Files
gf/os/gcache/gcache_adapter_memory.go
Lance Add d8a173d9f0 feat(instance): migrate instance containers to type-safe generics (#4617)
### 变更说明

本次重构将项目中用于**实例管理的容器**从 `StrAnyMap`/`IntAnyMap` 迁移到类型安全的泛型实现
`KVMapWithChecker`,同时将相关的 `glist.List` 和 `gqueue.Queue`
替换为对应的泛型版本,以提高实例管理的类型安全性。并且减少原先代码中的大量类型断言,提高性能。

### 前因

目前`goframe`中大量使用了包含`any`的容器,然后通过断言去转换类型,麻烦且影响性能,尤其是对`gdb/gredis/glog`等需要高频获取`instance`实例的组件影响较大。最近几个版本中gf完成了数据结构容器的泛型化改造,以及我最近解决了其中几个泛型容器对于`typed
nil`过滤的问题,所以可以逐步迁移这些实例容器到泛型容器,减少断言优化性能

### 主要改进

#### 1. 实例容器泛型化

以下模块的实例管理容器已迁移到泛型实现:

**核心实例管理**:
- `database/gdb`: 数据库实例容器 → `KVMap[string, DB]`
- `database/gredis`: Redis 实例容器 → `KVMap[string, *Redis]`
- `database/gredis`: Redis 配置容器 → `KVMap[string, *Config]`
- `os/gcfg`: 配置实例容器 → `KVMap[string, *Config]`
- `os/glog`: 日志实例容器 → `KVMap[string, *Logger]`
- `os/gview`: 视图实例容器 → `KVMap[string, *View]`
- `i18n/gi18n`: 国际化实例容器 → `KVMap[string, *Manager]`

**网络服务实例**:
- `net/ghttp`: HTTP 服务器容器 → `KVMap[string, *Server]`
- `net/gtcp`: TCP 服务器容器 → `KVMap[any, *Server]`
- `net/gudp`: UDP 服务器容器 → `KVMap[string, *Server]`

**其他实例容器**:
- `os/gres`: 资源实例容器 → `KVMap[string, *Resource]`
- `os/gfpool`: 文件池容器 → `KVMap[string, *Pool]`
- `os/gspath`: 路径搜索容器 → `KVMap[string, *SPath]`
- `net/gtcp`: 连接池容器 → `KVMap[string, *gpool.Pool]`

#### 2. 相关数据结构泛型化

- `os/gfsnotify`: 回调列表 → `TList[*Callback]`,事件队列 → `TQueue[*Event]`
- `os/grpool`: 任务队列 → `TList[*localPoolItem]`
- `os/gcache`: 事件队列 → `TList[*adapterMemoryEvent]`
- `net/ghttp`: 解析项列表 → `TList[*HandlerItemParsed]`
- `os/gproc`: 消息队列 → `TQueue[*MsgRequest]`
- `os/gmlock`: 锁映射 → `KVMap[string, *sync.RWMutex]`

### 技术实现

1. **引入检查器函数**: 为每个实例容器添加 `checker` 函数用于空值检测
2. **消除类型断言**: 实例获取时无需 `v.(*Type)` 转换
3. **明确函数签名**: `GetOrSetFuncLock` 的回调从 `func() any` 改为 `func() T`

### 使用示例

#### 实例容器的变更

**变更前**:
```go
// 旧的实例管理方式
var instances = gmap.NewStrAnyMap(true)

func Instance(name string) *Logger {
    v := instances.GetOrSetFuncLock(name, func() any {
        return New()
    })
    return v.(*Logger)  // 需要类型断言
}
```


**变更后**:
```go
// 新的泛型实例容器
var (
    checker   = func(v *Logger) bool { return v == nil }
    instances = gmap.NewKVMapWithChecker[string, *Logger](checker, true)
)

func Instance(name string) *Logger {
    return instances.GetOrSetFuncLock(name, New)  // 直接返回,无需断言
}
```


#### 队列容器的变更

**变更前**:
```go
// 旧的队列方式
events := gqueue.New()
events.Push(&Event{Path: "/tmp/file"})

if v := events.Pop(); v != nil {
    event := v.(*Event)  // 需要类型断言
    handleEvent(event)
}
```


**变更后**:
```go
// 新的泛型队列
events := gqueue.NewTQueue[*Event]()
events.Push(&Event{Path: "/tmp/file"})

if event := events.Pop(); event != nil {
    handleEvent(event)  // event 已是 *Event 类型
}
```


### 收益

-  **编译时类型安全**: 实例容器的类型错误在编译期捕获
-  **消除运行时断言**: 避免类型断言带来的 panic 风险
-  **提升代码可读性**: 实例管理逻辑更清晰
-  **改善开发体验**: IDE 类型提示和代码补全更准确

### 性能权衡

**编译时**:
- 泛型实例化会增加编译时间和二进制体积
- 预估编译时间增加 5-15%,二进制体积增加约 1-2MB

**运行时**:
- 减少类型断言的反射开销
- 提升实例获取等热点路径的性能
2026-01-16 15:23:13 +08:00

485 lines
16 KiB
Go

// Copyright GoFrame Author(https://goframe.org). All Rights Reserved.
//
// This Source Code Form is subject to the terms of the MIT License.
// If a copy of the MIT was not distributed with this file,
// You can obtain one at https://github.com/gogf/gf.
package gcache
import (
"context"
"math"
"time"
"github.com/gogf/gf/v2/container/glist"
"github.com/gogf/gf/v2/container/gset"
"github.com/gogf/gf/v2/container/gtype"
"github.com/gogf/gf/v2/container/gvar"
"github.com/gogf/gf/v2/os/gtime"
"github.com/gogf/gf/v2/os/gtimer"
)
// AdapterMemory is an adapter implements using memory.
type AdapterMemory struct {
data *memoryData // data is the underlying cache data which is stored in a hash table.
expireTimes *memoryExpireTimes // expireTimes is the expiring key to its timestamp mapping, which is used for quick indexing and deleting.
expireSets *memoryExpireSets // expireSets is the expiring timestamp to its key set mapping, which is used for quick indexing and deleting.
lru *memoryLru // lru is the LRU manager, which is enabled when attribute cap > 0.
eventList *glist.TList[*adapterMemoryEvent] // eventList is the asynchronous event list for internal data synchronization.
closed *gtype.Bool // closed controls the cache closed or not.
}
var _ Adapter = (*AdapterMemory)(nil)
// Internal event item.
type adapterMemoryEvent struct {
k any // Key.
e int64 // Expire time in milliseconds.
}
const (
// defaultMaxExpire is the default expire time for no expiring items.
// It equals to math.MaxInt64/1000000.
defaultMaxExpire = 9223372036854
)
// NewAdapterMemory creates and returns a new adapter_memory cache object.
func NewAdapterMemory() *AdapterMemory {
return doNewAdapterMemory()
}
// NewAdapterMemoryLru creates and returns a new adapter_memory cache object with LRU.
func NewAdapterMemoryLru(cap int) *AdapterMemory {
c := doNewAdapterMemory()
c.lru = newMemoryLru(cap)
return c
}
// doNewAdapterMemory creates and returns a new adapter_memory cache object.
func doNewAdapterMemory() *AdapterMemory {
c := &AdapterMemory{
data: newMemoryData(),
expireTimes: newMemoryExpireTimes(),
expireSets: newMemoryExpireSets(),
eventList: glist.NewT[*adapterMemoryEvent](true),
closed: gtype.NewBool(),
}
// Here may be a "timer leak" if adapter is manually changed from adapter_memory adapter.
// Do not worry about this, as adapter is less changed, and it does nothing if it's not used.
gtimer.AddSingleton(context.Background(), time.Second, c.syncEventAndClearExpired)
return c
}
// Set sets cache with `key`-`value` pair, which is expired after `duration`.
//
// It does not expire if `duration` == 0.
// It deletes the keys of `data` if `duration` < 0 or given `value` is nil.
func (c *AdapterMemory) Set(ctx context.Context, key any, value any, duration time.Duration) error {
defer c.handleLruKey(ctx, key)
expireTime := c.getInternalExpire(duration)
c.data.Set(key, memoryDataItem{
v: value,
e: expireTime,
})
c.eventList.PushBack(&adapterMemoryEvent{
k: key,
e: expireTime,
})
return nil
}
// SetMap batch sets cache with key-value pairs by `data` map, which is expired after `duration`.
//
// It does not expire if `duration` == 0.
// It deletes the keys of `data` if `duration` < 0 or given `value` is nil.
func (c *AdapterMemory) SetMap(ctx context.Context, data map[any]any, duration time.Duration) error {
var (
expireTime = c.getInternalExpire(duration)
err = c.data.SetMap(data, expireTime)
)
if err != nil {
return err
}
for k := range data {
c.eventList.PushBack(&adapterMemoryEvent{
k: k,
e: expireTime,
})
}
if c.lru != nil {
for key := range data {
c.handleLruKey(ctx, key)
}
}
return nil
}
// SetIfNotExist sets cache with `key`-`value` pair which is expired after `duration`
// if `key` does not exist in the cache. It returns true the `key` does not exist in the
// cache, and it sets `value` successfully to the cache, or else it returns false.
//
// It does not expire if `duration` == 0.
// It deletes the `key` if `duration` < 0 or given `value` is nil.
func (c *AdapterMemory) SetIfNotExist(ctx context.Context, key any, value any, duration time.Duration) (bool, error) {
defer c.handleLruKey(ctx, key)
isContained, err := c.Contains(ctx, key)
if err != nil {
return false, err
}
if !isContained {
if _, err = c.doSetWithLockCheck(ctx, key, value, duration); err != nil {
return false, err
}
return true, nil
}
return false, nil
}
// SetIfNotExistFunc sets `key` with result of function `f` and returns true
// if `key` does not exist in the cache, or else it does nothing and returns false if `key` already exists.
//
// The parameter `value` can be type of `func() any`, but it does nothing if its
// result is nil.
//
// It does not expire if `duration` == 0.
// It deletes the `key` if `duration` < 0 or given `value` is nil.
func (c *AdapterMemory) SetIfNotExistFunc(ctx context.Context, key any, f Func, duration time.Duration) (bool, error) {
defer c.handleLruKey(ctx, key)
isContained, err := c.Contains(ctx, key)
if err != nil {
return false, err
}
if !isContained {
value, err := f(ctx)
if err != nil {
return false, err
}
if _, err = c.doSetWithLockCheck(ctx, key, value, duration); err != nil {
return false, err
}
return true, nil
}
return false, nil
}
// SetIfNotExistFuncLock sets `key` with result of function `f` and returns true
// if `key` does not exist in the cache, or else it does nothing and returns false if `key` already exists.
//
// It does not expire if `duration` == 0.
// It deletes the `key` if `duration` < 0 or given `value` is nil.
//
// Note that it differs from function `SetIfNotExistFunc` is that the function `f` is executed within
// writing mutex lock for concurrent safety purpose.
func (c *AdapterMemory) SetIfNotExistFuncLock(ctx context.Context, key any, f Func, duration time.Duration) (bool, error) {
defer c.handleLruKey(ctx, key)
isContained, err := c.Contains(ctx, key)
if err != nil {
return false, err
}
if !isContained {
if _, err = c.doSetWithLockCheck(ctx, key, f, duration); err != nil {
return false, err
}
return true, nil
}
return false, nil
}
// Get retrieves and returns the associated value of given `key`.
// It returns nil if it does not exist, or its value is nil, or it's expired.
// If you would like to check if the `key` exists in the cache, it's better using function Contains.
func (c *AdapterMemory) Get(ctx context.Context, key any) (*gvar.Var, error) {
item, ok := c.data.Get(key)
if ok && !item.IsExpired() {
c.handleLruKey(ctx, key)
return gvar.New(item.v), nil
}
return nil, nil
}
// GetOrSet retrieves and returns the value of `key`, or sets `key`-`value` pair and
// returns `value` if `key` does not exist in the cache. The key-value pair expires
// after `duration`.
//
// It does not expire if `duration` == 0.
// It deletes the `key` if `duration` < 0 or given `value` is nil, but it does nothing
// if `value` is a function and the function result is nil.
func (c *AdapterMemory) GetOrSet(ctx context.Context, key any, value any, duration time.Duration) (*gvar.Var, error) {
defer c.handleLruKey(ctx, key)
v, err := c.Get(ctx, key)
if err != nil {
return nil, err
}
if v == nil {
return c.doSetWithLockCheck(ctx, key, value, duration)
}
return v, nil
}
// GetOrSetFunc retrieves and returns the value of `key`, or sets `key` with result of
// function `f` and returns its result if `key` does not exist in the cache. The key-value
// pair expires after `duration`.
//
// It does not expire if `duration` == 0.
// It deletes the `key` if `duration` < 0 or given `value` is nil, but it does nothing
// if `value` is a function and the function result is nil.
func (c *AdapterMemory) GetOrSetFunc(ctx context.Context, key any, f Func, duration time.Duration) (*gvar.Var, error) {
defer c.handleLruKey(ctx, key)
v, err := c.Get(ctx, key)
if err != nil {
return nil, err
}
if v == nil {
value, err := f(ctx)
if err != nil {
return nil, err
}
if value == nil {
return nil, nil
}
return c.doSetWithLockCheck(ctx, key, value, duration)
}
return v, nil
}
// GetOrSetFuncLock retrieves and returns the value of `key`, or sets `key` with result of
// function `f` and returns its result if `key` does not exist in the cache. The key-value
// pair expires after `duration`.
//
// It does not expire if `duration` == 0.
// It deletes the `key` if `duration` < 0 or given `value` is nil, but it does nothing
// if `value` is a function and the function result is nil.
//
// Note that it differs from function `GetOrSetFunc` is that the function `f` is executed within
// writing mutex lock for concurrent safety purpose.
func (c *AdapterMemory) GetOrSetFuncLock(ctx context.Context, key any, f Func, duration time.Duration) (*gvar.Var, error) {
defer c.handleLruKey(ctx, key)
v, err := c.Get(ctx, key)
if err != nil {
return nil, err
}
if v == nil {
return c.doSetWithLockCheck(ctx, key, f, duration)
}
return v, nil
}
// Contains checks and returns true if `key` exists in the cache, or else returns false.
func (c *AdapterMemory) Contains(ctx context.Context, key any) (bool, error) {
v, err := c.Get(ctx, key)
if err != nil {
return false, err
}
return v != nil, nil
}
// GetExpire retrieves and returns the expiration of `key` in the cache.
//
// Note that,
// It returns 0 if the `key` does not expire.
// It returns -1 if the `key` does not exist in the cache.
func (c *AdapterMemory) GetExpire(ctx context.Context, key any) (time.Duration, error) {
if item, ok := c.data.Get(key); ok {
c.handleLruKey(ctx, key)
return time.Duration(item.e-gtime.TimestampMilli()) * time.Millisecond, nil
}
return -1, nil
}
// Remove deletes one or more keys from cache, and returns its value.
// If multiple keys are given, it returns the value of the last deleted item.
func (c *AdapterMemory) Remove(ctx context.Context, keys ...any) (*gvar.Var, error) {
defer c.lru.Remove(keys...)
return c.doRemove(ctx, keys...)
}
func (c *AdapterMemory) doRemove(_ context.Context, keys ...any) (*gvar.Var, error) {
var removedKeys []any
removedKeys, value, err := c.data.Remove(keys...)
if err != nil {
return nil, err
}
for _, key := range removedKeys {
c.eventList.PushBack(&adapterMemoryEvent{
k: key,
e: gtime.TimestampMilli() - 1000,
})
}
return gvar.New(value), nil
}
// Update updates the value of `key` without changing its expiration and returns the old value.
// The returned value `exist` is false if the `key` does not exist in the cache.
//
// It deletes the `key` if given `value` is nil.
// It does nothing if `key` does not exist in the cache.
func (c *AdapterMemory) Update(ctx context.Context, key any, value any) (oldValue *gvar.Var, exist bool, err error) {
v, exist, err := c.data.Update(key, value)
if exist {
c.handleLruKey(ctx, key)
}
return gvar.New(v), exist, err
}
// UpdateExpire updates the expiration of `key` and returns the old expiration duration value.
//
// It returns -1 and does nothing if the `key` does not exist in the cache.
// It deletes the `key` if `duration` < 0.
func (c *AdapterMemory) UpdateExpire(ctx context.Context, key any, duration time.Duration) (oldDuration time.Duration, err error) {
newExpireTime := c.getInternalExpire(duration)
oldDuration, err = c.data.UpdateExpire(key, newExpireTime)
if err != nil {
return
}
if oldDuration != -1 {
c.eventList.PushBack(&adapterMemoryEvent{
k: key,
e: newExpireTime,
})
c.handleLruKey(ctx, key)
}
return
}
// Size returns the size of the cache.
func (c *AdapterMemory) Size(ctx context.Context) (size int, err error) {
return c.data.Size()
}
// Data returns a copy of all key-value pairs in the cache as map type.
func (c *AdapterMemory) Data(ctx context.Context) (map[any]any, error) {
return c.data.Data()
}
// Keys returns all keys in the cache as slice.
func (c *AdapterMemory) Keys(ctx context.Context) ([]any, error) {
return c.data.Keys()
}
// Values returns all values in the cache as slice.
func (c *AdapterMemory) Values(ctx context.Context) ([]any, error) {
return c.data.Values()
}
// Clear clears all data of the cache.
// Note that this function is sensitive and should be carefully used.
func (c *AdapterMemory) Clear(ctx context.Context) error {
c.data.Clear()
c.lru.Clear()
return nil
}
// Close closes the cache.
func (c *AdapterMemory) Close(ctx context.Context) error {
c.closed.Set(true)
return nil
}
// doSetWithLockCheck sets cache with `key`-`value` pair if `key` does not exist in the
// cache, which is expired after `duration`.
//
// It does not expire if `duration` == 0.
// The parameter `value` can be type of <func() any>, but it does nothing if the
// function result is nil.
//
// It doubly checks the `key` whether exists in the cache using mutex writing lock
// before setting it to the cache.
func (c *AdapterMemory) doSetWithLockCheck(ctx context.Context, key any, value any, duration time.Duration) (result *gvar.Var, err error) {
expireTimestamp := c.getInternalExpire(duration)
v, err := c.data.SetWithLock(ctx, key, value, expireTimestamp)
c.eventList.PushBack(&adapterMemoryEvent{k: key, e: expireTimestamp})
return gvar.New(v), err
}
// getInternalExpire converts and returns the expiration time with given expired duration in milliseconds.
func (c *AdapterMemory) getInternalExpire(duration time.Duration) int64 {
if duration == 0 {
return defaultMaxExpire
}
return gtime.TimestampMilli() + duration.Nanoseconds()/1000000
}
// makeExpireKey groups the `expire` in milliseconds to its according seconds.
func (c *AdapterMemory) makeExpireKey(expire int64) int64 {
return int64(math.Ceil(float64(expire/1000)+1) * 1000)
}
// syncEventAndClearExpired does the asynchronous task loop:
// 1. Asynchronously process the data in the event list,
// and synchronize the results to the `expireTimes` and `expireSets` properties.
// 2. Clean up the expired key-value pair data.
func (c *AdapterMemory) syncEventAndClearExpired(ctx context.Context) {
if c.closed.Val() {
gtimer.Exit()
return
}
var (
oldExpireTime int64
newExpireTime int64
)
// ================================
// Data expiration synchronization.
// ================================
for {
event := c.eventList.PopFront()
if event == nil {
break
}
// Fetching the old expire set.
oldExpireTime = c.expireTimes.Get(event.k)
// Calculating the new expiration time set.
newExpireTime = c.makeExpireKey(event.e)
// Expiration changed for this key.
if newExpireTime != oldExpireTime {
c.expireSets.GetOrNew(newExpireTime).Add(event.k)
if oldExpireTime != 0 {
c.expireSets.GetOrNew(oldExpireTime).Remove(event.k)
}
// Updating the expired time for `event.k`.
c.expireTimes.Set(event.k, newExpireTime)
}
}
// =================================
// Data expiration auto cleaning up.
// =================================
var (
expireSet *gset.Set
expireTime int64
currentEk = c.makeExpireKey(gtime.TimestampMilli())
)
// auto removing expiring key set for latest seconds.
for i := int64(1); i <= 5; i++ {
expireTime = currentEk - i*1000
if expireSet = c.expireSets.Get(expireTime); expireSet != nil {
// Iterating the set to delete all keys in it.
expireSet.Iterator(func(key any) bool {
c.deleteExpiredKey(key)
// remove auto expired key for lru.
c.lru.Remove(key)
return true
})
// Deleting the set after all of its keys are deleted.
c.expireSets.Delete(expireTime)
}
}
}
func (c *AdapterMemory) handleLruKey(ctx context.Context, keys ...any) {
if c.lru == nil {
return
}
if evictedKeys := c.lru.SaveAndEvict(keys...); len(evictedKeys) > 0 {
_, _ = c.doRemove(ctx, evictedKeys...)
return
}
}
// clearByKey deletes the key-value pair with given `key`.
// The parameter `force` specifies whether doing this deleting forcibly.
func (c *AdapterMemory) deleteExpiredKey(key any) {
// Doubly check before really deleting it from cache.
c.data.Delete(key)
// Deleting its expiration time from `expireTimes`.
c.expireTimes.Delete(key)
}