'How to get the pointer of return value from function call?
I just need a pointer to time.Time, so the code below seems invalid:
./c.go:5: cannot take the address of time.Now()
I just wonder why? Is there any way to do that except to do assignment to a variable first and take the pointer of the variable?
package main
import "time"
func main() {
_ = &time.Now()
}
Solution 1:[1]
The probably unsatisfying answer is "you can't do it because the spec says so." The spec says that to use & on something it has to be addressable or a compound literal, and to be addressable it has to be "a variable, pointer indirection, or slice indexing operation; or a a field selector of an addressable struct operand; or an array indexing operation of an addressable array." Function calls and method calls are definitely not on the list.
Practically speaking, it's probably because the return value of a function may not have a usable address; it may be in a register (in which case it's definitely not addressable) or on the stack (in which case it has an address, but one that won't be valid if it's put in a pointer that escapes the current scope. To guarantee addressability, Go would have to do pretty much the exact equivalent of assigning it to a variable. But Go is the kind of language that figures that if it's going to allocate storage for a variable it's going to be because you said to, not because the compiler magically decided to. So it doesn't make the result of a function addressable.
Or I could be over-thinking it and they simply didn't want to have a special case for functions that return one value versus functions that return multiple :)
Solution 2:[2]
You can't directly take the address of a function call (or more precisely the return value(s) of the function) as described by hobbs.
There is another way but it is ugly:
p := &[]time.Time{time.Now()}[0]
fmt.Printf("%T %p\n%v", p, p, *p)
Output (Go Playground):
*time.Time 0x10438180
2009-11-10 23:00:00 +0000 UTC
What happens here is a struct is created with a literal, containing one element (the return value of time.Now()), the slice is indexed (0th element) and the address of the 0th element is taken.
So rather just use a local variable:
t := time.Now()
p := &t
Or a helper function:
func ptr(t time.Time) *time.Time {
return &t
}
p := ptr(time.Now())
Which can also be a one-liner anonymous function:
p := func() *time.Time { t := time.Now(); return &t }()
Or as an alternative:
p := func(t time.Time) *time.Time { return &t }(time.Now())
For even more alternatives, see:
How do I do a literal *int64 in Go?
Also see related question: How can I store reference to the result of an operation in Go?
Solution 3:[3]
Fortunately, generics now offer quite a clean solution by defining a function only one time, that can be used on any type:
package main
func ptr[T any](x T) *T {
return &x
}
func main() {
print(ptr("foo"))
print(ptr(42))
}
Playground: https://go.dev/play/p/TgpEPKjpXX7
However, this will work only starting from Golang 1.18. For previous versions, you'll need a function for each type, as other answers suggested.
Solution 4:[4]
If you are having this trouble with a function you wrote, change your function to return a pointer. Even though you can't take the address of a return value, you can dereference a return value, so it will be suitable whether you want the pointer or the object.
func Add(x, y int) *int {
tmp := x + y
return &tmp
}
func main() {
fmt.Println("I want the pointer: ", Add(3, 4))
fmt.Println("I want the object: ", *Add(3, 4))
}
Sources
This article follows the attribution requirements of Stack Overflow and is licensed under CC BY-SA 3.0.
Source: Stack Overflow
| Solution | Source |
|---|---|
| Solution 1 | hobbs |
| Solution 2 | |
| Solution 3 | |
| Solution 4 | user40176 |