[p4src] add mini p4 program that modifies ipv6 data
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4 changed files with 411 additions and 133 deletions
133
netpfga/minip4/src/minip4_solution-mirror.p4
Normal file
133
netpfga/minip4/src/minip4_solution-mirror.p4
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#include <core.p4>
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#include <sume_switch.p4>
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#include "headers.p4"
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/********************************************************************************
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* Header
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*/
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typedef bit<48> EthAddr_t;
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header Ethernet_h {
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EthAddr_t dstAddr;
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EthAddr_t srcAddr;
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bit<16> etherType;
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}
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struct Parsed_packet {
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Ethernet_h ethernet;
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}
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// user defined metadata: can be used to share information between
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// TopParser, TopPipe, and TopDeparser
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struct user_metadata_t {
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bit<8> unused;
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}
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// digest_data, MUST be 256 bits -- what is this used for?
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struct digest_data_t {
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bit<256> unused;
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}
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/********************************************************************************
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* Parser
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*/
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@Xilinx_MaxPacketRegion(1024)
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parser TopParser(packet_in b,
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out Parsed_packet p,
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out user_metadata_t user_metadata,
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out digest_data_t digest_data,
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inout sume_metadata_t sume_metadata) {
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state start {
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b.extract(p.ethernet);
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user_metadata.unused = 0;
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digest_data.unused = 0;
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transition accept;
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}
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}
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/********************************************************************************
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* Main
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*/
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control TopPipe(inout Parsed_packet p,
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inout user_metadata_t user_metadata,
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inout digest_data_t digest_data,
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inout sume_metadata_t sume_metadata) {
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action swap_eth_addresses() {
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EthAddr_t temp = p.ethernet.dstAddr;
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p.ethernet.dstAddr = p.ethernet.srcAddr;
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p.ethernet.srcAddr = temp;
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/* set egress port */
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sume_metadata.dst_port = sume_metadata.src_port;
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}
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action send_to_port1() {
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sume_metadata.dst_port = 1;
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}
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action send_to_all_ports() {
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/* Taken from commands.txt of the "int" project:
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table_cam_add_entry forward set_output_port 0xffffffffffff => 0b01010101
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python convert:
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>>> 0b01010101
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85
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*/
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sume_metadata.dst_port = 85;
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}
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action do_nothing() {
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EthAddr_t temp = p.ethernet.dstAddr;
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}
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table lookup_table {
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key = {
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p.ethernet.dstAddr: exact;
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}
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actions = {
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swap_eth_addresses;
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do_nothing;
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send_to_port1;
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send_to_all_ports;
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}
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size = 64;
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// default_action = swap_eth_addresses; // test_mirror(): in gen_testdata.py
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// default_action = send_to_port1; // test_port1()
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default_action = send_to_all_ports; // test_allports():
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}
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apply {
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lookup_table.apply();
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}
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}
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/********************************************************************************
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* Deparser
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*/
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@Xilinx_MaxPacketRegion(1024)
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control TopDeparser(packet_out b,
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in Parsed_packet p,
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in user_metadata_t user_metadata,
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inout digest_data_t digest_data,
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inout sume_metadata_t sume_metadata) {
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apply {
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b.emit(p.ethernet);
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}
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}
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/********************************************************************************
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* Switch
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*/
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SimpleSumeSwitch(
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TopParser(),
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TopPipe(),
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TopDeparser()
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) main;
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126
netpfga/minip4/src/minip4_solution-v6zero.p4
Normal file
126
netpfga/minip4/src/minip4_solution-v6zero.p4
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#include <core.p4>
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#include <sume_switch.p4>
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#include "headers.p4"
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/********************************************************************************
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* Header
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*/
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typedef bit<48> EthAddr_t;
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header Ethernet_h {
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EthAddr_t dstAddr;
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EthAddr_t srcAddr;
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bit<16> etherType;
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}
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struct Parsed_packet {
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Ethernet_h ethernet;
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}
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// user defined metadata: can be used to share information between
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// TopParser, TopPipe, and TopDeparser
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struct user_metadata_t {
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bit<8> unused;
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}
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// digest_data, MUST be 256 bits -- what is this used for?
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struct digest_data_t {
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bit<256> unused;
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}
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/********************************************************************************
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* Parser
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*/
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@Xilinx_MaxPacketRegion(1024)
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parser TopParser(packet_in packet,
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out Parsed_packet hdr,
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out user_metadata_t meta
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out digest_data_t digest_data,
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inout sume_metadata_t sume_metadata) {
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state start {
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meta.unused = 0;
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digest_data.unused = 0;
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packet.extract(hdr.ethernet);
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transition select(hdr.ethernet.ethertype) {
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TYPE_IPV6: ipv6;
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default: accept;
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}
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}
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state ipv6 {
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packet.extract(hdr.ipv6);
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transition accept;
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}
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}
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/********************************************************************************
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* Main
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*/
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control TopPipe(inout Parsed_packet hdr,
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inout user_metadata_t meta,
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inout digest_data_t digest_data,
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inout sume_metadata_t sume_metadata) {
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action do_nothing() {
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EthAddr_t temp = p.ethernet.dstAddr;
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}
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action send_to_port1() {
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sume_metadata.dst_port = 1;
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}
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action modify_ipv6 () {
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hdr.ipv6.src_addr += 1;
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hdr.ipv6.dst_addr += 2;
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send_to_port1();
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}
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table lookup_table {
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key = {
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p.ethernet.dstAddr: exact;
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}
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actions = {
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do_nothing;
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send_to_port1;
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}
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size = 64;
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// default_action = swap_eth_addresses; // test_mirror(): in gen_testdata.py
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// default_action = send_to_port1; // test_port1()
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// default_action = send_to_all_ports; // test_allports():
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default_action = modify_ipv6;
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}
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apply {
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lookup_table.apply();
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}
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}
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/********************************************************************************
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* Deparser
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*/
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@Xilinx_MaxPacketRegion(1024)
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control TopDeparser(packet_out b,
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in Parsed_packet p,
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in user_metadata_t user_metadata,
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inout digest_data_t digest_data,
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inout sume_metadata_t sume_metadata) {
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apply {
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b.emit(p.ethernet);
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}
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}
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/********************************************************************************
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* Switch
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*/
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SimpleSumeSwitch(
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TopParser(),
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TopPipe(),
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TopDeparser()
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) main;
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@ -1,133 +0,0 @@
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#include <core.p4>
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#include <sume_switch.p4>
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#include "headers.p4"
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/********************************************************************************
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* Header
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*/
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typedef bit<48> EthAddr_t;
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header Ethernet_h {
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EthAddr_t dstAddr;
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EthAddr_t srcAddr;
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bit<16> etherType;
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}
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struct Parsed_packet {
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Ethernet_h ethernet;
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}
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// user defined metadata: can be used to share information between
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// TopParser, TopPipe, and TopDeparser
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struct user_metadata_t {
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bit<8> unused;
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}
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// digest_data, MUST be 256 bits -- what is this used for?
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struct digest_data_t {
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bit<256> unused;
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}
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/********************************************************************************
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* Parser
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*/
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@Xilinx_MaxPacketRegion(1024)
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parser TopParser(packet_in b,
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out Parsed_packet p,
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out user_metadata_t user_metadata,
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out digest_data_t digest_data,
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inout sume_metadata_t sume_metadata) {
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state start {
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b.extract(p.ethernet);
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user_metadata.unused = 0;
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digest_data.unused = 0;
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transition accept;
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}
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}
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/********************************************************************************
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* Main
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*/
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control TopPipe(inout Parsed_packet p,
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inout user_metadata_t user_metadata,
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inout digest_data_t digest_data,
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inout sume_metadata_t sume_metadata) {
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action swap_eth_addresses() {
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EthAddr_t temp = p.ethernet.dstAddr;
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p.ethernet.dstAddr = p.ethernet.srcAddr;
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p.ethernet.srcAddr = temp;
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/* set egress port */
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sume_metadata.dst_port = sume_metadata.src_port;
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}
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action send_to_port1() {
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sume_metadata.dst_port = 1;
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}
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action send_to_all_ports() {
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/* Taken from commands.txt of the "int" project:
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table_cam_add_entry forward set_output_port 0xffffffffffff => 0b01010101
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python convert:
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>>> 0b01010101
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85
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*/
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sume_metadata.dst_port = 85;
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}
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action do_nothing() {
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EthAddr_t temp = p.ethernet.dstAddr;
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}
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table lookup_table {
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key = {
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p.ethernet.dstAddr: exact;
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}
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actions = {
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swap_eth_addresses;
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do_nothing;
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send_to_port1;
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send_to_all_ports;
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}
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size = 64;
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// default_action = swap_eth_addresses; // test_mirror(): in gen_testdata.py
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// default_action = send_to_port1; // test_port1()
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default_action = send_to_all_ports; // test_allports():
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}
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apply {
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lookup_table.apply();
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}
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}
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/********************************************************************************
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* Deparser
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*/
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@Xilinx_MaxPacketRegion(1024)
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control TopDeparser(packet_out b,
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in Parsed_packet p,
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in user_metadata_t user_metadata,
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inout digest_data_t digest_data,
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inout sume_metadata_t sume_metadata) {
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apply {
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b.emit(p.ethernet);
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}
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}
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/********************************************************************************
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* Switch
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*/
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SimpleSumeSwitch(
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TopParser(),
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TopPipe(),
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TopDeparser()
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) main;
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1
netpfga/minip4/src/minip4_solution.p4
Symbolic link
1
netpfga/minip4/src/minip4_solution.p4
Symbolic link
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minip4_solution-v6zero.p4
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151
netpfga/minip4/testdata/gen_testdata-port1.py
vendored
Executable file
151
netpfga/minip4/testdata/gen_testdata-port1.py
vendored
Executable file
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#!/usr/bin/env python
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# from switch_calc_headers import *
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from scapy.all import *
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from nf_sim_tools import *
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from collections import OrderedDict
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import sss_sdnet_tuples
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########################
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# pkt generation tools #
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########################
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pktsApplied = []
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pktsExpected = []
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# Pkt lists for SUME simulations
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nf_applied = OrderedDict()
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nf_applied[0] = []
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nf_applied[1] = []
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nf_applied[2] = []
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nf_applied[3] = []
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nf_expected = OrderedDict()
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nf_expected[0] = []
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nf_expected[1] = []
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nf_expected[2] = []
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nf_expected[3] = []
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nf_port_map = {
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"nf0":0b00000001,
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"nf1":0b00000100,
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"nf2":0b00010000,
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"nf3":0b01000000,
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"dma0":0b00000010
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}
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nf_id_map = {
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"nf0":0,
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"nf1":1,
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"nf2":2,
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"nf3":3
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}
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sss_sdnet_tuples.clear_tuple_files()
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def applyPkt(pkt, ingress, time):
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pktsApplied.append(pkt)
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sss_sdnet_tuples.sume_tuple_in['src_port'] = nf_port_map[ingress]
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sss_sdnet_tuples.sume_tuple_expect['src_port'] = nf_port_map[ingress]
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pkt.time = time
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nf_applied[nf_id_map[ingress]].append(pkt)
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def expPkt(pkt, egress):
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pktsExpected.append(pkt)
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sss_sdnet_tuples.sume_tuple_expect['dst_port'] = nf_port_map[egress]
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sss_sdnet_tuples.write_tuples()
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if egress in ["nf0","nf1","nf2","nf3"]:
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nf_expected[nf_id_map[egress]].append(pkt)
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elif egress == 'bcast':
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nf_expected[0].append(pkt)
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nf_expected[1].append(pkt)
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nf_expected[2].append(pkt)
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nf_expected[3].append(pkt)
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def print_summary(pkts):
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for pkt in pkts:
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print "summary = ", pkt.summary()
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def write_pcap_files():
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wrpcap("src.pcap", pktsApplied)
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wrpcap("dst.pcap", pktsExpected)
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for i in nf_applied.keys():
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if (len(nf_applied[i]) > 0):
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wrpcap('nf{0}_applied.pcap'.format(i), nf_applied[i])
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for i in nf_expected.keys():
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if (len(nf_expected[i]) > 0):
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wrpcap('nf{0}_expected.pcap'.format(i), nf_expected[i])
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for i in nf_applied.keys():
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print "nf{0}_applied times: ".format(i), [p.time for p in nf_applied[i]]
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#####################
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# generate testdata #
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#####################
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MAC1 = "08:11:11:11:11:08"
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MAC2 = "08:22:22:22:22:08"
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pktCnt = 0
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INDEX_WIDTH = 4
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REG_DEPTH = 2**INDEX_WIDTH
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# Not sure what this is used for
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NUM_KEYS = 4
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lookup_table = {
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0: 0x00000001,
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1: 0x00000010,
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2: 0x00000100,
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3: 0x00001000
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}
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def test_port1():
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pktCnt = 0
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# First ethernet
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pktCnt += 1
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pkt = Ether(dst=MAC2, src=MAC1)
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pkt = pad_pkt(pkt, 64)
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applyPkt(pkt, 'nf0', pktCnt)
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expPkt(pkt, 'nf0')
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# Test that packets are being mirrored
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def test_mirror():
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pktCnt = 0
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# First ethernet
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pktCnt += 1
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pkt = Ether(dst=MAC2, src=MAC1)
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pkt = pad_pkt(pkt, 64)
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applyPkt(pkt, 'nf0', pktCnt)
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pktCnt += 1
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pkt = Ether(dst=MAC1, src=MAC2)
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pkt = pad_pkt(pkt, 64)
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expPkt(pkt, 'nf0')
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# # Second IP
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# pktCnt += 1
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# pkt = Ether(dst=MAC2, src=MAC1) / IPv6(src="fe80::1", dst="fe80::2")
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# pkt = pad_pkt(pkt, 64)
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# applyPkt(pkt, 'nf0', pktCnt)
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# pktCnt += 1
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# pkt = Ether(dst=MAC1, src=MAC2) / IPv6(src="fe80::2", dst="fe80::1")
|
||||
# pkt = pad_pkt(pkt, 64)
|
||||
# expPkt(pkt, 'nf0')
|
||||
|
||||
# # Third tcp
|
||||
# pktCnt += 1
|
||||
# pkt = Ether(dst=MAC2, src=MAC1) / IPv6(src="fe80::1", dst="fe80::2") / TCP(sport=42, dport=23)
|
||||
# pkt = pad_pkt(pkt, 64)
|
||||
# applyPkt(pkt, 'nf0', pktCnt)
|
||||
# pktCnt += 1
|
||||
# pkt = Ether(dst=MAC1, src=MAC2) / IPv6(src="fe80::2", dst="fe80::1") / TCP(sport=23, dport=42)
|
||||
# pkt = pad_pkt(pkt, 64)
|
||||
# expPkt(pkt, 'nf0')
|
||||
|
||||
#test_mirror()
|
||||
test_port1()
|
||||
|
||||
write_pcap_files()
|
Loading…
Reference in a new issue