efc70122af
I just learned this exists. Test: m nothing --no-skip-soong-tests Change-Id: Ic6f0d11c24b41b394b1760fcca9e0da53243e6d9
623 lines
17 KiB
Go
623 lines
17 KiB
Go
// Copyright 2015 Google Inc. All rights reserved.
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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 android
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import (
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"cmp"
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"fmt"
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"path/filepath"
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"reflect"
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"regexp"
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"runtime"
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"sort"
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"strings"
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"sync"
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)
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// CopyOf returns a new slice that has the same contents as s.
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func CopyOf[T any](s []T) []T {
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// If the input is nil, return nil and not an empty list
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if s == nil {
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return s
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}
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return append([]T{}, s...)
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}
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// Concat returns a new slice concatenated from the two input slices. It does not change the input
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// slices.
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func Concat[T any](s1, s2 []T) []T {
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res := make([]T, 0, len(s1)+len(s2))
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res = append(res, s1...)
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res = append(res, s2...)
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return res
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}
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// JoinPathsWithPrefix converts the paths to strings, prefixes them
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// with prefix and then joins them separated by " ".
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func JoinPathsWithPrefix(paths []Path, prefix string) string {
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strs := make([]string, len(paths))
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for i := range paths {
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strs[i] = paths[i].String()
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}
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return JoinWithPrefixAndSeparator(strs, prefix, " ")
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}
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// JoinWithPrefix prepends the prefix to each string in the list and
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// returns them joined together with " " as separator.
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func JoinWithPrefix(strs []string, prefix string) string {
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return JoinWithPrefixAndSeparator(strs, prefix, " ")
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}
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// JoinWithPrefixAndSeparator prepends the prefix to each string in the list and
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// returns them joined together with the given separator.
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func JoinWithPrefixAndSeparator(strs []string, prefix string, sep string) string {
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return JoinWithPrefixSuffixAndSeparator(strs, prefix, "", sep)
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}
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// JoinWithSuffixAndSeparator appends the suffix to each string in the list and
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// returns them joined together with the given separator.
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func JoinWithSuffixAndSeparator(strs []string, suffix string, sep string) string {
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return JoinWithPrefixSuffixAndSeparator(strs, "", suffix, sep)
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}
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// JoinWithPrefixSuffixAndSeparator appends the prefix/suffix to each string in the list and
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// returns them joined together with the given separator.
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func JoinWithPrefixSuffixAndSeparator(strs []string, prefix, suffix, sep string) string {
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if len(strs) == 0 {
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return ""
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}
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// Pre-calculate the length of the result
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length := 0
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for _, s := range strs {
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length += len(s)
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}
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length += (len(prefix)+len(suffix))*len(strs) + len(sep)*(len(strs)-1)
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var buf strings.Builder
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buf.Grow(length)
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buf.WriteString(prefix)
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buf.WriteString(strs[0])
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buf.WriteString(suffix)
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for i := 1; i < len(strs); i++ {
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buf.WriteString(sep)
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buf.WriteString(prefix)
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buf.WriteString(strs[i])
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buf.WriteString(suffix)
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}
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return buf.String()
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}
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// SortedStringKeys returns the keys of the given map in the ascending order.
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//
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// Deprecated: Use SortedKeys instead.
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func SortedStringKeys[V any](m map[string]V) []string {
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return SortedKeys(m)
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}
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// SortedKeys returns the keys of the given map in the ascending order.
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func SortedKeys[T cmp.Ordered, V any](m map[T]V) []T {
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if len(m) == 0 {
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return nil
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}
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ret := make([]T, 0, len(m))
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for k := range m {
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ret = append(ret, k)
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}
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sort.Slice(ret, func(i, j int) bool {
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return ret[i] < ret[j]
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})
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return ret
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}
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// stringValues returns the values of the given string-valued map in randomized map order.
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func stringValues(m interface{}) []string {
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v := reflect.ValueOf(m)
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if v.Kind() != reflect.Map {
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panic(fmt.Sprintf("%#v is not a map", m))
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}
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if v.Len() == 0 {
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return nil
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}
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iter := v.MapRange()
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s := make([]string, 0, v.Len())
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for iter.Next() {
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s = append(s, iter.Value().String())
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}
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return s
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}
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// SortedStringValues returns the values of the given string-valued map in the ascending order.
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func SortedStringValues(m interface{}) []string {
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s := stringValues(m)
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sort.Strings(s)
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return s
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}
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// SortedUniqueStringValues returns the values of the given string-valued map in the ascending order
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// with duplicates removed.
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func SortedUniqueStringValues(m interface{}) []string {
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s := stringValues(m)
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return SortedUniqueStrings(s)
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}
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// IndexList returns the index of the first occurrence of the given string in the list or -1
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func IndexList[T comparable](t T, list []T) int {
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for i, l := range list {
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if l == t {
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return i
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}
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}
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return -1
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}
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func InList[T comparable](t T, list []T) bool {
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return IndexList(t, list) != -1
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}
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func setFromList[T comparable](l []T) map[T]bool {
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m := make(map[T]bool, len(l))
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for _, t := range l {
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m[t] = true
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}
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return m
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}
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// ListSetDifference checks if the two lists contain the same elements. It returns
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// a boolean which is true if there is a difference, and then returns lists of elements
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// that are in l1 but not l2, and l2 but not l1.
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func ListSetDifference[T comparable](l1, l2 []T) (bool, []T, []T) {
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listsDiffer := false
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diff1 := []T{}
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diff2 := []T{}
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m1 := setFromList(l1)
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m2 := setFromList(l2)
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for t := range m1 {
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if _, ok := m2[t]; !ok {
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diff1 = append(diff1, t)
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listsDiffer = true
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}
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}
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for t := range m2 {
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if _, ok := m1[t]; !ok {
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diff2 = append(diff2, t)
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listsDiffer = true
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}
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}
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return listsDiffer, diff1, diff2
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}
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// Returns true if the given string s is prefixed with any string in the given prefix list.
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func HasAnyPrefix(s string, prefixList []string) bool {
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for _, prefix := range prefixList {
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if strings.HasPrefix(s, prefix) {
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return true
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}
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}
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return false
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}
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// Returns true if any string in the given list has the given substring.
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func SubstringInList(list []string, substr string) bool {
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for _, s := range list {
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if strings.Contains(s, substr) {
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return true
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}
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}
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return false
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}
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// Returns true if any string in the given list has the given prefix.
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func PrefixInList(list []string, prefix string) bool {
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for _, s := range list {
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if strings.HasPrefix(s, prefix) {
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return true
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}
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}
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return false
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}
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// Returns true if any string in the given list has the given suffix.
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func SuffixInList(list []string, suffix string) bool {
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for _, s := range list {
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if strings.HasSuffix(s, suffix) {
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return true
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}
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}
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return false
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}
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// IndexListPred returns the index of the element which in the given `list` satisfying the predicate, or -1 if there is no such element.
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func IndexListPred(pred func(s string) bool, list []string) int {
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for i, l := range list {
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if pred(l) {
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return i
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}
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}
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return -1
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}
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// FilterList divides the string list into two lists: one with the strings belonging
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// to the given filter list, and the other with the remaining ones
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func FilterList(list []string, filter []string) (remainder []string, filtered []string) {
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// InList is O(n). May be worth using more efficient lookup for longer lists.
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for _, l := range list {
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if InList(l, filter) {
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filtered = append(filtered, l)
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} else {
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remainder = append(remainder, l)
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}
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}
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return
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}
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// FilterListPred returns the elements of the given list for which the predicate
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// returns true. Order is kept.
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func FilterListPred(list []string, pred func(s string) bool) (filtered []string) {
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for _, l := range list {
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if pred(l) {
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filtered = append(filtered, l)
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}
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}
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return
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}
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// RemoveListFromList removes the strings belonging to the filter list from the
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// given list and returns the result
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func RemoveListFromList(list []string, filter_out []string) (result []string) {
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result = make([]string, 0, len(list))
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for _, l := range list {
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if !InList(l, filter_out) {
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result = append(result, l)
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}
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}
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return
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}
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// RemoveFromList removes given string from the string list.
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func RemoveFromList(s string, list []string) (bool, []string) {
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result := make([]string, 0, len(list))
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var removed bool
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for _, item := range list {
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if item != s {
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result = append(result, item)
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} else {
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removed = true
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}
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}
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return removed, result
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}
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// FirstUniqueStrings returns all unique elements of a slice of strings, keeping the first copy of
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// each. It does not modify the input slice.
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func FirstUniqueStrings(list []string) []string {
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return firstUnique(list)
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}
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// firstUnique returns all unique elements of a slice, keeping the first copy of each. It
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// does not modify the input slice.
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func firstUnique[T comparable](slice []T) []T {
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// Do not modify the input in-place, operate on a copy instead.
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slice = CopyOf(slice)
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return firstUniqueInPlace(slice)
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}
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// firstUniqueInPlace returns all unique elements of a slice, keeping the first copy of
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// each. It modifies the slice contents in place, and returns a subslice of the original
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// slice.
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func firstUniqueInPlace[T comparable](slice []T) []T {
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// 128 was chosen based on BenchmarkFirstUniqueStrings results.
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if len(slice) > 128 {
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return firstUniqueMap(slice)
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}
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return firstUniqueList(slice)
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}
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// firstUniqueList is an implementation of firstUnique using an O(N^2) list comparison to look for
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// duplicates.
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func firstUniqueList[T any](in []T) []T {
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writeIndex := 0
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outer:
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for readIndex := 0; readIndex < len(in); readIndex++ {
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for compareIndex := 0; compareIndex < writeIndex; compareIndex++ {
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if interface{}(in[readIndex]) == interface{}(in[compareIndex]) {
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// The value at readIndex already exists somewhere in the output region
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// of the slice before writeIndex, skip it.
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continue outer
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}
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}
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if readIndex != writeIndex {
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in[writeIndex] = in[readIndex]
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}
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writeIndex++
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}
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return in[0:writeIndex]
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}
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// firstUniqueMap is an implementation of firstUnique using an O(N) hash set lookup to look for
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// duplicates.
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func firstUniqueMap[T comparable](in []T) []T {
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writeIndex := 0
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seen := make(map[T]bool, len(in))
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for readIndex := 0; readIndex < len(in); readIndex++ {
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if _, exists := seen[in[readIndex]]; exists {
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continue
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}
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seen[in[readIndex]] = true
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if readIndex != writeIndex {
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in[writeIndex] = in[readIndex]
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}
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writeIndex++
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}
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return in[0:writeIndex]
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}
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// ReverseSliceInPlace reverses the elements of a slice in place and returns it.
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func ReverseSliceInPlace[T any](in []T) []T {
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for i, j := 0, len(in)-1; i < j; i, j = i+1, j-1 {
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in[i], in[j] = in[j], in[i]
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}
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return in
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}
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// ReverseSlice returns a copy of a slice in reverse order.
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func ReverseSlice[T any](in []T) []T {
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if in == nil {
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return in
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}
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out := make([]T, len(in))
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for i := 0; i < len(in); i++ {
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out[i] = in[len(in)-1-i]
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}
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return out
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}
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// LastUniqueStrings returns all unique elements of a slice of strings, keeping the last copy of
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// each. It modifies the slice contents in place, and returns a subslice of the original slice.
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func LastUniqueStrings(list []string) []string {
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totalSkip := 0
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for i := len(list) - 1; i >= totalSkip; i-- {
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skip := 0
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for j := i - 1; j >= totalSkip; j-- {
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if list[i] == list[j] {
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skip++
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} else {
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list[j+skip] = list[j]
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}
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}
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totalSkip += skip
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}
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return list[totalSkip:]
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}
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// SortedUniqueStrings returns what the name says
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func SortedUniqueStrings(list []string) []string {
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// FirstUniqueStrings creates a copy of `list`, so the input remains untouched.
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unique := FirstUniqueStrings(list)
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sort.Strings(unique)
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return unique
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}
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// checkCalledFromInit panics if a Go package's init function is not on the
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// call stack.
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func checkCalledFromInit() {
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for skip := 3; ; skip++ {
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_, funcName, ok := callerName(skip)
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if !ok {
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panic("not called from an init func")
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}
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if funcName == "init" || strings.HasPrefix(funcName, "init·") ||
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strings.HasPrefix(funcName, "init.") {
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return
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}
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}
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}
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// A regex to find a package path within a function name. It finds the shortest string that is
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// followed by '.' and doesn't have any '/'s left.
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var pkgPathRe = regexp.MustCompile(`^(.*?)\.([^/]+)$`)
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// callerName returns the package path and function name of the calling
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// function. The skip argument has the same meaning as the skip argument of
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// runtime.Callers.
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func callerName(skip int) (pkgPath, funcName string, ok bool) {
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var pc [1]uintptr
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n := runtime.Callers(skip+1, pc[:])
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if n != 1 {
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return "", "", false
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}
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f := runtime.FuncForPC(pc[0]).Name()
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s := pkgPathRe.FindStringSubmatch(f)
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if len(s) < 3 {
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panic(fmt.Errorf("failed to extract package path and function name from %q", f))
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}
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return s[1], s[2], true
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}
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// GetNumericSdkVersion removes the first occurrence of system_ in a string,
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// which is assumed to be something like "system_1.2.3"
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func GetNumericSdkVersion(v string) string {
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return strings.Replace(v, "system_", "", 1)
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}
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|
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// copied from build/kati/strutil.go
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func substPattern(pat, repl, str string) string {
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ps := strings.SplitN(pat, "%", 2)
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if len(ps) != 2 {
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if str == pat {
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return repl
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}
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return str
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}
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in := str
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trimmed := str
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if ps[0] != "" {
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trimmed = strings.TrimPrefix(in, ps[0])
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if trimmed == in {
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return str
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}
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}
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in = trimmed
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if ps[1] != "" {
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trimmed = strings.TrimSuffix(in, ps[1])
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if trimmed == in {
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return str
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}
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}
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rs := strings.SplitN(repl, "%", 2)
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if len(rs) != 2 {
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return repl
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}
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return rs[0] + trimmed + rs[1]
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}
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|
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// copied from build/kati/strutil.go
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func matchPattern(pat, str string) bool {
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i := strings.IndexByte(pat, '%')
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if i < 0 {
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return pat == str
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}
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return strings.HasPrefix(str, pat[:i]) && strings.HasSuffix(str, pat[i+1:])
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}
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var shlibVersionPattern = regexp.MustCompile("(?:\\.\\d+(?:svn)?)+")
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|
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// splitFileExt splits a file name into root, suffix and ext. root stands for the file name without
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// the file extension and the version number (e.g. "libexample"). suffix stands for the
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// concatenation of the file extension and the version number (e.g. ".so.1.0"). ext stands for the
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// file extension after the version numbers are trimmed (e.g. ".so").
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func SplitFileExt(name string) (string, string, string) {
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// Extract and trim the shared lib version number if the file name ends with dot digits.
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suffix := ""
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matches := shlibVersionPattern.FindAllStringIndex(name, -1)
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if len(matches) > 0 {
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lastMatch := matches[len(matches)-1]
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if lastMatch[1] == len(name) {
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suffix = name[lastMatch[0]:lastMatch[1]]
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name = name[0:lastMatch[0]]
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}
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}
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// Extract the file name root and the file extension.
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ext := filepath.Ext(name)
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root := strings.TrimSuffix(name, ext)
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suffix = ext + suffix
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return root, suffix, ext
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}
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|
|
// ShardPaths takes a Paths, and returns a slice of Paths where each one has at most shardSize paths.
|
|
func ShardPaths(paths Paths, shardSize int) []Paths {
|
|
if len(paths) == 0 {
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return nil
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|
}
|
|
ret := make([]Paths, 0, (len(paths)+shardSize-1)/shardSize)
|
|
for len(paths) > shardSize {
|
|
ret = append(ret, paths[0:shardSize])
|
|
paths = paths[shardSize:]
|
|
}
|
|
if len(paths) > 0 {
|
|
ret = append(ret, paths)
|
|
}
|
|
return ret
|
|
}
|
|
|
|
// ShardString takes a string and returns a slice of strings where the length of each one is
|
|
// at most shardSize.
|
|
func ShardString(s string, shardSize int) []string {
|
|
if len(s) == 0 {
|
|
return nil
|
|
}
|
|
ret := make([]string, 0, (len(s)+shardSize-1)/shardSize)
|
|
for len(s) > shardSize {
|
|
ret = append(ret, s[0:shardSize])
|
|
s = s[shardSize:]
|
|
}
|
|
if len(s) > 0 {
|
|
ret = append(ret, s)
|
|
}
|
|
return ret
|
|
}
|
|
|
|
// ShardStrings takes a slice of strings, and returns a slice of slices of strings where each one has at most shardSize
|
|
// elements.
|
|
func ShardStrings(s []string, shardSize int) [][]string {
|
|
if len(s) == 0 {
|
|
return nil
|
|
}
|
|
ret := make([][]string, 0, (len(s)+shardSize-1)/shardSize)
|
|
for len(s) > shardSize {
|
|
ret = append(ret, s[0:shardSize])
|
|
s = s[shardSize:]
|
|
}
|
|
if len(s) > 0 {
|
|
ret = append(ret, s)
|
|
}
|
|
return ret
|
|
}
|
|
|
|
// CheckDuplicate checks if there are duplicates in given string list.
|
|
// If there are, it returns first such duplicate and true.
|
|
func CheckDuplicate(values []string) (duplicate string, found bool) {
|
|
seen := make(map[string]string)
|
|
for _, v := range values {
|
|
if duplicate, found = seen[v]; found {
|
|
return duplicate, true
|
|
}
|
|
seen[v] = v
|
|
}
|
|
return "", false
|
|
}
|
|
|
|
func AddToStringSet(set map[string]bool, items []string) {
|
|
for _, item := range items {
|
|
set[item] = true
|
|
}
|
|
}
|
|
|
|
// SyncMap is a wrapper around sync.Map that provides type safety via generics.
|
|
type SyncMap[K comparable, V any] struct {
|
|
sync.Map
|
|
}
|
|
|
|
// Load returns the value stored in the map for a key, or the zero value if no
|
|
// value is present.
|
|
// The ok result indicates whether value was found in the map.
|
|
func (m *SyncMap[K, V]) Load(key K) (value V, ok bool) {
|
|
v, ok := m.Map.Load(key)
|
|
if !ok {
|
|
return *new(V), false
|
|
}
|
|
return v.(V), true
|
|
}
|
|
|
|
// Store sets the value for a key.
|
|
func (m *SyncMap[K, V]) Store(key K, value V) {
|
|
m.Map.Store(key, value)
|
|
}
|
|
|
|
// LoadOrStore returns the existing value for the key if present.
|
|
// Otherwise, it stores and returns the given value.
|
|
// The loaded result is true if the value was loaded, false if stored.
|
|
func (m *SyncMap[K, V]) LoadOrStore(key K, value V) (actual V, loaded bool) {
|
|
v, loaded := m.Map.LoadOrStore(key, value)
|
|
return v.(V), loaded
|
|
}
|