal, err = resultToTotals(resultNodes)
  1162. if err != nil {
  1163. log.Infof("[Warning] ClusterCostsOverTime: no node data: %s", err)
  1164. return nil, err
  1165. }
  1166. }
  1167. return &Totals{
  1168. TotalCost: clusterTotal,
  1169. CPUCost: coreTotal,
  1170. MemCost: ramTotal,
  1171. StorageCost: storageTotal,
  1172. }, nil
  1173. }
  1174. func pvCosts(diskMap map[DiskIdentifier]*Disk, resolution time.Duration, resActiveMins, resPVSize, resPVCost, resPVUsedAvg, resPVUsedMax, resPVCInfo []*prom.QueryResult, cp models.Provider, window opencost.Window) {
  1175. for _, result := range resActiveMins {
  1176. cluster, err := result.GetString(env.GetPromClusterLabel())
  1177. if err != nil {
  1178. cluster = env.GetClusterID()
  1179. }
  1180. name, err := result.GetString("persistentvolume")
  1181. if err != nil {
  1182. log.Warnf("ClusterDisks: active mins missing pv name")
  1183. continue
  1184. }
  1185. if len(result.Values) == 0 {
  1186. continue
  1187. }
  1188. key := DiskIdentifier{cluster, name}
  1189. if _, ok := diskMap[key]; !ok {
  1190. diskMap[key] = &Disk{
  1191. Cluster: cluster,
  1192. Name: name,
  1193. Breakdown: &ClusterCostsBreakdown{},
  1194. }
  1195. }
  1196. s, e := calculateStartAndEnd(result, resolution, window)
  1197. mins := e.Sub(s).Minutes()
  1198. diskMap[key].End = e
  1199. diskMap[key].Start = s
  1200. diskMap[key].Minutes = mins
  1201. }
  1202. for _, result := range resPVSize {
  1203. cluster, err := result.GetString(env.GetPromClusterLabel())
  1204. if err != nil {
  1205. cluster = env.GetClusterID()
  1206. }
  1207. name, err := result.GetString("persistentvolume")
  1208. if err != nil {
  1209. log.Warnf("ClusterDisks: PV size data missing persistentvolume")
  1210. continue
  1211. }
  1212. // TODO niko/assets storage class
  1213. bytes := result.Values[0].Value
  1214. key := DiskIdentifier{cluster, name}
  1215. if _, ok := diskMap[key]; !ok {
  1216. diskMap[key] = &Disk{
  1217. Cluster: cluster,
  1218. Name: name,
  1219. Breakdown: &ClusterCostsBreakdown{},
  1220. }
  1221. }
  1222. diskMap[key].Bytes = bytes
  1223. }
  1224. customPricingEnabled := provider.CustomPricesEnabled(cp)
  1225. customPricingConfig, err := cp.GetConfig()
  1226. if err != nil {
  1227. log.Warnf("ClusterDisks: failed to load custom pricing: %s", err)
  1228. }
  1229. for _, result := range resPVCost {
  1230. cluster, err := result.GetString(env.GetPromClusterLabel())
  1231. if err != nil {
  1232. cluster = env.GetClusterID()
  1233. }
  1234. name, err := result.GetString("persistentvolume")
  1235. if err != nil {
  1236. log.Warnf("ClusterDisks: PV cost data missing persistentvolume")
  1237. continue
  1238. }
  1239. // TODO niko/assets storage class
  1240. var cost float64
  1241. if customPricingEnabled && customPricingConfig != nil {
  1242. customPVCostStr := customPricingConfig.Storage
  1243. customPVCost, err := strconv.ParseFloat(customPVCostStr, 64)
  1244. if err != nil {
  1245. log.Warnf("ClusterDisks: error parsing custom PV price: %s", customPVCostStr)
  1246. }
  1247. cost = customPVCost
  1248. } else {
  1249. cost = result.Values[0].Value
  1250. }
  1251. key := DiskIdentifier{cluster, name}
  1252. if _, ok := diskMap[key]; !ok {
  1253. diskMap[key] = &Disk{
  1254. Cluster: cluster,
  1255. Name: name,
  1256. Breakdown: &ClusterCostsBreakdown{},
  1257. }
  1258. }
  1259. diskMap[key].Cost = cost * (diskMap[key].Bytes / 1024 / 1024 / 1024) * (diskMap[key].Minutes / 60)
  1260. providerID, _ := result.GetString("provider_id") // just put the providerID set up here, it's the simplest query.
  1261. if providerID != "" {
  1262. diskMap[key].ProviderID = provider.ParsePVID(providerID)
  1263. }
  1264. }
  1265. for _, result := range resPVUsedAvg {
  1266. cluster, err := result.GetString(env.GetPromClusterLabel())
  1267. if err != nil {
  1268. cluster = env.GetClusterID()
  1269. }
  1270. claimName, err := result.GetString("persistentvolumeclaim")
  1271. if err != nil {
  1272. log.Debugf("ClusterDisks: pv usage data missing persistentvolumeclaim")
  1273. continue
  1274. }
  1275. claimNamespace, err := result.GetString("namespace")
  1276. if err != nil {
  1277. log.Debugf("ClusterDisks: pv usage data missing namespace")
  1278. continue
  1279. }
  1280. var volumeName string
  1281. for _, thatRes := range resPVCInfo {
  1282. thatCluster, err := thatRes.GetString(env.GetPromClusterLabel())
  1283. if err != nil {
  1284. thatCluster = env.GetClusterID()
  1285. }
  1286. thatVolumeName, err := thatRes.GetString("volumename")
  1287. if err != nil {
  1288. log.Debugf("ClusterDisks: pv claim data missing volumename")
  1289. continue
  1290. }
  1291. thatClaimName, err := thatRes.GetString("persistentvolumeclaim")
  1292. if err != nil {
  1293. log.Debugf("ClusterDisks: pv claim data missing persistentvolumeclaim")
  1294. continue
  1295. }
  1296. thatClaimNamespace, err := thatRes.GetString("namespace")
  1297. if err != nil {
  1298. log.Debugf("ClusterDisks: pv claim data missing namespace")
  1299. continue
  1300. }
  1301. if cluster == thatCluster && claimName == thatClaimName && claimNamespace == thatClaimNamespace {
  1302. volumeName = thatVolumeName
  1303. }
  1304. }
  1305. usage := result.Values[0].Value
  1306. key := DiskIdentifier{cluster, volumeName}
  1307. if _, ok := diskMap[key]; !ok {
  1308. diskMap[key] = &Disk{
  1309. Cluster: cluster,
  1310. Name: volumeName,
  1311. Breakdown: &ClusterCostsBreakdown{},
  1312. }
  1313. }
  1314. diskMap[key].BytesUsedAvgPtr = &usage
  1315. }
  1316. for _, result := range resPVUsedMax {
  1317. cluster, err := result.GetString(env.GetPromClusterLabel())
  1318. if err != nil {
  1319. cluster = env.GetClusterID()
  1320. }
  1321. claimName, err := result.GetString("persistentvolumeclaim")
  1322. if err != nil {
  1323. log.Debugf("ClusterDisks: pv usage data missing persistentvolumeclaim")
  1324. continue
  1325. }
  1326. claimNamespace, err := result.GetString("namespace")
  1327. if err != nil {
  1328. log.Debugf("ClusterDisks: pv usage data missing namespace")
  1329. continue
  1330. }
  1331. var volumeName string
  1332. for _, thatRes := range resPVCInfo {
  1333. thatCluster, err := thatRes.GetString(env.GetPromClusterLabel())
  1334. if err != nil {
  1335. thatCluster = env.GetClusterID()
  1336. }
  1337. thatVolumeName, err := thatRes.GetString("volumename")
  1338. if err != nil {
  1339. log.Debugf("ClusterDisks: pv claim data missing volumename")
  1340. continue
  1341. }
  1342. thatClaimName, err := thatRes.GetString("persistentvolumeclaim")
  1343. if err != nil {
  1344. log.Debugf("ClusterDisks: pv claim data missing persistentvolumeclaim")
  1345. continue
  1346. }
  1347. thatClaimNamespace, err := thatRes.GetString("namespace")
  1348. if err != nil {
  1349. log.Debugf("ClusterDisks: pv claim data missing namespace")
  1350. continue
  1351. }
  1352. if cluster == thatCluster && claimName == thatClaimName && claimNamespace == thatClaimNamespace {
  1353. volumeName = thatVolumeName
  1354. }
  1355. }
  1356. usage := result.Values[0].Value
  1357. key := DiskIdentifier{cluster, volumeName}
  1358. if _, ok := diskMap[key]; !ok {
  1359. diskMap[key] = &Disk{
  1360. Cluster: cluster,
  1361. Name: volumeName,
  1362. Breakdown: &ClusterCostsBreakdown{},
  1363. }
  1364. }
  1365. diskMap[key].BytesUsedMaxPtr = &usage
  1366. }
  1367. }