Files
lneto/examples/bridge/main.go
T
2025-07-19 20:40:23 -03:00

460 lines
10 KiB
Go

package main
import (
"crypto/rand"
"encoding/binary"
"errors"
"flag"
"fmt"
"log/slog"
"net"
"net/netip"
"os"
"runtime"
"strings"
"time"
"github.com/soypat/lneto/arp"
"github.com/soypat/lneto/dhcpv4"
"github.com/soypat/lneto/dns"
"github.com/soypat/lneto/ethernet"
"github.com/soypat/lneto/internal"
"github.com/soypat/lneto/internal/ltesto"
"github.com/soypat/lneto/internet"
"github.com/soypat/lneto/internet/pcap"
"github.com/soypat/lneto/ntp"
)
var softRand = time.Now().Unix()
func main() {
err := run()
if err != nil {
fmt.Println(err)
os.Exit(1)
}
fmt.Println("success")
}
func run() (err error) {
var (
flagInterface = "tap0"
flagUseHTTP = false
flagHostToResolve = ""
flagRequestedIP = ""
flagDoNTP = false
)
flag.StringVar(&flagInterface, "i", flagInterface, "Interface to use. Either tap* or the name of an existing interface to bridge to.")
flag.BoolVar(&flagUseHTTP, "http", flagUseHTTP, "Use HTTP tap interface.")
flag.StringVar(&flagHostToResolve, "host", flagHostToResolve, "Hostname to resolve via DNS.")
flag.StringVar(&flagRequestedIP, "addr", flagRequestedIP, "IP address to request via DHCP.")
flag.BoolVar(&flagDoNTP, "ntp", flagDoNTP, "Do NTP round and print result time")
flag.Parse()
fmt.Println("softrand", softRand)
_, err = dns.NewName(flagHostToResolve)
if err != nil {
flag.Usage()
return err
}
var iface ltesto.Interface
if flagUseHTTP {
iface = ltesto.NewHTTPTapClient("http://127.0.0.1:7070")
} else {
if strings.HasPrefix(flagInterface, "tap") {
tap, err := internal.NewTap(flagInterface, netip.MustParsePrefix("192.168.1.1/24"))
if err != nil {
return err
}
iface = tap
} else {
bridge, err := internal.NewBridge(flagInterface)
if err != nil {
return err
}
iface = bridge
}
}
defer iface.Close()
nicHW, err := iface.HardwareAddress6()
if err != nil {
return err
}
brHW := nicHW
mtu, err := iface.MTU()
if err != nil {
return err
}
nicAddr, err := iface.IPMask()
if err != nil {
return err
}
fmt.Println("NIC hardware address:", net.HardwareAddr(nicHW[:]).String(), "bridgeHW:", net.HardwareAddr(brHW[:]).String(), "mtu:", mtu, "addr:", nicAddr.String())
var stack Stack
err = stack.Reset(brHW, netip.AddrFrom4([4]byte{}), uint16(mtu))
if err != nil {
return err
}
buf := make([]byte, mtu)
lastAction := time.Now()
const (
stateDHCP = iota
stateInitARP
stateDNSNTP
stateNTP
stateDNS
stateDone
)
err = stack.BeginDHCPRequest([4]byte{192, 168, 1, 96})
if err != nil {
return err
}
state := stateDHCP
prevState := state
for {
switch state {
case stateDHCP:
dhcpIsDone := stack.dhcp.State() == dhcpv4.StateBound
if dhcpIsDone {
state = stateInitARP
assigned4, ok := stack.dhcp.AssignedAddr()
if !ok {
return errors.New("DHCP client address not assigned")
}
err = stack.ip.SetAddr(netip.AddrFrom4(assigned4))
if err != nil {
return err
}
routeraddr, ok := stack.dhcp.RouterAddr()
if !ok {
return errors.New("DHCP router address not assigned")
}
err = stack.StartResolveHardwareAddress6(netip.AddrFrom4(routeraddr))
if err != nil {
return err
}
}
case stateInitARP:
router, ok := stack.dhcp.RouterAddr()
if !ok {
return errors.New("DHCP router address not assigned")
}
hw, err := stack.ResultResolveHardwareAddress6(netip.AddrFrom4(router))
if err == nil {
stack.link.SetGateway6(hw)
if flagDoNTP {
state = stateDNSNTP
err = stack.StartLookupIP("pool.ntp.org")
} else {
state = stateDNS
err = stack.StartLookupIP(flagHostToResolve)
}
if err != nil {
return err
}
}
case stateDNSNTP:
addrs, done, err := stack.ResultLookupIP()
if err == nil {
state = stateNTP
fmt.Println("START NTP")
err = stack.StartNTP(addrs[0])
} else if !done {
err = nil
}
if err != nil {
return err
}
case stateNTP:
offset, done := stack.ResultNTP()
if done {
relative := "behind"
if offset < 0 {
relative = "ahead"
}
fmt.Println("NTP completed. You are", offset.Abs(), relative, "of the NTP server")
state = stateDNS
err = stack.StartLookupIP(flagHostToResolve)
if err != nil {
return err
}
}
case stateDNS:
addrs, done, err := stack.ResultLookupIP()
if err == nil {
fmt.Println(flagHostToResolve, "resolved to", addrs)
return nil
} else if done {
return err
}
}
if prevState != state {
fmt.Println("STATE CHANGE", prevState, state)
}
prevState = state
clear(buf)
nwrite, err := stack.Encapsulate(buf[:], 0)
if err != nil {
fmt.Println("ERR:ENCAPSULATE", err)
} else if nwrite > 0 {
n, err := iface.Write(buf[:nwrite])
if err != nil {
return err
} else if n != nwrite {
return fmt.Errorf("mismatch written bytes %d!=%d", nwrite, n)
}
}
clear(buf)
nread, err := iface.Read(buf)
if err != nil {
return err
} else if nread > 0 {
err = stack.Demux(buf[:nread], 0)
if err != nil {
fmt.Println("ERR:DEMUX", err)
}
}
if nread == 0 && nwrite == 0 && time.Since(lastAction) > 4*time.Second {
time.Sleep(5 * time.Millisecond)
} else {
lastAction = time.Now()
runtime.Gosched()
}
}
return nil
}
type Stack struct {
link internet.StackEthernet
ip internet.StackIP
arp arp.Handler
udps internet.StackPorts
dhcp dhcpv4.Client
dns dns.Client
ednsopt dns.Resource
lookup dns.Message
ntp ntp.Client
sysprec int8 // NTP system precision.
// Packet capture and top level filtering.
shark pcap.PacketBreakdown
aux []pcap.Frame
}
func (s *Stack) Demux(b []byte, _ int) (err error) {
s.aux, err = s.shark.CaptureEthernet(s.aux[:0], b, 0)
topFrame := s.aux[len(s.aux)-1]
isOK := topFrame.Protocol == "DHCPv4" || // Allow DHCP, DNS and NTP responses.
topFrame.Protocol == "DNS" ||
topFrame.Protocol == "NTP" ||
topFrame.Protocol == ethernet.TypeARP // Allow ARP responses.
if !isOK {
return nil
}
if err != nil {
fmt.Println("IN", s.aux, err.Error())
} else {
fmt.Println("IN", s.aux)
}
return s.link.Demux(b, 0)
}
func (s *Stack) Encapsulate(b []byte, _ int) (int, error) {
n, err := s.link.Encapsulate(b, 0)
if n > 0 {
iframes, errpcap := s.shark.CaptureEthernet(s.aux[:0], b[:n], 0)
if errpcap != nil {
fmt.Println("OU", iframes, errpcap.Error())
} else {
fmt.Println("OU", iframes)
}
}
return n, err
}
func (s *Stack) Reset(mac [6]byte, addr netip.Addr, mtu uint16) error {
const maxNodes = 8
err := s.link.Reset6(mac, ethernet.BroadcastAddr(), int(mtu), maxNodes)
if err != nil {
return err
}
err = s.ip.Reset(addr, maxNodes)
if err != nil {
return err
}
ipaddr := addr.AsSlice()
proto := ethernet.TypeIPv4
if addr.Is6() {
proto = ethernet.TypeIPv6
}
err = s.arp.Reset(arp.HandlerConfig{
HardwareAddr: mac[:],
ProtocolAddr: ipaddr,
MaxQueries: 3,
MaxPending: 3,
HardwareType: 1,
ProtocolType: proto,
})
if err != nil {
return err
}
err = s.udps.ResetUDP(maxNodes)
if err != nil {
return err
}
// Now setup stacks.
err = s.link.Register(&s.arp) // ARP.
if err != nil {
return err
}
err = s.link.Register(&s.ip) // IPv4 | IPv6
if err != nil {
return err
}
err = s.ip.Register(&s.udps)
if err != nil {
return err
}
s.ip.SetLogger(slog.Default())
var timebuf [32]time.Time
s.sysprec = ntp.CalculateSystemPrecision(time.Now, timebuf[:])
return nil
}
func (s *Stack) StartLookupIP(host string) error {
dnsSrvs := s.dhcp.DNSServerFirst()
if !dnsSrvs.IsValid() {
return errors.New("no valid DNS server")
}
name, err := dns.NewName(host)
if err != nil {
return err
}
s.ednsopt.SetEDNS0(uint16(s.link.MTU())-100, 0, 0, nil)
err = s.dns.StartResolve(uint16(softRand>>1)+1024, uint16(softRand), dns.ResolveConfig{
Questions: []dns.Question{
{
Name: name,
Type: dns.TypeA,
Class: dns.ClassINET,
},
},
Additional: []dns.Resource{
s.ednsopt,
},
EnableRecursion: true,
})
if err != nil {
return err
}
var u internet.StackUDPPort
dns4 := dnsSrvs.As4()
u.SetStackNode(&s.dns, dns4[:], dns.ServerPort)
err = s.udps.Register(&u)
if err != nil {
return err
}
fmt.Println("START LOOKUP", host, dns4[:])
return nil
}
func (s *Stack) ResultLookupIP() ([]netip.Addr, bool, error) {
done, err := s.dns.MessageCopyTo(&s.lookup)
if err != nil {
return nil, done, err
} else if !done {
return nil, done, errors.New("DNS not done")
}
var addrs []netip.Addr
ans := s.lookup.Answers
for i := range ans {
data := ans[i].RawData()
if len(data) == 4 {
addrs = append(addrs, netip.AddrFrom4([4]byte(data)))
} else if len(data) == 16 {
addrs = append(addrs, netip.AddrFrom16([16]byte(data)))
}
}
return addrs, done, nil
}
func (s *Stack) ResultNTP() (time.Duration, bool) {
return s.ntp.Offset(), s.ntp.IsDone()
}
func (s *Stack) BeginDHCPRequest(request [4]byte) error {
var buf [4]byte
rand.Read(buf[:])
xid := binary.LittleEndian.Uint32(buf[:])
err := s.dhcp.BeginRequest(xid, dhcpv4.RequestConfig{
RequestedAddr: request,
ClientHardwareAddr: s.link.HardwareAddr6(),
Hostname: "lneto",
})
if err != nil {
return err
}
var u internet.StackUDPPort
u.SetStackNode(&s.dhcp, nil, dhcpv4.DefaultServerPort)
err = s.udps.Register(&u)
if err != nil {
return err
}
return err
}
func (s *Stack) StartNTP(addr netip.Addr) error {
s.ntp.Reset(s.sysprec, time.Now)
var u internet.StackUDPPort
addr4 := addr.As4()
u.SetStackNode(&s.ntp, addr4[:], ntp.ServerPort)
err := s.udps.Register(&u)
return err
}
func (s *Stack) StartResolveHardwareAddress6(ip netip.Addr) error {
if !ip.Is4() {
return errors.New("unsupported or invalid IP address")
}
addr := ip.As4()
return s.arp.StartQuery(addr[:])
}
func (s *Stack) ResultResolveHardwareAddress6(ip netip.Addr) (hw [6]byte, err error) {
if !ip.Is4() {
return hw, errors.New("unsupported or invalid IP address")
}
addr := ip.As4()
hwslice, err := s.arp.QueryResult(addr[:])
if err != nil {
return hw, err
} else if len(hwslice) != 6 {
panic("unreachable slice hw length")
}
return [6]byte(hwslice), nil
}
func clear(buf []byte) {
for i := range buf {
buf[i] = 0
}
}
func getField(frame pcap.Frame, pkt []byte, class pcap.FieldClass) uint64 {
idx, err := frame.FieldByClass(class)
if err != nil {
return 0
}
v, _ := frame.FieldAsUint(idx, pkt)
return v
}