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I'm writing a program that should parse and reply to network packets but I'm a bit annoyed because I can't do simple C style return (int)buffer[at]; with an array of bytes. Is there any better way to retrieve 4 bytes from byte[] as int32 than the following?

func (packet *Packet) GetInt32(at int) int32 {
    return int32(packet.buffer[at]) << 24 +
        int32(packet.buffer[at+1]) << 16 +
        int32(packet.buffer[at+2]) << 8 +
        int32(packet.buffer[at+3])
}

It works correctly but I was thinking if there was a better way to do this.

share|improve this question
    
Wouldn't you need to increment at for each successive byte? – Lawrence Dol Dec 24 '10 at 21:31
    
Oh yeah, you're correct, my mistake. I'm not able to access the source at the moment so I just quickly wrote that function. – 0xHenry Dec 24 '10 at 21:34
up vote 2 down vote accepted
package main

import (
    "encoding/binary"
    "fmt"
    "math"
)

type Packet struct {
    buffer []byte
}

func (p *Packet) Int32(i int) int32 {
    return int32(binary.BigEndian.Uint32(p.buffer[i : i+4]))
}

func (p *Packet) Float32(i int) float32 {
    return math.Float32frombits(binary.BigEndian.Uint32(p.buffer[i : i+4]))
}

func main() {
    p := &Packet{buffer: []byte{0x01, 0x02, 0x00, 0x00, 0xFF, 0xFF, 0x07}}
    fmt.Println(p.Int32(2), p.Float32(2))
}


Output:  65535  9.1834e-41
share|improve this answer
    
What about doing the same with floats? – 0xHenry Dec 24 '10 at 22:39
    
I'm beginning to really fall in love with Go. I'll just have to read through the packages a bit more carefully next time! – 0xHenry Dec 24 '10 at 23:04

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