mirror of
https://github.com/VictoriaMetrics/VictoriaMetrics.git
synced 2024-11-23 12:31:07 +01:00
app/vmselect/promql: add buckets_limit(k, buckets)
function, which limits the number of buckets per time series to k
This function works with both Prometheus-style and VictoriaMetrics-style buckets. The function removes buckets with the lowest values in order to reserve the highest precision. The function is useful for building heatmaps in Grafana from too big number of buckets.
This commit is contained in:
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commit
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@ -3002,6 +3002,101 @@ func TestExecSuccess(t *testing.T) {
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resultExpected := []netstorage.Result{}
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f(q, resultExpected)
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})
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t.Run(`buckets_limit(zero)`, func(t *testing.T) {
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t.Parallel()
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q := `buckets_limit(0, (
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alias(label_set(100, "le", "inf", "x", "y"), "metric"),
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alias(label_set(50, "le", "120", "x", "y"), "metric"),
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))`
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resultExpected := []netstorage.Result{}
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f(q, resultExpected)
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})
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t.Run(`buckets_limit(unused)`, func(t *testing.T) {
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t.Parallel()
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q := `sort(buckets_limit(5, (
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alias(label_set(100, "le", "inf", "x", "y"), "metric"),
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alias(label_set(50, "le", "120", "x", "y"), "metric"),
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)))`
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r1 := netstorage.Result{
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MetricName: metricNameExpected,
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Values: []float64{50, 50, 50, 50, 50, 50},
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Timestamps: timestampsExpected,
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}
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r1.MetricName.MetricGroup = []byte("metric")
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r1.MetricName.Tags = []storage.Tag{
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{
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Key: []byte("le"),
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Value: []byte("120"),
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},
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{
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Key: []byte("x"),
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Value: []byte("y"),
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},
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}
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r2 := netstorage.Result{
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MetricName: metricNameExpected,
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Values: []float64{100, 100, 100, 100, 100, 100},
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Timestamps: timestampsExpected,
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}
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r2.MetricName.MetricGroup = []byte("metric")
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r2.MetricName.Tags = []storage.Tag{
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{
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Key: []byte("le"),
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Value: []byte("inf"),
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},
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{
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Key: []byte("x"),
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Value: []byte("y"),
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},
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}
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resultExpected := []netstorage.Result{r1, r2}
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f(q, resultExpected)
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})
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t.Run(`buckets_limit(used)`, func(t *testing.T) {
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t.Parallel()
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q := `sort(buckets_limit(2, (
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alias(label_set(100, "le", "inf", "x", "y"), "metric"),
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alias(label_set(52, "le", "200", "x", "y"), "metric"),
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alias(label_set(50, "le", "120", "x", "y"), "metric"),
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alias(label_set(20, "le", "70", "x", "y"), "metric"),
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alias(label_set(10, "le", "30", "x", "y"), "metric"),
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alias(label_set(9, "le", "10", "x", "y"), "metric"),
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)))`
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r1 := netstorage.Result{
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MetricName: metricNameExpected,
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Values: []float64{50, 50, 50, 50, 50, 50},
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Timestamps: timestampsExpected,
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}
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r1.MetricName.MetricGroup = []byte("metric")
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r1.MetricName.Tags = []storage.Tag{
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{
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Key: []byte("le"),
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Value: []byte("120"),
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},
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{
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Key: []byte("x"),
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Value: []byte("y"),
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},
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}
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r2 := netstorage.Result{
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MetricName: metricNameExpected,
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Values: []float64{100, 100, 100, 100, 100, 100},
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Timestamps: timestampsExpected,
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}
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r2.MetricName.MetricGroup = []byte("metric")
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r2.MetricName.Tags = []storage.Tag{
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{
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Key: []byte("le"),
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Value: []byte("inf"),
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},
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{
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Key: []byte("x"),
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Value: []byte("y"),
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},
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}
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resultExpected := []netstorage.Result{r1, r2}
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f(q, resultExpected)
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})
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t.Run(`prometheus_buckets(missing-vmrange)`, func(t *testing.T) {
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t.Parallel()
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q := `sort(prometheus_buckets((
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@ -5762,6 +5857,9 @@ func TestExecError(t *testing.T) {
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f(`mode_over_time()`)
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f(`rate_over_sum()`)
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f(`mode()`)
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f(`prometheus_buckets()`)
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f(`buckets_limit()`)
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f(`buckets_limit(1)`)
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// Invalid argument type
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f(`median_over_time({}, 2)`)
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@ -98,6 +98,7 @@ var transformFuncs = map[string]transformFunc{
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"asin": newTransformFuncOneArg(transformAsin),
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"acos": newTransformFuncOneArg(transformAcos),
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"prometheus_buckets": transformPrometheusBuckets,
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"buckets_limit": transformBucketsLimit,
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"histogram_share": transformHistogramShare,
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"sort_by_label": newTransformFuncSortByLabel(false),
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"sort_by_label_desc": newTransformFuncSortByLabel(true),
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@ -282,6 +283,86 @@ func transformFloor(v float64) float64 {
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return math.Floor(v)
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}
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func transformBucketsLimit(tfa *transformFuncArg) ([]*timeseries, error) {
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args := tfa.args
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if err := expectTransformArgsNum(args, 2); err != nil {
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return nil, err
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}
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limits, err := getScalar(args[0], 1)
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if err != nil {
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return nil, err
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}
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limit := int(limits[0])
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if limit <= 0 {
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return nil, nil
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}
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tss := vmrangeBucketsToLE(args[1])
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if len(tss) == 0 {
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return nil, nil
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}
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// Group timeseries by all MetricGroup+tags excluding `le` tag.
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type x struct {
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le float64
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delta float64
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ts *timeseries
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}
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m := make(map[string][]x)
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var b []byte
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var mn storage.MetricName
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for _, ts := range tss {
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leStr := ts.MetricName.GetTagValue("le")
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if len(leStr) == 0 {
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// Skip time series without `le` tag.
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continue
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}
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le, err := strconv.ParseFloat(string(leStr), 64)
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if err != nil {
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// Skip time series with invalid `le` tag.
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continue
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}
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mn.CopyFrom(&ts.MetricName)
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mn.RemoveTag("le")
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b = marshalMetricNameSorted(b[:0], &mn)
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m[string(b)] = append(m[string(b)], x{
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le: le,
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ts: ts,
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})
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}
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// Remove buckets with the smallest counters.
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rvs := make([]*timeseries, 0, len(tss))
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for _, leGroup := range m {
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if len(leGroup) <= limit {
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// The number of buckets in leGroup doesn't exceed the limit.
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for _, xx := range leGroup {
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rvs = append(rvs, xx.ts)
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}
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continue
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}
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// The number of buckets in leGroup exceeds the limit. Remove buckets with the smallest sums.
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sort.Slice(leGroup, func(i, j int) bool {
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return leGroup[i].le < leGroup[j].le
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})
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for n := range tss[0].Values {
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prevValue := float64(0)
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for i := range leGroup {
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xx := &leGroup[i]
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value := xx.ts.Values[n]
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xx.delta += value - prevValue
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prevValue = value
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}
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}
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sort.Slice(leGroup, func(i, j int) bool {
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return leGroup[i].delta < leGroup[j].delta
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})
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for _, xx := range leGroup[len(leGroup)-limit:] {
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rvs = append(rvs, xx.ts)
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}
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}
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return rvs, nil
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}
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func transformPrometheusBuckets(tfa *transformFuncArg) ([]*timeseries, error) {
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args := tfa.args
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if err := expectTransformArgsNum(args, 1); err != nil {
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@ -90,6 +90,8 @@ This functionality can be tried at [an editable Grafana dashboard](http://play-g
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- `rand()`, `rand_normal()` and `rand_exponential()` functions - for generating pseudo-random series with even, normal and exponential distribution.
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- `increases_over_time(m[d])` and `decreases_over_time(m[d])` - returns the number of `m` increases or decreases over the given duration `d`.
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- `prometheus_buckets(q)` - converts [VictoriaMetrics histogram](https://godoc.org/github.com/VictoriaMetrics/metrics#Histogram) buckets to Prometheus buckets with `le` labels.
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- `buckets_limit(k, q)` - limits the number of buckets (Prometheus-style or [VictoriaMetrics-style](https://godoc.org/github.com/VictoriaMetrics/metrics#Histogram))
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per each metric returned by by `q` to `k`. It also converts VictoriaMetrics-style buckets to Prometheus-style buckets, i.e. the end result are buckets with with `le` labels.
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- `histogram(q)` - calculates aggregate histogram over `q` time series for each point on the graph. See [this article](https://medium.com/@valyala/improving-histogram-usability-for-prometheus-and-grafana-bc7e5df0e350) for more details.
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- `histogram_over_time(m[d])` - calculates [VictoriaMetrics histogram](https://godoc.org/github.com/VictoriaMetrics/metrics#Histogram) for `m` over `d`.
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For example, the following query calculates median temperature by country over the last 24 hours:
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2
go.mod
2
go.mod
@ -9,7 +9,7 @@ require (
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// like https://github.com/valyala/fasthttp/commit/996610f021ff45fdc98c2ce7884d5fa4e7f9199b
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github.com/VictoriaMetrics/fasthttp v1.0.1
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github.com/VictoriaMetrics/metrics v1.12.0
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github.com/VictoriaMetrics/metricsql v0.2.8
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github.com/VictoriaMetrics/metricsql v0.2.9
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github.com/aws/aws-sdk-go v1.33.9
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github.com/cespare/xxhash/v2 v2.1.1
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github.com/golang/snappy v0.0.1
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4
go.sum
4
go.sum
@ -53,8 +53,8 @@ github.com/VictoriaMetrics/metrics v1.11.2 h1:t/ceLP6SvagUqypCKU7cI7+tQn54+TIV/t
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github.com/VictoriaMetrics/metrics v1.11.2/go.mod h1:LU2j9qq7xqZYXz8tF3/RQnB2z2MbZms5TDiIg9/NHiQ=
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github.com/VictoriaMetrics/metrics v1.12.0 h1:BudxtRYSA6j8H9mzjhXNEIsCPIEUPCb76QwFEptQzvQ=
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github.com/VictoriaMetrics/metrics v1.12.0/go.mod h1:Z1tSfPfngDn12bTfZSCqArT3OPY3u88J12hSoOhuiRE=
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github.com/VictoriaMetrics/metricsql v0.2.8 h1:RET+5ZKSHFpcm7RNEEHFMiSNYtd6GlGKyNn/ZO53zhA=
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github.com/VictoriaMetrics/metricsql v0.2.8/go.mod h1:UIjd9S0W1UnTWlJdM0wLS+2pfuPqjwqKoK8yTos+WyE=
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github.com/VictoriaMetrics/metricsql v0.2.9 h1:RHLEmt4VNZ2RAqZjmXyRtKpCrtSuYUS1+TyOqfXbHWs=
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github.com/VictoriaMetrics/metricsql v0.2.9/go.mod h1:UIjd9S0W1UnTWlJdM0wLS+2pfuPqjwqKoK8yTos+WyE=
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github.com/allegro/bigcache v1.2.1-0.20190218064605-e24eb225f156 h1:eMwmnE/GDgah4HI848JfFxHt+iPb26b4zyfspmqY0/8=
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github.com/allegro/bigcache v1.2.1-0.20190218064605-e24eb225f156/go.mod h1:Cb/ax3seSYIx7SuZdm2G2xzfwmv3TPSk2ucNfQESPXM=
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github.com/aws/aws-sdk-go v1.33.9 h1:nkC8YxL1nxwshIoO3UM2486Ph+zs7IZWjhRHjmXeCPw=
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1
vendor/github.com/VictoriaMetrics/metricsql/transform.go
generated
vendored
1
vendor/github.com/VictoriaMetrics/metricsql/transform.go
generated
vendored
@ -77,6 +77,7 @@ var transformFuncs = map[string]bool{
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"asin": true,
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"acos": true,
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"prometheus_buckets": true,
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"buckets_limit": true,
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"histogram_share": true,
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"sort_by_label": true,
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"sort_by_label_desc": true,
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2
vendor/modules.txt
vendored
2
vendor/modules.txt
vendored
@ -16,7 +16,7 @@ github.com/VictoriaMetrics/fasthttp/fasthttputil
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github.com/VictoriaMetrics/fasthttp/stackless
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# github.com/VictoriaMetrics/metrics v1.12.0
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github.com/VictoriaMetrics/metrics
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# github.com/VictoriaMetrics/metricsql v0.2.8
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# github.com/VictoriaMetrics/metricsql v0.2.9
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github.com/VictoriaMetrics/metricsql
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github.com/VictoriaMetrics/metricsql/binaryop
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# github.com/aws/aws-sdk-go v1.33.9
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