mirror of
https://github.com/ceph/ceph-csi.git
synced 2024-11-19 04:40:19 +00:00
e5d9b68d36
Bumps the golang-dependencies group with 1 update: [golang.org/x/crypto](https://github.com/golang/crypto). Updates `golang.org/x/crypto` from 0.16.0 to 0.17.0 - [Commits](https://github.com/golang/crypto/compare/v0.16.0...v0.17.0) --- updated-dependencies: - dependency-name: golang.org/x/crypto dependency-type: direct:production update-type: version-update:semver-minor dependency-group: golang-dependencies ... Signed-off-by: dependabot[bot] <support@github.com>
227 lines
7.1 KiB
Go
227 lines
7.1 KiB
Go
// Copyright 2023 Google LLC
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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// Package ast declares data structures useful for parsed and checked abstract syntax trees
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package ast
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import (
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"fmt"
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"github.com/google/cel-go/common/types"
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"github.com/google/cel-go/common/types/ref"
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structpb "google.golang.org/protobuf/types/known/structpb"
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exprpb "google.golang.org/genproto/googleapis/api/expr/v1alpha1"
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)
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// CheckedAST contains a protobuf expression and source info along with CEL-native type and reference information.
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type CheckedAST struct {
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Expr *exprpb.Expr
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SourceInfo *exprpb.SourceInfo
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TypeMap map[int64]*types.Type
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ReferenceMap map[int64]*ReferenceInfo
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}
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// CheckedASTToCheckedExpr converts a CheckedAST to a CheckedExpr protobouf.
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func CheckedASTToCheckedExpr(ast *CheckedAST) (*exprpb.CheckedExpr, error) {
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refMap := make(map[int64]*exprpb.Reference, len(ast.ReferenceMap))
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for id, ref := range ast.ReferenceMap {
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r, err := ReferenceInfoToReferenceExpr(ref)
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if err != nil {
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return nil, err
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}
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refMap[id] = r
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}
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typeMap := make(map[int64]*exprpb.Type, len(ast.TypeMap))
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for id, typ := range ast.TypeMap {
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t, err := types.TypeToExprType(typ)
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if err != nil {
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return nil, err
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}
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typeMap[id] = t
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}
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return &exprpb.CheckedExpr{
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Expr: ast.Expr,
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SourceInfo: ast.SourceInfo,
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ReferenceMap: refMap,
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TypeMap: typeMap,
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}, nil
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}
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// CheckedExprToCheckedAST converts a CheckedExpr protobuf to a CheckedAST instance.
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func CheckedExprToCheckedAST(checked *exprpb.CheckedExpr) (*CheckedAST, error) {
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refMap := make(map[int64]*ReferenceInfo, len(checked.GetReferenceMap()))
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for id, ref := range checked.GetReferenceMap() {
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r, err := ReferenceExprToReferenceInfo(ref)
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if err != nil {
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return nil, err
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}
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refMap[id] = r
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}
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typeMap := make(map[int64]*types.Type, len(checked.GetTypeMap()))
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for id, typ := range checked.GetTypeMap() {
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t, err := types.ExprTypeToType(typ)
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if err != nil {
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return nil, err
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}
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typeMap[id] = t
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}
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return &CheckedAST{
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Expr: checked.GetExpr(),
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SourceInfo: checked.GetSourceInfo(),
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ReferenceMap: refMap,
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TypeMap: typeMap,
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}, nil
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}
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// ReferenceInfo contains a CEL native representation of an identifier reference which may refer to
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// either a qualified identifier name, a set of overload ids, or a constant value from an enum.
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type ReferenceInfo struct {
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Name string
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OverloadIDs []string
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Value ref.Val
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}
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// NewIdentReference creates a ReferenceInfo instance for an identifier with an optional constant value.
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func NewIdentReference(name string, value ref.Val) *ReferenceInfo {
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return &ReferenceInfo{Name: name, Value: value}
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}
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// NewFunctionReference creates a ReferenceInfo instance for a set of function overloads.
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func NewFunctionReference(overloads ...string) *ReferenceInfo {
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info := &ReferenceInfo{}
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for _, id := range overloads {
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info.AddOverload(id)
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}
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return info
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}
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// AddOverload appends a function overload ID to the ReferenceInfo.
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func (r *ReferenceInfo) AddOverload(overloadID string) {
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for _, id := range r.OverloadIDs {
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if id == overloadID {
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return
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}
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}
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r.OverloadIDs = append(r.OverloadIDs, overloadID)
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}
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// Equals returns whether two references are identical to each other.
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func (r *ReferenceInfo) Equals(other *ReferenceInfo) bool {
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if r.Name != other.Name {
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return false
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}
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if len(r.OverloadIDs) != len(other.OverloadIDs) {
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return false
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}
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if len(r.OverloadIDs) != 0 {
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overloadMap := make(map[string]struct{}, len(r.OverloadIDs))
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for _, id := range r.OverloadIDs {
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overloadMap[id] = struct{}{}
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}
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for _, id := range other.OverloadIDs {
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_, found := overloadMap[id]
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if !found {
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return false
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}
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}
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}
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if r.Value == nil && other.Value == nil {
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return true
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}
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if r.Value == nil && other.Value != nil ||
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r.Value != nil && other.Value == nil ||
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r.Value.Equal(other.Value) != types.True {
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return false
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}
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return true
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}
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// ReferenceInfoToReferenceExpr converts a ReferenceInfo instance to a protobuf Reference suitable for serialization.
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func ReferenceInfoToReferenceExpr(info *ReferenceInfo) (*exprpb.Reference, error) {
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c, err := ValToConstant(info.Value)
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if err != nil {
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return nil, err
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}
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return &exprpb.Reference{
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Name: info.Name,
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OverloadId: info.OverloadIDs,
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Value: c,
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}, nil
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}
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// ReferenceExprToReferenceInfo converts a protobuf Reference into a CEL-native ReferenceInfo instance.
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func ReferenceExprToReferenceInfo(ref *exprpb.Reference) (*ReferenceInfo, error) {
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v, err := ConstantToVal(ref.GetValue())
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if err != nil {
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return nil, err
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}
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return &ReferenceInfo{
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Name: ref.GetName(),
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OverloadIDs: ref.GetOverloadId(),
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Value: v,
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}, nil
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}
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// ValToConstant converts a CEL-native ref.Val to a protobuf Constant.
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//
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// Only simple scalar types are supported by this method.
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func ValToConstant(v ref.Val) (*exprpb.Constant, error) {
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if v == nil {
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return nil, nil
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}
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switch v.Type() {
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case types.BoolType:
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return &exprpb.Constant{ConstantKind: &exprpb.Constant_BoolValue{BoolValue: v.Value().(bool)}}, nil
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case types.BytesType:
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return &exprpb.Constant{ConstantKind: &exprpb.Constant_BytesValue{BytesValue: v.Value().([]byte)}}, nil
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case types.DoubleType:
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return &exprpb.Constant{ConstantKind: &exprpb.Constant_DoubleValue{DoubleValue: v.Value().(float64)}}, nil
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case types.IntType:
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return &exprpb.Constant{ConstantKind: &exprpb.Constant_Int64Value{Int64Value: v.Value().(int64)}}, nil
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case types.NullType:
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return &exprpb.Constant{ConstantKind: &exprpb.Constant_NullValue{NullValue: structpb.NullValue_NULL_VALUE}}, nil
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case types.StringType:
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return &exprpb.Constant{ConstantKind: &exprpb.Constant_StringValue{StringValue: v.Value().(string)}}, nil
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case types.UintType:
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return &exprpb.Constant{ConstantKind: &exprpb.Constant_Uint64Value{Uint64Value: v.Value().(uint64)}}, nil
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}
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return nil, fmt.Errorf("unsupported constant kind: %v", v.Type())
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}
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// ConstantToVal converts a protobuf Constant to a CEL-native ref.Val.
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func ConstantToVal(c *exprpb.Constant) (ref.Val, error) {
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if c == nil {
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return nil, nil
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}
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switch c.GetConstantKind().(type) {
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case *exprpb.Constant_BoolValue:
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return types.Bool(c.GetBoolValue()), nil
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case *exprpb.Constant_BytesValue:
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return types.Bytes(c.GetBytesValue()), nil
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case *exprpb.Constant_DoubleValue:
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return types.Double(c.GetDoubleValue()), nil
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case *exprpb.Constant_Int64Value:
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return types.Int(c.GetInt64Value()), nil
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case *exprpb.Constant_NullValue:
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return types.NullValue, nil
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case *exprpb.Constant_StringValue:
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return types.String(c.GetStringValue()), nil
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case *exprpb.Constant_Uint64Value:
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return types.Uint(c.GetUint64Value()), nil
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}
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return nil, fmt.Errorf("unsupported constant kind: %v", c.GetConstantKind())
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}
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