mirror of
https://github.com/openvswitch/ovs
synced 2025-08-30 22:05:19 +00:00
Signed-off-by: Justin Pettit <jpettit@nicira.com> Acked-by: Flavio Leitner <fbl@sysclose.org>
1053 lines
37 KiB
C
1053 lines
37 KiB
C
/*
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* Copyright (c) 2008, 2009, 2010, 2011, 2012, 2013, 2014, 2015 Nicira, Inc.
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at:
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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#ifndef FLOW_H
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#define FLOW_H 1
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#include <sys/types.h>
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#include <netinet/in.h>
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#include <stdbool.h>
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#include <stdint.h>
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#include <string.h>
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#include "bitmap.h"
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#include "byte-order.h"
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#include "openflow/nicira-ext.h"
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#include "openflow/openflow.h"
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#include "packets.h"
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#include "hash.h"
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#include "util.h"
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struct dpif_flow_stats;
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struct ds;
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struct flow_wildcards;
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struct minimask;
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struct dp_packet;
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struct pkt_metadata;
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struct match;
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/* This sequence number should be incremented whenever anything involving flows
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* or the wildcarding of flows changes. This will cause build assertion
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* failures in places which likely need to be updated. */
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#define FLOW_WC_SEQ 34
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/* Number of Open vSwitch extension 32-bit registers. */
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#define FLOW_N_REGS 8
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BUILD_ASSERT_DECL(FLOW_N_REGS <= NXM_NX_MAX_REGS);
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BUILD_ASSERT_DECL(FLOW_N_REGS % 2 == 0); /* Even. */
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/* Number of OpenFlow 1.5+ 64-bit registers.
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*
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* Each of these overlays a pair of Open vSwitch 32-bit registers, so there
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* are half as many of them.*/
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#define FLOW_N_XREGS (FLOW_N_REGS / 2)
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/* Used for struct flow's dl_type member for frames that have no Ethernet
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* type, that is, pure 802.2 frames. */
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#define FLOW_DL_TYPE_NONE 0x5ff
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/* Fragment bits, used for IPv4 and IPv6, always zero for non-IP flows. */
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#define FLOW_NW_FRAG_ANY (1 << 0) /* Set for any IP frag. */
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#define FLOW_NW_FRAG_LATER (1 << 1) /* Set for IP frag with nonzero offset. */
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#define FLOW_NW_FRAG_MASK (FLOW_NW_FRAG_ANY | FLOW_NW_FRAG_LATER)
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BUILD_ASSERT_DECL(FLOW_NW_FRAG_ANY == NX_IP_FRAG_ANY);
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BUILD_ASSERT_DECL(FLOW_NW_FRAG_LATER == NX_IP_FRAG_LATER);
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BUILD_ASSERT_DECL(FLOW_TNL_F_OAM == NX_TUN_FLAG_OAM);
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const char *flow_tun_flag_to_string(uint32_t flags);
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/* Maximum number of supported MPLS labels. */
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#define FLOW_MAX_MPLS_LABELS 3
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/*
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* A flow in the network.
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*
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* Must be initialized to all zeros to make any compiler-induced padding
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* zeroed. Helps also in keeping unused fields (such as mutually exclusive
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* IPv4 and IPv6 addresses) zeroed out.
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*
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* The meaning of 'in_port' is context-dependent. In most cases, it is a
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* 16-bit OpenFlow 1.0 port number. In the software datapath interface (dpif)
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* layer and its implementations (e.g. dpif-netlink, dpif-netdev), it is
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* instead a 32-bit datapath port number.
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*
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* The fields are organized in four segments to facilitate staged lookup, where
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* lower layer fields are first used to determine if the later fields need to
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* be looked at. This enables better wildcarding for datapath flows.
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*
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* NOTE: Order of the fields is significant, any change in the order must be
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* reflected in miniflow_extract()!
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*/
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struct flow {
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/* Metadata */
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struct flow_tnl tunnel; /* Encapsulating tunnel parameters. */
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ovs_be64 metadata; /* OpenFlow Metadata. */
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uint32_t regs[FLOW_N_REGS]; /* Registers. */
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uint32_t skb_priority; /* Packet priority for QoS. */
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uint32_t pkt_mark; /* Packet mark. */
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uint32_t dp_hash; /* Datapath computed hash value. The exact
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* computation is opaque to the user space. */
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union flow_in_port in_port; /* Input port.*/
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uint32_t recirc_id; /* Must be exact match. */
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uint16_t ct_state; /* Connection tracking state. */
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uint16_t ct_zone; /* Connection tracking zone. */
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uint32_t ct_mark; /* Connection mark.*/
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uint8_t pad1[4]; /* Pad to 64 bits. */
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ovs_u128 ct_label; /* Connection label. */
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uint32_t conj_id; /* Conjunction ID. */
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ofp_port_t actset_output; /* Output port in action set. */
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uint8_t pad2[2]; /* Pad to 64 bits. */
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/* L2, Order the same as in the Ethernet header! (64-bit aligned) */
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struct eth_addr dl_dst; /* Ethernet destination address. */
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struct eth_addr dl_src; /* Ethernet source address. */
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ovs_be16 dl_type; /* Ethernet frame type. */
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ovs_be16 vlan_tci; /* If 802.1Q, TCI | VLAN_CFI; otherwise 0. */
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ovs_be32 mpls_lse[ROUND_UP(FLOW_MAX_MPLS_LABELS, 2)]; /* MPLS label stack
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(with padding). */
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/* L3 (64-bit aligned) */
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ovs_be32 nw_src; /* IPv4 source address. */
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ovs_be32 nw_dst; /* IPv4 destination address. */
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struct in6_addr ipv6_src; /* IPv6 source address. */
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struct in6_addr ipv6_dst; /* IPv6 destination address. */
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ovs_be32 ipv6_label; /* IPv6 flow label. */
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uint8_t nw_frag; /* FLOW_FRAG_* flags. */
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uint8_t nw_tos; /* IP ToS (including DSCP and ECN). */
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uint8_t nw_ttl; /* IP TTL/Hop Limit. */
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uint8_t nw_proto; /* IP protocol or low 8 bits of ARP opcode. */
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struct in6_addr nd_target; /* IPv6 neighbor discovery (ND) target. */
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struct eth_addr arp_sha; /* ARP/ND source hardware address. */
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struct eth_addr arp_tha; /* ARP/ND target hardware address. */
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ovs_be16 tcp_flags; /* TCP flags. With L3 to avoid matching L4. */
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ovs_be16 pad3; /* Pad to 64 bits. */
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/* L4 (64-bit aligned) */
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ovs_be16 tp_src; /* TCP/UDP/SCTP source port/ICMP type. */
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ovs_be16 tp_dst; /* TCP/UDP/SCTP destination port/ICMP code. */
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ovs_be32 igmp_group_ip4; /* IGMP group IPv4 address.
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* Keep last for BUILD_ASSERT_DECL below. */
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};
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BUILD_ASSERT_DECL(sizeof(struct flow) % sizeof(uint64_t) == 0);
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BUILD_ASSERT_DECL(sizeof(struct flow_tnl) % sizeof(uint64_t) == 0);
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#define FLOW_U64S (sizeof(struct flow) / sizeof(uint64_t))
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/* Some flow fields are mutually exclusive or only appear within the flow
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* pipeline. IPv6 headers are bigger than IPv4 and MPLS, and IPv6 ND packets
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* are bigger than TCP,UDP and IGMP packets. */
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#define FLOW_MAX_PACKET_U64S (FLOW_U64S \
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/* Unused in datapath */ - FLOW_U64_SIZE(regs) \
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- FLOW_U64_SIZE(metadata) \
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/* L2.5/3 */ - FLOW_U64_SIZE(nw_src) /* incl. nw_dst */ \
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- FLOW_U64_SIZE(mpls_lse) \
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/* L4 */ - FLOW_U64_SIZE(tp_src) \
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)
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/* Remember to update FLOW_WC_SEQ when changing 'struct flow'. */
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BUILD_ASSERT_DECL(offsetof(struct flow, igmp_group_ip4) + sizeof(uint32_t)
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== sizeof(struct flow_tnl) + 216
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&& FLOW_WC_SEQ == 34);
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/* Incremental points at which flow classification may be performed in
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* segments.
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* This is located here since this is dependent on the structure of the
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* struct flow defined above:
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* Each offset must be on a distinct, successive U64 boundary strictly
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* within the struct flow. */
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enum {
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FLOW_SEGMENT_1_ENDS_AT = offsetof(struct flow, dl_dst),
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FLOW_SEGMENT_2_ENDS_AT = offsetof(struct flow, nw_src),
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FLOW_SEGMENT_3_ENDS_AT = offsetof(struct flow, tp_src),
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};
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BUILD_ASSERT_DECL(FLOW_SEGMENT_1_ENDS_AT % sizeof(uint64_t) == 0);
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BUILD_ASSERT_DECL(FLOW_SEGMENT_2_ENDS_AT % sizeof(uint64_t) == 0);
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BUILD_ASSERT_DECL(FLOW_SEGMENT_3_ENDS_AT % sizeof(uint64_t) == 0);
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BUILD_ASSERT_DECL( 0 < FLOW_SEGMENT_1_ENDS_AT);
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BUILD_ASSERT_DECL(FLOW_SEGMENT_1_ENDS_AT < FLOW_SEGMENT_2_ENDS_AT);
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BUILD_ASSERT_DECL(FLOW_SEGMENT_2_ENDS_AT < FLOW_SEGMENT_3_ENDS_AT);
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BUILD_ASSERT_DECL(FLOW_SEGMENT_3_ENDS_AT < sizeof(struct flow));
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extern const uint8_t flow_segment_u64s[];
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#define FLOW_U64_OFFSET(FIELD) \
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(offsetof(struct flow, FIELD) / sizeof(uint64_t))
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#define FLOW_U64_OFFREM(FIELD) \
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(offsetof(struct flow, FIELD) % sizeof(uint64_t))
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/* Number of 64-bit units spanned by a 'FIELD'. */
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#define FLOW_U64_SIZE(FIELD) \
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DIV_ROUND_UP(FLOW_U64_OFFREM(FIELD) + MEMBER_SIZEOF(struct flow, FIELD), \
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sizeof(uint64_t))
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void flow_extract(struct dp_packet *, struct flow *);
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void flow_zero_wildcards(struct flow *, const struct flow_wildcards *);
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void flow_unwildcard_tp_ports(const struct flow *, struct flow_wildcards *);
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void flow_get_metadata(const struct flow *, struct match *flow_metadata);
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const char *ct_state_to_string(uint32_t state);
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char *flow_to_string(const struct flow *);
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void format_flags(struct ds *ds, const char *(*bit_to_string)(uint32_t),
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uint32_t flags, char del);
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void format_flags_masked(struct ds *ds, const char *name,
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const char *(*bit_to_string)(uint32_t),
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uint32_t flags, uint32_t mask, uint32_t max_mask);
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int parse_flags(const char *s, const char *(*bit_to_string)(uint32_t),
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char end, const char *field_name, char **res_string,
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uint32_t *res_flags, uint32_t allowed, uint32_t *res_mask);
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void flow_format(struct ds *, const struct flow *);
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void flow_print(FILE *, const struct flow *);
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static inline int flow_compare_3way(const struct flow *, const struct flow *);
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static inline bool flow_equal(const struct flow *, const struct flow *);
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static inline size_t flow_hash(const struct flow *, uint32_t basis);
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void flow_set_dl_vlan(struct flow *, ovs_be16 vid);
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void flow_set_vlan_vid(struct flow *, ovs_be16 vid);
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void flow_set_vlan_pcp(struct flow *, uint8_t pcp);
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int flow_count_mpls_labels(const struct flow *, struct flow_wildcards *);
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int flow_count_common_mpls_labels(const struct flow *a, int an,
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const struct flow *b, int bn,
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struct flow_wildcards *wc);
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void flow_push_mpls(struct flow *, int n, ovs_be16 mpls_eth_type,
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struct flow_wildcards *);
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bool flow_pop_mpls(struct flow *, int n, ovs_be16 eth_type,
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struct flow_wildcards *);
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void flow_set_mpls_label(struct flow *, int idx, ovs_be32 label);
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void flow_set_mpls_ttl(struct flow *, int idx, uint8_t ttl);
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void flow_set_mpls_tc(struct flow *, int idx, uint8_t tc);
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void flow_set_mpls_bos(struct flow *, int idx, uint8_t stack);
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void flow_set_mpls_lse(struct flow *, int idx, ovs_be32 lse);
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void flow_compose(struct dp_packet *, const struct flow *);
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static inline uint64_t
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flow_get_xreg(const struct flow *flow, int idx)
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{
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return ((uint64_t) flow->regs[idx * 2] << 32) | flow->regs[idx * 2 + 1];
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}
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static inline void
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flow_set_xreg(struct flow *flow, int idx, uint64_t value)
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{
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flow->regs[idx * 2] = value >> 32;
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flow->regs[idx * 2 + 1] = value;
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}
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static inline int
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flow_compare_3way(const struct flow *a, const struct flow *b)
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{
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return memcmp(a, b, sizeof *a);
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}
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static inline bool
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flow_equal(const struct flow *a, const struct flow *b)
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{
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return !flow_compare_3way(a, b);
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}
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static inline size_t
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flow_hash(const struct flow *flow, uint32_t basis)
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{
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return hash_words64((const uint64_t *)flow,
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sizeof *flow / sizeof(uint64_t), basis);
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}
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static inline uint16_t
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ofp_to_u16(ofp_port_t ofp_port)
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{
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return (OVS_FORCE uint16_t) ofp_port;
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}
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static inline uint32_t
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odp_to_u32(odp_port_t odp_port)
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{
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return (OVS_FORCE uint32_t) odp_port;
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}
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static inline uint32_t
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ofp11_to_u32(ofp11_port_t ofp11_port)
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{
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return (OVS_FORCE uint32_t) ofp11_port;
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}
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static inline ofp_port_t
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u16_to_ofp(uint16_t port)
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{
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return OFP_PORT_C(port);
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}
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static inline odp_port_t
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u32_to_odp(uint32_t port)
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{
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return ODP_PORT_C(port);
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}
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static inline ofp11_port_t
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u32_to_ofp11(uint32_t port)
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{
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return OFP11_PORT_C(port);
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}
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static inline uint32_t
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hash_ofp_port(ofp_port_t ofp_port)
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{
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return hash_int(ofp_to_u16(ofp_port), 0);
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}
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static inline uint32_t
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hash_odp_port(odp_port_t odp_port)
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{
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return hash_int(odp_to_u32(odp_port), 0);
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}
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/* Wildcards for a flow.
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*
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* A 1-bit in each bit in 'masks' indicates that the corresponding bit of
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* the flow is significant (must match). A 0-bit indicates that the
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* corresponding bit of the flow is wildcarded (need not match). */
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struct flow_wildcards {
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struct flow masks;
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};
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#define WC_MASK_FIELD(WC, FIELD) \
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memset(&(WC)->masks.FIELD, 0xff, sizeof (WC)->masks.FIELD)
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#define WC_MASK_FIELD_MASK(WC, FIELD, MASK) \
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((WC)->masks.FIELD |= (MASK))
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#define WC_UNMASK_FIELD(WC, FIELD) \
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memset(&(WC)->masks.FIELD, 0, sizeof (WC)->masks.FIELD)
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void flow_wildcards_init_catchall(struct flow_wildcards *);
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void flow_wildcards_init_for_packet(struct flow_wildcards *,
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const struct flow *);
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void flow_wildcards_clear_non_packet_fields(struct flow_wildcards *);
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bool flow_wildcards_is_catchall(const struct flow_wildcards *);
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void flow_wildcards_set_reg_mask(struct flow_wildcards *,
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int idx, uint32_t mask);
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void flow_wildcards_set_xreg_mask(struct flow_wildcards *,
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int idx, uint64_t mask);
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void flow_wildcards_and(struct flow_wildcards *dst,
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const struct flow_wildcards *src1,
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const struct flow_wildcards *src2);
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void flow_wildcards_or(struct flow_wildcards *dst,
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const struct flow_wildcards *src1,
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const struct flow_wildcards *src2);
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bool flow_wildcards_has_extra(const struct flow_wildcards *,
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const struct flow_wildcards *);
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uint32_t flow_wildcards_hash(const struct flow_wildcards *, uint32_t basis);
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bool flow_wildcards_equal(const struct flow_wildcards *,
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const struct flow_wildcards *);
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uint32_t flow_hash_5tuple(const struct flow *flow, uint32_t basis);
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uint32_t flow_hash_symmetric_l4(const struct flow *flow, uint32_t basis);
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uint32_t flow_hash_symmetric_l3l4(const struct flow *flow, uint32_t basis,
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bool inc_udp_ports );
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/* Initialize a flow with random fields that matter for nx_hash_fields. */
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void flow_random_hash_fields(struct flow *);
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void flow_mask_hash_fields(const struct flow *, struct flow_wildcards *,
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enum nx_hash_fields);
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uint32_t flow_hash_fields(const struct flow *, enum nx_hash_fields,
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uint16_t basis);
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const char *flow_hash_fields_to_str(enum nx_hash_fields);
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bool flow_hash_fields_valid(enum nx_hash_fields);
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uint32_t flow_hash_in_wildcards(const struct flow *,
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const struct flow_wildcards *,
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uint32_t basis);
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bool flow_equal_except(const struct flow *a, const struct flow *b,
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const struct flow_wildcards *);
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/* Bitmap for flow values. For each 1-bit the corresponding flow value is
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* explicitly specified, other values are zeroes.
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*
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* map_t must be wide enough to hold any member of struct flow. */
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typedef unsigned long long map_t;
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#define MAP_T_BITS (sizeof(map_t) * CHAR_BIT)
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#define MAP_1 (map_t)1
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#define MAP_MAX TYPE_MAXIMUM(map_t)
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#define MAP_IS_SET(MAP, IDX) ((MAP) & (MAP_1 << (IDX)))
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/* Iterate through the indices of all 1-bits in 'MAP'. */
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#define MAP_FOR_EACH_INDEX(IDX, MAP) \
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ULLONG_FOR_EACH_1(IDX, MAP)
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#define FLOWMAP_UNITS DIV_ROUND_UP(FLOW_U64S, MAP_T_BITS)
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struct flowmap {
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map_t bits[FLOWMAP_UNITS];
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};
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#define FLOWMAP_EMPTY_INITIALIZER { { 0 } }
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static inline void flowmap_init(struct flowmap *);
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static inline bool flowmap_equal(struct flowmap, struct flowmap);
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static inline bool flowmap_is_set(const struct flowmap *, size_t idx);
|
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static inline bool flowmap_are_set(const struct flowmap *, size_t idx,
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unsigned int n_bits);
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static inline void flowmap_set(struct flowmap *, size_t idx,
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unsigned int n_bits);
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static inline void flowmap_clear(struct flowmap *, size_t idx,
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unsigned int n_bits);
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static inline struct flowmap flowmap_or(struct flowmap, struct flowmap);
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static inline struct flowmap flowmap_and(struct flowmap, struct flowmap);
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static inline bool flowmap_is_empty(struct flowmap);
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static inline unsigned int flowmap_n_1bits(struct flowmap);
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|
||
#define FLOWMAP_HAS_FIELD(FM, FIELD) \
|
||
flowmap_are_set(FM, FLOW_U64_OFFSET(FIELD), FLOW_U64_SIZE(FIELD))
|
||
|
||
#define FLOWMAP_SET(FM, FIELD) \
|
||
flowmap_set(FM, FLOW_U64_OFFSET(FIELD), FLOW_U64_SIZE(FIELD))
|
||
|
||
#define FLOWMAP_SET__(FM, FIELD, SIZE) \
|
||
flowmap_set(FM, FLOW_U64_OFFSET(FIELD), \
|
||
DIV_ROUND_UP(SIZE, sizeof(uint64_t)))
|
||
|
||
/* XXX: Only works for full 64-bit units. */
|
||
#define FLOWMAP_CLEAR(FM, FIELD) \
|
||
BUILD_ASSERT_DECL(FLOW_U64_OFFREM(FIELD) == 0); \
|
||
BUILD_ASSERT_DECL(sizeof(((struct flow *)0)->FIELD) % sizeof(uint64_t) == 0); \
|
||
flowmap_clear(FM, FLOW_U64_OFFSET(FIELD), FLOW_U64_SIZE(FIELD))
|
||
|
||
/* Iterate through all units in 'FMAP'. */
|
||
#define FLOWMAP_FOR_EACH_UNIT(UNIT) \
|
||
for ((UNIT) = 0; (UNIT) < FLOWMAP_UNITS; (UNIT)++)
|
||
|
||
/* Iterate through all map units in 'FMAP'. */
|
||
#define FLOWMAP_FOR_EACH_MAP(MAP, FLOWMAP) \
|
||
for (size_t unit__ = 0; \
|
||
unit__ < FLOWMAP_UNITS && ((MAP) = (FLOWMAP).bits[unit__], true); \
|
||
unit__++)
|
||
|
||
struct flowmap_aux;
|
||
static inline bool flowmap_next_index(struct flowmap_aux *, size_t *idx);
|
||
|
||
#define FLOWMAP_AUX_INITIALIZER(FLOWMAP) { .unit = 0, .map = (FLOWMAP) }
|
||
|
||
/* Iterate through all struct flow u64 indices specified by 'MAP'. This is a
|
||
* slower but easier version of the FLOWMAP_FOR_EACH_MAP() &
|
||
* MAP_FOR_EACH_INDEX() combination. */
|
||
#define FLOWMAP_FOR_EACH_INDEX(IDX, MAP) \
|
||
for (struct flowmap_aux aux__ = FLOWMAP_AUX_INITIALIZER(MAP); \
|
||
flowmap_next_index(&aux__, &(IDX));)
|
||
|
||
/* Flowmap inline implementations. */
|
||
static inline void
|
||
flowmap_init(struct flowmap *fm)
|
||
{
|
||
memset(fm, 0, sizeof *fm);
|
||
}
|
||
|
||
static inline bool
|
||
flowmap_equal(struct flowmap a, struct flowmap b)
|
||
{
|
||
return !memcmp(&a, &b, sizeof a);
|
||
}
|
||
|
||
static inline bool
|
||
flowmap_is_set(const struct flowmap *fm, size_t idx)
|
||
{
|
||
return (fm->bits[idx / MAP_T_BITS] & (MAP_1 << (idx % MAP_T_BITS))) != 0;
|
||
}
|
||
|
||
/* Returns 'true' if any of the 'n_bits' bits starting at 'idx' are set in
|
||
* 'fm'. 'n_bits' can be at most MAP_T_BITS. */
|
||
static inline bool
|
||
flowmap_are_set(const struct flowmap *fm, size_t idx, unsigned int n_bits)
|
||
{
|
||
map_t n_bits_mask = (MAP_1 << n_bits) - 1;
|
||
size_t unit = idx / MAP_T_BITS;
|
||
|
||
idx %= MAP_T_BITS;
|
||
|
||
if (fm->bits[unit] & (n_bits_mask << idx)) {
|
||
return true;
|
||
}
|
||
/* The seemingly unnecessary bounds check on 'unit' is a workaround for a
|
||
* false-positive array out of bounds error by GCC 4.9. */
|
||
if (unit + 1 < FLOWMAP_UNITS && idx + n_bits > MAP_T_BITS) {
|
||
/* Check the remaining bits from the next unit. */
|
||
return fm->bits[unit + 1] & (n_bits_mask >> (MAP_T_BITS - idx));
|
||
}
|
||
return false;
|
||
}
|
||
|
||
/* Set the 'n_bits' consecutive bits in 'fm', starting at bit 'idx'.
|
||
* 'n_bits' can be at most MAP_T_BITS. */
|
||
static inline void
|
||
flowmap_set(struct flowmap *fm, size_t idx, unsigned int n_bits)
|
||
{
|
||
map_t n_bits_mask = (MAP_1 << n_bits) - 1;
|
||
size_t unit = idx / MAP_T_BITS;
|
||
|
||
idx %= MAP_T_BITS;
|
||
|
||
fm->bits[unit] |= n_bits_mask << idx;
|
||
/* The seemingly unnecessary bounds check on 'unit' is a workaround for a
|
||
* false-positive array out of bounds error by GCC 4.9. */
|
||
if (unit + 1 < FLOWMAP_UNITS && idx + n_bits > MAP_T_BITS) {
|
||
/* 'MAP_T_BITS - idx' bits were set on 'unit', set the remaining
|
||
* bits from the next unit. */
|
||
fm->bits[unit + 1] |= n_bits_mask >> (MAP_T_BITS - idx);
|
||
}
|
||
}
|
||
|
||
/* Clears the 'n_bits' consecutive bits in 'fm', starting at bit 'idx'.
|
||
* 'n_bits' can be at most MAP_T_BITS. */
|
||
static inline void
|
||
flowmap_clear(struct flowmap *fm, size_t idx, unsigned int n_bits)
|
||
{
|
||
map_t n_bits_mask = (MAP_1 << n_bits) - 1;
|
||
size_t unit = idx / MAP_T_BITS;
|
||
|
||
idx %= MAP_T_BITS;
|
||
|
||
fm->bits[unit] &= ~(n_bits_mask << idx);
|
||
/* The seemingly unnecessary bounds check on 'unit' is a workaround for a
|
||
* false-positive array out of bounds error by GCC 4.9. */
|
||
if (unit + 1 < FLOWMAP_UNITS && idx + n_bits > MAP_T_BITS) {
|
||
/* 'MAP_T_BITS - idx' bits were cleared on 'unit', clear the
|
||
* remaining bits from the next unit. */
|
||
fm->bits[unit + 1] &= ~(n_bits_mask >> (MAP_T_BITS - idx));
|
||
}
|
||
}
|
||
|
||
/* OR the bits in the flowmaps. */
|
||
static inline struct flowmap
|
||
flowmap_or(struct flowmap a, struct flowmap b)
|
||
{
|
||
struct flowmap map;
|
||
size_t unit;
|
||
|
||
FLOWMAP_FOR_EACH_UNIT (unit) {
|
||
map.bits[unit] = a.bits[unit] | b.bits[unit];
|
||
}
|
||
return map;
|
||
}
|
||
|
||
/* AND the bits in the flowmaps. */
|
||
static inline struct flowmap
|
||
flowmap_and(struct flowmap a, struct flowmap b)
|
||
{
|
||
struct flowmap map;
|
||
size_t unit;
|
||
|
||
FLOWMAP_FOR_EACH_UNIT (unit) {
|
||
map.bits[unit] = a.bits[unit] & b.bits[unit];
|
||
}
|
||
return map;
|
||
}
|
||
|
||
static inline bool
|
||
flowmap_is_empty(struct flowmap fm)
|
||
{
|
||
map_t map;
|
||
|
||
FLOWMAP_FOR_EACH_MAP (map, fm) {
|
||
if (map) {
|
||
return false;
|
||
}
|
||
}
|
||
return true;
|
||
}
|
||
|
||
static inline unsigned int
|
||
flowmap_n_1bits(struct flowmap fm)
|
||
{
|
||
unsigned int n_1bits = 0;
|
||
size_t unit;
|
||
|
||
FLOWMAP_FOR_EACH_UNIT (unit) {
|
||
n_1bits += count_1bits(fm.bits[unit]);
|
||
}
|
||
return n_1bits;
|
||
}
|
||
|
||
struct flowmap_aux {
|
||
size_t unit;
|
||
struct flowmap map;
|
||
};
|
||
|
||
static inline bool
|
||
flowmap_next_index(struct flowmap_aux *aux, size_t *idx)
|
||
{
|
||
for (;;) {
|
||
map_t *map = &aux->map.bits[aux->unit];
|
||
if (*map) {
|
||
*idx = aux->unit * MAP_T_BITS + raw_ctz(*map);
|
||
*map = zero_rightmost_1bit(*map);
|
||
return true;
|
||
}
|
||
if (++aux->unit >= FLOWMAP_UNITS) {
|
||
return false;
|
||
}
|
||
}
|
||
}
|
||
|
||
|
||
/* Compressed flow. */
|
||
|
||
/* A sparse representation of a "struct flow".
|
||
*
|
||
* A "struct flow" is fairly large and tends to be mostly zeros. Sparse
|
||
* representation has two advantages. First, it saves memory and, more
|
||
* importantly, minimizes the number of accessed cache lines. Second, it saves
|
||
* time when the goal is to iterate over only the nonzero parts of the struct.
|
||
*
|
||
* The map member hold one bit for each uint64_t in a "struct flow". Each
|
||
* 0-bit indicates that the corresponding uint64_t is zero, each 1-bit that it
|
||
* *may* be nonzero (see below how this applies to minimasks).
|
||
*
|
||
* The values indicated by 'map' always follow the miniflow in memory. The
|
||
* user of the miniflow is responsible for always having enough storage after
|
||
* the struct miniflow corresponding to the number of 1-bits in maps.
|
||
*
|
||
* Elements in values array are allowed to be zero. This is useful for "struct
|
||
* minimatch", for which ensuring that the miniflow and minimask members have
|
||
* same maps allows optimization. This allowance applies only to a miniflow
|
||
* that is not a mask. That is, a minimask may NOT have zero elements in its
|
||
* values.
|
||
*
|
||
* A miniflow is always dynamically allocated so that the maps are followed by
|
||
* at least as many elements as there are 1-bits in maps. */
|
||
struct miniflow {
|
||
struct flowmap map;
|
||
/* Followed by:
|
||
* uint64_t values[n];
|
||
* where 'n' is miniflow_n_values(miniflow). */
|
||
};
|
||
BUILD_ASSERT_DECL(sizeof(struct miniflow) % sizeof(uint64_t) == 0);
|
||
|
||
#define MINIFLOW_VALUES_SIZE(COUNT) ((COUNT) * sizeof(uint64_t))
|
||
|
||
static inline uint64_t *miniflow_values(struct miniflow *mf)
|
||
{
|
||
return (uint64_t *)(mf + 1);
|
||
}
|
||
|
||
static inline const uint64_t *miniflow_get_values(const struct miniflow *mf)
|
||
{
|
||
return (const uint64_t *)(mf + 1);
|
||
}
|
||
|
||
struct pkt_metadata;
|
||
|
||
/* The 'dst' must follow with buffer space for FLOW_U64S 64-bit units.
|
||
* 'dst->map' is ignored on input and set on output to indicate which fields
|
||
* were extracted. */
|
||
void miniflow_extract(struct dp_packet *packet, struct miniflow *dst);
|
||
void miniflow_map_init(struct miniflow *, const struct flow *);
|
||
void flow_wc_map(const struct flow *, struct flowmap *);
|
||
size_t miniflow_alloc(struct miniflow *dsts[], size_t n,
|
||
const struct miniflow *src);
|
||
void miniflow_init(struct miniflow *, const struct flow *);
|
||
void miniflow_clone(struct miniflow *, const struct miniflow *,
|
||
size_t n_values);
|
||
struct miniflow * miniflow_create(const struct flow *);
|
||
|
||
void miniflow_expand(const struct miniflow *, struct flow *);
|
||
|
||
static inline uint64_t flow_u64_value(const struct flow *flow, size_t index)
|
||
{
|
||
return ((uint64_t *)flow)[index];
|
||
}
|
||
|
||
static inline uint64_t *flow_u64_lvalue(struct flow *flow, size_t index)
|
||
{
|
||
return &((uint64_t *)flow)[index];
|
||
}
|
||
|
||
static inline size_t
|
||
miniflow_n_values(const struct miniflow *flow)
|
||
{
|
||
return flowmap_n_1bits(flow->map);
|
||
}
|
||
|
||
struct flow_for_each_in_maps_aux {
|
||
const struct flow *flow;
|
||
struct flowmap_aux map_aux;
|
||
};
|
||
|
||
static inline bool
|
||
flow_values_get_next_in_maps(struct flow_for_each_in_maps_aux *aux,
|
||
uint64_t *value)
|
||
{
|
||
size_t idx;
|
||
|
||
if (flowmap_next_index(&aux->map_aux, &idx)) {
|
||
*value = flow_u64_value(aux->flow, idx);
|
||
return true;
|
||
}
|
||
return false;
|
||
}
|
||
|
||
/* Iterate through all flow u64 values specified by 'MAPS'. */
|
||
#define FLOW_FOR_EACH_IN_MAPS(VALUE, FLOW, MAPS) \
|
||
for (struct flow_for_each_in_maps_aux aux__ \
|
||
= { (FLOW), FLOWMAP_AUX_INITIALIZER(MAPS) }; \
|
||
flow_values_get_next_in_maps(&aux__, &(VALUE));)
|
||
|
||
struct mf_for_each_in_map_aux {
|
||
size_t unit;
|
||
struct flowmap fmap;
|
||
struct flowmap map;
|
||
const uint64_t *values;
|
||
};
|
||
|
||
static inline bool
|
||
mf_get_next_in_map(struct mf_for_each_in_map_aux *aux,
|
||
uint64_t *value)
|
||
{
|
||
map_t *map, *fmap;
|
||
map_t rm1bit;
|
||
|
||
while (OVS_UNLIKELY(!*(map = &aux->map.bits[aux->unit]))) {
|
||
/* Skip remaining data in the previous unit. */
|
||
aux->values += count_1bits(aux->fmap.bits[aux->unit]);
|
||
if (++aux->unit == FLOWMAP_UNITS) {
|
||
return false;
|
||
}
|
||
}
|
||
|
||
rm1bit = rightmost_1bit(*map);
|
||
*map -= rm1bit;
|
||
fmap = &aux->fmap.bits[aux->unit];
|
||
|
||
if (OVS_LIKELY(*fmap & rm1bit)) {
|
||
map_t trash = *fmap & (rm1bit - 1);
|
||
|
||
*fmap -= trash;
|
||
/* count_1bits() is fast for systems where speed matters (e.g.,
|
||
* DPDK), so we don't try avoid using it.
|
||
* Advance 'aux->values' to point to the value for 'rm1bit'. */
|
||
aux->values += count_1bits(trash);
|
||
|
||
*value = *aux->values;
|
||
} else {
|
||
*value = 0;
|
||
}
|
||
return true;
|
||
}
|
||
|
||
/* Iterate through miniflow u64 values specified by 'FLOWMAP'. */
|
||
#define MINIFLOW_FOR_EACH_IN_FLOWMAP(VALUE, FLOW, FLOWMAP) \
|
||
for (struct mf_for_each_in_map_aux aux__ = \
|
||
{ 0, (FLOW)->map, (FLOWMAP), miniflow_get_values(FLOW) }; \
|
||
mf_get_next_in_map(&aux__, &(VALUE));)
|
||
|
||
/* This can be used when it is known that 'idx' is set in 'map'. */
|
||
static inline const uint64_t *
|
||
miniflow_values_get__(const uint64_t *values, map_t map, size_t idx)
|
||
{
|
||
return values + count_1bits(map & ((MAP_1 << idx) - 1));
|
||
}
|
||
|
||
/* This can be used when it is known that 'u64_idx' is set in
|
||
* the map of 'mf'. */
|
||
static inline const uint64_t *
|
||
miniflow_get__(const struct miniflow *mf, size_t idx)
|
||
{
|
||
const uint64_t *values = miniflow_get_values(mf);
|
||
const map_t *map = mf->map.bits;
|
||
|
||
while (idx >= MAP_T_BITS) {
|
||
idx -= MAP_T_BITS;
|
||
values += count_1bits(*map++);
|
||
}
|
||
return miniflow_values_get__(values, *map, idx);
|
||
}
|
||
|
||
#define MINIFLOW_IN_MAP(MF, IDX) flowmap_is_set(&(MF)->map, IDX)
|
||
|
||
/* Get the value of the struct flow 'FIELD' as up to 8 byte wide integer type
|
||
* 'TYPE' from miniflow 'MF'. */
|
||
#define MINIFLOW_GET_TYPE(MF, TYPE, FIELD) \
|
||
(MINIFLOW_IN_MAP(MF, FLOW_U64_OFFSET(FIELD)) \
|
||
? ((OVS_FORCE const TYPE *)miniflow_get__(MF, FLOW_U64_OFFSET(FIELD))) \
|
||
[FLOW_U64_OFFREM(FIELD) / sizeof(TYPE)] \
|
||
: 0)
|
||
|
||
/* Get a pointer to the ovs_u128 value of struct flow 'FIELD' from miniflow
|
||
* 'FLOW'. */
|
||
#define MINIFLOW_GET_U128_PTR(FLOW, FIELD) \
|
||
((MINIFLOW_IN_MAP(FLOW, FLOW_U64_OFFSET(FIELD)) \
|
||
&& (MINIFLOW_IN_MAP(FLOW, FLOW_U64_OFFSET(FIELD) + 1))) \
|
||
? &((OVS_FORCE const ovs_u128 *)miniflow_get__(FLOW, FLOW_U64_OFFSET(FIELD))) \
|
||
[FLOW_U64_OFFREM(FIELD) / sizeof(ovs_u128)] \
|
||
: NULL)
|
||
|
||
#define MINIFLOW_GET_U8(FLOW, FIELD) \
|
||
MINIFLOW_GET_TYPE(FLOW, uint8_t, FIELD)
|
||
#define MINIFLOW_GET_U16(FLOW, FIELD) \
|
||
MINIFLOW_GET_TYPE(FLOW, uint16_t, FIELD)
|
||
#define MINIFLOW_GET_BE16(FLOW, FIELD) \
|
||
MINIFLOW_GET_TYPE(FLOW, ovs_be16, FIELD)
|
||
#define MINIFLOW_GET_U32(FLOW, FIELD) \
|
||
MINIFLOW_GET_TYPE(FLOW, uint32_t, FIELD)
|
||
#define MINIFLOW_GET_BE32(FLOW, FIELD) \
|
||
MINIFLOW_GET_TYPE(FLOW, ovs_be32, FIELD)
|
||
#define MINIFLOW_GET_U64(FLOW, FIELD) \
|
||
MINIFLOW_GET_TYPE(FLOW, uint64_t, FIELD)
|
||
#define MINIFLOW_GET_BE64(FLOW, FIELD) \
|
||
MINIFLOW_GET_TYPE(FLOW, ovs_be64, FIELD)
|
||
|
||
static inline uint64_t miniflow_get(const struct miniflow *,
|
||
unsigned int u64_ofs);
|
||
static inline uint32_t miniflow_get_u32(const struct miniflow *,
|
||
unsigned int u32_ofs);
|
||
static inline ovs_be32 miniflow_get_be32(const struct miniflow *,
|
||
unsigned int be32_ofs);
|
||
static inline uint16_t miniflow_get_vid(const struct miniflow *);
|
||
static inline uint16_t miniflow_get_tcp_flags(const struct miniflow *);
|
||
static inline ovs_be64 miniflow_get_metadata(const struct miniflow *);
|
||
|
||
bool miniflow_equal(const struct miniflow *a, const struct miniflow *b);
|
||
bool miniflow_equal_in_minimask(const struct miniflow *a,
|
||
const struct miniflow *b,
|
||
const struct minimask *);
|
||
bool miniflow_equal_flow_in_minimask(const struct miniflow *a,
|
||
const struct flow *b,
|
||
const struct minimask *);
|
||
uint32_t miniflow_hash_5tuple(const struct miniflow *flow, uint32_t basis);
|
||
|
||
|
||
/* Compressed flow wildcards. */
|
||
|
||
/* A sparse representation of a "struct flow_wildcards".
|
||
*
|
||
* See the large comment on struct miniflow for details.
|
||
*
|
||
* Note: While miniflow can have zero data for a 1-bit in the map,
|
||
* a minimask may not! We rely on this in the implementation. */
|
||
struct minimask {
|
||
struct miniflow masks;
|
||
};
|
||
|
||
void minimask_init(struct minimask *, const struct flow_wildcards *);
|
||
struct minimask * minimask_create(const struct flow_wildcards *);
|
||
void minimask_combine(struct minimask *dst,
|
||
const struct minimask *a, const struct minimask *b,
|
||
uint64_t storage[FLOW_U64S]);
|
||
|
||
void minimask_expand(const struct minimask *, struct flow_wildcards *);
|
||
|
||
static inline uint32_t minimask_get_u32(const struct minimask *,
|
||
unsigned int u32_ofs);
|
||
static inline ovs_be32 minimask_get_be32(const struct minimask *,
|
||
unsigned int be32_ofs);
|
||
static inline uint16_t minimask_get_vid_mask(const struct minimask *);
|
||
static inline ovs_be64 minimask_get_metadata_mask(const struct minimask *);
|
||
|
||
bool minimask_equal(const struct minimask *a, const struct minimask *b);
|
||
bool minimask_has_extra(const struct minimask *, const struct minimask *);
|
||
|
||
|
||
/* Returns true if 'mask' matches every packet, false if 'mask' fixes any bits
|
||
* or fields. */
|
||
static inline bool
|
||
minimask_is_catchall(const struct minimask *mask)
|
||
{
|
||
/* For every 1-bit in mask's map, the corresponding value is non-zero,
|
||
* so the only way the mask can not fix any bits or fields is for the
|
||
* map the be zero. */
|
||
return flowmap_is_empty(mask->masks.map);
|
||
}
|
||
|
||
/* Returns the uint64_t that would be at byte offset '8 * u64_ofs' if 'flow'
|
||
* were expanded into a "struct flow". */
|
||
static inline uint64_t miniflow_get(const struct miniflow *flow,
|
||
unsigned int u64_ofs)
|
||
{
|
||
return MINIFLOW_IN_MAP(flow, u64_ofs) ? *miniflow_get__(flow, u64_ofs) : 0;
|
||
}
|
||
|
||
static inline uint32_t miniflow_get_u32(const struct miniflow *flow,
|
||
unsigned int u32_ofs)
|
||
{
|
||
uint64_t value = miniflow_get(flow, u32_ofs / 2);
|
||
|
||
#if WORDS_BIGENDIAN
|
||
return (u32_ofs & 1) ? value : value >> 32;
|
||
#else
|
||
return (u32_ofs & 1) ? value >> 32 : value;
|
||
#endif
|
||
}
|
||
|
||
static inline ovs_be32 miniflow_get_be32(const struct miniflow *flow,
|
||
unsigned int be32_ofs)
|
||
{
|
||
return (OVS_FORCE ovs_be32)miniflow_get_u32(flow, be32_ofs);
|
||
}
|
||
|
||
/* Returns the VID within the vlan_tci member of the "struct flow" represented
|
||
* by 'flow'. */
|
||
static inline uint16_t
|
||
miniflow_get_vid(const struct miniflow *flow)
|
||
{
|
||
ovs_be16 tci = MINIFLOW_GET_BE16(flow, vlan_tci);
|
||
return vlan_tci_to_vid(tci);
|
||
}
|
||
|
||
/* Returns the uint32_t that would be at byte offset '4 * u32_ofs' if 'mask'
|
||
* were expanded into a "struct flow_wildcards". */
|
||
static inline uint32_t
|
||
minimask_get_u32(const struct minimask *mask, unsigned int u32_ofs)
|
||
{
|
||
return miniflow_get_u32(&mask->masks, u32_ofs);
|
||
}
|
||
|
||
static inline ovs_be32
|
||
minimask_get_be32(const struct minimask *mask, unsigned int be32_ofs)
|
||
{
|
||
return (OVS_FORCE ovs_be32)minimask_get_u32(mask, be32_ofs);
|
||
}
|
||
|
||
/* Returns the VID mask within the vlan_tci member of the "struct
|
||
* flow_wildcards" represented by 'mask'. */
|
||
static inline uint16_t
|
||
minimask_get_vid_mask(const struct minimask *mask)
|
||
{
|
||
return miniflow_get_vid(&mask->masks);
|
||
}
|
||
|
||
/* Returns the value of the "tcp_flags" field in 'flow'. */
|
||
static inline uint16_t
|
||
miniflow_get_tcp_flags(const struct miniflow *flow)
|
||
{
|
||
return ntohs(MINIFLOW_GET_BE16(flow, tcp_flags));
|
||
}
|
||
|
||
/* Returns the value of the OpenFlow 1.1+ "metadata" field in 'flow'. */
|
||
static inline ovs_be64
|
||
miniflow_get_metadata(const struct miniflow *flow)
|
||
{
|
||
return MINIFLOW_GET_BE64(flow, metadata);
|
||
}
|
||
|
||
/* Returns the mask for the OpenFlow 1.1+ "metadata" field in 'mask'.
|
||
*
|
||
* The return value is all-1-bits if 'mask' matches on the whole value of the
|
||
* metadata field, all-0-bits if 'mask' entirely wildcards the metadata field,
|
||
* or some other value if the metadata field is partially matched, partially
|
||
* wildcarded. */
|
||
static inline ovs_be64
|
||
minimask_get_metadata_mask(const struct minimask *mask)
|
||
{
|
||
return MINIFLOW_GET_BE64(&mask->masks, metadata);
|
||
}
|
||
|
||
/* Perform a bitwise OR of miniflow 'src' flow data specified in 'subset' with
|
||
* the equivalent fields in 'dst', storing the result in 'dst'. 'subset' must
|
||
* be a subset of 'src's map. */
|
||
static inline void
|
||
flow_union_with_miniflow_subset(struct flow *dst, const struct miniflow *src,
|
||
struct flowmap subset)
|
||
{
|
||
uint64_t *dst_u64 = (uint64_t *) dst;
|
||
const uint64_t *p = miniflow_get_values(src);
|
||
map_t map;
|
||
|
||
FLOWMAP_FOR_EACH_MAP (map, subset) {
|
||
size_t idx;
|
||
|
||
MAP_FOR_EACH_INDEX(idx, map) {
|
||
dst_u64[idx] |= *p++;
|
||
}
|
||
dst_u64 += MAP_T_BITS;
|
||
}
|
||
}
|
||
|
||
/* Perform a bitwise OR of miniflow 'src' flow data with the equivalent
|
||
* fields in 'dst', storing the result in 'dst'. */
|
||
static inline void
|
||
flow_union_with_miniflow(struct flow *dst, const struct miniflow *src)
|
||
{
|
||
flow_union_with_miniflow_subset(dst, src, src->map);
|
||
}
|
||
|
||
static inline void
|
||
pkt_metadata_from_flow(struct pkt_metadata *md, const struct flow *flow)
|
||
{
|
||
md->recirc_id = flow->recirc_id;
|
||
md->dp_hash = flow->dp_hash;
|
||
flow_tnl_copy__(&md->tunnel, &flow->tunnel);
|
||
md->skb_priority = flow->skb_priority;
|
||
md->pkt_mark = flow->pkt_mark;
|
||
md->in_port = flow->in_port;
|
||
md->ct_state = flow->ct_state;
|
||
md->ct_zone = flow->ct_zone;
|
||
md->ct_mark = flow->ct_mark;
|
||
md->ct_label = flow->ct_label;
|
||
}
|
||
|
||
static inline bool is_ip_any(const struct flow *flow)
|
||
{
|
||
return dl_type_is_ip_any(flow->dl_type);
|
||
}
|
||
|
||
static inline bool is_icmpv4(const struct flow *flow)
|
||
{
|
||
return (flow->dl_type == htons(ETH_TYPE_IP)
|
||
&& flow->nw_proto == IPPROTO_ICMP);
|
||
}
|
||
|
||
static inline bool is_icmpv6(const struct flow *flow)
|
||
{
|
||
return (flow->dl_type == htons(ETH_TYPE_IPV6)
|
||
&& flow->nw_proto == IPPROTO_ICMPV6);
|
||
}
|
||
|
||
static inline bool is_igmp(const struct flow *flow)
|
||
{
|
||
return (flow->dl_type == htons(ETH_TYPE_IP)
|
||
&& flow->nw_proto == IPPROTO_IGMP);
|
||
}
|
||
|
||
static inline bool is_mld(const struct flow *flow)
|
||
{
|
||
return is_icmpv6(flow)
|
||
&& (flow->tp_src == htons(MLD_QUERY)
|
||
|| flow->tp_src == htons(MLD_REPORT)
|
||
|| flow->tp_src == htons(MLD_DONE)
|
||
|| flow->tp_src == htons(MLD2_REPORT));
|
||
}
|
||
|
||
static inline bool is_mld_query(const struct flow *flow)
|
||
{
|
||
return is_icmpv6(flow) && flow->tp_src == htons(MLD_QUERY);
|
||
}
|
||
|
||
static inline bool is_mld_report(const struct flow *flow)
|
||
{
|
||
return is_mld(flow) && !is_mld_query(flow);
|
||
}
|
||
|
||
static inline bool is_stp(const struct flow *flow)
|
||
{
|
||
return (eth_addr_equals(flow->dl_dst, eth_addr_stp)
|
||
&& flow->dl_type == htons(FLOW_DL_TYPE_NONE));
|
||
}
|
||
|
||
#endif /* flow.h */
|