一尘不染

如何在Go中将[4] uint8转换为uint32?

go

如何将go的类型从uint8转换为unit32?
只需代码:

package main

import (
    "fmt"
)

func main() {
    uInt8 := []uint8{0,1,2,3}
    var uInt32 uint32
    uInt32 = uint32(uInt8)
    fmt.Printf("%v to %v\n", uInt8, uInt32)
}

〜> 6g test.go && 6l -o test test.6 && ./test
test.go:10:无法将uInt8(类型[] uint8)转换为uint32类型


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2020-07-02

共1个答案

一尘不染

package main

import (
    "encoding/binary"
    "fmt"
)

func main() {
    u8 := []uint8{0, 1, 2, 3}
    u32LE := binary.LittleEndian.Uint32(u8)
    fmt.Println("little-endian:", u8, "to", u32LE)
    u32BE := binary.BigEndian.Uint32(u8)
    fmt.Println("big-endian:   ", u8, "to", u32BE)
}

输出:

little-endian: [0 1 2 3] to 50462976
big-endian:    [0 1 2 3] to 66051

Go 二进制包功能通过一系列移位实现。

func (littleEndian) Uint32(b []byte) uint32 {
    return uint32(b[0]) | uint32(b[1])<<8 | uint32(b[2])<<16 | uint32(b[3])<<24
}

func (bigEndian) Uint32(b []byte) uint32 {
    return uint32(b[3]) | uint32(b[2])<<8 | uint32(b[1])<<16 | uint32(b[0])<<24
}
2020-07-02