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nebula/outside_test.go
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save about 10MB of RAM by not importing gopacket except for tests (#1864)
* save about 10MB of RAM by not importing gopacket except for tests

* big ol find-replace
2026-08-28 14:00:09 -05:00

844 lines
27 KiB
Go

package nebula
import (
"bytes"
"encoding/binary"
"net"
"net/netip"
"testing"
"github.com/google/gopacket"
"github.com/google/gopacket/layers"
"github.com/slackhq/nebula/iputil"
"github.com/slackhq/nebula/firewall"
"github.com/stretchr/testify/assert"
"github.com/stretchr/testify/require"
"golang.org/x/net/ipv4"
"golang.org/x/net/ipv6"
)
func Test_newPacket(t *testing.T) {
p := &firewall.ParsedPacket{}
// length fails
err := newPacket([]byte{}, true, p)
require.ErrorIs(t, err, ErrPacketTooShort)
err = newPacket([]byte{0x40}, true, p)
require.ErrorIs(t, err, ErrIPv4PacketTooShort)
err = newPacket([]byte{0x60}, true, p)
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
// length fail with ip options
h := ipv4.Header{
Version: 1,
Len: 100,
Src: net.IPv4(10, 0, 0, 1),
Dst: net.IPv4(10, 0, 0, 2),
Options: []byte{0, 1, 0, 2},
}
b, _ := h.Marshal()
err = newPacket(b, true, p)
require.ErrorIs(t, err, ErrIPv4InvalidHeaderLength)
// not an ipv4 packet
err = newPacket([]byte{0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0}, true, p)
require.ErrorIs(t, err, ErrUnknownIPVersion)
// invalid ihl
err = newPacket([]byte{4<<4 | (8 >> 2 & 0x0f), 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0}, true, p)
require.ErrorIs(t, err, ErrIPv4InvalidHeaderLength)
// account for variable ip header length - incoming
h = ipv4.Header{
Version: 1,
Len: 100,
Src: net.IPv4(10, 0, 0, 1),
Dst: net.IPv4(10, 0, 0, 2),
Options: []byte{0, 1, 0, 2},
Protocol: iputil.IPProtocolTCP,
}
b, _ = h.Marshal()
b = append(b, []byte{0, 3, 0, 4}...)
err = newPacket(b, true, p)
require.NoError(t, err)
assert.Equal(t, uint8(iputil.IPProtocolTCP), p.Protocol)
assert.Equal(t, netip.MustParseAddr("10.0.0.2"), p.LocalAddr)
assert.Equal(t, netip.MustParseAddr("10.0.0.1"), p.RemoteAddr)
assert.Equal(t, uint16(3), p.RemotePort)
assert.Equal(t, uint16(4), p.LocalPort)
assert.False(t, p.Fragment)
// account for variable ip header length - outgoing
h = ipv4.Header{
Version: 1,
Protocol: 2,
Len: 100,
Src: net.IPv4(10, 0, 0, 1),
Dst: net.IPv4(10, 0, 0, 2),
Options: []byte{0, 1, 0, 2},
}
b, _ = h.Marshal()
b = append(b, []byte{0, 5, 0, 6}...)
err = newPacket(b, false, p)
require.NoError(t, err)
assert.Equal(t, uint8(2), p.Protocol)
assert.Equal(t, netip.MustParseAddr("10.0.0.1"), p.LocalAddr)
assert.Equal(t, netip.MustParseAddr("10.0.0.2"), p.RemoteAddr)
assert.Equal(t, uint16(6), p.RemotePort)
assert.Equal(t, uint16(5), p.LocalPort)
assert.False(t, p.Fragment)
}
func Test_newPacket_v6(t *testing.T) {
p := &firewall.ParsedPacket{}
// invalid ipv6
ip := layers.IPv6{
Version: 6,
HopLimit: 128,
SrcIP: net.IPv6linklocalallrouters,
DstIP: net.IPv6linklocalallnodes,
}
buffer := gopacket.NewSerializeBuffer()
opt := gopacket.SerializeOptions{
ComputeChecksums: false,
FixLengths: false,
}
err := gopacket.SerializeLayers(buffer, opt, &ip)
require.NoError(t, err)
err = newPacket(buffer.Bytes(), true, p)
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
// A v6 packet with a hop-by-hop extension
// ICMPv6 Payload (Echo Request)
icmpLayer := layers.ICMPv6{
TypeCode: layers.CreateICMPv6TypeCode(layers.ICMPv6TypeEchoRequest, 0),
}
// Hop-by-Hop Extension Header
hopOption := layers.IPv6HopByHopOption{}
hopOption.OptionData = []byte{0, 0, 0, 0}
hopByHop := layers.IPv6HopByHop{}
hopByHop.Options = append(hopByHop.Options, &hopOption)
ip = layers.IPv6{
Version: 6,
HopLimit: 128,
NextHeader: layers.IPProtocolIPv6Destination,
SrcIP: net.IPv6linklocalallrouters,
DstIP: net.IPv6linklocalallnodes,
}
buffer.Clear()
err = gopacket.SerializeLayers(buffer, gopacket.SerializeOptions{
ComputeChecksums: false,
FixLengths: true,
}, &ip, &hopByHop, &icmpLayer)
if err != nil {
panic(err)
}
// Ensure buffer length checks during parsing with the next 2 tests.
// A full IPv6 header and 1 byte in the first extension, but missing
// the length byte.
err = newPacket(buffer.Bytes()[:41], true, p)
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
// A full IPv6 header plus 1 full extension, but only 1 byte of the
// next layer, missing length byte
err = newPacket(buffer.Bytes()[:49], true, p)
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
err = nil
// A good ICMP packet
ip = layers.IPv6{
Version: 6,
NextHeader: layers.IPProtocolICMPv6,
HopLimit: 128,
SrcIP: net.IPv6linklocalallrouters,
DstIP: net.IPv6linklocalallnodes,
}
icmp := layers.ICMPv6{
TypeCode: layers.CreateICMPv6TypeCode(layers.ICMPv6TypeEchoRequest, 0),
Checksum: 0x1234,
}
buffer.Clear()
require.NoError(t, gopacket.SerializeLayers(buffer, opt, &ip, &icmp))
require.Error(t, newPacket(buffer.Bytes(), true, p))
buffer.Clear()
echo := layers.ICMPv6Echo{
Identifier: 0xabcd,
SeqNumber: 1234,
}
require.NoError(t, gopacket.SerializeLayers(buffer, opt, &ip, &icmp, &echo))
require.NoError(t, newPacket(buffer.Bytes(), true, p))
assert.Equal(t, uint8(layers.IPProtocolICMPv6), p.Protocol)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.RemoteAddr)
assert.Equal(t, netip.MustParseAddr("ff02::1"), p.LocalAddr)
assert.Equal(t, uint16(0xabcd), p.RemotePort)
assert.Equal(t, uint16(0), p.LocalPort)
assert.False(t, p.Fragment)
// A minimal 4 byte non-echo ICMPv6 message (type, code, checksum), no identifier to read
icmpMin := make([]byte, ipv6.HeaderLen+4)
copy(icmpMin, buffer.Bytes()[:ipv6.HeaderLen])
icmpMin[6] = byte(layers.IPProtocolICMPv6)
icmpMin[ipv6.HeaderLen] = 1 // type 1, destination unreachable, not echo
err = newPacket(icmpMin, true, p)
require.NoError(t, err)
assert.Equal(t, uint8(layers.IPProtocolICMPv6), p.Protocol)
assert.Equal(t, uint16(0), p.RemotePort)
assert.Equal(t, uint16(0), p.LocalPort)
assert.False(t, p.Fragment)
// A good ESP packet
b := buffer.Bytes()
b[6] = byte(layers.IPProtocolESP)
err = newPacket(b, true, p)
require.NoError(t, err)
assert.Equal(t, uint8(layers.IPProtocolESP), p.Protocol)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.RemoteAddr)
assert.Equal(t, netip.MustParseAddr("ff02::1"), p.LocalAddr)
assert.Equal(t, uint16(0), p.RemotePort)
assert.Equal(t, uint16(0), p.LocalPort)
assert.False(t, p.Fragment)
// A good None packet
b = buffer.Bytes()
b[6] = byte(layers.IPProtocolNoNextHeader)
err = newPacket(b, true, p)
require.NoError(t, err)
assert.Equal(t, uint8(layers.IPProtocolNoNextHeader), p.Protocol)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.RemoteAddr)
assert.Equal(t, netip.MustParseAddr("ff02::1"), p.LocalAddr)
assert.Equal(t, uint16(0), p.RemotePort)
assert.Equal(t, uint16(0), p.LocalPort)
assert.False(t, p.Fragment)
// An unknown protocol packet, we don't dissect it so we fail closed on its true protocol with no ports
b = buffer.Bytes()
b[6] = 255 // 255 is a reserved protocol number
err = newPacket(b, true, p)
require.NoError(t, err)
assert.Equal(t, uint8(255), p.Protocol)
assert.Equal(t, uint16(0), p.RemotePort)
assert.Equal(t, uint16(0), p.LocalPort)
assert.False(t, p.Fragment)
// A good UDP packet
ip = layers.IPv6{
Version: 6,
NextHeader: iputil.IPProtocolUDP,
HopLimit: 128,
SrcIP: net.IPv6linklocalallrouters,
DstIP: net.IPv6linklocalallnodes,
}
udp := layers.UDP{
SrcPort: layers.UDPPort(36123),
DstPort: layers.UDPPort(22),
}
err = udp.SetNetworkLayerForChecksum(&ip)
require.NoError(t, err)
buffer.Clear()
err = gopacket.SerializeLayers(buffer, opt, &ip, &udp, gopacket.Payload([]byte{0xde, 0xad, 0xbe, 0xef}))
if err != nil {
panic(err)
}
b = buffer.Bytes()
// incoming
err = newPacket(b, true, p)
require.NoError(t, err)
assert.Equal(t, uint8(iputil.IPProtocolUDP), p.Protocol)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.RemoteAddr)
assert.Equal(t, netip.MustParseAddr("ff02::1"), p.LocalAddr)
assert.Equal(t, uint16(36123), p.RemotePort)
assert.Equal(t, uint16(22), p.LocalPort)
assert.False(t, p.Fragment)
// outgoing
err = newPacket(b, false, p)
require.NoError(t, err)
assert.Equal(t, uint8(iputil.IPProtocolUDP), p.Protocol)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.LocalAddr)
assert.Equal(t, netip.MustParseAddr("ff02::1"), p.RemoteAddr)
assert.Equal(t, uint16(36123), p.LocalPort)
assert.Equal(t, uint16(22), p.RemotePort)
assert.False(t, p.Fragment)
// Too short UDP packet
err = newPacket(b[:len(b)-10], false, p) // pull off the last 10 bytes
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
// A good TCP packet
b[6] = byte(layers.IPProtocolTCP)
// incoming
err = newPacket(b, true, p)
require.NoError(t, err)
assert.Equal(t, uint8(iputil.IPProtocolTCP), p.Protocol)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.RemoteAddr)
assert.Equal(t, netip.MustParseAddr("ff02::1"), p.LocalAddr)
assert.Equal(t, uint16(36123), p.RemotePort)
assert.Equal(t, uint16(22), p.LocalPort)
assert.False(t, p.Fragment)
// outgoing
err = newPacket(b, false, p)
require.NoError(t, err)
assert.Equal(t, uint8(iputil.IPProtocolTCP), p.Protocol)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.LocalAddr)
assert.Equal(t, netip.MustParseAddr("ff02::1"), p.RemoteAddr)
assert.Equal(t, uint16(36123), p.LocalPort)
assert.Equal(t, uint16(22), p.RemotePort)
assert.False(t, p.Fragment)
// Too short TCP packet
err = newPacket(b[:len(b)-10], false, p) // pull off the last 10 bytes
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
// A good UDP packet with an AH header
ip = layers.IPv6{
Version: 6,
NextHeader: layers.IPProtocolAH,
HopLimit: 128,
SrcIP: net.IPv6linklocalallrouters,
DstIP: net.IPv6linklocalallnodes,
}
ah := layers.IPSecAH{
AuthenticationData: []byte{0xde, 0xad, 0xbe, 0xef, 0xde, 0xad, 0xbe, 0xef},
}
ah.NextHeader = layers.IPProtocolUDP
udpHeader := []byte{
0x8d, 0x1b, // Source port 36123
0x00, 0x16, // Destination port 22
0x00, 0x00, // Length
0x00, 0x00, // Checksum
}
buffer.Clear()
err = ip.SerializeTo(buffer, opt)
if err != nil {
panic(err)
}
b = buffer.Bytes()
ahb := serializeAH(&ah)
b = append(b, ahb...)
b = append(b, udpHeader...)
err = newPacket(b, true, p)
require.NoError(t, err)
assert.Equal(t, uint8(iputil.IPProtocolUDP), p.Protocol)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.RemoteAddr)
assert.Equal(t, netip.MustParseAddr("ff02::1"), p.LocalAddr)
assert.Equal(t, uint16(36123), p.RemotePort)
assert.Equal(t, uint16(22), p.LocalPort)
assert.False(t, p.Fragment)
// Ensure buffer bounds checking during processing, a truncated AH header can't reach the payload
err = newPacket(b[:41], true, p)
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
// Invalid AH header
b = buffer.Bytes()
err = newPacket(b, true, p)
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
}
func Test_newPacket_ipv6Fragment(t *testing.T) {
p := &firewall.ParsedPacket{}
ip := &layers.IPv6{
Version: 6,
NextHeader: layers.IPProtocolIPv6Fragment,
HopLimit: 64,
SrcIP: net.IPv6linklocalallrouters,
DstIP: net.IPv6linklocalallnodes,
}
// First fragment
fragHeader1 := []byte{
uint8(layers.IPProtocolUDP), // Next Header (UDP)
0x00, // Reserved
0x00, // Fragment Offset high byte (0)
0x01, // Fragment Offset low byte & flags (M=1)
0x00, 0x00, 0x00, 0x01, // Identification
}
udpHeader := []byte{
0x8d, 0x1b, // Source port 36123
0x00, 0x16, // Destination port 22
0x00, 0x00, // Length
0x00, 0x00, // Checksum
}
buffer := gopacket.NewSerializeBuffer()
opts := gopacket.SerializeOptions{
ComputeChecksums: true,
FixLengths: true,
}
err := ip.SerializeTo(buffer, opts)
if err != nil {
t.Fatal(err)
}
firstFrag := buffer.Bytes()
firstFrag = append(firstFrag, fragHeader1...)
firstFrag = append(firstFrag, udpHeader...)
firstFrag = append(firstFrag, []byte{0xde, 0xad, 0xbe, 0xef}...)
// Test first fragment incoming
err = newPacket(firstFrag, true, p)
require.NoError(t, err)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.RemoteAddr)
assert.Equal(t, netip.MustParseAddr("ff02::1"), p.LocalAddr)
assert.Equal(t, uint8(layers.IPProtocolUDP), p.Protocol)
assert.Equal(t, uint16(36123), p.RemotePort)
assert.Equal(t, uint16(22), p.LocalPort)
assert.False(t, p.Fragment)
// Test first fragment outgoing
err = newPacket(firstFrag, false, p)
require.NoError(t, err)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.LocalAddr)
assert.Equal(t, netip.MustParseAddr("ff02::1"), p.RemoteAddr)
assert.Equal(t, uint8(layers.IPProtocolUDP), p.Protocol)
assert.Equal(t, uint16(36123), p.LocalPort)
assert.Equal(t, uint16(22), p.RemotePort)
assert.False(t, p.Fragment)
// Second fragment
fragHeader2 := []byte{
uint8(layers.IPProtocolUDP), // Next Header (UDP)
0x00, // Reserved
0xb9, // Fragment Offset high byte (185)
0x01, // Fragment Offset low byte & flags (M=1)
0x00, 0x00, 0x00, 0x01, // Identification
}
buffer.Clear()
err = ip.SerializeTo(buffer, opts)
if err != nil {
t.Fatal(err)
}
secondFrag := buffer.Bytes()
secondFrag = append(secondFrag, fragHeader2...)
secondFrag = append(secondFrag, []byte{0xde, 0xad, 0xbe, 0xef}...)
// Test second fragment incoming
err = newPacket(secondFrag, true, p)
require.NoError(t, err)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.RemoteAddr)
assert.Equal(t, netip.MustParseAddr("ff02::1"), p.LocalAddr)
assert.Equal(t, uint8(layers.IPProtocolUDP), p.Protocol)
assert.Equal(t, uint16(0), p.RemotePort)
assert.Equal(t, uint16(0), p.LocalPort)
assert.True(t, p.Fragment)
// Test second fragment outgoing
err = newPacket(secondFrag, false, p)
require.NoError(t, err)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.LocalAddr)
assert.Equal(t, netip.MustParseAddr("ff02::1"), p.RemoteAddr)
assert.Equal(t, uint8(layers.IPProtocolUDP), p.Protocol)
assert.Equal(t, uint16(0), p.LocalPort)
assert.Equal(t, uint16(0), p.RemotePort)
assert.True(t, p.Fragment)
// Too short of a fragment packet
err = newPacket(secondFrag[:len(secondFrag)-10], false, p)
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
}
func BenchmarkParseV6(b *testing.B) {
// Regular UDP packet
ip := &layers.IPv6{
Version: 6,
NextHeader: layers.IPProtocolUDP,
HopLimit: 64,
SrcIP: net.IPv6linklocalallrouters,
DstIP: net.IPv6linklocalallnodes,
}
udp := &layers.UDP{
SrcPort: layers.UDPPort(36123),
DstPort: layers.UDPPort(22),
}
buffer := gopacket.NewSerializeBuffer()
opts := gopacket.SerializeOptions{
ComputeChecksums: false,
FixLengths: true,
}
err := gopacket.SerializeLayers(buffer, opts, ip, udp)
if err != nil {
b.Fatal(err)
}
normalPacket := buffer.Bytes()
// First Fragment packet
ipFrag := &layers.IPv6{
Version: 6,
NextHeader: layers.IPProtocolIPv6Fragment,
HopLimit: 64,
SrcIP: net.IPv6linklocalallrouters,
DstIP: net.IPv6linklocalallnodes,
}
fragHeader := []byte{
uint8(layers.IPProtocolUDP), // Next Header (UDP)
0x00, // Reserved
0x00, // Fragment Offset high byte (0)
0x01, // Fragment Offset low byte & flags (M=1)
0x00, 0x00, 0x00, 0x01, // Identification
}
udpHeader := []byte{
0x8d, 0x7b, // Source port 36123
0x00, 0x16, // Destination port 22
0x00, 0x00, // Length
0x00, 0x00, // Checksum
}
buffer.Clear()
err = ipFrag.SerializeTo(buffer, opts)
if err != nil {
b.Fatal(err)
}
firstFrag := buffer.Bytes()
firstFrag = append(firstFrag, fragHeader...)
firstFrag = append(firstFrag, udpHeader...)
firstFrag = append(firstFrag, []byte{0xde, 0xad, 0xbe, 0xef}...)
// Second Fragment packet
fragHeader[2] = 0xb9 // offset 185
buffer.Clear()
err = ipFrag.SerializeTo(buffer, opts)
if err != nil {
b.Fatal(err)
}
secondFrag := buffer.Bytes()
secondFrag = append(secondFrag, fragHeader...)
secondFrag = append(secondFrag, []byte{0xde, 0xad, 0xbe, 0xef}...)
fp := &firewall.ParsedPacket{}
b.Run("Normal", func(b *testing.B) {
for i := 0; i < b.N; i++ {
if err = parseV6(normalPacket, true, fp); err != nil {
b.Fatal(err)
}
}
})
b.Run("FirstFragment", func(b *testing.B) {
for i := 0; i < b.N; i++ {
if err = parseV6(firstFrag, true, fp); err != nil {
b.Fatal(err)
}
}
})
b.Run("SecondFragment", func(b *testing.B) {
for i := 0; i < b.N; i++ {
if err = parseV6(secondFrag, true, fp); err != nil {
b.Fatal(err)
}
}
})
// Evil packet
evilPacket := &layers.IPv6{
Version: 6,
NextHeader: layers.IPProtocolIPv6HopByHop,
HopLimit: 64,
SrcIP: net.IPv6linklocalallrouters,
DstIP: net.IPv6linklocalallnodes,
}
hopHeader := []byte{
uint8(layers.IPProtocolIPv6HopByHop), // Next Header (HopByHop)
0x00, // Length
0x00, 0x00, // Options and padding
0x00, 0x00, 0x00, 0x00, // More options and padding
}
lastHopHeader := []byte{
uint8(layers.IPProtocolUDP), // Next Header (UDP)
0x00, // Length
0x00, 0x00, // Options and padding
0x00, 0x00, 0x00, 0x00, // More options and padding
}
buffer.Clear()
err = evilPacket.SerializeTo(buffer, opts)
if err != nil {
b.Fatal(err)
}
evilBytes := buffer.Bytes()
for range 200 {
evilBytes = append(evilBytes, hopHeader...)
}
evilBytes = append(evilBytes, lastHopHeader...)
evilBytes = append(evilBytes, udpHeader...)
evilBytes = append(evilBytes, []byte{0xde, 0xad, 0xbe, 0xef}...)
b.Run("200 HopByHop headers", func(b *testing.B) {
for i := 0; i < b.N; i++ {
if err = parseV6(evilBytes, false, fp); err != nil {
b.Fatal(err)
}
}
})
}
// Ensure authentication data is a multiple of 8 bytes by padding if necessary
func padAuthData(authData []byte) []byte {
// Length of Authentication Data must be a multiple of 8 bytes
paddingLength := (8 - (len(authData) % 8)) % 8 // Only pad if necessary
if paddingLength > 0 {
authData = append(authData, make([]byte, paddingLength)...)
}
return authData
}
// Custom function to manually serialize IPSecAH for both IPv4 and IPv6
func serializeAH(ah *layers.IPSecAH) []byte {
buf := new(bytes.Buffer)
// Ensure Authentication Data is a multiple of 8 bytes
ah.AuthenticationData = padAuthData(ah.AuthenticationData)
// Calculate Payload Length (in 32-bit words, minus 2)
payloadLen := uint8((12+len(ah.AuthenticationData))/4) - 2
// Serialize fields
if err := binary.Write(buf, binary.BigEndian, ah.NextHeader); err != nil {
panic(err)
}
if err := binary.Write(buf, binary.BigEndian, payloadLen); err != nil {
panic(err)
}
if err := binary.Write(buf, binary.BigEndian, ah.Reserved); err != nil {
panic(err)
}
if err := binary.Write(buf, binary.BigEndian, ah.SPI); err != nil {
panic(err)
}
if err := binary.Write(buf, binary.BigEndian, ah.Seq); err != nil {
panic(err)
}
if len(ah.AuthenticationData) > 0 {
if err := binary.Write(buf, binary.BigEndian, ah.AuthenticationData); err != nil {
panic(err)
}
}
return buf.Bytes()
}
// Test_newPacket_v6ExtHeaderOverflow is a regression test for the IPv6 extension-header
// length uint8 overflow in parseV6. A Destination-Options header with HdrExtLen=255 spans
// (255+1)*8 = 2048 bytes, so the real transport header sits at offset 2088. Before the fix
// the advance was computed in uint8 and wrapped to 0 (then clamped to 8), so the firewall
// read the transport header ~2KB too early from attacker-controlled option bytes while the
// host OS parses the real header, a firewall port/proto bypass. The fix makes parseV6 land
// on the same offset the host does.
func Test_newPacket_v6ExtHeaderOverflow(t *testing.T) {
p := &firewall.ParsedPacket{}
const (
hdrLen = 40 // IPv6 header
extLen = 2048 // (255+1)*8, the true Destination-Options header size
realTCPAt = hdrLen + extLen // 2088, where the host reads the transport header
forgedTCPAt = hdrLen + 8 // 48, where the pre-fix wrapped+clamped walk landed
)
pkt := make([]byte, realTCPAt+4)
pkt[0] = 0x60 // version 6
pkt[6] = byte(layers.IPProtocolIPv6Destination) // NextHeader -> Destination Options
pkt[40] = byte(iputil.IPProtocolTCP) // Dest-Options NextHeader -> TCP
pkt[41] = 255 // HdrExtLen = 255
// Forged transport header at the pre-fix (wrong) offset: dst port 443.
binary.BigEndian.PutUint16(pkt[forgedTCPAt+2:forgedTCPAt+4], 443)
// Real transport header at the offset the host actually uses: dst port 22.
binary.BigEndian.PutUint16(pkt[realTCPAt+2:realTCPAt+4], 22)
require.NoError(t, newPacket(pkt, true, p))
assert.Equal(t, uint8(iputil.IPProtocolTCP), p.Protocol)
// LocalPort is the destination port for incoming traffic. It must be the real port (22)
// the host delivers to, not the forged 443 at the overflowed offset.
assert.Equal(t, uint16(22), p.LocalPort, "firewall must parse the real transport header, not the overflowed offset")
}
// Test_newPacket_v6ExtHeaderPastBuffer is a regression test for an extension header whose declared length
// advances the walk past the end of the packet. The upper layer protocol's header isn't actually present,
// so parseV6 must drop the packet rather than classify it as the terminal protocol with no ports.
func Test_newPacket_v6ExtHeaderPastBuffer(t *testing.T) {
p := &firewall.ParsedPacket{}
pkt := make([]byte, 48)
pkt[0] = 0x60
pkt[6] = byte(layers.IPProtocolIPv6Destination) // Destination Options
pkt[7] = 64 // hop limit
pkt[40] = byte(layers.IPProtocolSCTP) // Dest Options next header = SCTP
pkt[41] = 255 // declared length (255+1)*8 = 2048, past the 48 byte buffer
require.ErrorIs(t, newPacket(pkt, true, p), ErrIPv6PacketTooShort)
}
// Test_newPacket_v6ExtHeaderConfusion is a regression test for parseV6 walking any unrecognized
// Next Header as if it were an ipv6 extension header. A real upper layer protocol Nebula doesn't
// dissect (SCTP here) is not walkable, so applying the (len+1)*8 formula marched into the SCTP
// payload and landed on a byte that looked like UDP, forging a protocol/port pair the firewall
// would trust while the host delivered the real SCTP datagram. The fix fails closed: the packet
// is classified as its true protocol with no ports, so it only matches an `any` rule.
func Test_newPacket_v6ExtHeaderConfusion(t *testing.T) {
p := &firewall.ParsedPacket{}
pkt := make([]byte, 52)
pkt[0] = 0x60 // version 6
pkt[6] = byte(layers.IPProtocolSCTP) // NextHeader = SCTP, a real protocol, not an extension header
pkt[7] = 64 // hop limit
// Real SCTP header at offset 40. Pre-fix parseV6 walked SCTP as an extension header: byte 41 (0x00, the
// low byte of the src port below) was read as the header length, giving next=(0+1)*8=8, which landed the
// walk on byte 40 (0x11), misread as NextHeader=UDP, then bytes 48-51 as ports.
binary.BigEndian.PutUint16(pkt[40:42], 0x1100) // SCTP src port; byte 40=0x11, byte 41=0x00
binary.BigEndian.PutUint16(pkt[42:44], 445) // SCTP dst port, never read by parseV6
binary.BigEndian.PutUint16(pkt[48:50], 53) // SCTP checksum bytes, pre-fix forged RemotePort
binary.BigEndian.PutUint16(pkt[50:52], 53) // pre-fix forged LocalPort
require.NoError(t, newPacket(pkt, true, p))
assert.Equal(t, uint8(layers.IPProtocolSCTP), p.Protocol, "must classify as the true protocol, not the forged UDP")
assert.Equal(t, uint16(0), p.RemotePort)
assert.Equal(t, uint16(0), p.LocalPort)
assert.False(t, p.Fragment)
// Same confusion, but the unknown protocol sits after a real extension header. The HopByHop is walked
// correctly, then SCTP must still fail closed instead of being walked into its own payload. Protocol is
// the only assertion that discriminates the fix here, a regression that walked SCTP would misclassify it.
chained := make([]byte, 60)
chained[0] = 0x60 // version 6
chained[6] = byte(layers.IPProtocolIPv6HopByHop) // NextHeader = HopByHop extension
chained[7] = 64 // hop limit
chained[40] = byte(layers.IPProtocolSCTP) // HopByHop NextHeader = SCTP
chained[41] = 0 // HopByHop length 0 -> 8 bytes, SCTP begins at offset 48
binary.BigEndian.PutUint16(chained[48:50], 0x1100) // SCTP src port, pre-fix forged NextHeader/length bait
binary.BigEndian.PutUint16(chained[50:52], 445) // SCTP dst port, never read by parseV6
require.NoError(t, newPacket(chained, true, p))
assert.Equal(t, uint8(layers.IPProtocolSCTP), p.Protocol, "must fail closed on the unknown protocol after the extension header")
assert.Equal(t, uint16(0), p.RemotePort)
assert.Equal(t, uint16(0), p.LocalPort)
assert.False(t, p.Fragment)
}
// Test_newPacket_parsedFields pins the ParsedPacket byproducts the RX
// batcher consumes: IPHdrLen (the true L4 offset) and FragAny (any fragment
// shape at all — unlike Packet.Fragment, which is port-oriented and true
// only for non-first fragments).
func Test_newPacket_parsedFields(t *testing.T) {
p := &firewall.ParsedPacket{}
// Plain IPv4 TCP, IHL 20: L4 offset 20, no fragment shape.
v4 := make([]byte, 28)
v4[0] = 0x45
v4[9] = iputil.IPProtocolTCP
binary.BigEndian.PutUint16(v4[6:8], 0x4000) // DF only
require.NoError(t, newPacket(v4, true, p))
assert.Equal(t, 20, p.IPHdrLen)
assert.False(t, p.FragAny)
assert.False(t, p.Fragment)
// IPv4 first fragment (MF set, offset 0): the firewall can read ports
// (Fragment false) but the coalescer must not touch it (FragAny true).
ff := make([]byte, 28)
ff[0] = 0x45
ff[9] = iputil.IPProtocolUDP
binary.BigEndian.PutUint16(ff[6:8], 0x2000) // MF, offset 0
require.NoError(t, newPacket(ff, true, p))
assert.False(t, p.Fragment)
assert.True(t, p.FragAny)
assert.Equal(t, 20, p.IPHdrLen)
// IPv4 non-first fragment (nonzero offset): both flags set.
nf := make([]byte, 28)
nf[0] = 0x45
nf[9] = iputil.IPProtocolUDP
binary.BigEndian.PutUint16(nf[6:8], 0x00b9)
require.NoError(t, newPacket(nf, true, p))
assert.True(t, p.Fragment)
assert.True(t, p.FragAny)
// IPv4 with options (IHL 24): IPHdrLen tracks the real L4 offset.
opts := make([]byte, 32)
opts[0] = 0x46
opts[9] = iputil.IPProtocolTCP
binary.BigEndian.PutUint16(opts[6:8], 0x4000)
require.NoError(t, newPacket(opts, true, p))
assert.Equal(t, 24, p.IPHdrLen)
assert.False(t, p.FragAny)
// Plain IPv6 TCP: L4 at 40.
v6 := make([]byte, 60)
v6[0] = 0x60
v6[6] = iputil.IPProtocolTCP
require.NoError(t, newPacket(v6, true, p))
assert.Equal(t, 40, p.IPHdrLen)
assert.False(t, p.FragAny)
// IPv6 hop-by-hop then TCP: IPHdrLen lands past the extension header.
hbh := make([]byte, 60)
hbh[0] = 0x60
hbh[6] = 0 // hop-by-hop
hbh[40] = iputil.IPProtocolTCP
hbh[41] = 0 // HdrExtLen 0 -> 8-byte header
require.NoError(t, newPacket(hbh, true, p))
assert.Equal(t, 48, p.IPHdrLen)
assert.False(t, p.FragAny)
// IPv6 first fragment: terminal proto resolved, FragAny set, Fragment not.
f6 := make([]byte, 60)
f6[0] = 0x60
f6[6] = 44 // fragment extension header
f6[40] = iputil.IPProtocolUDP
require.NoError(t, newPacket(f6, true, p))
assert.True(t, p.FragAny)
assert.False(t, p.Fragment)
assert.Equal(t, uint8(iputil.IPProtocolUDP), p.Protocol)
// IPv6 non-first fragment: both set, walk stops at the fragment header.
f6n := make([]byte, 60)
f6n[0] = 0x60
f6n[6] = 44
f6n[40] = iputil.IPProtocolUDP
binary.BigEndian.PutUint16(f6n[42:44], 0x0008)
require.NoError(t, newPacket(f6n, true, p))
assert.True(t, p.Fragment)
assert.True(t, p.FragAny)
}