golang 函数:使用 return 并行执行
golang functions: parallel execution with return
如何使两个函数调用 f1(2) 和 f1(1) 并行执行,以便所有程序执行 2 秒而不是 3 秒。
package main
import (
"fmt"
"time"
)
// sleeps for `secs` seconds
func f1(secs time.Duration) (result string) {
fmt.Printf("waiting %V\n", secs)
time.Sleep(secs * time.Second)
result = fmt.Sprintf("waited for %d seconds", secs)
return
}
// prints arg1, arg2
func f2(arg1, arg2 string) {
fmt.Println(arg1)
fmt.Println(arg2)
}
// this function executes for 3 seconds, because waits a lot
func runNotParallel() {
out1 := f1(2)
out2 := f1(1)
f2(out1, out2)
}
// golang parallel return functions
// todo: make it run so all the function will executes for 2 seconds not for 3
func runParallel() {
out1 := f1(2)
out2 := f1(1)
f2(out1, out2)
}
func main() {
runNotParallel()
runParallel()
}
我想我只能用频道来做。我应该重新定义函数 f1 还是我可以保持原样并仅更改我调用它的方式?
使用chan/goroutine
package main
import (
"fmt"
"time"
)
// sleeps for `secs` seconds
func f1(secs time.Duration) (result string) {
fmt.Printf("waiting %v\n", secs)
time.Sleep(secs * time.Second)
result = fmt.Sprintf("waited for %v seconds", secs)
return
}
// prints arg1, arg2
func f2(arg1, arg2 string) {
fmt.Println(arg1)
fmt.Println(arg2)
}
// this function executes for 3 seconds, because waits a lot
func runNotParallel() {
out1 := f1(2)
out2 := f1(1)
f2(out1, out2)
}
// golang parallel return functions
// todo: make it run so all the function will executes for 2 seconds not for 3
func runParallel() {
out1 := make(chan string)
out2 := make(chan string)
go func() {
out1 <- f1(2)
}()
go func() {
out2 <- f1(1)
}()
f2(<-out1, <-out2)
}
func main() {
runNotParallel()
runParallel()
}
另一种方法是使用 WaitGroup
我编写了这个实用函数来帮助并行化一组函数:
import "sync"
// Parallelize parallelizes the function calls
func Parallelize(functions ...func()) {
var waitGroup sync.WaitGroup
waitGroup.Add(len(functions))
defer waitGroup.Wait()
for _, function := range functions {
go func(copy func()) {
defer waitGroup.Done()
copy()
}(function)
}
}
所以对于你的情况,我们可以这样做
value1 := ""
value2 := ""
func1 := func() {
value1 = f1(2)
}
func2 = func() {
value2 = f1(1)
}
Parallelize(func1, func2)
f2(out1, out2)
如果您想使用 Parallelize 函数,可以在这里找到 https://github.com/shomali11/util
这是一个没有通道但缺少 f2 同步的解决方案:
package main
import (
"fmt"
"sync"
"time"
)
// sleeps for `secs` seconds
func f1(secs time.Duration, result *string, sg *sync.WaitGroup) () {
fmt.Printf("waiting %v\n", secs)
time.Sleep(secs * time.Second)
*result = fmt.Sprintf("waited for %d seconds", secs)
if sg!= nil {
sg.Done()
}
return
}
// prints arg1, arg2
func f2(arg1, arg2 string) {
fmt.Println(arg1)
fmt.Println(arg2)
}
// this function executes for 3 seconds, because waits a lot
func runNotParallel() {
var out1, out2 string
f1(2, &out1, nil)
f1(1, &out2,nil)
f2(out1, out2)
}
// golang parallel return functions
// todo: make it run so all the function will executes for 2 seconds not for 3
func runParallel() {
var sg sync.WaitGroup
sg.Add(2)
var out1, out2 string
go f1(2, &out1, &sg)
go f1(1, &out2, &sg)
sg.Wait()
f2(out1, out2)
}
func main() {
runNotParallel()
runParallel()
}
基本上,go 运算符会阻止 using/accessing 一个 return 值,但可以使用 return 占位符的指针来完成在签名中
go 1.18 支持泛型, 可读性更高。
func async[T any](f func() T) chan T {
ch := make(chan T)
go func() {
ch <- f()
}()
return ch
}
func main() {
startTime := time.Now().Local()
out1 := async(func() string {
time.Sleep(1 * time.Second)
return "thing 1"
})
out2 := async(func() string {
time.Sleep(2 * time.Second)
return "thing 2"
})
results := []string{<-out1, <-out2}
fmt.Printf("results: %v\n", results)
fmt.Printf("took %v", time.Since(startTime))
}
lo package 提供此功能以及许多其他通用辅助功能。
如何使两个函数调用 f1(2) 和 f1(1) 并行执行,以便所有程序执行 2 秒而不是 3 秒。
package main
import (
"fmt"
"time"
)
// sleeps for `secs` seconds
func f1(secs time.Duration) (result string) {
fmt.Printf("waiting %V\n", secs)
time.Sleep(secs * time.Second)
result = fmt.Sprintf("waited for %d seconds", secs)
return
}
// prints arg1, arg2
func f2(arg1, arg2 string) {
fmt.Println(arg1)
fmt.Println(arg2)
}
// this function executes for 3 seconds, because waits a lot
func runNotParallel() {
out1 := f1(2)
out2 := f1(1)
f2(out1, out2)
}
// golang parallel return functions
// todo: make it run so all the function will executes for 2 seconds not for 3
func runParallel() {
out1 := f1(2)
out2 := f1(1)
f2(out1, out2)
}
func main() {
runNotParallel()
runParallel()
}
我想我只能用频道来做。我应该重新定义函数 f1 还是我可以保持原样并仅更改我调用它的方式?
使用chan/goroutine
package main
import (
"fmt"
"time"
)
// sleeps for `secs` seconds
func f1(secs time.Duration) (result string) {
fmt.Printf("waiting %v\n", secs)
time.Sleep(secs * time.Second)
result = fmt.Sprintf("waited for %v seconds", secs)
return
}
// prints arg1, arg2
func f2(arg1, arg2 string) {
fmt.Println(arg1)
fmt.Println(arg2)
}
// this function executes for 3 seconds, because waits a lot
func runNotParallel() {
out1 := f1(2)
out2 := f1(1)
f2(out1, out2)
}
// golang parallel return functions
// todo: make it run so all the function will executes for 2 seconds not for 3
func runParallel() {
out1 := make(chan string)
out2 := make(chan string)
go func() {
out1 <- f1(2)
}()
go func() {
out2 <- f1(1)
}()
f2(<-out1, <-out2)
}
func main() {
runNotParallel()
runParallel()
}
另一种方法是使用 WaitGroup
我编写了这个实用函数来帮助并行化一组函数:
import "sync"
// Parallelize parallelizes the function calls
func Parallelize(functions ...func()) {
var waitGroup sync.WaitGroup
waitGroup.Add(len(functions))
defer waitGroup.Wait()
for _, function := range functions {
go func(copy func()) {
defer waitGroup.Done()
copy()
}(function)
}
}
所以对于你的情况,我们可以这样做
value1 := ""
value2 := ""
func1 := func() {
value1 = f1(2)
}
func2 = func() {
value2 = f1(1)
}
Parallelize(func1, func2)
f2(out1, out2)
如果您想使用 Parallelize 函数,可以在这里找到 https://github.com/shomali11/util
这是一个没有通道但缺少 f2 同步的解决方案:
package main
import (
"fmt"
"sync"
"time"
)
// sleeps for `secs` seconds
func f1(secs time.Duration, result *string, sg *sync.WaitGroup) () {
fmt.Printf("waiting %v\n", secs)
time.Sleep(secs * time.Second)
*result = fmt.Sprintf("waited for %d seconds", secs)
if sg!= nil {
sg.Done()
}
return
}
// prints arg1, arg2
func f2(arg1, arg2 string) {
fmt.Println(arg1)
fmt.Println(arg2)
}
// this function executes for 3 seconds, because waits a lot
func runNotParallel() {
var out1, out2 string
f1(2, &out1, nil)
f1(1, &out2,nil)
f2(out1, out2)
}
// golang parallel return functions
// todo: make it run so all the function will executes for 2 seconds not for 3
func runParallel() {
var sg sync.WaitGroup
sg.Add(2)
var out1, out2 string
go f1(2, &out1, &sg)
go f1(1, &out2, &sg)
sg.Wait()
f2(out1, out2)
}
func main() {
runNotParallel()
runParallel()
}
基本上,go 运算符会阻止 using/accessing 一个 return 值,但可以使用 return 占位符的指针来完成在签名中
go 1.18 支持泛型,
func async[T any](f func() T) chan T {
ch := make(chan T)
go func() {
ch <- f()
}()
return ch
}
func main() {
startTime := time.Now().Local()
out1 := async(func() string {
time.Sleep(1 * time.Second)
return "thing 1"
})
out2 := async(func() string {
time.Sleep(2 * time.Second)
return "thing 2"
})
results := []string{<-out1, <-out2}
fmt.Printf("results: %v\n", results)
fmt.Printf("took %v", time.Since(startTime))
}
lo package 提供此功能以及许多其他通用辅助功能。