mirror of
https://gitee.com/johng/gf
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Remove the t array of wrapper array. Now it's a real one. Other normal array will base on it. --------- Co-authored-by: Copilot <175728472+Copilot@users.noreply.github.com>
502 lines
14 KiB
Go
502 lines
14 KiB
Go
// Copyright GoFrame Author(https://goframe.org). All Rights Reserved.
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//
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// This Source Code Form is subject to the terms of the MIT License.
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// If a copy of the MIT was not distributed with this file,
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// You can obtain one at https://github.com/gogf/gf.
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package garray
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import (
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"fmt"
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"sync"
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"github.com/gogf/gf/v2/util/gconv"
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)
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// Array is a golang array with rich features.
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// It contains a concurrent-safe/unsafe switch, which should be set
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// when its initialization and cannot be changed then.
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type Array struct {
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*TArray[any]
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once sync.Once
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}
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// New creates and returns an empty array.
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// The parameter `safe` is used to specify whether using array in concurrent-safety,
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// which is false in default.
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func New(safe ...bool) *Array {
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return NewArraySize(0, 0, safe...)
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}
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// NewArray is alias of New, please see New.
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func NewArray(safe ...bool) *Array {
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return NewArraySize(0, 0, safe...)
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}
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// NewArraySize create and returns an array with given size and cap.
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// The parameter `safe` is used to specify whether using array in concurrent-safety,
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// which is false in default.
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func NewArraySize(size int, cap int, safe ...bool) *Array {
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return &Array{
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TArray: NewTArraySize[any](size, cap, safe...),
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}
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}
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// NewArrayRange creates and returns an array by a range from `start` to `end`
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// with step value `step`.
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func NewArrayRange(start, end, step int, safe ...bool) *Array {
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if step == 0 {
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panic(fmt.Sprintf(`invalid step value: %d`, step))
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}
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slice := make([]any, 0)
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index := 0
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for i := start; i <= end; i += step {
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slice = append(slice, i)
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index++
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}
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return NewArrayFrom(slice, safe...)
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}
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// NewFrom is alias of NewArrayFrom.
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// See NewArrayFrom.
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func NewFrom(array []any, safe ...bool) *Array {
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return NewArrayFrom(array, safe...)
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}
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// NewFromCopy is alias of NewArrayFromCopy.
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// See NewArrayFromCopy.
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func NewFromCopy(array []any, safe ...bool) *Array {
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return NewArrayFromCopy(array, safe...)
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}
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// NewArrayFrom creates and returns an array with given slice `array`.
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// The parameter `safe` is used to specify whether using array in concurrent-safety,
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// which is false in default.
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func NewArrayFrom(array []any, safe ...bool) *Array {
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return &Array{
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TArray: NewTArrayFrom(array, safe...),
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}
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}
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// NewArrayFromCopy creates and returns an array from a copy of given slice `array`.
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// The parameter `safe` is used to specify whether using array in concurrent-safety,
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// which is false in default.
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func NewArrayFromCopy(array []any, safe ...bool) *Array {
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newArray := make([]any, len(array))
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copy(newArray, array)
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return NewArrayFrom(newArray, safe...)
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}
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// lazyInit lazily initializes the array.
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func (a *Array) lazyInit() {
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a.once.Do(func() {
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if a.TArray == nil {
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a.TArray = NewTArray[any](false)
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}
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})
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}
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// At returns the value by the specified index.
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// If the given `index` is out of range of the array, it returns `nil`.
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func (a *Array) At(index int) (value any) {
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a.lazyInit()
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return a.TArray.At(index)
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}
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// Get returns the value by the specified index.
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// If the given `index` is out of range of the array, the `found` is false.
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func (a *Array) Get(index int) (value any, found bool) {
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a.lazyInit()
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return a.TArray.Get(index)
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}
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// Set sets value to specified index.
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func (a *Array) Set(index int, value any) error {
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a.lazyInit()
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return a.TArray.Set(index, value)
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}
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// SetArray sets the underlying slice array with the given `array`.
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func (a *Array) SetArray(array []any) *Array {
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a.lazyInit()
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a.TArray.SetArray(array)
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return a
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}
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// Replace replaces the array items by given `array` from the beginning of array.
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func (a *Array) Replace(array []any) *Array {
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a.lazyInit()
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a.TArray.Replace(array)
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return a
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}
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// Sum returns the sum of values in an array.
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func (a *Array) Sum() (sum int) {
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a.lazyInit()
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return a.TArray.Sum()
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}
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// SortFunc sorts the array by custom function `less`.
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func (a *Array) SortFunc(less func(v1, v2 any) bool) *Array {
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a.lazyInit()
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a.TArray.SortFunc(less)
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return a
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}
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// InsertBefore inserts the `values` to the front of `index`.
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func (a *Array) InsertBefore(index int, values ...any) error {
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a.lazyInit()
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return a.TArray.InsertBefore(index, values...)
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}
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// InsertAfter inserts the `values` to the back of `index`.
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func (a *Array) InsertAfter(index int, values ...any) error {
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a.lazyInit()
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return a.TArray.InsertAfter(index, values...)
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}
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// Remove removes an item by index.
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// If the given `index` is out of range of the array, the `found` is false.
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func (a *Array) Remove(index int) (value any, found bool) {
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a.lazyInit()
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return a.TArray.Remove(index)
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}
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// RemoveValue removes an item by value.
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// It returns true if value is found in the array, or else false if not found.
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func (a *Array) RemoveValue(value any) bool {
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a.lazyInit()
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return a.TArray.RemoveValue(value)
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}
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// RemoveValues removes multiple items by `values`.
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func (a *Array) RemoveValues(values ...any) {
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a.lazyInit()
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a.TArray.RemoveValues(values...)
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}
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// PushLeft pushes one or multiple items to the beginning of array.
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func (a *Array) PushLeft(value ...any) *Array {
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a.lazyInit()
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a.TArray.PushLeft(value...)
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return a
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}
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// PushRight pushes one or multiple items to the end of array.
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// It equals to Append.
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func (a *Array) PushRight(value ...any) *Array {
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a.lazyInit()
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a.TArray.PushRight(value...)
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return a
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}
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// PopRand randomly pops and return an item out of array.
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// Note that if the array is empty, the `found` is false.
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func (a *Array) PopRand() (value any, found bool) {
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a.lazyInit()
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return a.TArray.PopRand()
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}
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// PopRands randomly pops and returns `size` items out of array.
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func (a *Array) PopRands(size int) []any {
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a.lazyInit()
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return a.TArray.PopRands(size)
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}
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// PopLeft pops and returns an item from the beginning of array.
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// Note that if the array is empty, the `found` is false.
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func (a *Array) PopLeft() (value any, found bool) {
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a.lazyInit()
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return a.TArray.PopLeft()
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}
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// PopRight pops and returns an item from the end of array.
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// Note that if the array is empty, the `found` is false.
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func (a *Array) PopRight() (value any, found bool) {
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a.lazyInit()
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return a.TArray.PopRight()
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}
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// PopLefts pops and returns `size` items from the beginning of array.
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func (a *Array) PopLefts(size int) []any {
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a.lazyInit()
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return a.TArray.PopLefts(size)
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}
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// PopRights pops and returns `size` items from the end of array.
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func (a *Array) PopRights(size int) []any {
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a.lazyInit()
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return a.TArray.PopRights(size)
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}
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// Range picks and returns items by range, like array[start:end].
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// Notice, if in concurrent-safe usage, it returns a copy of slice;
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// else a pointer to the underlying data.
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//
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// If `end` is negative, then the offset will start from the end of array.
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// If `end` is omitted, then the sequence will have everything from start up
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// until the end of the array.
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func (a *Array) Range(start int, end ...int) []any {
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a.lazyInit()
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return a.TArray.Range(start, end...)
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}
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// SubSlice returns a slice of elements from the array as specified
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// by the `offset` and `size` parameters.
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// If in concurrent safe usage, it returns a copy of the slice; else a pointer.
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//
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// If offset is non-negative, the sequence will start at that offset in the array.
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// If offset is negative, the sequence will start that far from the end of the array.
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//
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// If length is given and is positive, then the sequence will have up to that many elements in it.
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// If the array is shorter than the length, then only the available array elements will be present.
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// If length is given and is negative then the sequence will stop that many elements from the end of the array.
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// If it is omitted, then the sequence will have everything from offset up until the end of the array.
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//
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// Any possibility crossing the left border of array, it will fail.
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func (a *Array) SubSlice(offset int, length ...int) []any {
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a.lazyInit()
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return a.TArray.SubSlice(offset, length...)
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}
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// Append is alias of PushRight, please See PushRight.
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func (a *Array) Append(value ...any) *Array {
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a.lazyInit()
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a.TArray.Append(value...)
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return a
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}
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// Len returns the length of array.
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func (a *Array) Len() int {
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a.lazyInit()
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return a.TArray.Len()
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}
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// Slice returns the underlying data of array.
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// Note that, if it's in concurrent-safe usage, it returns a copy of underlying data,
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// or else a pointer to the underlying data.
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func (a *Array) Slice() []any {
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a.lazyInit()
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return a.TArray.Slice()
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}
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// Interfaces returns current array as []any.
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func (a *Array) Interfaces() []any {
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return a.Slice()
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}
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// Clone returns a new array, which is a copy of current array.
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func (a *Array) Clone() (newArray *Array) {
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a.lazyInit()
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return &Array{TArray: a.TArray.Clone()}
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}
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// Clear deletes all items of current array.
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func (a *Array) Clear() *Array {
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a.lazyInit()
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a.TArray.Clear()
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return a
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}
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// Contains checks whether a value exists in the array.
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func (a *Array) Contains(value any) bool {
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a.lazyInit()
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return a.TArray.Contains(value)
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}
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// Search searches array by `value`, returns the index of `value`,
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// or returns -1 if not exists.
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func (a *Array) Search(value any) int {
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a.lazyInit()
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return a.TArray.Search(value)
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}
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// Unique uniques the array, clear repeated items.
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// Example: [1,1,2,3,2] -> [1,2,3]
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func (a *Array) Unique() *Array {
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a.lazyInit()
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a.TArray.Unique()
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return a
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}
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// LockFunc locks writing by callback function `f`.
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func (a *Array) LockFunc(f func(array []any)) *Array {
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a.lazyInit()
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a.TArray.LockFunc(f)
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return a
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}
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// RLockFunc locks reading by callback function `f`.
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func (a *Array) RLockFunc(f func(array []any)) *Array {
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a.lazyInit()
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a.TArray.RLockFunc(f)
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return a
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}
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// Merge merges `array` into current array.
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// The parameter `array` can be any garray or slice type.
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// The difference between Merge and Append is Append supports only specified slice type,
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// but Merge supports more parameter types.
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func (a *Array) Merge(array any) *Array {
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a.lazyInit()
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return a.Append(gconv.Interfaces(array)...)
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}
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// Fill fills an array with num entries of the value `value`,
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// keys starting at the `startIndex` parameter.
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func (a *Array) Fill(startIndex int, num int, value any) error {
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a.lazyInit()
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return a.TArray.Fill(startIndex, num, value)
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}
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// Chunk splits an array into multiple arrays,
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// the size of each array is determined by `size`.
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// The last chunk may contain less than size elements.
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func (a *Array) Chunk(size int) [][]any {
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a.lazyInit()
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return a.TArray.Chunk(size)
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}
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// Pad pads array to the specified length with `value`.
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// If size is positive then the array is padded on the right, or negative on the left.
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// If the absolute value of `size` is less than or equal to the length of the array
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// then no padding takes place.
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func (a *Array) Pad(size int, val any) *Array {
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a.lazyInit()
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a.TArray.Pad(size, val)
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return a
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}
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// Rand randomly returns one item from array(no deleting).
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func (a *Array) Rand() (value any, found bool) {
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a.lazyInit()
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return a.TArray.Rand()
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}
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// Rands randomly returns `size` items from array(no deleting).
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func (a *Array) Rands(size int) []any {
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a.lazyInit()
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return a.TArray.Rands(size)
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}
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// Shuffle randomly shuffles the array.
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func (a *Array) Shuffle() *Array {
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a.lazyInit()
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a.TArray.Shuffle()
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return a
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}
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// Reverse makes array with elements in reverse order.
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func (a *Array) Reverse() *Array {
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a.lazyInit()
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a.TArray.Reverse()
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return a
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}
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// Join joins array elements with a string `glue`.
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func (a *Array) Join(glue string) string {
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a.lazyInit()
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return a.TArray.Join(glue)
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}
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// CountValues counts the number of occurrences of all values in the array.
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func (a *Array) CountValues() map[any]int {
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a.lazyInit()
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return a.TArray.CountValues()
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}
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// Iterator is alias of IteratorAsc.
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func (a *Array) Iterator(f func(k int, v any) bool) {
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a.IteratorAsc(f)
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}
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// IteratorAsc iterates the array readonly in ascending order with given callback function `f`.
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// If `f` returns true, then it continues iterating; or false to stop.
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func (a *Array) IteratorAsc(f func(k int, v any) bool) {
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a.lazyInit()
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a.TArray.IteratorAsc(f)
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}
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// IteratorDesc iterates the array readonly in descending order with given callback function `f`.
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// If `f` returns true, then it continues iterating; or false to stop.
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func (a *Array) IteratorDesc(f func(k int, v any) bool) {
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a.lazyInit()
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a.TArray.IteratorDesc(f)
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}
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// String returns current array as a string, which implements like json.Marshal does.
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func (a *Array) String() string {
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if a == nil {
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return ""
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}
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a.lazyInit()
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return a.TArray.String()
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}
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// MarshalJSON implements the interface MarshalJSON for json.Marshal.
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// Note that do not use pointer as its receiver here.
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func (a Array) MarshalJSON() ([]byte, error) {
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a.lazyInit()
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return a.TArray.MarshalJSON()
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}
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// UnmarshalJSON implements the interface UnmarshalJSON for json.Unmarshal.
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func (a *Array) UnmarshalJSON(b []byte) error {
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a.lazyInit()
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return a.TArray.UnmarshalJSON(b)
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}
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// UnmarshalValue is an interface implement which sets any type of value for array.
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func (a *Array) UnmarshalValue(value any) error {
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a.lazyInit()
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return a.TArray.UnmarshalValue(value)
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}
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// Filter iterates array and filters elements using custom callback function.
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// It removes the element from array if callback function `filter` returns true,
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// it or else does nothing and continues iterating.
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func (a *Array) Filter(filter func(index int, value any) bool) *Array {
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a.lazyInit()
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a.TArray.Filter(filter)
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return a
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}
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// FilterNil removes all nil value of the array.
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func (a *Array) FilterNil() *Array {
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a.lazyInit()
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a.TArray.FilterNil()
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return a
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}
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// FilterEmpty removes all empty value of the array.
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// Values like: 0, nil, false, "", len(slice/map/chan) == 0 are considered empty.
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func (a *Array) FilterEmpty() *Array {
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a.lazyInit()
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a.TArray.FilterEmpty()
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return a
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}
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// Walk applies a user supplied function `f` to every item of array.
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func (a *Array) Walk(f func(value any) any) *Array {
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a.lazyInit()
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a.TArray.Walk(f)
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return a
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}
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// IsEmpty checks whether the array is empty.
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func (a *Array) IsEmpty() bool {
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a.lazyInit()
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return a.TArray.IsEmpty()
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}
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// DeepCopy implements interface for deep copy of current type.
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func (a *Array) DeepCopy() any {
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if a == nil {
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return nil
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}
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a.lazyInit()
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return &Array{
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TArray: a.TArray.DeepCopy().(*TArray[any]),
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}
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}
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