Files
lneto/x/xnet/stack-async.go
T
ddirect fba97c990a Checksum simplification proposal (#29)
* Simplified checksum calculation and verification

* Fixed tests

* UDP: using NewBoundedFrame to create a Frame instance limited to the actual frame size.

* Minor: renamed some functions

* Commented and made more readable consecutive SetCRC calls.

* Fixed icmp checksum calculation after rebase

* Replaced NewBoundedFrame with explicit validation
2026-02-05 17:35:42 -03:00

572 lines
13 KiB
Go

package xnet
import (
"errors"
"net/netip"
"sync"
"time"
"github.com/soypat/lneto"
"github.com/soypat/lneto/arp"
"github.com/soypat/lneto/dhcpv4"
"github.com/soypat/lneto/dns"
"github.com/soypat/lneto/ethernet"
"github.com/soypat/lneto/internet"
"github.com/soypat/lneto/ntp"
"github.com/soypat/lneto/tcp"
)
const (
minTCPBuffer = 256
)
type StackAsync struct {
mu sync.Mutex
hostname string
clientID string
link internet.StackEthernet
ip internet.StackIP
arp arp.Handler
udps internet.StackPorts
tcps internet.StackPortsMACFiltered
dhcpUDP internet.StackUDPPort
dhcp dhcpv4.Client
dhcpResults DHCPResults
subnet netip.Prefix // Local subnet for ARP resolution.
dnsUDP internet.StackUDPPort
dns dns.Client
ednsopt dns.Resource
lookup dns.Message
dnssv netip.Addr
ntpUDP internet.StackUDPPort
ntp ntp.Client
sysprec int8 // NTP system precision.
prng uint32
totalsent uint64
totalrecv uint64
}
type StackConfig struct {
StaticAddress netip.Addr
DNSServer netip.Addr
NTPServer netip.Addr
Hostname string
MaxTCPConns int
RandSeed int64
HardwareAddress [6]byte
MTU uint16
EthernetTxCRC32Update func(crc uint32, b []byte) uint32
}
func (s *StackAsync) Hostname() string {
return s.hostname
}
func (s *StackAsync) Demux(carrierData []byte, etherOff int) error {
s.mu.Lock()
defer s.mu.Unlock()
s.totalrecv += uint64(len(carrierData) - etherOff)
return s.link.Demux(carrierData, etherOff)
}
func (s *StackAsync) Encapsulate(carrierData []byte, offsetToIP, offsetToFrame int) (int, error) {
s.mu.Lock()
defer s.mu.Unlock()
n, err := s.link.Encapsulate(carrierData, offsetToIP, offsetToFrame)
s.totalsent += uint64(n)
return n, err
}
func (s *StackAsync) MTU() int {
return s.link.MTU()
}
func (s *StackAsync) Reset(cfg StackConfig) error {
s.mu.Lock()
defer s.mu.Unlock()
mac := cfg.HardwareAddress
addr := cfg.StaticAddress
s.prng = uint32(cfg.RandSeed)
if s.prng == 0 {
return errors.New("zero random seed")
}
s.hostname = cfg.Hostname
if !addr.IsValid() {
addr = netip.AddrFrom4([4]byte{}) // If static not set DHCP will be performed and address will be zero.
} else if addr.Is6() {
return errors.New("IPv6 unsupported as of yet")
}
const linkNodes = 2 // ARP and IP nodes
ecfg := internet.StackEthernetConfig{
MTU: int(cfg.MTU),
MaxNodes: linkNodes,
MAC: mac,
Gateway: ethernet.BroadcastAddr(),
AppendCRC32: cfg.EthernetTxCRC32Update != nil,
CRC32Update: cfg.EthernetTxCRC32Update,
}
err := s.link.Configure(ecfg)
if err != nil {
return err
}
const ipNodes = 2 // UDP, TCP ports.
err = s.ip.Reset(addr, ipNodes)
if err != nil {
return err
}
//
err = s.resetARP()
if err != nil {
return err
}
const udpMaintenanceConns = 3 // DHCP, DNS, NTP.
err = s.udps.ResetUDP(udpMaintenanceConns)
if err != nil {
return err
}
// Enable TCP if connections present.
if cfg.MaxTCPConns > 0 {
err = s.tcps.ResetTCP(cfg.MaxTCPConns)
if err != nil {
return err
}
err = s.ip.Register(&s.tcps)
if err != nil {
return err
}
}
// Now setup stacks.
// ARP registered in resetARP.
err = s.link.Register(&s.ip) // IPv4 | IPv6
if err != nil {
return err
}
err = s.ip.Register(&s.udps)
if err != nil {
return err
}
var timebuf [32]time.Time
s.sysprec = ntp.CalculateSystemPrecision(time.Now, timebuf[:])
if s.clientID == "" {
s.clientID = "lneto-" + s.hostname
}
s.totalrecv = 0
s.totalsent = 0
if cfg.DNSServer.IsValid() {
s.dnssv = cfg.DNSServer
}
return nil
}
var errInvalidIPAddr = errors.New("invaldi IP address")
func (s *StackAsync) resetARP() error {
mac := s.link.HardwareAddr6()
addr := s.ip.Addr()
if !addr.IsValid() {
return errInvalidIPAddr
}
proto := ethernet.TypeIPv4
if addr.Is6() {
proto = ethernet.TypeIPv6
}
err := s.arp.Reset(arp.HandlerConfig{
HardwareAddr: mac[:],
ProtocolAddr: addr.AsSlice(),
MaxQueries: 3,
MaxPending: 3,
HardwareType: 1,
ProtocolType: proto,
})
if err != nil {
return err
}
err = s.link.Register(&s.arp)
if err != nil {
return err
}
return nil
}
// Prand32 generates a pseudo random 32-bit unsigned integer from the internal state and advances the seed.
func (s *StackAsync) Prand32() (randval uint32) {
s.mu.Lock()
randval = s.prand32()
s.mu.Unlock()
return randval
}
func (s *StackAsync) prand32() uint32 {
/* Algorithm "xor" from p. 4 of Marsaglia, "Xorshift RNGs" */
seed := s.prng
seed ^= seed << 13
seed ^= seed >> 17
seed ^= seed << 5
s.prng = seed
return seed
}
func (s *StackAsync) SetIPAddr(addr netip.Addr) error {
s.mu.Lock()
defer s.mu.Unlock()
return s.setIPAddr(addr)
}
func (s *StackAsync) setIPAddr(addr netip.Addr) error {
err := s.ip.SetAddr(addr)
if err != nil {
return err
}
ip := addr.As4()
err = s.arp.UpdateProtoAddr(ip[:])
return err
}
func (s *StackAsync) Addr() netip.Addr {
s.mu.Lock()
defer s.mu.Unlock()
return s.ip.Addr()
}
func (s *StackAsync) SetSubnet(subnetMask netip.Prefix) {
s.mu.Lock()
defer s.mu.Unlock()
s.subnet = subnetMask
}
func (s *StackAsync) SetHardwareAddress(hw [6]byte) error {
s.mu.Lock()
defer s.mu.Unlock()
s.link.SetHardwareAddr6(hw)
return s.resetARP()
}
func (s *StackAsync) HardwareAddress() (hw [6]byte) {
s.mu.Lock()
defer s.mu.Unlock()
return s.link.HardwareAddr6()
}
func (s *StackAsync) SetGateway6(gwhw [6]byte) {
s.mu.Lock()
defer s.mu.Unlock()
s.link.SetGateway6(gwhw)
}
func (s *StackAsync) Gateway6() [6]byte {
s.mu.Lock()
defer s.mu.Unlock()
return s.link.Gateway6()
}
func (s *StackAsync) DialTCP(conn *tcp.Conn, localPort uint16, addrp netip.AddrPort) (err error) {
s.mu.Lock()
defer s.mu.Unlock()
var mac []byte
if s.subnet.Contains(addrp.Addr()) {
mac = make([]byte, 6)
ip := addrp.Addr().As4()
// StartQuery starts an ARP query for addresses in this network.
// On finishing query MAC is set and thus the StackPort will allow encapsulating
// data on that connection.
err = s.arp.StartQuery(mac, ip[:])
if err != nil {
return err
}
}
err = conn.OpenActive(localPort, addrp, tcp.Value(s.prand32()))
if err != nil {
return err
}
err = s.tcps.Register(conn, mac) // MAC is set later on by ARP response arriving to our network.
if err != nil {
conn.Abort()
return err
}
return nil
}
func (s *StackAsync) ListenTCP(conn *tcp.Conn, localPort uint16) (err error) {
s.mu.Lock()
defer s.mu.Unlock()
err = conn.OpenListen(localPort, tcp.Value(s.prand32()))
if err != nil {
return err
}
err = s.tcps.Register(conn, nil)
if err != nil {
conn.Abort()
return err
}
return nil
}
func (s *StackAsync) RegisterListener(listener *tcp.Listener) (err error) {
s.mu.Lock()
defer s.mu.Unlock()
lport := listener.LocalPort()
if lport == 0 {
return lneto.ErrZeroSource
}
return s.tcps.Register(listener, nil)
}
var errNoDNSServer = errors.New("no DNS server- did DHCP complete? You can set a predetermined DNS server in Stack configuration")
func (s *StackAsync) StartLookupIP(host string) error {
s.mu.Lock()
defer s.mu.Unlock()
if !s.dnssv.IsValid() {
return errNoDNSServer
}
name, err := dns.NewName(host)
if err != nil {
return err
}
// EDNS0 buffer size: MTU minus overhead for IP+UDP headers and safety margin.
// 100 bytes covers IPv4 max header (60) + UDP (8) + 32 byte margin.
s.ednsopt.SetEDNS0(uint16(s.link.MTU())-100, 0, 0, nil)
rand := s.prand32()
err = s.dns.StartResolve(uint16(rand>>1)+1024, uint16(rand), 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
}
dns4 := s.dnssv.As4()
s.dnsUDP.SetStackNode(&s.dns, dns4[:], dns.ServerPort)
err = s.udps.Register(&s.dnsUDP)
return err
}
var errDNSNotDone = errors.New("DNS not done")
func (s *StackAsync) ResultLookupIP(host string) ([]netip.Addr, bool, error) {
s.mu.Lock()
defer s.mu.Unlock()
done, err := s.dns.MessageCopyTo(&s.lookup)
if err != nil {
return nil, done, err
} else if !done {
return nil, done, errDNSNotDone
}
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)))
} else {
err = errors.New("bogus IP")
}
}
if err == nil && len(addrs) == 0 {
err = errors.New("no address in DNS answer")
}
return addrs, done, err
}
func (s *StackAsync) StartDHCPv4Request(request [4]byte) error {
s.mu.Lock()
defer s.mu.Unlock()
s.dhcp.Reset()
xid := s.prand32()
err := s.dhcp.BeginRequest(xid, dhcpv4.RequestConfig{
RequestedAddr: request,
ClientHardwareAddr: s.link.HardwareAddr6(),
Hostname: s.hostname,
ClientID: s.clientID,
})
if err != nil {
return err
}
s.dhcpUDP.SetStackNode(&s.dhcp, nil, dhcpv4.DefaultServerPort)
err = s.udps.Register(&s.dhcpUDP)
if err != nil {
return err
}
return err
}
func (s *StackAsync) StartNTP(addr netip.Addr) error {
s.mu.Lock()
defer s.mu.Unlock()
s.ntp.Reset(s.sysprec, time.Now)
addr4 := addr.As4()
s.ntpUDP.SetStackNode(&s.ntp, addr4[:], ntp.ServerPort)
err := s.udps.Register(&s.ntpUDP)
return err
}
// ResultNTPOffset returns the result of the NTP protocol such that the following code returns the corrected time.
// If the bool is false then the NTP has not yet completed.
//
// nowCorrected := time.Now().Add(resultNTP)
func (s *StackAsync) ResultNTPOffset() (time.Duration, bool) {
s.mu.Lock()
defer s.mu.Unlock()
return s.ntp.Offset(), s.ntp.IsDone()
}
func (s *StackAsync) StartResolveHardwareAddress6(ip netip.Addr) error {
s.mu.Lock()
defer s.mu.Unlock()
if !ip.Is4() {
return errors.New("unsupported or invalid IP address")
}
addr := ip.As4()
return s.arp.StartQuery(nil, addr[:])
}
// ResultResolveHardwareAddress6
func (s *StackAsync) ResultResolveHardwareAddress6(ip netip.Addr) (hw [6]byte, err error) {
s.mu.Lock()
defer s.mu.Unlock()
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
}
// DiscardResolveHardwareAddress6 discards a pending ARP query for the given IP address.
func (s *StackAsync) DiscardResolveHardwareAddress6(ip netip.Addr) error {
s.mu.Lock()
defer s.mu.Unlock()
if !ip.Is4() {
return errors.New("unsupported or invalid IP address")
}
addr := ip.As4()
return s.arp.DiscardQuery(addr[:])
}
type DHCPResults struct {
DNSServers []netip.Addr
Router netip.Addr
AssignedAddr netip.Addr
ServerAddr netip.Addr
BroadcastAddr netip.Addr
Gateway netip.Addr
Subnet netip.Prefix
TRebind uint32 // [seconds]
TRenewal uint32
TLease uint32 // IP lease time [seconds].
}
func (s *StackAsync) ResultDHCP() (*DHCPResults, error) {
err := s.populateDHCPResults()
if err != nil {
return nil, err
}
return &s.dhcpResults, nil
}
type Statistics struct {
// Total amount of bytes sent over encapsulate.
TotalSent uint64
// Total amount of bytes received over demux.
TotalReceived uint64
}
func (s *StackAsync) ReadStatistics(stats *Statistics) {
stats.TotalReceived = s.totalrecv
stats.TotalSent = s.totalsent
}
// AssimilateDHCPResults sets the stack's following parameters:
// - IPv4 address.
// - DNS server.
// - Subnet (for ARP resolution of local addresses).
func (stack *StackAsync) AssimilateDHCPResults(results *DHCPResults) error {
stack.mu.Lock()
defer stack.mu.Unlock()
if results.Subnet.IsValid() {
stack.subnet = results.Subnet
}
if results.AssignedAddr.IsValid() {
err := stack.setIPAddr(results.AssignedAddr)
if err != nil {
return err
}
}
if len(results.DNSServers) > 0 {
if !results.DNSServers[0].IsValid() || !results.DNSServers[0].Is4() {
return errors.New("bad DNS server address, IPv6 or invalid")
}
stack.dnssv = results.DNSServers[0]
}
return nil
}
func (s *StackAsync) populateDHCPResults() error {
if !s.dhcp.State().HasIP() {
return errors.New("DHCP not completed")
}
router4, ok := s.dhcp.RouterAddr()
if !ok {
return errors.New("no DHCP router address")
}
assigned4, ok := s.dhcp.AssignedAddr()
if !ok {
return errors.New("no DHCP assigned address")
}
router := netip.AddrFrom4(router4)
s.dhcpResults = DHCPResults{
Router: router,
Subnet: s.dhcp.SubnetPrefix(),
AssignedAddr: netip.AddrFrom4(assigned4),
ServerAddr: addr4(s.dhcp.ServerAddr()),
BroadcastAddr: addr4(s.dhcp.BroadcastAddr()),
Gateway: addr4(s.dhcp.GatewayAddr()),
TRebind: s.dhcp.RebindingSeconds(),
TRenewal: s.dhcp.RenewalSeconds(),
TLease: s.dhcp.IPLeaseSeconds(),
DNSServers: s.dhcpResults.DNSServers[:0], // reuse field capacity.
}
s.dhcpResults.DNSServers = s.dhcp.AppendDNSServers(s.dhcpResults.DNSServers)
return nil
}
func addr4(addr [4]byte, ok bool) netip.Addr {
if !ok {
return netip.Addr{}
}
return netip.AddrFrom4(addr)
}
func hash(b []byte) uint16 {
var csum lneto.CRC791
return csum.PayloadSum16(b)
}