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app/vmselect/promql: allow passing multiple args to aggregate functions such as avg(q1, q2, q3)
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a2021d0dde
commit
285665e93b
@ -65,14 +65,25 @@ func getAggrFunc(s string) aggrFunc {
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func newAggrFunc(afe func(tss []*timeseries) []*timeseries) aggrFunc {
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return func(afa *aggrFuncArg) ([]*timeseries, error) {
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args := afa.args
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if err := expectTransformArgsNum(args, 1); err != nil {
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tss, err := getAggrTimeseries(afa.args)
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if err != nil {
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return nil, err
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}
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return aggrFuncExt(afe, args[0], &afa.ae.Modifier, afa.ae.Limit, false)
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return aggrFuncExt(afe, tss, &afa.ae.Modifier, afa.ae.Limit, false)
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}
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}
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func getAggrTimeseries(args [][]*timeseries) ([]*timeseries, error) {
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if len(args) == 0 {
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return nil, fmt.Errorf("expecting at least one arg")
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}
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tss := args[0]
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for _, arg := range args[1:] {
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tss = append(tss, arg...)
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}
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return tss, nil
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}
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func removeGroupTags(metricName *storage.MetricName, modifier *metricsql.ModifierExpr) {
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groupOp := strings.ToLower(modifier.Op)
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switch groupOp {
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@ -126,8 +137,8 @@ func aggrFuncExt(afe func(tss []*timeseries) []*timeseries, argOrig []*timeserie
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}
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func aggrFuncAny(afa *aggrFuncArg) ([]*timeseries, error) {
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args := afa.args
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if err := expectTransformArgsNum(args, 1); err != nil {
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tss, err := getAggrTimeseries(afa.args)
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if err != nil {
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return nil, err
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}
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afe := func(tss []*timeseries) []*timeseries {
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@ -138,7 +149,7 @@ func aggrFuncAny(afa *aggrFuncArg) ([]*timeseries, error) {
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// Only a single time series per group must be returned
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limit = 1
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}
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return aggrFuncExt(afe, args[0], &afa.ae.Modifier, limit, true)
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return aggrFuncExt(afe, tss, &afa.ae.Modifier, limit, true)
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}
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func aggrFuncGroup(tss []*timeseries) []*timeseries {
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@ -434,8 +445,8 @@ func aggrFuncMode(tss []*timeseries) []*timeseries {
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}
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func aggrFuncZScore(afa *aggrFuncArg) ([]*timeseries, error) {
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args := afa.args
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if err := expectTransformArgsNum(args, 1); err != nil {
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tss, err := getAggrTimeseries(afa.args)
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if err != nil {
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return nil, err
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}
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afe := func(tss []*timeseries) []*timeseries {
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@ -476,7 +487,7 @@ func aggrFuncZScore(afa *aggrFuncArg) ([]*timeseries, error) {
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}
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return tss
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}
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return aggrFuncExt(afe, args[0], &afa.ae.Modifier, afa.ae.Limit, true)
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return aggrFuncExt(afe, tss, &afa.ae.Modifier, afa.ae.Limit, true)
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}
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// modeNoNaNs returns mode for a.
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@ -811,13 +822,13 @@ func aggrFuncQuantile(afa *aggrFuncArg) ([]*timeseries, error) {
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}
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func aggrFuncMedian(afa *aggrFuncArg) ([]*timeseries, error) {
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args := afa.args
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if err := expectTransformArgsNum(args, 1); err != nil {
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tss, err := getAggrTimeseries(afa.args)
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if err != nil {
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return nil, err
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}
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phis := evalNumber(afa.ec, 0.5)[0].Values
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afe := newAggrQuantileFunc(phis)
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return aggrFuncExt(afe, args[0], &afa.ae.Modifier, afa.ae.Limit, false)
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return aggrFuncExt(afe, tss, &afa.ae.Modifier, afa.ae.Limit, false)
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}
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func newAggrQuantileFunc(phis []float64) func(tss []*timeseries) []*timeseries {
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@ -3380,6 +3380,28 @@ func TestExecSuccess(t *testing.T) {
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resultExpected := []netstorage.Result{r}
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f(q, resultExpected)
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})
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t.Run(`sum(multi-args)`, func(t *testing.T) {
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t.Parallel()
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q := `sum(1, 2, 3)`
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r := netstorage.Result{
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MetricName: metricNameExpected,
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Values: []float64{6, 6, 6, 6, 6, 6},
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Timestamps: timestampsExpected,
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}
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resultExpected := []netstorage.Result{r}
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f(q, resultExpected)
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})
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t.Run(`sum(union-args)`, func(t *testing.T) {
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t.Parallel()
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q := `sum((1, 2, 3))`
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r := netstorage.Result{
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MetricName: metricNameExpected,
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Values: []float64{1, 1, 1, 1, 1, 1},
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Timestamps: timestampsExpected,
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}
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resultExpected := []netstorage.Result{r}
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f(q, resultExpected)
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})
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t.Run(`sum(scalar) by ()`, func(t *testing.T) {
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t.Parallel()
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q := `sum(123) by ()`
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@ -5966,7 +5988,6 @@ func TestExecError(t *testing.T) {
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f(`label_move()`)
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f(`median_over_time()`)
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f(`median()`)
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f(`median("foo", "bar")`)
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f(`keep_last_value()`)
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f(`keep_next_value()`)
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f(`interpolate()`)
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@ -6068,7 +6089,6 @@ func TestExecError(t *testing.T) {
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) + 10`)
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// Invalid aggregates
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f(`sum(1, 2)`)
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f(`sum(1) foo (bar)`)
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f(`sum foo () (bar)`)
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f(`sum(foo) by (1)`)
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@ -37,6 +37,7 @@ This functionality can be tried at [an editable Grafana dashboard](http://play-g
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- `offset` may be negative. For example, `q offset -1h`.
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- [Range duration](https://prometheus.io/docs/prometheus/latest/querying/basics/#range-vector-selectors) and [offset](https://prometheus.io/docs/prometheus/latest/querying/basics/#offset-modifier) may be fractional. For instance, `rate(node_network_receive_bytes_total[1.5m] offset 0.5d)`.
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- `default` binary operator. `q1 default q2` fills gaps in `q1` with the corresponding values from `q2`.
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- Most aggregate functions accept arbitrary number of args. For example, `avg(q1, q2, q3)` would return the average values for every point across `q1`, `q2` and `q3`.
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- `histogram_quantile` accepts optional third arg - `boundsLabel`. In this case it returns `lower` and `upper` bounds for the estimated percentile. See [this issue for details](https://github.com/prometheus/prometheus/issues/5706).
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- `if` binary operator. `q1 if q2` removes values from `q1` for missing values from `q2`.
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- `ifnot` binary operator. `q1 ifnot q2` removes values from `q1` for existing values from `q2`.
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