Files
nebula/handshake/payload.go
T
2026-07-21 10:52:24 -05:00

284 lines
7.9 KiB
Go

package handshake
import (
"errors"
"math"
"google.golang.org/protobuf/encoding/protowire"
)
var (
errInvalidHandshakeMessage = errors.New("invalid handshake message")
errInvalidHandshakeDetails = errors.New("invalid handshake details")
)
// Payload represents the decoded fields of a handshake message.
// Wire format is protobuf-compatible with NebulaHandshake{Details: NebulaHandshakeDetails{...}}.
type Payload struct {
Cert []byte
InitiatorIndex uint32
ResponderIndex uint32
Time uint64
CertVersion uint32
// Multiport lane negotiation; nil when the sender has multiport disabled
// (which keeps the encoded payload byte-identical to a vanilla one).
InitiatorLanes *LaneDetails
ResponderLanes *LaneDetails
}
// LaneDetails advertises multiport lane capability. LaneIndex is zero on base
// handshakes and the initiator's lane number (>= 1) on lane handshakes.
type LaneDetails struct {
PortCount uint32
BasePort uint32
LaneIndex uint32
}
// Proto field numbers for NebulaHandshakeDetails
const (
fieldCert = 1 // bytes
fieldInitiatorIndex = 2 // uint32
fieldResponderIndex = 3 // uint32
fieldTime = 5 // uint64
fieldInitiatorLanes = 6 // LaneDetails
fieldResponderLanes = 7 // LaneDetails
fieldCertVersion = 8 // uint32
)
// Proto field numbers for LaneDetails
const (
fieldLanePortCount = 1 // uint32
fieldLaneBasePort = 2 // uint32
fieldLaneLaneIndex = 3 // uint32
)
// MarshalPayload encodes a handshake payload in protobuf wire format compatible
// with NebulaHandshake{Details: NebulaHandshakeDetails{...}}.
// Returns out (which may be nil), with the marshalled Payload appended to it.
func MarshalPayload(out []byte, p Payload) []byte {
var details []byte
if len(p.Cert) > 0 {
details = protowire.AppendTag(details, fieldCert, protowire.BytesType)
details = protowire.AppendBytes(details, p.Cert)
}
if p.InitiatorIndex != 0 {
details = protowire.AppendTag(details, fieldInitiatorIndex, protowire.VarintType)
details = protowire.AppendVarint(details, uint64(p.InitiatorIndex))
}
if p.ResponderIndex != 0 {
details = protowire.AppendTag(details, fieldResponderIndex, protowire.VarintType)
details = protowire.AppendVarint(details, uint64(p.ResponderIndex))
}
if p.Time != 0 {
details = protowire.AppendTag(details, fieldTime, protowire.VarintType)
details = protowire.AppendVarint(details, p.Time)
}
if p.InitiatorLanes != nil {
details = protowire.AppendTag(details, fieldInitiatorLanes, protowire.BytesType)
details = protowire.AppendBytes(details, p.InitiatorLanes.marshal(nil))
}
if p.ResponderLanes != nil {
details = protowire.AppendTag(details, fieldResponderLanes, protowire.BytesType)
details = protowire.AppendBytes(details, p.ResponderLanes.marshal(nil))
}
if p.CertVersion != 0 {
details = protowire.AppendTag(details, fieldCertVersion, protowire.VarintType)
details = protowire.AppendVarint(details, uint64(p.CertVersion))
}
out = protowire.AppendTag(out, 1, protowire.BytesType)
out = protowire.AppendBytes(out, details)
return out
}
// marshal appends the LaneDetails submessage fields to out. All fields are
// emitted unconditionally: a LaneDetails is only present at all when multiport
// is negotiating, and explicit zeros keep the parser's presence semantics
// trivial.
func (d *LaneDetails) marshal(out []byte) []byte {
out = protowire.AppendTag(out, fieldLanePortCount, protowire.VarintType)
out = protowire.AppendVarint(out, uint64(d.PortCount))
out = protowire.AppendTag(out, fieldLaneBasePort, protowire.VarintType)
out = protowire.AppendVarint(out, uint64(d.BasePort))
out = protowire.AppendTag(out, fieldLaneLaneIndex, protowire.VarintType)
out = protowire.AppendVarint(out, uint64(d.LaneIndex))
return out
}
// UnmarshalPayload decodes a protobuf-encoded NebulaHandshake message.
func UnmarshalPayload(b []byte) (Payload, error) {
var p Payload
for len(b) > 0 {
num, typ, n := protowire.ConsumeTag(b)
if n < 0 {
return p, errInvalidHandshakeMessage
}
b = b[n:]
switch {
case num == 1 && typ == protowire.BytesType:
details, n := protowire.ConsumeBytes(b)
if n < 0 {
return p, errInvalidHandshakeMessage
}
b = b[n:]
if err := unmarshalPayloadDetails(&p, details); err != nil {
return p, err
}
default:
n := protowire.ConsumeFieldValue(num, typ, b)
if n < 0 {
return p, errInvalidHandshakeMessage
}
b = b[n:]
}
}
return p, nil
}
func unmarshalPayloadDetails(p *Payload, b []byte) error {
for len(b) > 0 {
num, typ, n := protowire.ConsumeTag(b)
if n < 0 {
return errInvalidHandshakeDetails
}
b = b[n:]
// For known field numbers, reject any non-matching wire type as a
// hard error rather than silently skipping. The caller will catch
// missing-field cases downstream, but a wire-type mismatch on a tag
// we know is a peer protocol violation worth flagging here.
// Repeated occurrences of a singular field follow proto3 last-wins.
switch num {
case fieldCert:
if typ != protowire.BytesType {
return errInvalidHandshakeDetails
}
v, n := protowire.ConsumeBytes(b)
if n < 0 {
return errInvalidHandshakeDetails
}
p.Cert = append([]byte(nil), v...)
b = b[n:]
case fieldInitiatorIndex:
if typ != protowire.VarintType {
return errInvalidHandshakeDetails
}
v, n := protowire.ConsumeVarint(b)
if n < 0 || v > math.MaxUint32 {
return errInvalidHandshakeDetails
}
p.InitiatorIndex = uint32(v)
b = b[n:]
case fieldResponderIndex:
if typ != protowire.VarintType {
return errInvalidHandshakeDetails
}
v, n := protowire.ConsumeVarint(b)
if n < 0 || v > math.MaxUint32 {
return errInvalidHandshakeDetails
}
p.ResponderIndex = uint32(v)
b = b[n:]
case fieldTime:
if typ != protowire.VarintType {
return errInvalidHandshakeDetails
}
v, n := protowire.ConsumeVarint(b)
if n < 0 {
return errInvalidHandshakeDetails
}
p.Time = v
b = b[n:]
case fieldCertVersion:
if typ != protowire.VarintType {
return errInvalidHandshakeDetails
}
v, n := protowire.ConsumeVarint(b)
if n < 0 || v > math.MaxUint32 {
return errInvalidHandshakeDetails
}
p.CertVersion = uint32(v)
b = b[n:]
case fieldInitiatorLanes:
if typ != protowire.BytesType {
return errInvalidHandshakeDetails
}
v, n := protowire.ConsumeBytes(b)
if n < 0 {
return errInvalidHandshakeDetails
}
p.InitiatorLanes = new(LaneDetails)
if err := unmarshalLaneDetails(p.InitiatorLanes, v); err != nil {
return err
}
b = b[n:]
case fieldResponderLanes:
if typ != protowire.BytesType {
return errInvalidHandshakeDetails
}
v, n := protowire.ConsumeBytes(b)
if n < 0 {
return errInvalidHandshakeDetails
}
p.ResponderLanes = new(LaneDetails)
if err := unmarshalLaneDetails(p.ResponderLanes, v); err != nil {
return err
}
b = b[n:]
default:
n := protowire.ConsumeFieldValue(num, typ, b)
if n < 0 {
return errInvalidHandshakeDetails
}
b = b[n:]
}
}
return nil
}
func unmarshalLaneDetails(d *LaneDetails, b []byte) error {
for len(b) > 0 {
num, typ, n := protowire.ConsumeTag(b)
if n < 0 {
return errInvalidHandshakeDetails
}
b = b[n:]
// Same contract as the details parser: known fields hard-fail on a
// wire-type mismatch, unknown fields are skipped, repeated singular
// fields follow proto3 last-wins.
switch num {
case fieldLanePortCount, fieldLaneBasePort, fieldLaneLaneIndex:
if typ != protowire.VarintType {
return errInvalidHandshakeDetails
}
v, n := protowire.ConsumeVarint(b)
if n < 0 || v > math.MaxUint32 {
return errInvalidHandshakeDetails
}
switch num {
case fieldLanePortCount:
d.PortCount = uint32(v)
case fieldLaneBasePort:
d.BasePort = uint32(v)
case fieldLaneLaneIndex:
d.LaneIndex = uint32(v)
}
b = b[n:]
default:
n := protowire.ConsumeFieldValue(num, typ, b)
if n < 0 {
return errInvalidHandshakeDetails
}
b = b[n:]
}
}
return nil
}