183 lines
5.6 KiB
Go
183 lines
5.6 KiB
Go
package windivert
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import (
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"encoding/binary"
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"net/netip"
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E "github.com/sagernet/sing/common/exceptions"
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)
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// WINDIVERT_FILTER VM instruction layout (24 bytes, #pragma pack(1)):
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//
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// word 0 (LE): field:11 | test:5 | success:16
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// word 1 (LE): failure:16 | neg:1 | reserved:15
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// words 2..5: arg[4] (native-endian uint32 each)
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//
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// The driver walks this as a decision tree: evaluate the test at inst i;
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// on success jump to success; on failure jump to failure. Continuations
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// 0x7FFE and 0x7FFF are ACCEPT and REJECT terminals.
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const (
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filterInstBytes = 24
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filterMaxInsts = 256
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fieldZero = 0
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fieldOutbound = 2
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fieldIP = 5
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fieldIPv6 = 6
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fieldTCP = 8
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fieldIPSrcAddr = 21
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fieldIPDstAddr = 22
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fieldIPv6SrcAddr = 28
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fieldIPv6DstAddr = 29
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fieldTCPSrcPort = 38
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fieldTCPDstPort = 39
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testEQ = 0
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resultAccept uint16 = 0x7FFE
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resultReject uint16 = 0x7FFF
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)
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// Filter flags passed to IOCTL_WINDIVERT_STARTUP alongside the compiled
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// filter. These tell the driver what *kinds* of packets the filter might
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// match, used as a kernel-side fast-reject.
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const (
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filterFlagOutbound uint64 = 0x0020
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filterFlagIP uint64 = 0x0040
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filterFlagIPv6 uint64 = 0x0080
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)
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type filterInst struct {
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field uint16 // 11 bits used
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test uint8 // 5 bits used
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success uint16
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failure uint16
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neg bool
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arg [4]uint32
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}
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// Filter is a typed specification of packets to capture. It replaces
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// WinDivert's filter string language.
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//
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// Zero value = "reject all" (match nothing), suitable for send-only handles.
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type Filter struct {
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insts []filterInst
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flags uint64 // filter flags for STARTUP ioctl
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}
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// reject returns a filter that matches no packet. The empty insts slice
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// is encoded as a single rejecting instruction by encode().
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func reject() *Filter {
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return &Filter{}
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}
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// OutboundTCP returns a filter matching outbound TCP packets on the given
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// 5-tuple. Both addresses must share an address family (IPv4 or IPv6).
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func OutboundTCP(src, dst netip.AddrPort) (*Filter, error) {
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if !src.IsValid() || !dst.IsValid() {
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return nil, E.New("windivert: filter: invalid address port")
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}
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if src.Addr().Is4() != dst.Addr().Is4() {
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return nil, E.New("windivert: filter: mixed IPv4/IPv6")
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}
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f := &Filter{
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flags: filterFlagOutbound,
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}
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// Insts chain as AND: each test's failure = REJECT, success = next inst.
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// The final inst's success = ACCEPT.
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f.add(fieldOutbound, testEQ, argUint32(1))
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if src.Addr().Is4() {
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f.flags |= filterFlagIP
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f.add(fieldIP, testEQ, argUint32(1))
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f.add(fieldTCP, testEQ, argUint32(1))
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f.add(fieldIPSrcAddr, testEQ, argIPv4(src.Addr()))
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f.add(fieldIPDstAddr, testEQ, argIPv4(dst.Addr()))
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} else {
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f.flags |= filterFlagIPv6
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f.add(fieldIPv6, testEQ, argUint32(1))
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f.add(fieldTCP, testEQ, argUint32(1))
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f.add(fieldIPv6SrcAddr, testEQ, argIPv6(src.Addr()))
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f.add(fieldIPv6DstAddr, testEQ, argIPv6(dst.Addr()))
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}
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f.add(fieldTCPSrcPort, testEQ, argUint32(uint32(src.Port())))
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f.add(fieldTCPDstPort, testEQ, argUint32(uint32(dst.Port())))
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return f, nil
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}
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func (f *Filter) add(field uint16, test uint8, arg [4]uint32) {
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f.insts = append(f.insts, filterInst{field: field, test: test, arg: arg})
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}
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func argUint32(v uint32) [4]uint32 { return [4]uint32{v, 0, 0, 0} }
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// argIPv4 encodes an IPv4 address for IP_SRCADDR/IP_DSTADDR. The driver
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// compares against an IPv4-mapped-IPv6 form: {host_order_u32, 0x0000FFFF,
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// 0, 0} (see sys/windivert.c windivert_get_ipv4_addr and the IPv4_SRCADDR
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// val-word construction). Omitting the 0x0000FFFF marker causes the EQ
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// test to fail for every packet.
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func argIPv4(addr netip.Addr) [4]uint32 {
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b := addr.As4()
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return [4]uint32{binary.BigEndian.Uint32(b[:]), 0x0000FFFF, 0, 0}
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}
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// argIPv6 encodes an IPv6 address for IPV6_SRCADDR/IPV6_DSTADDR. The
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// driver stores the address as four host-order uint32s in REVERSED word
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// order: val[0]=low (bytes 12..15), val[3]=high (bytes 0..3). See
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// sys/windivert.c windivert_outbound_network_v6_classify val-word
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// construction.
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func argIPv6(addr netip.Addr) [4]uint32 {
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b := addr.As16()
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return [4]uint32{
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binary.BigEndian.Uint32(b[12:16]),
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binary.BigEndian.Uint32(b[8:12]),
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binary.BigEndian.Uint32(b[4:8]),
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binary.BigEndian.Uint32(b[0:4]),
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}
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}
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// encode serializes the Filter to the on-wire WINDIVERT_FILTER[] format
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// plus the filter_flags for STARTUP ioctl.
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func (f *Filter) encode() ([]byte, uint64, error) {
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if len(f.insts) == 0 {
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// "Reject all" — one instruction, ZERO == 0 is always true, but we
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// invert by setting both success and failure to REJECT.
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return encodeInst(filterInst{
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field: fieldZero,
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test: testEQ,
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success: resultReject,
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failure: resultReject,
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}), 0, nil
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}
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if len(f.insts) > filterMaxInsts-1 {
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return nil, 0, E.New("windivert: filter too long")
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}
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buf := make([]byte, 0, filterInstBytes*len(f.insts))
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for i, inst := range f.insts {
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if i == len(f.insts)-1 {
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inst.success = resultAccept
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} else {
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inst.success = uint16(i + 1)
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}
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inst.failure = resultReject
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buf = append(buf, encodeInst(inst)...)
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}
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return buf, f.flags, nil
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}
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func encodeInst(inst filterInst) []byte {
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out := make([]byte, filterInstBytes)
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word0 := uint32(inst.field&0x7FF) | uint32(inst.test&0x1F)<<11 |
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uint32(inst.success)<<16
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word1 := uint32(inst.failure)
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if inst.neg {
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word1 |= 1 << 16
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}
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binary.LittleEndian.PutUint32(out[0:4], word0)
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binary.LittleEndian.PutUint32(out[4:8], word1)
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binary.LittleEndian.PutUint32(out[8:12], inst.arg[0])
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binary.LittleEndian.PutUint32(out[12:16], inst.arg[1])
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binary.LittleEndian.PutUint32(out[16:20], inst.arg[2])
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binary.LittleEndian.PutUint32(out[20:24], inst.arg[3])
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return out
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}
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