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namespacedname.go
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/
namespacedname.go
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/*
Copyright 2015 The Kubernetes Authors.
Licensed under the Apache License, Version 2.0 (the "License");
you may not use this file except in compliance with the License.
You may obtain a copy of the License at
http://www.apache.org/licenses/LICENSE-2.0
Unless required by applicable law or agreed to in writing, software
distributed under the License is distributed on an "AS IS" BASIS,
WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
See the License for the specific language governing permissions and
limitations under the License.
*/
package types
import (
"fmt"
"strings"
)
// NamespacedName comprises a resource name, with a mandatory namespace,
// rendered as "<namespace>/<name>". Being a type captures intent and
// helps make sure that UIDs, namespaced names and non-namespaced names
// do not get conflated in code. For most use cases, namespace and name
// will already have been format validated at the API entry point, so we
// don't do that here. Where that's not the case (e.g. in testing),
// consider using NamespacedNameOrDie() in testing.go in this package.
type NamespacedName struct {
Namespace string
Name string
}
const (
Separator = '/'
)
// String returns the general purpose string representation
func (n NamespacedName) String() string {
return fmt.Sprintf("%s%c%s", n.Namespace, Separator, n.Name)
}
// NewNamespacedNameFromString parses the provided string and returns a NamespacedName.
// The expected format is as per String() above.
// If the input string is invalid, the returned NamespacedName has all empty string field values.
// This allows a single-value return from this function, while still allowing error checks in the caller.
// Note that an input string which does not include exactly one Separator is not a valid input (as it could never
// have neem returned by String() )
func NewNamespacedNameFromString(s string) NamespacedName {
nn := NamespacedName{}
result := strings.Split(s, string(Separator))
if len(result) == 2 {
nn.Namespace = result[0]
nn.Name = result[1]
}
return nn
}