mirror of
https://github.com/zeek/zeek.git
synced 2025-10-02 06:38:20 +00:00
Store packet's ip header as unique_ptr
This commit is contained in:
parent
2000f89b12
commit
ecd970ffde
13 changed files with 86 additions and 92 deletions
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@ -35,7 +35,7 @@ bool Discarder::IsActive()
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return check_ip || check_tcp || check_udp || check_icmp;
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}
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bool Discarder::NextPacket(const IP_Hdr* ip, int len, int caplen)
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bool Discarder::NextPacket(const std::unique_ptr<IP_Hdr>& ip, int len, int caplen)
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{
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bool discard_packet = false;
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@ -3,6 +3,7 @@
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#pragma once
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#include <sys/types.h> // for u_char
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#include <memory>
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#include "IntrusivePtr.h"
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@ -22,7 +23,7 @@ public:
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bool IsActive();
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bool NextPacket(const IP_Hdr* ip, int len, int caplen);
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bool NextPacket(const std::unique_ptr<IP_Hdr>& ip, int len, int caplen);
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protected:
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Val* BuildData(const u_char* data, int hdrlen, int len, int caplen);
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31
src/Frag.cc
31
src/Frag.cc
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@ -30,7 +30,7 @@ void FragTimer::Dispatch(double t, bool /* is_expire */)
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}
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FragReassembler::FragReassembler(NetSessions* arg_s,
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const IP_Hdr* ip, const u_char* pkt,
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const std::unique_ptr<IP_Hdr>& ip, const u_char* pkt,
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const FragReassemblerKey& k, double t)
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: Reassembler(0, REASSEM_FRAG)
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{
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@ -73,7 +73,8 @@ FragReassembler::~FragReassembler()
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delete [] proto_hdr;
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}
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void FragReassembler::AddFragment(double t, const IP_Hdr* ip, const u_char* pkt)
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void FragReassembler::AddFragment(double t, const std::unique_ptr<IP_Hdr>& ip,
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const u_char* pkt)
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{
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const struct ip* ip4 = ip->IP4_Hdr();
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@ -85,19 +86,19 @@ void FragReassembler::AddFragment(double t, const IP_Hdr* ip, const u_char* pkt)
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// don't check TOS, there's at least one stack that actually
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// uses different values, and it's hard to see an associated
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// attack.
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s->Weird("fragment_protocol_inconsistency", ip);
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s->Weird("fragment_protocol_inconsistency", ip.get());
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}
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else
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{
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if ( ip->NextProto() != next_proto ||
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ip->HdrLen() - 8 != proto_hdr_len )
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s->Weird("fragment_protocol_inconsistency", ip);
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s->Weird("fragment_protocol_inconsistency", ip.get());
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// TODO: more detailed unfrag header consistency checks?
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}
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if ( ip->DF() )
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// Linux MTU discovery for UDP can do this, for example.
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s->Weird("fragment_with_DF", ip);
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s->Weird("fragment_with_DF", ip.get());
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uint16_t offset = ip->FragOffset();
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uint32_t len = ip->TotalLen();
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@ -105,7 +106,7 @@ void FragReassembler::AddFragment(double t, const IP_Hdr* ip, const u_char* pkt)
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if ( len < hdr_len )
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{
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s->Weird("fragment_protocol_inconsistency", ip);
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s->Weird("fragment_protocol_inconsistency", ip.get());
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return;
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}
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@ -123,7 +124,7 @@ void FragReassembler::AddFragment(double t, const IP_Hdr* ip, const u_char* pkt)
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else if ( upper_seq != frag_size )
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{
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s->Weird("fragment_size_inconsistency", ip);
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s->Weird("fragment_size_inconsistency", ip.get());
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if ( upper_seq > frag_size )
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frag_size = upper_seq;
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@ -131,10 +132,10 @@ void FragReassembler::AddFragment(double t, const IP_Hdr* ip, const u_char* pkt)
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}
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else if ( len < MIN_ACCEPTABLE_FRAG_SIZE )
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s->Weird("excessively_small_fragment", ip);
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s->Weird("excessively_small_fragment", ip.get());
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if ( upper_seq > MAX_ACCEPTABLE_FRAG_SIZE )
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s->Weird("excessively_large_fragment", ip);
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s->Weird("excessively_large_fragment", ip.get());
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if ( frag_size && upper_seq > frag_size )
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{
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@ -143,7 +144,7 @@ void FragReassembler::AddFragment(double t, const IP_Hdr* ip, const u_char* pkt)
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// larger than the size we derived from a previously-seen
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// "last fragment".
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s->Weird("fragment_size_inconsistency", ip);
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s->Weird("fragment_size_inconsistency", ip.get());
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frag_size = upper_seq;
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}
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@ -286,8 +287,7 @@ void FragReassembler::BlockInserted(DataBlockMap::const_iterator /* it */)
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memcpy(&pkt[b.seq], b.block, b.upper - b.seq);
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}
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delete reassembled_pkt;
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reassembled_pkt = nullptr;
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reassembled_pkt.reset();
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unsigned int version = ((const struct ip*)pkt_start)->ip_v;
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@ -295,7 +295,7 @@ void FragReassembler::BlockInserted(DataBlockMap::const_iterator /* it */)
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{
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struct ip* reassem4 = (struct ip*) pkt_start;
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reassem4->ip_len = htons(frag_size + proto_hdr_len);
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reassembled_pkt = new IP_Hdr(reassem4, true);
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reassembled_pkt = std::make_unique<IP_Hdr>(reassem4, true);
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reassembled_pkt->reassembled = true;
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DeleteTimer();
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}
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@ -305,7 +305,7 @@ void FragReassembler::BlockInserted(DataBlockMap::const_iterator /* it */)
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struct ip6_hdr* reassem6 = (struct ip6_hdr*) pkt_start;
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reassem6->ip6_plen = htons(frag_size + proto_hdr_len - 40);
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const IPv6_Hdr_Chain* chain = new IPv6_Hdr_Chain(reassem6, next_proto, n);
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reassembled_pkt = new IP_Hdr(reassem6, true, n, chain);
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reassembled_pkt = std::make_unique<IP_Hdr>(reassem6, true, n, chain);
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reassembled_pkt->reassembled = true;
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DeleteTimer();
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}
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@ -342,7 +342,8 @@ FragmentManager::~FragmentManager()
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Clear();
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}
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FragReassembler* FragmentManager::NextFragment(double t, const IP_Hdr* ip, const u_char* pkt)
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FragReassembler* FragmentManager::NextFragment(double t, const std::unique_ptr<IP_Hdr>& ip,
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const u_char* pkt)
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{
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uint32_t frag_id = ip->ID();
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FragReassemblerKey key = std::make_tuple(ip->SrcAddr(), ip->DstAddr(), frag_id);
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11
src/Frag.h
11
src/Frag.h
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@ -22,17 +22,17 @@ using FragReassemblerKey = std::tuple<IPAddr, IPAddr, bro_uint_t>;
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class FragReassembler : public Reassembler {
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public:
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FragReassembler(NetSessions* s, const IP_Hdr* ip, const u_char* pkt,
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FragReassembler(NetSessions* s, const std::unique_ptr<IP_Hdr>& ip, const u_char* pkt,
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const FragReassemblerKey& k, double t);
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~FragReassembler() override;
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void AddFragment(double t, const IP_Hdr* ip, const u_char* pkt);
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void AddFragment(double t, const std::unique_ptr<IP_Hdr>& ip, const u_char* pkt);
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void Expire(double t);
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void DeleteTimer();
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void ClearTimer() { expire_timer = nullptr; }
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IP_Hdr* ReassembledPkt() { return reassembled_pkt; }
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std::unique_ptr<IP_Hdr> ReassembledPkt() { return std::move(reassembled_pkt); }
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const FragReassemblerKey& Key() const { return key; }
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protected:
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@ -41,7 +41,7 @@ protected:
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void Weird(const char* name) const;
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u_char* proto_hdr;
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IP_Hdr* reassembled_pkt;
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std::unique_ptr<IP_Hdr> reassembled_pkt;
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NetSessions* s;
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uint64_t frag_size; // size of fully reassembled fragment
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FragReassemblerKey key;
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FragmentManager() = default;
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~FragmentManager();
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FragReassembler* NextFragment(double t, const IP_Hdr* ip, const u_char* pkt);
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FragReassembler* NextFragment(double t, const std::unique_ptr<IP_Hdr>& ip,
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const u_char* pkt);
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void Clear();
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void Remove(detail::FragReassembler* f);
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@ -80,7 +80,7 @@ bool PacketFilter::RemoveDst(Val* dst)
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return f != nullptr;
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}
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bool PacketFilter::Match(const IP_Hdr* ip, int len, int caplen)
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bool PacketFilter::Match(const std::unique_ptr<IP_Hdr>& ip, int len, int caplen)
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{
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Filter* f = (Filter*) src_filter.Lookup(ip->SrcAddr(), 128);
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if ( f )
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@ -2,6 +2,7 @@
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#pragma once
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#include <memory>
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#include "IPAddr.h"
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#include "PrefixTable.h"
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bool RemoveDst(Val* dst);
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// Returns true if packet matches a drop filter
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bool Match(const IP_Hdr* ip, int len, int caplen);
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bool Match(const std::unique_ptr<IP_Hdr>& ip, int len, int caplen);
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private:
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struct Filter {
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@ -81,8 +81,10 @@ void NetSessions::NextPacket(double t, Packet* pkt)
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packet_mgr->ProcessPacket(pkt);
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}
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void NetSessions::DoNextPacket(double t, const Packet* pkt, const IP_Hdr* ip_hdr)
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void NetSessions::DoNextPacket(double t, const Packet* pkt)
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{
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const std::unique_ptr<IP_Hdr>& ip_hdr = pkt->ip_hdr;
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uint32_t caplen = pkt->cap_len - pkt->hdr_size;
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uint32_t len = ip_hdr->TotalLen();
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uint16_t ip_hdr_len = ip_hdr->HdrLen();
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@ -218,7 +220,7 @@ void NetSessions::DoNextPacket(double t, const Packet* pkt, const IP_Hdr* ip_hdr
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conn->EnqueueEvent(new_packet, nullptr, conn->ConnVal(), pkt_hdr_val ?
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std::move(pkt_hdr_val) : ip_hdr->ToPktHdrVal());
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conn->NextPacket(t, is_orig, ip_hdr, len, caplen, data,
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conn->NextPacket(t, is_orig, ip_hdr.get(), len, caplen, data,
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record_packet, record_content, pkt);
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// We skip this block for reassembled packets because the pointer
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@ -96,7 +96,7 @@ public:
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* method is called by the packet analysis manager when after it has processed
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* an IP-based packet, and shouldn't be called directly from other places.
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*/
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void DoNextPacket(double t, const Packet *pkt, const IP_Hdr* ip_hdr);
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void DoNextPacket(double t, const Packet *pkt);
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/**
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* Returns a wrapper IP_Hdr object if \a pkt appears to be a valid IPv4
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@ -63,8 +63,7 @@ void Packet::Init(int arg_link_type, pkt_timeval *arg_ts, uint32_t arg_caplen,
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l3_checksummed = false;
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encap.reset();
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delete ip_hdr;
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ip_hdr = nullptr;
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ip_hdr.reset();
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proto = -1;
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tunnel_type = BifEnum::Tunnel::IP;
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@ -83,8 +82,6 @@ Packet::~Packet()
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{
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if ( copy )
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delete [] data;
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delete ip_hdr;
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}
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const IP_Hdr Packet::IP() const
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@ -16,11 +16,11 @@ typedef struct timeval pkt_timeval;
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#include "pcap.h" // For DLT_ constants
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#include "zeek/NetVar.h" // For BifEnum::Tunnel
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#include "zeek/TunnelEncapsulation.h"
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#include "zeek/IP.h"
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ZEEK_FORWARD_DECLARE_NAMESPACED(ODesc, zeek);
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ZEEK_FORWARD_DECLARE_NAMESPACED(Val, zeek);
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ZEEK_FORWARD_DECLARE_NAMESPACED(RecordVal, zeek);
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ZEEK_FORWARD_DECLARE_NAMESPACED(IP_Hdr, zeek);
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namespace zeek {
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@ -231,7 +231,7 @@ public:
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* The IP header for this packet. This is filled in by the IP analyzer
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* during processing if the packet contains an IP header.
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*/
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IP_Hdr* ip_hdr = nullptr;
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std::unique_ptr<IP_Hdr> ip_hdr = nullptr;
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/**
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* The protocol of the packet. This is used by the tunnel analyzers to
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@ -48,11 +48,9 @@ bool GREAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
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return false;
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}
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IP_Hdr* ip_hdr = packet->ip_hdr;
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if ( ! BifConst::Tunnel::enable_gre )
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{
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sessions->Weird("GRE_tunnel", ip_hdr, packet->encap);
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sessions->Weird("GRE_tunnel", packet->ip_hdr.get(), packet->encap);
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return false;
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}
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@ -70,7 +68,7 @@ bool GREAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
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if ( gre_version != 0 && gre_version != 1 )
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{
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sessions->Weird("unknown_gre_version", ip_hdr, packet->encap,
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sessions->Weird("unknown_gre_version", packet->ip_hdr.get(), packet->encap,
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util::fmt("%d", gre_version));
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return false;
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}
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@ -88,7 +86,7 @@ bool GREAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
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}
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else
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{
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sessions->Weird("truncated_GRE", ip_hdr, packet->encap);
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sessions->Weird("truncated_GRE", packet->ip_hdr.get(), packet->encap);
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return false;
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}
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}
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@ -105,7 +103,7 @@ bool GREAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
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}
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else
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{
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sessions->Weird("truncated_GRE", ip_hdr, packet->encap);
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sessions->Weird("truncated_GRE", packet->ip_hdr.get(), packet->encap);
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return false;
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}
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}
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@ -128,7 +126,7 @@ bool GREAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
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erspan_len += 8;
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else
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{
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sessions->Weird("truncated_GRE", ip_hdr, packet->encap);
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sessions->Weird("truncated_GRE", packet->ip_hdr.get(), packet->encap);
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return false;
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}
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}
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@ -137,7 +135,7 @@ bool GREAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
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}
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else
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{
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sessions->Weird("truncated_GRE", ip_hdr, packet->encap);
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sessions->Weird("truncated_GRE", packet->ip_hdr.get(), packet->encap);
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return false;
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}
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}
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@ -148,7 +146,7 @@ bool GREAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
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if ( proto_typ != 0x880b )
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{
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// Enhanced GRE payload must be PPP.
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sessions->Weird("egre_protocol_type", ip_hdr, packet->encap,
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sessions->Weird("egre_protocol_type", packet->ip_hdr.get(), packet->encap,
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util::fmt("%d", proto_typ));
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return false;
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}
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@ -159,20 +157,20 @@ bool GREAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
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// RFC 2784 deprecates the variable length routing field
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// specified by RFC 1701. It could be parsed here, but easiest
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// to just skip for now.
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sessions->Weird("gre_routing", ip_hdr, packet->encap);
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sessions->Weird("gre_routing", packet->ip_hdr.get(), packet->encap);
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return false;
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}
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if ( flags_ver & 0x0078 )
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{
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// Expect last 4 bits of flags are reserved, undefined.
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sessions->Weird("unknown_gre_flags", ip_hdr, packet->encap);
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sessions->Weird("unknown_gre_flags", packet->ip_hdr.get(), packet->encap);
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return false;
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}
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if ( len < gre_len + ppp_len + eth_len + erspan_len )
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{
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sessions->Weird("truncated_GRE", ip_hdr, packet->encap);
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sessions->Weird("truncated_GRE", packet->ip_hdr.get(), packet->encap);
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return false;
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}
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@ -182,7 +180,8 @@ bool GREAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
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if ( ppp_proto != 0x0021 && ppp_proto != 0x0057 )
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{
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sessions->Weird("non_ip_packet_in_encap", ip_hdr, packet->encap);
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sessions->Weird("non_ip_packet_in_encap", packet->ip_hdr.get(),
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packet->encap);
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return false;
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}
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@ -49,10 +49,9 @@ bool IPAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
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uint32_t protocol = ip->ip_v;
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// This is a unique pointer because of the mass of early returns from this method.
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IP_Hdr* ip_hdr = nullptr;
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if ( protocol == 4 )
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{
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ip_hdr = new IP_Hdr(ip, false);
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packet->ip_hdr = std::make_unique<IP_Hdr>(ip, false);
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packet->l3_proto = L3_IPV4;
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}
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else if ( protocol == 6 )
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|
@ -63,7 +62,7 @@ bool IPAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
|
|||
return false;
|
||||
}
|
||||
|
||||
ip_hdr = new IP_Hdr((const struct ip6_hdr*) data, false, len);
|
||||
packet->ip_hdr = std::make_unique<IP_Hdr>((const struct ip6_hdr*) data, false, len);
|
||||
packet->l3_proto = L3_IPV6;
|
||||
}
|
||||
else
|
||||
|
@ -72,14 +71,10 @@ bool IPAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
|
|||
return false;
|
||||
}
|
||||
|
||||
// Store this with the packet, since it's potentially used in other places
|
||||
// and it makes sense to not have to parse it out a second time.
|
||||
packet->ip_hdr = ip_hdr;
|
||||
|
||||
const struct ip* ip4 = ip_hdr->IP4_Hdr();
|
||||
const struct ip* ip4 = packet->ip_hdr->IP4_Hdr();
|
||||
|
||||
// total_len is the length of the packet minus all of the headers so far, including IP
|
||||
uint32_t total_len = ip_hdr->TotalLen();
|
||||
uint32_t total_len = packet->ip_hdr->TotalLen();
|
||||
if ( total_len == 0 )
|
||||
{
|
||||
// TCP segmentation offloading can zero out the ip_len field.
|
||||
|
@ -97,20 +92,20 @@ bool IPAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
|
|||
|
||||
// For both of these it is safe to pass ip_hdr because the presence
|
||||
// is guaranteed for the functions that pass data to us.
|
||||
uint16_t ip_hdr_len = ip_hdr->HdrLen();
|
||||
uint16_t ip_hdr_len = packet->ip_hdr->HdrLen();
|
||||
if ( ip_hdr_len > total_len )
|
||||
{
|
||||
sessions->Weird("invalid_IP_header_size", ip_hdr, packet->encap);
|
||||
sessions->Weird("invalid_IP_header_size", packet->ip_hdr.get(), packet->encap);
|
||||
return false;
|
||||
}
|
||||
|
||||
if ( ip_hdr_len > len )
|
||||
{
|
||||
sessions->Weird("internally_truncated_header", ip_hdr, packet->encap);
|
||||
sessions->Weird("internally_truncated_header", packet->ip_hdr.get(), packet->encap);
|
||||
return false;
|
||||
}
|
||||
|
||||
if ( ip_hdr->IP4_Hdr() )
|
||||
if ( packet->ip_hdr->IP4_Hdr() )
|
||||
{
|
||||
if ( ip_hdr_len < sizeof(struct ip) )
|
||||
{
|
||||
|
@ -129,7 +124,7 @@ bool IPAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
|
|||
|
||||
// Ignore if packet matches packet filter.
|
||||
detail::PacketFilter* packet_filter = sessions->GetPacketFilter(false);
|
||||
if ( packet_filter && packet_filter->Match(ip_hdr, total_len, len) )
|
||||
if ( packet_filter && packet_filter->Match(packet->ip_hdr, total_len, len) )
|
||||
return false;
|
||||
|
||||
if ( ! packet->l2_checksummed && ! detail::ignore_checksums && ip4 &&
|
||||
|
@ -139,30 +134,31 @@ bool IPAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
|
|||
return false;
|
||||
}
|
||||
|
||||
if ( discarder && discarder->NextPacket(ip_hdr, total_len, len) )
|
||||
if ( discarder && discarder->NextPacket(packet->ip_hdr, total_len, len) )
|
||||
return false;
|
||||
|
||||
detail::FragReassembler* f = nullptr;
|
||||
|
||||
if ( ip_hdr->IsFragment() )
|
||||
if ( packet->ip_hdr->IsFragment() )
|
||||
{
|
||||
packet->dump_packet = true; // always record fragments
|
||||
|
||||
if ( len < total_len )
|
||||
{
|
||||
sessions->Weird("incompletely_captured_fragment", ip_hdr, packet->encap);
|
||||
sessions->Weird("incompletely_captured_fragment", packet->ip_hdr.get(), packet->encap);
|
||||
|
||||
// Don't try to reassemble, that's doomed.
|
||||
// Discard all except the first fragment (which
|
||||
// is useful in analyzing header-only traces)
|
||||
if ( ip_hdr->FragOffset() != 0 )
|
||||
if ( packet->ip_hdr->FragOffset() != 0 )
|
||||
return false;
|
||||
}
|
||||
else
|
||||
{
|
||||
f = detail::fragment_mgr->NextFragment(run_state::processing_start_time, ip_hdr,
|
||||
f = detail::fragment_mgr->NextFragment(run_state::processing_start_time, packet->ip_hdr,
|
||||
packet->data + packet->hdr_size);
|
||||
IP_Hdr* ih = f->ReassembledPkt();
|
||||
std::unique_ptr<IP_Hdr> ih = f->ReassembledPkt();
|
||||
|
||||
if ( ! ih )
|
||||
// It didn't reassemble into anything yet.
|
||||
return true;
|
||||
|
@ -171,17 +167,15 @@ bool IPAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
|
|||
|
||||
// Switch the stored ip header over to the one from the
|
||||
// fragmented packet.
|
||||
delete ip_hdr;
|
||||
ip_hdr = ih;
|
||||
packet->ip_hdr = std::move(ih);
|
||||
|
||||
len = total_len = ip_hdr->TotalLen();
|
||||
ip_hdr_len = ip_hdr->HdrLen();
|
||||
len = total_len = packet->ip_hdr->TotalLen();
|
||||
ip_hdr_len = packet->ip_hdr->HdrLen();
|
||||
packet->cap_len = total_len + packet->hdr_size;
|
||||
packet->ip_hdr = ih;
|
||||
|
||||
if ( ip_hdr_len > total_len )
|
||||
{
|
||||
sessions->Weird("invalid_IP_header_size", ip_hdr, packet->encap);
|
||||
sessions->Weird("invalid_IP_header_size", packet->ip_hdr.get(), packet->encap);
|
||||
return false;
|
||||
}
|
||||
}
|
||||
|
@ -191,11 +185,11 @@ bool IPAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
|
|||
|
||||
// We stop building the chain when seeing IPPROTO_ESP so if it's
|
||||
// there, it's always the last.
|
||||
if ( ip_hdr->LastHeader() == IPPROTO_ESP )
|
||||
if ( packet->ip_hdr->LastHeader() == IPPROTO_ESP )
|
||||
{
|
||||
packet->dump_packet = true;
|
||||
if ( esp_packet )
|
||||
event_mgr.Enqueue(esp_packet, ip_hdr->ToPktHdrVal());
|
||||
event_mgr.Enqueue(esp_packet, packet->ip_hdr->ToPktHdrVal());
|
||||
|
||||
// Can't do more since upper-layer payloads are going to be encrypted.
|
||||
return true;
|
||||
|
@ -204,20 +198,20 @@ bool IPAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
|
|||
#ifdef ENABLE_MOBILE_IPV6
|
||||
// We stop building the chain when seeing IPPROTO_MOBILITY so it's always
|
||||
// last if present.
|
||||
if ( ip_hdr->LastHeader() == IPPROTO_MOBILITY )
|
||||
if ( packet->ip_hdr->LastHeader() == IPPROTO_MOBILITY )
|
||||
{
|
||||
dump_this_packet = true;
|
||||
|
||||
if ( ! ignore_checksums && mobility_header_checksum(ip_hdr) != 0xffff )
|
||||
if ( ! ignore_checksums && mobility_header_checksum(packet->ip_hdr) != 0xffff )
|
||||
{
|
||||
sessions->Weird("bad_MH_checksum", packet, packet->encap);
|
||||
return false;
|
||||
}
|
||||
|
||||
if ( mobile_ipv6_message )
|
||||
event_mgr.Enqueue(mobile_ipv6_message, ip_hdr->ToPktHdrVal());
|
||||
event_mgr.Enqueue(mobile_ipv6_message, packet->ip_hdr->ToPktHdrVal());
|
||||
|
||||
if ( ip_hdr->NextProto() != IPPROTO_NONE )
|
||||
if ( packet->ip_hdr->NextProto() != IPPROTO_NONE )
|
||||
sessions->Weird("mobility_piggyback", packet, packet->encap);
|
||||
|
||||
return true;
|
||||
|
@ -226,7 +220,7 @@ bool IPAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
|
|||
|
||||
// Set the data pointer to match the payload from the IP header. This makes sure that it's also pointing
|
||||
// at the reassembled data for a fragmented packet.
|
||||
data = ip_hdr->Payload();
|
||||
data = packet->ip_hdr->Payload();
|
||||
len -= ip_hdr_len;
|
||||
|
||||
// Session analysis assumes that the header size stored in the packet does not include the IP header
|
||||
|
@ -236,7 +230,7 @@ bool IPAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
|
|||
// change, but for now we leave it as it is.
|
||||
|
||||
bool return_val = true;
|
||||
int proto = ip_hdr->NextProto();
|
||||
int proto = packet->ip_hdr->NextProto();
|
||||
|
||||
packet->proto = proto;
|
||||
|
||||
|
@ -247,7 +241,7 @@ bool IPAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* packet)
|
|||
case IPPROTO_ICMPV6:
|
||||
DBG_LOG(DBG_PACKET_ANALYSIS, "Analysis in %s succeeded, next layer identifier is %#x.",
|
||||
GetAnalyzerName(), proto);
|
||||
sessions->DoNextPacket(run_state::processing_start_time, packet, ip_hdr);
|
||||
sessions->DoNextPacket(run_state::processing_start_time, packet);
|
||||
break;
|
||||
case IPPROTO_NONE:
|
||||
// If the packet is encapsulated in Teredo, then it was a bubble and
|
||||
|
|
|
@ -26,18 +26,16 @@ bool IPTunnelAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* pa
|
|||
return false;
|
||||
}
|
||||
|
||||
IP_Hdr* ip_hdr = packet->ip_hdr;
|
||||
|
||||
if ( ! BifConst::Tunnel::enable_ip )
|
||||
{
|
||||
sessions->Weird("IP_tunnel", ip_hdr, packet->encap);
|
||||
sessions->Weird("IP_tunnel", packet->ip_hdr.get(), packet->encap);
|
||||
return false;
|
||||
}
|
||||
|
||||
if ( packet->encap &&
|
||||
packet->encap->Depth() >= BifConst::Tunnel::max_depth )
|
||||
{
|
||||
sessions->Weird("exceeded_tunnel_max_depth", ip_hdr, packet->encap);
|
||||
sessions->Weird("exceeded_tunnel_max_depth", packet->ip_hdr.get(), packet->encap);
|
||||
return false;
|
||||
}
|
||||
|
||||
|
@ -53,11 +51,11 @@ bool IPTunnelAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* pa
|
|||
// Check for a valid inner packet first.
|
||||
int result = sessions->ParseIPPacket(len, data, proto, inner);
|
||||
if ( result == -2 )
|
||||
sessions->Weird("invalid_inner_IP_version", ip_hdr, packet->encap);
|
||||
sessions->Weird("invalid_inner_IP_version", packet->ip_hdr.get(), packet->encap);
|
||||
else if ( result < 0 )
|
||||
sessions->Weird("truncated_inner_IP", ip_hdr, packet->encap);
|
||||
sessions->Weird("truncated_inner_IP", packet->ip_hdr.get(), packet->encap);
|
||||
else if ( result > 0 )
|
||||
sessions->Weird("inner_IP_payload_length_mismatch", ip_hdr, packet->encap);
|
||||
sessions->Weird("inner_IP_payload_length_mismatch", packet->ip_hdr.get(), packet->encap);
|
||||
|
||||
if ( result != 0 )
|
||||
{
|
||||
|
@ -70,16 +68,16 @@ bool IPTunnelAnalyzer::AnalyzePacket(size_t len, const uint8_t* data, Packet* pa
|
|||
// by the pair of IP addresses, so that we can always associate the
|
||||
// same UID with it.
|
||||
IPPair tunnel_idx;
|
||||
if ( ip_hdr->SrcAddr() < ip_hdr->DstAddr() )
|
||||
tunnel_idx = IPPair(ip_hdr->SrcAddr(), ip_hdr->DstAddr());
|
||||
if ( packet->ip_hdr->SrcAddr() < packet->ip_hdr->DstAddr() )
|
||||
tunnel_idx = IPPair(packet->ip_hdr->SrcAddr(), packet->ip_hdr->DstAddr());
|
||||
else
|
||||
tunnel_idx = IPPair(ip_hdr->DstAddr(), ip_hdr->SrcAddr());
|
||||
tunnel_idx = IPPair(packet->ip_hdr->DstAddr(), packet->ip_hdr->SrcAddr());
|
||||
|
||||
IPTunnelMap::iterator tunnel_it = ip_tunnels.find(tunnel_idx);
|
||||
|
||||
if ( tunnel_it == ip_tunnels.end() )
|
||||
{
|
||||
EncapsulatingConn ec(ip_hdr->SrcAddr(), ip_hdr->DstAddr(),
|
||||
EncapsulatingConn ec(packet->ip_hdr->SrcAddr(), packet->ip_hdr->DstAddr(),
|
||||
tunnel_type);
|
||||
ip_tunnels[tunnel_idx] = TunnelActivity(ec, run_state::network_time);
|
||||
zeek::detail::timer_mgr->Add(new detail::IPTunnelTimer(run_state::network_time, tunnel_idx, this));
|
||||
|
|
Loading…
Add table
Add a link
Reference in a new issue