pktgen.c 99 KB

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  1. // SPDX-License-Identifier: GPL-2.0-or-later
  2. /*
  3. * Authors:
  4. * Copyright 2001, 2002 by Robert Olsson <[email protected]>
  5. * Uppsala University and
  6. * Swedish University of Agricultural Sciences
  7. *
  8. * Alexey Kuznetsov <[email protected]>
  9. * Ben Greear <[email protected]>
  10. * Jens Låås <[email protected]>
  11. *
  12. * A tool for loading the network with preconfigurated packets.
  13. * The tool is implemented as a linux module. Parameters are output
  14. * device, delay (to hard_xmit), number of packets, and whether
  15. * to use multiple SKBs or just the same one.
  16. * pktgen uses the installed interface's output routine.
  17. *
  18. * Additional hacking by:
  19. *
  20. * [email protected]
  21. * Improved by ANK. 010120.
  22. * Improved by ANK even more. 010212.
  23. * MAC address typo fixed. 010417 --ro
  24. * Integrated. 020301 --DaveM
  25. * Added multiskb option 020301 --DaveM
  26. * Scaling of results. [email protected]
  27. * Significant re-work of the module:
  28. * * Convert to threaded model to more efficiently be able to transmit
  29. * and receive on multiple interfaces at once.
  30. * * Converted many counters to __u64 to allow longer runs.
  31. * * Allow configuration of ranges, like min/max IP address, MACs,
  32. * and UDP-ports, for both source and destination, and can
  33. * set to use a random distribution or sequentially walk the range.
  34. * * Can now change most values after starting.
  35. * * Place 12-byte packet in UDP payload with magic number,
  36. * sequence number, and timestamp.
  37. * * Add receiver code that detects dropped pkts, re-ordered pkts, and
  38. * latencies (with micro-second) precision.
  39. * * Add IOCTL interface to easily get counters & configuration.
  40. * --Ben Greear <[email protected]>
  41. *
  42. * Renamed multiskb to clone_skb and cleaned up sending core for two distinct
  43. * skb modes. A clone_skb=0 mode for Ben "ranges" work and a clone_skb != 0
  44. * as a "fastpath" with a configurable number of clones after alloc's.
  45. * clone_skb=0 means all packets are allocated this also means ranges time
  46. * stamps etc can be used. clone_skb=100 means 1 malloc is followed by 100
  47. * clones.
  48. *
  49. * Also moved to /proc/net/pktgen/
  50. * --ro
  51. *
  52. * Sept 10: Fixed threading/locking. Lots of bone-headed and more clever
  53. * mistakes. Also merged in DaveM's patch in the -pre6 patch.
  54. * --Ben Greear <[email protected]>
  55. *
  56. * Integrated to 2.5.x 021029 --Lucio Maciel ([email protected])
  57. *
  58. * 021124 Finished major redesign and rewrite for new functionality.
  59. * See Documentation/networking/pktgen.rst for how to use this.
  60. *
  61. * The new operation:
  62. * For each CPU one thread/process is created at start. This process checks
  63. * for running devices in the if_list and sends packets until count is 0 it
  64. * also the thread checks the thread->control which is used for inter-process
  65. * communication. controlling process "posts" operations to the threads this
  66. * way.
  67. * The if_list is RCU protected, and the if_lock remains to protect updating
  68. * of if_list, from "add_device" as it invoked from userspace (via proc write).
  69. *
  70. * By design there should only be *one* "controlling" process. In practice
  71. * multiple write accesses gives unpredictable result. Understood by "write"
  72. * to /proc gives result code thats should be read be the "writer".
  73. * For practical use this should be no problem.
  74. *
  75. * Note when adding devices to a specific CPU there good idea to also assign
  76. * /proc/irq/XX/smp_affinity so TX-interrupts gets bound to the same CPU.
  77. * --ro
  78. *
  79. * Fix refcount off by one if first packet fails, potential null deref,
  80. * memleak 030710- KJP
  81. *
  82. * First "ranges" functionality for ipv6 030726 --ro
  83. *
  84. * Included flow support. 030802 ANK.
  85. *
  86. * Fixed unaligned access on IA-64 Grant Grundler <[email protected]>
  87. *
  88. * Remove if fix from added Harald Welte <[email protected]> 040419
  89. * ia64 compilation fix from Aron Griffis <[email protected]> 040604
  90. *
  91. * New xmit() return, do_div and misc clean up by Stephen Hemminger
  92. * <[email protected]> 040923
  93. *
  94. * Randy Dunlap fixed u64 printk compiler warning
  95. *
  96. * Remove FCS from BW calculation. Lennert Buytenhek <[email protected]>
  97. * New time handling. Lennert Buytenhek <[email protected]> 041213
  98. *
  99. * Corrections from Nikolai Malykh ([email protected])
  100. * Removed unused flags F_SET_SRCMAC & F_SET_SRCIP 041230
  101. *
  102. * interruptible_sleep_on_timeout() replaced Nishanth Aravamudan <[email protected]>
  103. * 050103
  104. *
  105. * MPLS support by Steven Whitehouse <[email protected]>
  106. *
  107. * 802.1Q/Q-in-Q support by Francesco Fondelli (FF) <[email protected]>
  108. *
  109. * Fixed src_mac command to set source mac of packet to value specified in
  110. * command by Adit Ranadive <[email protected]>
  111. */
  112. #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
  113. #include <linux/sys.h>
  114. #include <linux/types.h>
  115. #include <linux/module.h>
  116. #include <linux/moduleparam.h>
  117. #include <linux/kernel.h>
  118. #include <linux/mutex.h>
  119. #include <linux/sched.h>
  120. #include <linux/slab.h>
  121. #include <linux/vmalloc.h>
  122. #include <linux/unistd.h>
  123. #include <linux/string.h>
  124. #include <linux/ptrace.h>
  125. #include <linux/errno.h>
  126. #include <linux/ioport.h>
  127. #include <linux/interrupt.h>
  128. #include <linux/capability.h>
  129. #include <linux/hrtimer.h>
  130. #include <linux/freezer.h>
  131. #include <linux/delay.h>
  132. #include <linux/timer.h>
  133. #include <linux/list.h>
  134. #include <linux/init.h>
  135. #include <linux/skbuff.h>
  136. #include <linux/netdevice.h>
  137. #include <linux/inet.h>
  138. #include <linux/inetdevice.h>
  139. #include <linux/rtnetlink.h>
  140. #include <linux/if_arp.h>
  141. #include <linux/if_vlan.h>
  142. #include <linux/in.h>
  143. #include <linux/ip.h>
  144. #include <linux/ipv6.h>
  145. #include <linux/udp.h>
  146. #include <linux/proc_fs.h>
  147. #include <linux/seq_file.h>
  148. #include <linux/wait.h>
  149. #include <linux/etherdevice.h>
  150. #include <linux/kthread.h>
  151. #include <linux/prefetch.h>
  152. #include <linux/mmzone.h>
  153. #include <net/net_namespace.h>
  154. #include <net/checksum.h>
  155. #include <net/ipv6.h>
  156. #include <net/udp.h>
  157. #include <net/ip6_checksum.h>
  158. #include <net/addrconf.h>
  159. #ifdef CONFIG_XFRM
  160. #include <net/xfrm.h>
  161. #endif
  162. #include <net/netns/generic.h>
  163. #include <asm/byteorder.h>
  164. #include <linux/rcupdate.h>
  165. #include <linux/bitops.h>
  166. #include <linux/io.h>
  167. #include <linux/timex.h>
  168. #include <linux/uaccess.h>
  169. #include <asm/dma.h>
  170. #include <asm/div64.h> /* do_div */
  171. #define VERSION "2.75"
  172. #define IP_NAME_SZ 32
  173. #define MAX_MPLS_LABELS 16 /* This is the max label stack depth */
  174. #define MPLS_STACK_BOTTOM htonl(0x00000100)
  175. /* Max number of internet mix entries that can be specified in imix_weights. */
  176. #define MAX_IMIX_ENTRIES 20
  177. #define IMIX_PRECISION 100 /* Precision of IMIX distribution */
  178. #define func_enter() pr_debug("entering %s\n", __func__);
  179. #define PKT_FLAGS \
  180. pf(IPV6) /* Interface in IPV6 Mode */ \
  181. pf(IPSRC_RND) /* IP-Src Random */ \
  182. pf(IPDST_RND) /* IP-Dst Random */ \
  183. pf(TXSIZE_RND) /* Transmit size is random */ \
  184. pf(UDPSRC_RND) /* UDP-Src Random */ \
  185. pf(UDPDST_RND) /* UDP-Dst Random */ \
  186. pf(UDPCSUM) /* Include UDP checksum */ \
  187. pf(NO_TIMESTAMP) /* Don't timestamp packets (default TS) */ \
  188. pf(MPLS_RND) /* Random MPLS labels */ \
  189. pf(QUEUE_MAP_RND) /* queue map Random */ \
  190. pf(QUEUE_MAP_CPU) /* queue map mirrors smp_processor_id() */ \
  191. pf(FLOW_SEQ) /* Sequential flows */ \
  192. pf(IPSEC) /* ipsec on for flows */ \
  193. pf(MACSRC_RND) /* MAC-Src Random */ \
  194. pf(MACDST_RND) /* MAC-Dst Random */ \
  195. pf(VID_RND) /* Random VLAN ID */ \
  196. pf(SVID_RND) /* Random SVLAN ID */ \
  197. pf(NODE) /* Node memory alloc*/ \
  198. #define pf(flag) flag##_SHIFT,
  199. enum pkt_flags {
  200. PKT_FLAGS
  201. };
  202. #undef pf
  203. /* Device flag bits */
  204. #define pf(flag) static const __u32 F_##flag = (1<<flag##_SHIFT);
  205. PKT_FLAGS
  206. #undef pf
  207. #define pf(flag) __stringify(flag),
  208. static char *pkt_flag_names[] = {
  209. PKT_FLAGS
  210. };
  211. #undef pf
  212. #define NR_PKT_FLAGS ARRAY_SIZE(pkt_flag_names)
  213. /* Thread control flag bits */
  214. #define T_STOP (1<<0) /* Stop run */
  215. #define T_RUN (1<<1) /* Start run */
  216. #define T_REMDEVALL (1<<2) /* Remove all devs */
  217. #define T_REMDEV (1<<3) /* Remove one dev */
  218. /* Xmit modes */
  219. #define M_START_XMIT 0 /* Default normal TX */
  220. #define M_NETIF_RECEIVE 1 /* Inject packets into stack */
  221. #define M_QUEUE_XMIT 2 /* Inject packet into qdisc */
  222. /* If lock -- protects updating of if_list */
  223. #define if_lock(t) mutex_lock(&(t->if_lock));
  224. #define if_unlock(t) mutex_unlock(&(t->if_lock));
  225. /* Used to help with determining the pkts on receive */
  226. #define PKTGEN_MAGIC 0xbe9be955
  227. #define PG_PROC_DIR "pktgen"
  228. #define PGCTRL "pgctrl"
  229. #define MAX_CFLOWS 65536
  230. #define VLAN_TAG_SIZE(x) ((x)->vlan_id == 0xffff ? 0 : 4)
  231. #define SVLAN_TAG_SIZE(x) ((x)->svlan_id == 0xffff ? 0 : 4)
  232. struct imix_pkt {
  233. u64 size;
  234. u64 weight;
  235. u64 count_so_far;
  236. };
  237. struct flow_state {
  238. __be32 cur_daddr;
  239. int count;
  240. #ifdef CONFIG_XFRM
  241. struct xfrm_state *x;
  242. #endif
  243. __u32 flags;
  244. };
  245. /* flow flag bits */
  246. #define F_INIT (1<<0) /* flow has been initialized */
  247. struct pktgen_dev {
  248. /*
  249. * Try to keep frequent/infrequent used vars. separated.
  250. */
  251. struct proc_dir_entry *entry; /* proc file */
  252. struct pktgen_thread *pg_thread;/* the owner */
  253. struct list_head list; /* chaining in the thread's run-queue */
  254. struct rcu_head rcu; /* freed by RCU */
  255. int running; /* if false, the test will stop */
  256. /* If min != max, then we will either do a linear iteration, or
  257. * we will do a random selection from within the range.
  258. */
  259. __u32 flags;
  260. int xmit_mode;
  261. int min_pkt_size;
  262. int max_pkt_size;
  263. int pkt_overhead; /* overhead for MPLS, VLANs, IPSEC etc */
  264. int nfrags;
  265. int removal_mark; /* non-zero => the device is marked for
  266. * removal by worker thread */
  267. struct page *page;
  268. u64 delay; /* nano-seconds */
  269. __u64 count; /* Default No packets to send */
  270. __u64 sofar; /* How many pkts we've sent so far */
  271. __u64 tx_bytes; /* How many bytes we've transmitted */
  272. __u64 errors; /* Errors when trying to transmit, */
  273. /* runtime counters relating to clone_skb */
  274. __u32 clone_count;
  275. int last_ok; /* Was last skb sent?
  276. * Or a failed transmit of some sort?
  277. * This will keep sequence numbers in order
  278. */
  279. ktime_t next_tx;
  280. ktime_t started_at;
  281. ktime_t stopped_at;
  282. u64 idle_acc; /* nano-seconds */
  283. __u32 seq_num;
  284. int clone_skb; /*
  285. * Use multiple SKBs during packet gen.
  286. * If this number is greater than 1, then
  287. * that many copies of the same packet will be
  288. * sent before a new packet is allocated.
  289. * If you want to send 1024 identical packets
  290. * before creating a new packet,
  291. * set clone_skb to 1024.
  292. */
  293. char dst_min[IP_NAME_SZ]; /* IP, ie 1.2.3.4 */
  294. char dst_max[IP_NAME_SZ]; /* IP, ie 1.2.3.4 */
  295. char src_min[IP_NAME_SZ]; /* IP, ie 1.2.3.4 */
  296. char src_max[IP_NAME_SZ]; /* IP, ie 1.2.3.4 */
  297. struct in6_addr in6_saddr;
  298. struct in6_addr in6_daddr;
  299. struct in6_addr cur_in6_daddr;
  300. struct in6_addr cur_in6_saddr;
  301. /* For ranges */
  302. struct in6_addr min_in6_daddr;
  303. struct in6_addr max_in6_daddr;
  304. struct in6_addr min_in6_saddr;
  305. struct in6_addr max_in6_saddr;
  306. /* If we're doing ranges, random or incremental, then this
  307. * defines the min/max for those ranges.
  308. */
  309. __be32 saddr_min; /* inclusive, source IP address */
  310. __be32 saddr_max; /* exclusive, source IP address */
  311. __be32 daddr_min; /* inclusive, dest IP address */
  312. __be32 daddr_max; /* exclusive, dest IP address */
  313. __u16 udp_src_min; /* inclusive, source UDP port */
  314. __u16 udp_src_max; /* exclusive, source UDP port */
  315. __u16 udp_dst_min; /* inclusive, dest UDP port */
  316. __u16 udp_dst_max; /* exclusive, dest UDP port */
  317. /* DSCP + ECN */
  318. __u8 tos; /* six MSB of (former) IPv4 TOS
  319. are for dscp codepoint */
  320. __u8 traffic_class; /* ditto for the (former) Traffic Class in IPv6
  321. (see RFC 3260, sec. 4) */
  322. /* IMIX */
  323. unsigned int n_imix_entries;
  324. struct imix_pkt imix_entries[MAX_IMIX_ENTRIES];
  325. /* Maps 0-IMIX_PRECISION range to imix_entry based on probability*/
  326. __u8 imix_distribution[IMIX_PRECISION];
  327. /* MPLS */
  328. unsigned int nr_labels; /* Depth of stack, 0 = no MPLS */
  329. __be32 labels[MAX_MPLS_LABELS];
  330. /* VLAN/SVLAN (802.1Q/Q-in-Q) */
  331. __u8 vlan_p;
  332. __u8 vlan_cfi;
  333. __u16 vlan_id; /* 0xffff means no vlan tag */
  334. __u8 svlan_p;
  335. __u8 svlan_cfi;
  336. __u16 svlan_id; /* 0xffff means no svlan tag */
  337. __u32 src_mac_count; /* How many MACs to iterate through */
  338. __u32 dst_mac_count; /* How many MACs to iterate through */
  339. unsigned char dst_mac[ETH_ALEN];
  340. unsigned char src_mac[ETH_ALEN];
  341. __u32 cur_dst_mac_offset;
  342. __u32 cur_src_mac_offset;
  343. __be32 cur_saddr;
  344. __be32 cur_daddr;
  345. __u16 ip_id;
  346. __u16 cur_udp_dst;
  347. __u16 cur_udp_src;
  348. __u16 cur_queue_map;
  349. __u32 cur_pkt_size;
  350. __u32 last_pkt_size;
  351. __u8 hh[14];
  352. /* = {
  353. 0x00, 0x80, 0xC8, 0x79, 0xB3, 0xCB,
  354. We fill in SRC address later
  355. 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
  356. 0x08, 0x00
  357. };
  358. */
  359. __u16 pad; /* pad out the hh struct to an even 16 bytes */
  360. struct sk_buff *skb; /* skb we are to transmit next, used for when we
  361. * are transmitting the same one multiple times
  362. */
  363. struct net_device *odev; /* The out-going device.
  364. * Note that the device should have it's
  365. * pg_info pointer pointing back to this
  366. * device.
  367. * Set when the user specifies the out-going
  368. * device name (not when the inject is
  369. * started as it used to do.)
  370. */
  371. netdevice_tracker dev_tracker;
  372. char odevname[32];
  373. struct flow_state *flows;
  374. unsigned int cflows; /* Concurrent flows (config) */
  375. unsigned int lflow; /* Flow length (config) */
  376. unsigned int nflows; /* accumulated flows (stats) */
  377. unsigned int curfl; /* current sequenced flow (state)*/
  378. u16 queue_map_min;
  379. u16 queue_map_max;
  380. __u32 skb_priority; /* skb priority field */
  381. unsigned int burst; /* number of duplicated packets to burst */
  382. int node; /* Memory node */
  383. #ifdef CONFIG_XFRM
  384. __u8 ipsmode; /* IPSEC mode (config) */
  385. __u8 ipsproto; /* IPSEC type (config) */
  386. __u32 spi;
  387. struct xfrm_dst xdst;
  388. struct dst_ops dstops;
  389. #endif
  390. char result[512];
  391. };
  392. struct pktgen_hdr {
  393. __be32 pgh_magic;
  394. __be32 seq_num;
  395. __be32 tv_sec;
  396. __be32 tv_usec;
  397. };
  398. static unsigned int pg_net_id __read_mostly;
  399. struct pktgen_net {
  400. struct net *net;
  401. struct proc_dir_entry *proc_dir;
  402. struct list_head pktgen_threads;
  403. bool pktgen_exiting;
  404. };
  405. struct pktgen_thread {
  406. struct mutex if_lock; /* for list of devices */
  407. struct list_head if_list; /* All device here */
  408. struct list_head th_list;
  409. struct task_struct *tsk;
  410. char result[512];
  411. /* Field for thread to receive "posted" events terminate,
  412. stop ifs etc. */
  413. u32 control;
  414. int cpu;
  415. wait_queue_head_t queue;
  416. struct completion start_done;
  417. struct pktgen_net *net;
  418. };
  419. #define REMOVE 1
  420. #define FIND 0
  421. static const char version[] =
  422. "Packet Generator for packet performance testing. "
  423. "Version: " VERSION "\n";
  424. static int pktgen_remove_device(struct pktgen_thread *t, struct pktgen_dev *i);
  425. static int pktgen_add_device(struct pktgen_thread *t, const char *ifname);
  426. static struct pktgen_dev *pktgen_find_dev(struct pktgen_thread *t,
  427. const char *ifname, bool exact);
  428. static int pktgen_device_event(struct notifier_block *, unsigned long, void *);
  429. static void pktgen_run_all_threads(struct pktgen_net *pn);
  430. static void pktgen_reset_all_threads(struct pktgen_net *pn);
  431. static void pktgen_stop_all_threads(struct pktgen_net *pn);
  432. static void pktgen_stop(struct pktgen_thread *t);
  433. static void pktgen_clear_counters(struct pktgen_dev *pkt_dev);
  434. static void fill_imix_distribution(struct pktgen_dev *pkt_dev);
  435. /* Module parameters, defaults. */
  436. static int pg_count_d __read_mostly = 1000;
  437. static int pg_delay_d __read_mostly;
  438. static int pg_clone_skb_d __read_mostly;
  439. static int debug __read_mostly;
  440. static DEFINE_MUTEX(pktgen_thread_lock);
  441. static struct notifier_block pktgen_notifier_block = {
  442. .notifier_call = pktgen_device_event,
  443. };
  444. /*
  445. * /proc handling functions
  446. *
  447. */
  448. static int pgctrl_show(struct seq_file *seq, void *v)
  449. {
  450. seq_puts(seq, version);
  451. return 0;
  452. }
  453. static ssize_t pgctrl_write(struct file *file, const char __user *buf,
  454. size_t count, loff_t *ppos)
  455. {
  456. char data[128];
  457. struct pktgen_net *pn = net_generic(current->nsproxy->net_ns, pg_net_id);
  458. if (!capable(CAP_NET_ADMIN))
  459. return -EPERM;
  460. if (count == 0)
  461. return -EINVAL;
  462. if (count > sizeof(data))
  463. count = sizeof(data);
  464. if (copy_from_user(data, buf, count))
  465. return -EFAULT;
  466. data[count - 1] = 0; /* Strip trailing '\n' and terminate string */
  467. if (!strcmp(data, "stop"))
  468. pktgen_stop_all_threads(pn);
  469. else if (!strcmp(data, "start"))
  470. pktgen_run_all_threads(pn);
  471. else if (!strcmp(data, "reset"))
  472. pktgen_reset_all_threads(pn);
  473. else
  474. return -EINVAL;
  475. return count;
  476. }
  477. static int pgctrl_open(struct inode *inode, struct file *file)
  478. {
  479. return single_open(file, pgctrl_show, pde_data(inode));
  480. }
  481. static const struct proc_ops pktgen_proc_ops = {
  482. .proc_open = pgctrl_open,
  483. .proc_read = seq_read,
  484. .proc_lseek = seq_lseek,
  485. .proc_write = pgctrl_write,
  486. .proc_release = single_release,
  487. };
  488. static int pktgen_if_show(struct seq_file *seq, void *v)
  489. {
  490. const struct pktgen_dev *pkt_dev = seq->private;
  491. ktime_t stopped;
  492. unsigned int i;
  493. u64 idle;
  494. seq_printf(seq,
  495. "Params: count %llu min_pkt_size: %u max_pkt_size: %u\n",
  496. (unsigned long long)pkt_dev->count, pkt_dev->min_pkt_size,
  497. pkt_dev->max_pkt_size);
  498. if (pkt_dev->n_imix_entries > 0) {
  499. seq_puts(seq, " imix_weights: ");
  500. for (i = 0; i < pkt_dev->n_imix_entries; i++) {
  501. seq_printf(seq, "%llu,%llu ",
  502. pkt_dev->imix_entries[i].size,
  503. pkt_dev->imix_entries[i].weight);
  504. }
  505. seq_puts(seq, "\n");
  506. }
  507. seq_printf(seq,
  508. " frags: %d delay: %llu clone_skb: %d ifname: %s\n",
  509. pkt_dev->nfrags, (unsigned long long) pkt_dev->delay,
  510. pkt_dev->clone_skb, pkt_dev->odevname);
  511. seq_printf(seq, " flows: %u flowlen: %u\n", pkt_dev->cflows,
  512. pkt_dev->lflow);
  513. seq_printf(seq,
  514. " queue_map_min: %u queue_map_max: %u\n",
  515. pkt_dev->queue_map_min,
  516. pkt_dev->queue_map_max);
  517. if (pkt_dev->skb_priority)
  518. seq_printf(seq, " skb_priority: %u\n",
  519. pkt_dev->skb_priority);
  520. if (pkt_dev->flags & F_IPV6) {
  521. seq_printf(seq,
  522. " saddr: %pI6c min_saddr: %pI6c max_saddr: %pI6c\n"
  523. " daddr: %pI6c min_daddr: %pI6c max_daddr: %pI6c\n",
  524. &pkt_dev->in6_saddr,
  525. &pkt_dev->min_in6_saddr, &pkt_dev->max_in6_saddr,
  526. &pkt_dev->in6_daddr,
  527. &pkt_dev->min_in6_daddr, &pkt_dev->max_in6_daddr);
  528. } else {
  529. seq_printf(seq,
  530. " dst_min: %s dst_max: %s\n",
  531. pkt_dev->dst_min, pkt_dev->dst_max);
  532. seq_printf(seq,
  533. " src_min: %s src_max: %s\n",
  534. pkt_dev->src_min, pkt_dev->src_max);
  535. }
  536. seq_puts(seq, " src_mac: ");
  537. seq_printf(seq, "%pM ",
  538. is_zero_ether_addr(pkt_dev->src_mac) ?
  539. pkt_dev->odev->dev_addr : pkt_dev->src_mac);
  540. seq_puts(seq, "dst_mac: ");
  541. seq_printf(seq, "%pM\n", pkt_dev->dst_mac);
  542. seq_printf(seq,
  543. " udp_src_min: %d udp_src_max: %d"
  544. " udp_dst_min: %d udp_dst_max: %d\n",
  545. pkt_dev->udp_src_min, pkt_dev->udp_src_max,
  546. pkt_dev->udp_dst_min, pkt_dev->udp_dst_max);
  547. seq_printf(seq,
  548. " src_mac_count: %d dst_mac_count: %d\n",
  549. pkt_dev->src_mac_count, pkt_dev->dst_mac_count);
  550. if (pkt_dev->nr_labels) {
  551. seq_puts(seq, " mpls: ");
  552. for (i = 0; i < pkt_dev->nr_labels; i++)
  553. seq_printf(seq, "%08x%s", ntohl(pkt_dev->labels[i]),
  554. i == pkt_dev->nr_labels-1 ? "\n" : ", ");
  555. }
  556. if (pkt_dev->vlan_id != 0xffff)
  557. seq_printf(seq, " vlan_id: %u vlan_p: %u vlan_cfi: %u\n",
  558. pkt_dev->vlan_id, pkt_dev->vlan_p,
  559. pkt_dev->vlan_cfi);
  560. if (pkt_dev->svlan_id != 0xffff)
  561. seq_printf(seq, " svlan_id: %u vlan_p: %u vlan_cfi: %u\n",
  562. pkt_dev->svlan_id, pkt_dev->svlan_p,
  563. pkt_dev->svlan_cfi);
  564. if (pkt_dev->tos)
  565. seq_printf(seq, " tos: 0x%02x\n", pkt_dev->tos);
  566. if (pkt_dev->traffic_class)
  567. seq_printf(seq, " traffic_class: 0x%02x\n", pkt_dev->traffic_class);
  568. if (pkt_dev->burst > 1)
  569. seq_printf(seq, " burst: %d\n", pkt_dev->burst);
  570. if (pkt_dev->node >= 0)
  571. seq_printf(seq, " node: %d\n", pkt_dev->node);
  572. if (pkt_dev->xmit_mode == M_NETIF_RECEIVE)
  573. seq_puts(seq, " xmit_mode: netif_receive\n");
  574. else if (pkt_dev->xmit_mode == M_QUEUE_XMIT)
  575. seq_puts(seq, " xmit_mode: xmit_queue\n");
  576. seq_puts(seq, " Flags: ");
  577. for (i = 0; i < NR_PKT_FLAGS; i++) {
  578. if (i == FLOW_SEQ_SHIFT)
  579. if (!pkt_dev->cflows)
  580. continue;
  581. if (pkt_dev->flags & (1 << i)) {
  582. seq_printf(seq, "%s ", pkt_flag_names[i]);
  583. #ifdef CONFIG_XFRM
  584. if (i == IPSEC_SHIFT && pkt_dev->spi)
  585. seq_printf(seq, "spi:%u ", pkt_dev->spi);
  586. #endif
  587. } else if (i == FLOW_SEQ_SHIFT) {
  588. seq_puts(seq, "FLOW_RND ");
  589. }
  590. }
  591. seq_puts(seq, "\n");
  592. /* not really stopped, more like last-running-at */
  593. stopped = pkt_dev->running ? ktime_get() : pkt_dev->stopped_at;
  594. idle = pkt_dev->idle_acc;
  595. do_div(idle, NSEC_PER_USEC);
  596. seq_printf(seq,
  597. "Current:\n pkts-sofar: %llu errors: %llu\n",
  598. (unsigned long long)pkt_dev->sofar,
  599. (unsigned long long)pkt_dev->errors);
  600. if (pkt_dev->n_imix_entries > 0) {
  601. int i;
  602. seq_puts(seq, " imix_size_counts: ");
  603. for (i = 0; i < pkt_dev->n_imix_entries; i++) {
  604. seq_printf(seq, "%llu,%llu ",
  605. pkt_dev->imix_entries[i].size,
  606. pkt_dev->imix_entries[i].count_so_far);
  607. }
  608. seq_puts(seq, "\n");
  609. }
  610. seq_printf(seq,
  611. " started: %lluus stopped: %lluus idle: %lluus\n",
  612. (unsigned long long) ktime_to_us(pkt_dev->started_at),
  613. (unsigned long long) ktime_to_us(stopped),
  614. (unsigned long long) idle);
  615. seq_printf(seq,
  616. " seq_num: %d cur_dst_mac_offset: %d cur_src_mac_offset: %d\n",
  617. pkt_dev->seq_num, pkt_dev->cur_dst_mac_offset,
  618. pkt_dev->cur_src_mac_offset);
  619. if (pkt_dev->flags & F_IPV6) {
  620. seq_printf(seq, " cur_saddr: %pI6c cur_daddr: %pI6c\n",
  621. &pkt_dev->cur_in6_saddr,
  622. &pkt_dev->cur_in6_daddr);
  623. } else
  624. seq_printf(seq, " cur_saddr: %pI4 cur_daddr: %pI4\n",
  625. &pkt_dev->cur_saddr, &pkt_dev->cur_daddr);
  626. seq_printf(seq, " cur_udp_dst: %d cur_udp_src: %d\n",
  627. pkt_dev->cur_udp_dst, pkt_dev->cur_udp_src);
  628. seq_printf(seq, " cur_queue_map: %u\n", pkt_dev->cur_queue_map);
  629. seq_printf(seq, " flows: %u\n", pkt_dev->nflows);
  630. if (pkt_dev->result[0])
  631. seq_printf(seq, "Result: %s\n", pkt_dev->result);
  632. else
  633. seq_puts(seq, "Result: Idle\n");
  634. return 0;
  635. }
  636. static int hex32_arg(const char __user *user_buffer, unsigned long maxlen,
  637. __u32 *num)
  638. {
  639. int i = 0;
  640. *num = 0;
  641. for (; i < maxlen; i++) {
  642. int value;
  643. char c;
  644. *num <<= 4;
  645. if (get_user(c, &user_buffer[i]))
  646. return -EFAULT;
  647. value = hex_to_bin(c);
  648. if (value >= 0)
  649. *num |= value;
  650. else
  651. break;
  652. }
  653. return i;
  654. }
  655. static int count_trail_chars(const char __user * user_buffer,
  656. unsigned int maxlen)
  657. {
  658. int i;
  659. for (i = 0; i < maxlen; i++) {
  660. char c;
  661. if (get_user(c, &user_buffer[i]))
  662. return -EFAULT;
  663. switch (c) {
  664. case '\"':
  665. case '\n':
  666. case '\r':
  667. case '\t':
  668. case ' ':
  669. case '=':
  670. break;
  671. default:
  672. goto done;
  673. }
  674. }
  675. done:
  676. return i;
  677. }
  678. static long num_arg(const char __user *user_buffer, unsigned long maxlen,
  679. unsigned long *num)
  680. {
  681. int i;
  682. *num = 0;
  683. for (i = 0; i < maxlen; i++) {
  684. char c;
  685. if (get_user(c, &user_buffer[i]))
  686. return -EFAULT;
  687. if ((c >= '0') && (c <= '9')) {
  688. *num *= 10;
  689. *num += c - '0';
  690. } else
  691. break;
  692. }
  693. return i;
  694. }
  695. static int strn_len(const char __user * user_buffer, unsigned int maxlen)
  696. {
  697. int i;
  698. for (i = 0; i < maxlen; i++) {
  699. char c;
  700. if (get_user(c, &user_buffer[i]))
  701. return -EFAULT;
  702. switch (c) {
  703. case '\"':
  704. case '\n':
  705. case '\r':
  706. case '\t':
  707. case ' ':
  708. goto done_str;
  709. default:
  710. break;
  711. }
  712. }
  713. done_str:
  714. return i;
  715. }
  716. /* Parses imix entries from user buffer.
  717. * The user buffer should consist of imix entries separated by spaces
  718. * where each entry consists of size and weight delimited by commas.
  719. * "size1,weight_1 size2,weight_2 ... size_n,weight_n" for example.
  720. */
  721. static ssize_t get_imix_entries(const char __user *buffer,
  722. struct pktgen_dev *pkt_dev)
  723. {
  724. const int max_digits = 10;
  725. int i = 0;
  726. long len;
  727. char c;
  728. pkt_dev->n_imix_entries = 0;
  729. do {
  730. unsigned long weight;
  731. unsigned long size;
  732. len = num_arg(&buffer[i], max_digits, &size);
  733. if (len < 0)
  734. return len;
  735. i += len;
  736. if (get_user(c, &buffer[i]))
  737. return -EFAULT;
  738. /* Check for comma between size_i and weight_i */
  739. if (c != ',')
  740. return -EINVAL;
  741. i++;
  742. if (size < 14 + 20 + 8)
  743. size = 14 + 20 + 8;
  744. len = num_arg(&buffer[i], max_digits, &weight);
  745. if (len < 0)
  746. return len;
  747. if (weight <= 0)
  748. return -EINVAL;
  749. pkt_dev->imix_entries[pkt_dev->n_imix_entries].size = size;
  750. pkt_dev->imix_entries[pkt_dev->n_imix_entries].weight = weight;
  751. i += len;
  752. if (get_user(c, &buffer[i]))
  753. return -EFAULT;
  754. i++;
  755. pkt_dev->n_imix_entries++;
  756. if (pkt_dev->n_imix_entries > MAX_IMIX_ENTRIES)
  757. return -E2BIG;
  758. } while (c == ' ');
  759. return i;
  760. }
  761. static ssize_t get_labels(const char __user *buffer, struct pktgen_dev *pkt_dev)
  762. {
  763. unsigned int n = 0;
  764. char c;
  765. ssize_t i = 0;
  766. int len;
  767. pkt_dev->nr_labels = 0;
  768. do {
  769. __u32 tmp;
  770. len = hex32_arg(&buffer[i], 8, &tmp);
  771. if (len <= 0)
  772. return len;
  773. pkt_dev->labels[n] = htonl(tmp);
  774. if (pkt_dev->labels[n] & MPLS_STACK_BOTTOM)
  775. pkt_dev->flags |= F_MPLS_RND;
  776. i += len;
  777. if (get_user(c, &buffer[i]))
  778. return -EFAULT;
  779. i++;
  780. n++;
  781. if (n >= MAX_MPLS_LABELS)
  782. return -E2BIG;
  783. } while (c == ',');
  784. pkt_dev->nr_labels = n;
  785. return i;
  786. }
  787. static __u32 pktgen_read_flag(const char *f, bool *disable)
  788. {
  789. __u32 i;
  790. if (f[0] == '!') {
  791. *disable = true;
  792. f++;
  793. }
  794. for (i = 0; i < NR_PKT_FLAGS; i++) {
  795. if (!IS_ENABLED(CONFIG_XFRM) && i == IPSEC_SHIFT)
  796. continue;
  797. /* allow only disabling ipv6 flag */
  798. if (!*disable && i == IPV6_SHIFT)
  799. continue;
  800. if (strcmp(f, pkt_flag_names[i]) == 0)
  801. return 1 << i;
  802. }
  803. if (strcmp(f, "FLOW_RND") == 0) {
  804. *disable = !*disable;
  805. return F_FLOW_SEQ;
  806. }
  807. return 0;
  808. }
  809. static ssize_t pktgen_if_write(struct file *file,
  810. const char __user * user_buffer, size_t count,
  811. loff_t * offset)
  812. {
  813. struct seq_file *seq = file->private_data;
  814. struct pktgen_dev *pkt_dev = seq->private;
  815. int i, max, len;
  816. char name[16], valstr[32];
  817. unsigned long value = 0;
  818. char *pg_result = NULL;
  819. int tmp = 0;
  820. char buf[128];
  821. pg_result = &(pkt_dev->result[0]);
  822. if (count < 1) {
  823. pr_warn("wrong command format\n");
  824. return -EINVAL;
  825. }
  826. max = count;
  827. tmp = count_trail_chars(user_buffer, max);
  828. if (tmp < 0) {
  829. pr_warn("illegal format\n");
  830. return tmp;
  831. }
  832. i = tmp;
  833. /* Read variable name */
  834. len = strn_len(&user_buffer[i], sizeof(name) - 1);
  835. if (len < 0)
  836. return len;
  837. memset(name, 0, sizeof(name));
  838. if (copy_from_user(name, &user_buffer[i], len))
  839. return -EFAULT;
  840. i += len;
  841. max = count - i;
  842. len = count_trail_chars(&user_buffer[i], max);
  843. if (len < 0)
  844. return len;
  845. i += len;
  846. if (debug) {
  847. size_t copy = min_t(size_t, count + 1, 1024);
  848. char *tp = strndup_user(user_buffer, copy);
  849. if (IS_ERR(tp))
  850. return PTR_ERR(tp);
  851. pr_debug("%s,%zu buffer -:%s:-\n", name, count, tp);
  852. kfree(tp);
  853. }
  854. if (!strcmp(name, "min_pkt_size")) {
  855. len = num_arg(&user_buffer[i], 10, &value);
  856. if (len < 0)
  857. return len;
  858. i += len;
  859. if (value < 14 + 20 + 8)
  860. value = 14 + 20 + 8;
  861. if (value != pkt_dev->min_pkt_size) {
  862. pkt_dev->min_pkt_size = value;
  863. pkt_dev->cur_pkt_size = value;
  864. }
  865. sprintf(pg_result, "OK: min_pkt_size=%d",
  866. pkt_dev->min_pkt_size);
  867. return count;
  868. }
  869. if (!strcmp(name, "max_pkt_size")) {
  870. len = num_arg(&user_buffer[i], 10, &value);
  871. if (len < 0)
  872. return len;
  873. i += len;
  874. if (value < 14 + 20 + 8)
  875. value = 14 + 20 + 8;
  876. if (value != pkt_dev->max_pkt_size) {
  877. pkt_dev->max_pkt_size = value;
  878. pkt_dev->cur_pkt_size = value;
  879. }
  880. sprintf(pg_result, "OK: max_pkt_size=%d",
  881. pkt_dev->max_pkt_size);
  882. return count;
  883. }
  884. /* Shortcut for min = max */
  885. if (!strcmp(name, "pkt_size")) {
  886. len = num_arg(&user_buffer[i], 10, &value);
  887. if (len < 0)
  888. return len;
  889. i += len;
  890. if (value < 14 + 20 + 8)
  891. value = 14 + 20 + 8;
  892. if (value != pkt_dev->min_pkt_size) {
  893. pkt_dev->min_pkt_size = value;
  894. pkt_dev->max_pkt_size = value;
  895. pkt_dev->cur_pkt_size = value;
  896. }
  897. sprintf(pg_result, "OK: pkt_size=%d", pkt_dev->min_pkt_size);
  898. return count;
  899. }
  900. if (!strcmp(name, "imix_weights")) {
  901. if (pkt_dev->clone_skb > 0)
  902. return -EINVAL;
  903. len = get_imix_entries(&user_buffer[i], pkt_dev);
  904. if (len < 0)
  905. return len;
  906. fill_imix_distribution(pkt_dev);
  907. i += len;
  908. return count;
  909. }
  910. if (!strcmp(name, "debug")) {
  911. len = num_arg(&user_buffer[i], 10, &value);
  912. if (len < 0)
  913. return len;
  914. i += len;
  915. debug = value;
  916. sprintf(pg_result, "OK: debug=%u", debug);
  917. return count;
  918. }
  919. if (!strcmp(name, "frags")) {
  920. len = num_arg(&user_buffer[i], 10, &value);
  921. if (len < 0)
  922. return len;
  923. i += len;
  924. pkt_dev->nfrags = value;
  925. sprintf(pg_result, "OK: frags=%d", pkt_dev->nfrags);
  926. return count;
  927. }
  928. if (!strcmp(name, "delay")) {
  929. len = num_arg(&user_buffer[i], 10, &value);
  930. if (len < 0)
  931. return len;
  932. i += len;
  933. if (value == 0x7FFFFFFF)
  934. pkt_dev->delay = ULLONG_MAX;
  935. else
  936. pkt_dev->delay = (u64)value;
  937. sprintf(pg_result, "OK: delay=%llu",
  938. (unsigned long long) pkt_dev->delay);
  939. return count;
  940. }
  941. if (!strcmp(name, "rate")) {
  942. len = num_arg(&user_buffer[i], 10, &value);
  943. if (len < 0)
  944. return len;
  945. i += len;
  946. if (!value)
  947. return len;
  948. pkt_dev->delay = pkt_dev->min_pkt_size*8*NSEC_PER_USEC/value;
  949. if (debug)
  950. pr_info("Delay set at: %llu ns\n", pkt_dev->delay);
  951. sprintf(pg_result, "OK: rate=%lu", value);
  952. return count;
  953. }
  954. if (!strcmp(name, "ratep")) {
  955. len = num_arg(&user_buffer[i], 10, &value);
  956. if (len < 0)
  957. return len;
  958. i += len;
  959. if (!value)
  960. return len;
  961. pkt_dev->delay = NSEC_PER_SEC/value;
  962. if (debug)
  963. pr_info("Delay set at: %llu ns\n", pkt_dev->delay);
  964. sprintf(pg_result, "OK: rate=%lu", value);
  965. return count;
  966. }
  967. if (!strcmp(name, "udp_src_min")) {
  968. len = num_arg(&user_buffer[i], 10, &value);
  969. if (len < 0)
  970. return len;
  971. i += len;
  972. if (value != pkt_dev->udp_src_min) {
  973. pkt_dev->udp_src_min = value;
  974. pkt_dev->cur_udp_src = value;
  975. }
  976. sprintf(pg_result, "OK: udp_src_min=%u", pkt_dev->udp_src_min);
  977. return count;
  978. }
  979. if (!strcmp(name, "udp_dst_min")) {
  980. len = num_arg(&user_buffer[i], 10, &value);
  981. if (len < 0)
  982. return len;
  983. i += len;
  984. if (value != pkt_dev->udp_dst_min) {
  985. pkt_dev->udp_dst_min = value;
  986. pkt_dev->cur_udp_dst = value;
  987. }
  988. sprintf(pg_result, "OK: udp_dst_min=%u", pkt_dev->udp_dst_min);
  989. return count;
  990. }
  991. if (!strcmp(name, "udp_src_max")) {
  992. len = num_arg(&user_buffer[i], 10, &value);
  993. if (len < 0)
  994. return len;
  995. i += len;
  996. if (value != pkt_dev->udp_src_max) {
  997. pkt_dev->udp_src_max = value;
  998. pkt_dev->cur_udp_src = value;
  999. }
  1000. sprintf(pg_result, "OK: udp_src_max=%u", pkt_dev->udp_src_max);
  1001. return count;
  1002. }
  1003. if (!strcmp(name, "udp_dst_max")) {
  1004. len = num_arg(&user_buffer[i], 10, &value);
  1005. if (len < 0)
  1006. return len;
  1007. i += len;
  1008. if (value != pkt_dev->udp_dst_max) {
  1009. pkt_dev->udp_dst_max = value;
  1010. pkt_dev->cur_udp_dst = value;
  1011. }
  1012. sprintf(pg_result, "OK: udp_dst_max=%u", pkt_dev->udp_dst_max);
  1013. return count;
  1014. }
  1015. if (!strcmp(name, "clone_skb")) {
  1016. len = num_arg(&user_buffer[i], 10, &value);
  1017. if (len < 0)
  1018. return len;
  1019. /* clone_skb is not supported for netif_receive xmit_mode and
  1020. * IMIX mode.
  1021. */
  1022. if ((value > 0) &&
  1023. ((pkt_dev->xmit_mode == M_NETIF_RECEIVE) ||
  1024. !(pkt_dev->odev->priv_flags & IFF_TX_SKB_SHARING)))
  1025. return -ENOTSUPP;
  1026. if (value > 0 && pkt_dev->n_imix_entries > 0)
  1027. return -EINVAL;
  1028. i += len;
  1029. pkt_dev->clone_skb = value;
  1030. sprintf(pg_result, "OK: clone_skb=%d", pkt_dev->clone_skb);
  1031. return count;
  1032. }
  1033. if (!strcmp(name, "count")) {
  1034. len = num_arg(&user_buffer[i], 10, &value);
  1035. if (len < 0)
  1036. return len;
  1037. i += len;
  1038. pkt_dev->count = value;
  1039. sprintf(pg_result, "OK: count=%llu",
  1040. (unsigned long long)pkt_dev->count);
  1041. return count;
  1042. }
  1043. if (!strcmp(name, "src_mac_count")) {
  1044. len = num_arg(&user_buffer[i], 10, &value);
  1045. if (len < 0)
  1046. return len;
  1047. i += len;
  1048. if (pkt_dev->src_mac_count != value) {
  1049. pkt_dev->src_mac_count = value;
  1050. pkt_dev->cur_src_mac_offset = 0;
  1051. }
  1052. sprintf(pg_result, "OK: src_mac_count=%d",
  1053. pkt_dev->src_mac_count);
  1054. return count;
  1055. }
  1056. if (!strcmp(name, "dst_mac_count")) {
  1057. len = num_arg(&user_buffer[i], 10, &value);
  1058. if (len < 0)
  1059. return len;
  1060. i += len;
  1061. if (pkt_dev->dst_mac_count != value) {
  1062. pkt_dev->dst_mac_count = value;
  1063. pkt_dev->cur_dst_mac_offset = 0;
  1064. }
  1065. sprintf(pg_result, "OK: dst_mac_count=%d",
  1066. pkt_dev->dst_mac_count);
  1067. return count;
  1068. }
  1069. if (!strcmp(name, "burst")) {
  1070. len = num_arg(&user_buffer[i], 10, &value);
  1071. if (len < 0)
  1072. return len;
  1073. i += len;
  1074. if ((value > 1) &&
  1075. ((pkt_dev->xmit_mode == M_QUEUE_XMIT) ||
  1076. ((pkt_dev->xmit_mode == M_START_XMIT) &&
  1077. (!(pkt_dev->odev->priv_flags & IFF_TX_SKB_SHARING)))))
  1078. return -ENOTSUPP;
  1079. pkt_dev->burst = value < 1 ? 1 : value;
  1080. sprintf(pg_result, "OK: burst=%u", pkt_dev->burst);
  1081. return count;
  1082. }
  1083. if (!strcmp(name, "node")) {
  1084. len = num_arg(&user_buffer[i], 10, &value);
  1085. if (len < 0)
  1086. return len;
  1087. i += len;
  1088. if (node_possible(value)) {
  1089. pkt_dev->node = value;
  1090. sprintf(pg_result, "OK: node=%d", pkt_dev->node);
  1091. if (pkt_dev->page) {
  1092. put_page(pkt_dev->page);
  1093. pkt_dev->page = NULL;
  1094. }
  1095. }
  1096. else
  1097. sprintf(pg_result, "ERROR: node not possible");
  1098. return count;
  1099. }
  1100. if (!strcmp(name, "xmit_mode")) {
  1101. char f[32];
  1102. memset(f, 0, 32);
  1103. len = strn_len(&user_buffer[i], sizeof(f) - 1);
  1104. if (len < 0)
  1105. return len;
  1106. if (copy_from_user(f, &user_buffer[i], len))
  1107. return -EFAULT;
  1108. i += len;
  1109. if (strcmp(f, "start_xmit") == 0) {
  1110. pkt_dev->xmit_mode = M_START_XMIT;
  1111. } else if (strcmp(f, "netif_receive") == 0) {
  1112. /* clone_skb set earlier, not supported in this mode */
  1113. if (pkt_dev->clone_skb > 0)
  1114. return -ENOTSUPP;
  1115. pkt_dev->xmit_mode = M_NETIF_RECEIVE;
  1116. /* make sure new packet is allocated every time
  1117. * pktgen_xmit() is called
  1118. */
  1119. pkt_dev->last_ok = 1;
  1120. } else if (strcmp(f, "queue_xmit") == 0) {
  1121. pkt_dev->xmit_mode = M_QUEUE_XMIT;
  1122. pkt_dev->last_ok = 1;
  1123. } else {
  1124. sprintf(pg_result,
  1125. "xmit_mode -:%s:- unknown\nAvailable modes: %s",
  1126. f, "start_xmit, netif_receive\n");
  1127. return count;
  1128. }
  1129. sprintf(pg_result, "OK: xmit_mode=%s", f);
  1130. return count;
  1131. }
  1132. if (!strcmp(name, "flag")) {
  1133. __u32 flag;
  1134. char f[32];
  1135. bool disable = false;
  1136. memset(f, 0, 32);
  1137. len = strn_len(&user_buffer[i], sizeof(f) - 1);
  1138. if (len < 0)
  1139. return len;
  1140. if (copy_from_user(f, &user_buffer[i], len))
  1141. return -EFAULT;
  1142. i += len;
  1143. flag = pktgen_read_flag(f, &disable);
  1144. if (flag) {
  1145. if (disable)
  1146. pkt_dev->flags &= ~flag;
  1147. else
  1148. pkt_dev->flags |= flag;
  1149. } else {
  1150. sprintf(pg_result,
  1151. "Flag -:%s:- unknown\nAvailable flags, (prepend ! to un-set flag):\n%s",
  1152. f,
  1153. "IPSRC_RND, IPDST_RND, UDPSRC_RND, UDPDST_RND, "
  1154. "MACSRC_RND, MACDST_RND, TXSIZE_RND, IPV6, "
  1155. "MPLS_RND, VID_RND, SVID_RND, FLOW_SEQ, "
  1156. "QUEUE_MAP_RND, QUEUE_MAP_CPU, UDPCSUM, "
  1157. "NO_TIMESTAMP, "
  1158. #ifdef CONFIG_XFRM
  1159. "IPSEC, "
  1160. #endif
  1161. "NODE_ALLOC\n");
  1162. return count;
  1163. }
  1164. sprintf(pg_result, "OK: flags=0x%x", pkt_dev->flags);
  1165. return count;
  1166. }
  1167. if (!strcmp(name, "dst_min") || !strcmp(name, "dst")) {
  1168. len = strn_len(&user_buffer[i], sizeof(pkt_dev->dst_min) - 1);
  1169. if (len < 0)
  1170. return len;
  1171. if (copy_from_user(buf, &user_buffer[i], len))
  1172. return -EFAULT;
  1173. buf[len] = 0;
  1174. if (strcmp(buf, pkt_dev->dst_min) != 0) {
  1175. memset(pkt_dev->dst_min, 0, sizeof(pkt_dev->dst_min));
  1176. strcpy(pkt_dev->dst_min, buf);
  1177. pkt_dev->daddr_min = in_aton(pkt_dev->dst_min);
  1178. pkt_dev->cur_daddr = pkt_dev->daddr_min;
  1179. }
  1180. if (debug)
  1181. pr_debug("dst_min set to: %s\n", pkt_dev->dst_min);
  1182. i += len;
  1183. sprintf(pg_result, "OK: dst_min=%s", pkt_dev->dst_min);
  1184. return count;
  1185. }
  1186. if (!strcmp(name, "dst_max")) {
  1187. len = strn_len(&user_buffer[i], sizeof(pkt_dev->dst_max) - 1);
  1188. if (len < 0)
  1189. return len;
  1190. if (copy_from_user(buf, &user_buffer[i], len))
  1191. return -EFAULT;
  1192. buf[len] = 0;
  1193. if (strcmp(buf, pkt_dev->dst_max) != 0) {
  1194. memset(pkt_dev->dst_max, 0, sizeof(pkt_dev->dst_max));
  1195. strcpy(pkt_dev->dst_max, buf);
  1196. pkt_dev->daddr_max = in_aton(pkt_dev->dst_max);
  1197. pkt_dev->cur_daddr = pkt_dev->daddr_max;
  1198. }
  1199. if (debug)
  1200. pr_debug("dst_max set to: %s\n", pkt_dev->dst_max);
  1201. i += len;
  1202. sprintf(pg_result, "OK: dst_max=%s", pkt_dev->dst_max);
  1203. return count;
  1204. }
  1205. if (!strcmp(name, "dst6")) {
  1206. len = strn_len(&user_buffer[i], sizeof(buf) - 1);
  1207. if (len < 0)
  1208. return len;
  1209. pkt_dev->flags |= F_IPV6;
  1210. if (copy_from_user(buf, &user_buffer[i], len))
  1211. return -EFAULT;
  1212. buf[len] = 0;
  1213. in6_pton(buf, -1, pkt_dev->in6_daddr.s6_addr, -1, NULL);
  1214. snprintf(buf, sizeof(buf), "%pI6c", &pkt_dev->in6_daddr);
  1215. pkt_dev->cur_in6_daddr = pkt_dev->in6_daddr;
  1216. if (debug)
  1217. pr_debug("dst6 set to: %s\n", buf);
  1218. i += len;
  1219. sprintf(pg_result, "OK: dst6=%s", buf);
  1220. return count;
  1221. }
  1222. if (!strcmp(name, "dst6_min")) {
  1223. len = strn_len(&user_buffer[i], sizeof(buf) - 1);
  1224. if (len < 0)
  1225. return len;
  1226. pkt_dev->flags |= F_IPV6;
  1227. if (copy_from_user(buf, &user_buffer[i], len))
  1228. return -EFAULT;
  1229. buf[len] = 0;
  1230. in6_pton(buf, -1, pkt_dev->min_in6_daddr.s6_addr, -1, NULL);
  1231. snprintf(buf, sizeof(buf), "%pI6c", &pkt_dev->min_in6_daddr);
  1232. pkt_dev->cur_in6_daddr = pkt_dev->min_in6_daddr;
  1233. if (debug)
  1234. pr_debug("dst6_min set to: %s\n", buf);
  1235. i += len;
  1236. sprintf(pg_result, "OK: dst6_min=%s", buf);
  1237. return count;
  1238. }
  1239. if (!strcmp(name, "dst6_max")) {
  1240. len = strn_len(&user_buffer[i], sizeof(buf) - 1);
  1241. if (len < 0)
  1242. return len;
  1243. pkt_dev->flags |= F_IPV6;
  1244. if (copy_from_user(buf, &user_buffer[i], len))
  1245. return -EFAULT;
  1246. buf[len] = 0;
  1247. in6_pton(buf, -1, pkt_dev->max_in6_daddr.s6_addr, -1, NULL);
  1248. snprintf(buf, sizeof(buf), "%pI6c", &pkt_dev->max_in6_daddr);
  1249. if (debug)
  1250. pr_debug("dst6_max set to: %s\n", buf);
  1251. i += len;
  1252. sprintf(pg_result, "OK: dst6_max=%s", buf);
  1253. return count;
  1254. }
  1255. if (!strcmp(name, "src6")) {
  1256. len = strn_len(&user_buffer[i], sizeof(buf) - 1);
  1257. if (len < 0)
  1258. return len;
  1259. pkt_dev->flags |= F_IPV6;
  1260. if (copy_from_user(buf, &user_buffer[i], len))
  1261. return -EFAULT;
  1262. buf[len] = 0;
  1263. in6_pton(buf, -1, pkt_dev->in6_saddr.s6_addr, -1, NULL);
  1264. snprintf(buf, sizeof(buf), "%pI6c", &pkt_dev->in6_saddr);
  1265. pkt_dev->cur_in6_saddr = pkt_dev->in6_saddr;
  1266. if (debug)
  1267. pr_debug("src6 set to: %s\n", buf);
  1268. i += len;
  1269. sprintf(pg_result, "OK: src6=%s", buf);
  1270. return count;
  1271. }
  1272. if (!strcmp(name, "src_min")) {
  1273. len = strn_len(&user_buffer[i], sizeof(pkt_dev->src_min) - 1);
  1274. if (len < 0)
  1275. return len;
  1276. if (copy_from_user(buf, &user_buffer[i], len))
  1277. return -EFAULT;
  1278. buf[len] = 0;
  1279. if (strcmp(buf, pkt_dev->src_min) != 0) {
  1280. memset(pkt_dev->src_min, 0, sizeof(pkt_dev->src_min));
  1281. strcpy(pkt_dev->src_min, buf);
  1282. pkt_dev->saddr_min = in_aton(pkt_dev->src_min);
  1283. pkt_dev->cur_saddr = pkt_dev->saddr_min;
  1284. }
  1285. if (debug)
  1286. pr_debug("src_min set to: %s\n", pkt_dev->src_min);
  1287. i += len;
  1288. sprintf(pg_result, "OK: src_min=%s", pkt_dev->src_min);
  1289. return count;
  1290. }
  1291. if (!strcmp(name, "src_max")) {
  1292. len = strn_len(&user_buffer[i], sizeof(pkt_dev->src_max) - 1);
  1293. if (len < 0)
  1294. return len;
  1295. if (copy_from_user(buf, &user_buffer[i], len))
  1296. return -EFAULT;
  1297. buf[len] = 0;
  1298. if (strcmp(buf, pkt_dev->src_max) != 0) {
  1299. memset(pkt_dev->src_max, 0, sizeof(pkt_dev->src_max));
  1300. strcpy(pkt_dev->src_max, buf);
  1301. pkt_dev->saddr_max = in_aton(pkt_dev->src_max);
  1302. pkt_dev->cur_saddr = pkt_dev->saddr_max;
  1303. }
  1304. if (debug)
  1305. pr_debug("src_max set to: %s\n", pkt_dev->src_max);
  1306. i += len;
  1307. sprintf(pg_result, "OK: src_max=%s", pkt_dev->src_max);
  1308. return count;
  1309. }
  1310. if (!strcmp(name, "dst_mac")) {
  1311. len = strn_len(&user_buffer[i], sizeof(valstr) - 1);
  1312. if (len < 0)
  1313. return len;
  1314. memset(valstr, 0, sizeof(valstr));
  1315. if (copy_from_user(valstr, &user_buffer[i], len))
  1316. return -EFAULT;
  1317. if (!mac_pton(valstr, pkt_dev->dst_mac))
  1318. return -EINVAL;
  1319. /* Set up Dest MAC */
  1320. ether_addr_copy(&pkt_dev->hh[0], pkt_dev->dst_mac);
  1321. sprintf(pg_result, "OK: dstmac %pM", pkt_dev->dst_mac);
  1322. return count;
  1323. }
  1324. if (!strcmp(name, "src_mac")) {
  1325. len = strn_len(&user_buffer[i], sizeof(valstr) - 1);
  1326. if (len < 0)
  1327. return len;
  1328. memset(valstr, 0, sizeof(valstr));
  1329. if (copy_from_user(valstr, &user_buffer[i], len))
  1330. return -EFAULT;
  1331. if (!mac_pton(valstr, pkt_dev->src_mac))
  1332. return -EINVAL;
  1333. /* Set up Src MAC */
  1334. ether_addr_copy(&pkt_dev->hh[6], pkt_dev->src_mac);
  1335. sprintf(pg_result, "OK: srcmac %pM", pkt_dev->src_mac);
  1336. return count;
  1337. }
  1338. if (!strcmp(name, "clear_counters")) {
  1339. pktgen_clear_counters(pkt_dev);
  1340. sprintf(pg_result, "OK: Clearing counters.\n");
  1341. return count;
  1342. }
  1343. if (!strcmp(name, "flows")) {
  1344. len = num_arg(&user_buffer[i], 10, &value);
  1345. if (len < 0)
  1346. return len;
  1347. i += len;
  1348. if (value > MAX_CFLOWS)
  1349. value = MAX_CFLOWS;
  1350. pkt_dev->cflows = value;
  1351. sprintf(pg_result, "OK: flows=%u", pkt_dev->cflows);
  1352. return count;
  1353. }
  1354. #ifdef CONFIG_XFRM
  1355. if (!strcmp(name, "spi")) {
  1356. len = num_arg(&user_buffer[i], 10, &value);
  1357. if (len < 0)
  1358. return len;
  1359. i += len;
  1360. pkt_dev->spi = value;
  1361. sprintf(pg_result, "OK: spi=%u", pkt_dev->spi);
  1362. return count;
  1363. }
  1364. #endif
  1365. if (!strcmp(name, "flowlen")) {
  1366. len = num_arg(&user_buffer[i], 10, &value);
  1367. if (len < 0)
  1368. return len;
  1369. i += len;
  1370. pkt_dev->lflow = value;
  1371. sprintf(pg_result, "OK: flowlen=%u", pkt_dev->lflow);
  1372. return count;
  1373. }
  1374. if (!strcmp(name, "queue_map_min")) {
  1375. len = num_arg(&user_buffer[i], 5, &value);
  1376. if (len < 0)
  1377. return len;
  1378. i += len;
  1379. pkt_dev->queue_map_min = value;
  1380. sprintf(pg_result, "OK: queue_map_min=%u", pkt_dev->queue_map_min);
  1381. return count;
  1382. }
  1383. if (!strcmp(name, "queue_map_max")) {
  1384. len = num_arg(&user_buffer[i], 5, &value);
  1385. if (len < 0)
  1386. return len;
  1387. i += len;
  1388. pkt_dev->queue_map_max = value;
  1389. sprintf(pg_result, "OK: queue_map_max=%u", pkt_dev->queue_map_max);
  1390. return count;
  1391. }
  1392. if (!strcmp(name, "mpls")) {
  1393. unsigned int n, cnt;
  1394. len = get_labels(&user_buffer[i], pkt_dev);
  1395. if (len < 0)
  1396. return len;
  1397. i += len;
  1398. cnt = sprintf(pg_result, "OK: mpls=");
  1399. for (n = 0; n < pkt_dev->nr_labels; n++)
  1400. cnt += sprintf(pg_result + cnt,
  1401. "%08x%s", ntohl(pkt_dev->labels[n]),
  1402. n == pkt_dev->nr_labels-1 ? "" : ",");
  1403. if (pkt_dev->nr_labels && pkt_dev->vlan_id != 0xffff) {
  1404. pkt_dev->vlan_id = 0xffff; /* turn off VLAN/SVLAN */
  1405. pkt_dev->svlan_id = 0xffff;
  1406. if (debug)
  1407. pr_debug("VLAN/SVLAN auto turned off\n");
  1408. }
  1409. return count;
  1410. }
  1411. if (!strcmp(name, "vlan_id")) {
  1412. len = num_arg(&user_buffer[i], 4, &value);
  1413. if (len < 0)
  1414. return len;
  1415. i += len;
  1416. if (value <= 4095) {
  1417. pkt_dev->vlan_id = value; /* turn on VLAN */
  1418. if (debug)
  1419. pr_debug("VLAN turned on\n");
  1420. if (debug && pkt_dev->nr_labels)
  1421. pr_debug("MPLS auto turned off\n");
  1422. pkt_dev->nr_labels = 0; /* turn off MPLS */
  1423. sprintf(pg_result, "OK: vlan_id=%u", pkt_dev->vlan_id);
  1424. } else {
  1425. pkt_dev->vlan_id = 0xffff; /* turn off VLAN/SVLAN */
  1426. pkt_dev->svlan_id = 0xffff;
  1427. if (debug)
  1428. pr_debug("VLAN/SVLAN turned off\n");
  1429. }
  1430. return count;
  1431. }
  1432. if (!strcmp(name, "vlan_p")) {
  1433. len = num_arg(&user_buffer[i], 1, &value);
  1434. if (len < 0)
  1435. return len;
  1436. i += len;
  1437. if ((value <= 7) && (pkt_dev->vlan_id != 0xffff)) {
  1438. pkt_dev->vlan_p = value;
  1439. sprintf(pg_result, "OK: vlan_p=%u", pkt_dev->vlan_p);
  1440. } else {
  1441. sprintf(pg_result, "ERROR: vlan_p must be 0-7");
  1442. }
  1443. return count;
  1444. }
  1445. if (!strcmp(name, "vlan_cfi")) {
  1446. len = num_arg(&user_buffer[i], 1, &value);
  1447. if (len < 0)
  1448. return len;
  1449. i += len;
  1450. if ((value <= 1) && (pkt_dev->vlan_id != 0xffff)) {
  1451. pkt_dev->vlan_cfi = value;
  1452. sprintf(pg_result, "OK: vlan_cfi=%u", pkt_dev->vlan_cfi);
  1453. } else {
  1454. sprintf(pg_result, "ERROR: vlan_cfi must be 0-1");
  1455. }
  1456. return count;
  1457. }
  1458. if (!strcmp(name, "svlan_id")) {
  1459. len = num_arg(&user_buffer[i], 4, &value);
  1460. if (len < 0)
  1461. return len;
  1462. i += len;
  1463. if ((value <= 4095) && ((pkt_dev->vlan_id != 0xffff))) {
  1464. pkt_dev->svlan_id = value; /* turn on SVLAN */
  1465. if (debug)
  1466. pr_debug("SVLAN turned on\n");
  1467. if (debug && pkt_dev->nr_labels)
  1468. pr_debug("MPLS auto turned off\n");
  1469. pkt_dev->nr_labels = 0; /* turn off MPLS */
  1470. sprintf(pg_result, "OK: svlan_id=%u", pkt_dev->svlan_id);
  1471. } else {
  1472. pkt_dev->vlan_id = 0xffff; /* turn off VLAN/SVLAN */
  1473. pkt_dev->svlan_id = 0xffff;
  1474. if (debug)
  1475. pr_debug("VLAN/SVLAN turned off\n");
  1476. }
  1477. return count;
  1478. }
  1479. if (!strcmp(name, "svlan_p")) {
  1480. len = num_arg(&user_buffer[i], 1, &value);
  1481. if (len < 0)
  1482. return len;
  1483. i += len;
  1484. if ((value <= 7) && (pkt_dev->svlan_id != 0xffff)) {
  1485. pkt_dev->svlan_p = value;
  1486. sprintf(pg_result, "OK: svlan_p=%u", pkt_dev->svlan_p);
  1487. } else {
  1488. sprintf(pg_result, "ERROR: svlan_p must be 0-7");
  1489. }
  1490. return count;
  1491. }
  1492. if (!strcmp(name, "svlan_cfi")) {
  1493. len = num_arg(&user_buffer[i], 1, &value);
  1494. if (len < 0)
  1495. return len;
  1496. i += len;
  1497. if ((value <= 1) && (pkt_dev->svlan_id != 0xffff)) {
  1498. pkt_dev->svlan_cfi = value;
  1499. sprintf(pg_result, "OK: svlan_cfi=%u", pkt_dev->svlan_cfi);
  1500. } else {
  1501. sprintf(pg_result, "ERROR: svlan_cfi must be 0-1");
  1502. }
  1503. return count;
  1504. }
  1505. if (!strcmp(name, "tos")) {
  1506. __u32 tmp_value = 0;
  1507. len = hex32_arg(&user_buffer[i], 2, &tmp_value);
  1508. if (len < 0)
  1509. return len;
  1510. i += len;
  1511. if (len == 2) {
  1512. pkt_dev->tos = tmp_value;
  1513. sprintf(pg_result, "OK: tos=0x%02x", pkt_dev->tos);
  1514. } else {
  1515. sprintf(pg_result, "ERROR: tos must be 00-ff");
  1516. }
  1517. return count;
  1518. }
  1519. if (!strcmp(name, "traffic_class")) {
  1520. __u32 tmp_value = 0;
  1521. len = hex32_arg(&user_buffer[i], 2, &tmp_value);
  1522. if (len < 0)
  1523. return len;
  1524. i += len;
  1525. if (len == 2) {
  1526. pkt_dev->traffic_class = tmp_value;
  1527. sprintf(pg_result, "OK: traffic_class=0x%02x", pkt_dev->traffic_class);
  1528. } else {
  1529. sprintf(pg_result, "ERROR: traffic_class must be 00-ff");
  1530. }
  1531. return count;
  1532. }
  1533. if (!strcmp(name, "skb_priority")) {
  1534. len = num_arg(&user_buffer[i], 9, &value);
  1535. if (len < 0)
  1536. return len;
  1537. i += len;
  1538. pkt_dev->skb_priority = value;
  1539. sprintf(pg_result, "OK: skb_priority=%i",
  1540. pkt_dev->skb_priority);
  1541. return count;
  1542. }
  1543. sprintf(pkt_dev->result, "No such parameter \"%s\"", name);
  1544. return -EINVAL;
  1545. }
  1546. static int pktgen_if_open(struct inode *inode, struct file *file)
  1547. {
  1548. return single_open(file, pktgen_if_show, pde_data(inode));
  1549. }
  1550. static const struct proc_ops pktgen_if_proc_ops = {
  1551. .proc_open = pktgen_if_open,
  1552. .proc_read = seq_read,
  1553. .proc_lseek = seq_lseek,
  1554. .proc_write = pktgen_if_write,
  1555. .proc_release = single_release,
  1556. };
  1557. static int pktgen_thread_show(struct seq_file *seq, void *v)
  1558. {
  1559. struct pktgen_thread *t = seq->private;
  1560. const struct pktgen_dev *pkt_dev;
  1561. BUG_ON(!t);
  1562. seq_puts(seq, "Running: ");
  1563. rcu_read_lock();
  1564. list_for_each_entry_rcu(pkt_dev, &t->if_list, list)
  1565. if (pkt_dev->running)
  1566. seq_printf(seq, "%s ", pkt_dev->odevname);
  1567. seq_puts(seq, "\nStopped: ");
  1568. list_for_each_entry_rcu(pkt_dev, &t->if_list, list)
  1569. if (!pkt_dev->running)
  1570. seq_printf(seq, "%s ", pkt_dev->odevname);
  1571. if (t->result[0])
  1572. seq_printf(seq, "\nResult: %s\n", t->result);
  1573. else
  1574. seq_puts(seq, "\nResult: NA\n");
  1575. rcu_read_unlock();
  1576. return 0;
  1577. }
  1578. static ssize_t pktgen_thread_write(struct file *file,
  1579. const char __user * user_buffer,
  1580. size_t count, loff_t * offset)
  1581. {
  1582. struct seq_file *seq = file->private_data;
  1583. struct pktgen_thread *t = seq->private;
  1584. int i, max, len, ret;
  1585. char name[40];
  1586. char *pg_result;
  1587. if (count < 1) {
  1588. // sprintf(pg_result, "Wrong command format");
  1589. return -EINVAL;
  1590. }
  1591. max = count;
  1592. len = count_trail_chars(user_buffer, max);
  1593. if (len < 0)
  1594. return len;
  1595. i = len;
  1596. /* Read variable name */
  1597. len = strn_len(&user_buffer[i], sizeof(name) - 1);
  1598. if (len < 0)
  1599. return len;
  1600. memset(name, 0, sizeof(name));
  1601. if (copy_from_user(name, &user_buffer[i], len))
  1602. return -EFAULT;
  1603. i += len;
  1604. max = count - i;
  1605. len = count_trail_chars(&user_buffer[i], max);
  1606. if (len < 0)
  1607. return len;
  1608. i += len;
  1609. if (debug)
  1610. pr_debug("t=%s, count=%lu\n", name, (unsigned long)count);
  1611. if (!t) {
  1612. pr_err("ERROR: No thread\n");
  1613. ret = -EINVAL;
  1614. goto out;
  1615. }
  1616. pg_result = &(t->result[0]);
  1617. if (!strcmp(name, "add_device")) {
  1618. char f[32];
  1619. memset(f, 0, 32);
  1620. len = strn_len(&user_buffer[i], sizeof(f) - 1);
  1621. if (len < 0) {
  1622. ret = len;
  1623. goto out;
  1624. }
  1625. if (copy_from_user(f, &user_buffer[i], len))
  1626. return -EFAULT;
  1627. i += len;
  1628. mutex_lock(&pktgen_thread_lock);
  1629. ret = pktgen_add_device(t, f);
  1630. mutex_unlock(&pktgen_thread_lock);
  1631. if (!ret) {
  1632. ret = count;
  1633. sprintf(pg_result, "OK: add_device=%s", f);
  1634. } else
  1635. sprintf(pg_result, "ERROR: can not add device %s", f);
  1636. goto out;
  1637. }
  1638. if (!strcmp(name, "rem_device_all")) {
  1639. mutex_lock(&pktgen_thread_lock);
  1640. t->control |= T_REMDEVALL;
  1641. mutex_unlock(&pktgen_thread_lock);
  1642. schedule_timeout_interruptible(msecs_to_jiffies(125)); /* Propagate thread->control */
  1643. ret = count;
  1644. sprintf(pg_result, "OK: rem_device_all");
  1645. goto out;
  1646. }
  1647. if (!strcmp(name, "max_before_softirq")) {
  1648. sprintf(pg_result, "OK: Note! max_before_softirq is obsoleted -- Do not use");
  1649. ret = count;
  1650. goto out;
  1651. }
  1652. ret = -EINVAL;
  1653. out:
  1654. return ret;
  1655. }
  1656. static int pktgen_thread_open(struct inode *inode, struct file *file)
  1657. {
  1658. return single_open(file, pktgen_thread_show, pde_data(inode));
  1659. }
  1660. static const struct proc_ops pktgen_thread_proc_ops = {
  1661. .proc_open = pktgen_thread_open,
  1662. .proc_read = seq_read,
  1663. .proc_lseek = seq_lseek,
  1664. .proc_write = pktgen_thread_write,
  1665. .proc_release = single_release,
  1666. };
  1667. /* Think find or remove for NN */
  1668. static struct pktgen_dev *__pktgen_NN_threads(const struct pktgen_net *pn,
  1669. const char *ifname, int remove)
  1670. {
  1671. struct pktgen_thread *t;
  1672. struct pktgen_dev *pkt_dev = NULL;
  1673. bool exact = (remove == FIND);
  1674. list_for_each_entry(t, &pn->pktgen_threads, th_list) {
  1675. pkt_dev = pktgen_find_dev(t, ifname, exact);
  1676. if (pkt_dev) {
  1677. if (remove) {
  1678. pkt_dev->removal_mark = 1;
  1679. t->control |= T_REMDEV;
  1680. }
  1681. break;
  1682. }
  1683. }
  1684. return pkt_dev;
  1685. }
  1686. /*
  1687. * mark a device for removal
  1688. */
  1689. static void pktgen_mark_device(const struct pktgen_net *pn, const char *ifname)
  1690. {
  1691. struct pktgen_dev *pkt_dev = NULL;
  1692. const int max_tries = 10, msec_per_try = 125;
  1693. int i = 0;
  1694. mutex_lock(&pktgen_thread_lock);
  1695. pr_debug("%s: marking %s for removal\n", __func__, ifname);
  1696. while (1) {
  1697. pkt_dev = __pktgen_NN_threads(pn, ifname, REMOVE);
  1698. if (pkt_dev == NULL)
  1699. break; /* success */
  1700. mutex_unlock(&pktgen_thread_lock);
  1701. pr_debug("%s: waiting for %s to disappear....\n",
  1702. __func__, ifname);
  1703. schedule_timeout_interruptible(msecs_to_jiffies(msec_per_try));
  1704. mutex_lock(&pktgen_thread_lock);
  1705. if (++i >= max_tries) {
  1706. pr_err("%s: timed out after waiting %d msec for device %s to be removed\n",
  1707. __func__, msec_per_try * i, ifname);
  1708. break;
  1709. }
  1710. }
  1711. mutex_unlock(&pktgen_thread_lock);
  1712. }
  1713. static void pktgen_change_name(const struct pktgen_net *pn, struct net_device *dev)
  1714. {
  1715. struct pktgen_thread *t;
  1716. mutex_lock(&pktgen_thread_lock);
  1717. list_for_each_entry(t, &pn->pktgen_threads, th_list) {
  1718. struct pktgen_dev *pkt_dev;
  1719. if_lock(t);
  1720. list_for_each_entry(pkt_dev, &t->if_list, list) {
  1721. if (pkt_dev->odev != dev)
  1722. continue;
  1723. proc_remove(pkt_dev->entry);
  1724. pkt_dev->entry = proc_create_data(dev->name, 0600,
  1725. pn->proc_dir,
  1726. &pktgen_if_proc_ops,
  1727. pkt_dev);
  1728. if (!pkt_dev->entry)
  1729. pr_err("can't move proc entry for '%s'\n",
  1730. dev->name);
  1731. break;
  1732. }
  1733. if_unlock(t);
  1734. }
  1735. mutex_unlock(&pktgen_thread_lock);
  1736. }
  1737. static int pktgen_device_event(struct notifier_block *unused,
  1738. unsigned long event, void *ptr)
  1739. {
  1740. struct net_device *dev = netdev_notifier_info_to_dev(ptr);
  1741. struct pktgen_net *pn = net_generic(dev_net(dev), pg_net_id);
  1742. if (pn->pktgen_exiting)
  1743. return NOTIFY_DONE;
  1744. /* It is OK that we do not hold the group lock right now,
  1745. * as we run under the RTNL lock.
  1746. */
  1747. switch (event) {
  1748. case NETDEV_CHANGENAME:
  1749. pktgen_change_name(pn, dev);
  1750. break;
  1751. case NETDEV_UNREGISTER:
  1752. pktgen_mark_device(pn, dev->name);
  1753. break;
  1754. }
  1755. return NOTIFY_DONE;
  1756. }
  1757. static struct net_device *pktgen_dev_get_by_name(const struct pktgen_net *pn,
  1758. struct pktgen_dev *pkt_dev,
  1759. const char *ifname)
  1760. {
  1761. char b[IFNAMSIZ+5];
  1762. int i;
  1763. for (i = 0; ifname[i] != '@'; i++) {
  1764. if (i == IFNAMSIZ)
  1765. break;
  1766. b[i] = ifname[i];
  1767. }
  1768. b[i] = 0;
  1769. return dev_get_by_name(pn->net, b);
  1770. }
  1771. /* Associate pktgen_dev with a device. */
  1772. static int pktgen_setup_dev(const struct pktgen_net *pn,
  1773. struct pktgen_dev *pkt_dev, const char *ifname)
  1774. {
  1775. struct net_device *odev;
  1776. int err;
  1777. /* Clean old setups */
  1778. if (pkt_dev->odev) {
  1779. netdev_put(pkt_dev->odev, &pkt_dev->dev_tracker);
  1780. pkt_dev->odev = NULL;
  1781. }
  1782. odev = pktgen_dev_get_by_name(pn, pkt_dev, ifname);
  1783. if (!odev) {
  1784. pr_err("no such netdevice: \"%s\"\n", ifname);
  1785. return -ENODEV;
  1786. }
  1787. if (odev->type != ARPHRD_ETHER && odev->type != ARPHRD_LOOPBACK) {
  1788. pr_err("not an ethernet or loopback device: \"%s\"\n", ifname);
  1789. err = -EINVAL;
  1790. } else if (!netif_running(odev)) {
  1791. pr_err("device is down: \"%s\"\n", ifname);
  1792. err = -ENETDOWN;
  1793. } else {
  1794. pkt_dev->odev = odev;
  1795. netdev_tracker_alloc(odev, &pkt_dev->dev_tracker, GFP_KERNEL);
  1796. return 0;
  1797. }
  1798. dev_put(odev);
  1799. return err;
  1800. }
  1801. /* Read pkt_dev from the interface and set up internal pktgen_dev
  1802. * structure to have the right information to create/send packets
  1803. */
  1804. static void pktgen_setup_inject(struct pktgen_dev *pkt_dev)
  1805. {
  1806. int ntxq;
  1807. if (!pkt_dev->odev) {
  1808. pr_err("ERROR: pkt_dev->odev == NULL in setup_inject\n");
  1809. sprintf(pkt_dev->result,
  1810. "ERROR: pkt_dev->odev == NULL in setup_inject.\n");
  1811. return;
  1812. }
  1813. /* make sure that we don't pick a non-existing transmit queue */
  1814. ntxq = pkt_dev->odev->real_num_tx_queues;
  1815. if (ntxq <= pkt_dev->queue_map_min) {
  1816. pr_warn("WARNING: Requested queue_map_min (zero-based) (%d) exceeds valid range [0 - %d] for (%d) queues on %s, resetting\n",
  1817. pkt_dev->queue_map_min, (ntxq ?: 1) - 1, ntxq,
  1818. pkt_dev->odevname);
  1819. pkt_dev->queue_map_min = (ntxq ?: 1) - 1;
  1820. }
  1821. if (pkt_dev->queue_map_max >= ntxq) {
  1822. pr_warn("WARNING: Requested queue_map_max (zero-based) (%d) exceeds valid range [0 - %d] for (%d) queues on %s, resetting\n",
  1823. pkt_dev->queue_map_max, (ntxq ?: 1) - 1, ntxq,
  1824. pkt_dev->odevname);
  1825. pkt_dev->queue_map_max = (ntxq ?: 1) - 1;
  1826. }
  1827. /* Default to the interface's mac if not explicitly set. */
  1828. if (is_zero_ether_addr(pkt_dev->src_mac))
  1829. ether_addr_copy(&(pkt_dev->hh[6]), pkt_dev->odev->dev_addr);
  1830. /* Set up Dest MAC */
  1831. ether_addr_copy(&(pkt_dev->hh[0]), pkt_dev->dst_mac);
  1832. if (pkt_dev->flags & F_IPV6) {
  1833. int i, set = 0, err = 1;
  1834. struct inet6_dev *idev;
  1835. if (pkt_dev->min_pkt_size == 0) {
  1836. pkt_dev->min_pkt_size = 14 + sizeof(struct ipv6hdr)
  1837. + sizeof(struct udphdr)
  1838. + sizeof(struct pktgen_hdr)
  1839. + pkt_dev->pkt_overhead;
  1840. }
  1841. for (i = 0; i < sizeof(struct in6_addr); i++)
  1842. if (pkt_dev->cur_in6_saddr.s6_addr[i]) {
  1843. set = 1;
  1844. break;
  1845. }
  1846. if (!set) {
  1847. /*
  1848. * Use linklevel address if unconfigured.
  1849. *
  1850. * use ipv6_get_lladdr if/when it's get exported
  1851. */
  1852. rcu_read_lock();
  1853. idev = __in6_dev_get(pkt_dev->odev);
  1854. if (idev) {
  1855. struct inet6_ifaddr *ifp;
  1856. read_lock_bh(&idev->lock);
  1857. list_for_each_entry(ifp, &idev->addr_list, if_list) {
  1858. if ((ifp->scope & IFA_LINK) &&
  1859. !(ifp->flags & IFA_F_TENTATIVE)) {
  1860. pkt_dev->cur_in6_saddr = ifp->addr;
  1861. err = 0;
  1862. break;
  1863. }
  1864. }
  1865. read_unlock_bh(&idev->lock);
  1866. }
  1867. rcu_read_unlock();
  1868. if (err)
  1869. pr_err("ERROR: IPv6 link address not available\n");
  1870. }
  1871. } else {
  1872. if (pkt_dev->min_pkt_size == 0) {
  1873. pkt_dev->min_pkt_size = 14 + sizeof(struct iphdr)
  1874. + sizeof(struct udphdr)
  1875. + sizeof(struct pktgen_hdr)
  1876. + pkt_dev->pkt_overhead;
  1877. }
  1878. pkt_dev->saddr_min = 0;
  1879. pkt_dev->saddr_max = 0;
  1880. if (strlen(pkt_dev->src_min) == 0) {
  1881. struct in_device *in_dev;
  1882. rcu_read_lock();
  1883. in_dev = __in_dev_get_rcu(pkt_dev->odev);
  1884. if (in_dev) {
  1885. const struct in_ifaddr *ifa;
  1886. ifa = rcu_dereference(in_dev->ifa_list);
  1887. if (ifa) {
  1888. pkt_dev->saddr_min = ifa->ifa_address;
  1889. pkt_dev->saddr_max = pkt_dev->saddr_min;
  1890. }
  1891. }
  1892. rcu_read_unlock();
  1893. } else {
  1894. pkt_dev->saddr_min = in_aton(pkt_dev->src_min);
  1895. pkt_dev->saddr_max = in_aton(pkt_dev->src_max);
  1896. }
  1897. pkt_dev->daddr_min = in_aton(pkt_dev->dst_min);
  1898. pkt_dev->daddr_max = in_aton(pkt_dev->dst_max);
  1899. }
  1900. /* Initialize current values. */
  1901. pkt_dev->cur_pkt_size = pkt_dev->min_pkt_size;
  1902. if (pkt_dev->min_pkt_size > pkt_dev->max_pkt_size)
  1903. pkt_dev->max_pkt_size = pkt_dev->min_pkt_size;
  1904. pkt_dev->cur_dst_mac_offset = 0;
  1905. pkt_dev->cur_src_mac_offset = 0;
  1906. pkt_dev->cur_saddr = pkt_dev->saddr_min;
  1907. pkt_dev->cur_daddr = pkt_dev->daddr_min;
  1908. pkt_dev->cur_udp_dst = pkt_dev->udp_dst_min;
  1909. pkt_dev->cur_udp_src = pkt_dev->udp_src_min;
  1910. pkt_dev->nflows = 0;
  1911. }
  1912. static void spin(struct pktgen_dev *pkt_dev, ktime_t spin_until)
  1913. {
  1914. ktime_t start_time, end_time;
  1915. s64 remaining;
  1916. struct hrtimer_sleeper t;
  1917. hrtimer_init_sleeper_on_stack(&t, CLOCK_MONOTONIC, HRTIMER_MODE_ABS);
  1918. hrtimer_set_expires(&t.timer, spin_until);
  1919. remaining = ktime_to_ns(hrtimer_expires_remaining(&t.timer));
  1920. if (remaining <= 0)
  1921. goto out;
  1922. start_time = ktime_get();
  1923. if (remaining < 100000) {
  1924. /* for small delays (<100us), just loop until limit is reached */
  1925. do {
  1926. end_time = ktime_get();
  1927. } while (ktime_compare(end_time, spin_until) < 0);
  1928. } else {
  1929. do {
  1930. set_current_state(TASK_INTERRUPTIBLE);
  1931. hrtimer_sleeper_start_expires(&t, HRTIMER_MODE_ABS);
  1932. if (likely(t.task))
  1933. schedule();
  1934. hrtimer_cancel(&t.timer);
  1935. } while (t.task && pkt_dev->running && !signal_pending(current));
  1936. __set_current_state(TASK_RUNNING);
  1937. end_time = ktime_get();
  1938. }
  1939. pkt_dev->idle_acc += ktime_to_ns(ktime_sub(end_time, start_time));
  1940. out:
  1941. pkt_dev->next_tx = ktime_add_ns(spin_until, pkt_dev->delay);
  1942. destroy_hrtimer_on_stack(&t.timer);
  1943. }
  1944. static inline void set_pkt_overhead(struct pktgen_dev *pkt_dev)
  1945. {
  1946. pkt_dev->pkt_overhead = 0;
  1947. pkt_dev->pkt_overhead += pkt_dev->nr_labels*sizeof(u32);
  1948. pkt_dev->pkt_overhead += VLAN_TAG_SIZE(pkt_dev);
  1949. pkt_dev->pkt_overhead += SVLAN_TAG_SIZE(pkt_dev);
  1950. }
  1951. static inline int f_seen(const struct pktgen_dev *pkt_dev, int flow)
  1952. {
  1953. return !!(pkt_dev->flows[flow].flags & F_INIT);
  1954. }
  1955. static inline int f_pick(struct pktgen_dev *pkt_dev)
  1956. {
  1957. int flow = pkt_dev->curfl;
  1958. if (pkt_dev->flags & F_FLOW_SEQ) {
  1959. if (pkt_dev->flows[flow].count >= pkt_dev->lflow) {
  1960. /* reset time */
  1961. pkt_dev->flows[flow].count = 0;
  1962. pkt_dev->flows[flow].flags = 0;
  1963. pkt_dev->curfl += 1;
  1964. if (pkt_dev->curfl >= pkt_dev->cflows)
  1965. pkt_dev->curfl = 0; /*reset */
  1966. }
  1967. } else {
  1968. flow = prandom_u32_max(pkt_dev->cflows);
  1969. pkt_dev->curfl = flow;
  1970. if (pkt_dev->flows[flow].count > pkt_dev->lflow) {
  1971. pkt_dev->flows[flow].count = 0;
  1972. pkt_dev->flows[flow].flags = 0;
  1973. }
  1974. }
  1975. return pkt_dev->curfl;
  1976. }
  1977. #ifdef CONFIG_XFRM
  1978. /* If there was already an IPSEC SA, we keep it as is, else
  1979. * we go look for it ...
  1980. */
  1981. #define DUMMY_MARK 0
  1982. static void get_ipsec_sa(struct pktgen_dev *pkt_dev, int flow)
  1983. {
  1984. struct xfrm_state *x = pkt_dev->flows[flow].x;
  1985. struct pktgen_net *pn = net_generic(dev_net(pkt_dev->odev), pg_net_id);
  1986. if (!x) {
  1987. if (pkt_dev->spi) {
  1988. /* We need as quick as possible to find the right SA
  1989. * Searching with minimum criteria to archieve this.
  1990. */
  1991. x = xfrm_state_lookup_byspi(pn->net, htonl(pkt_dev->spi), AF_INET);
  1992. } else {
  1993. /* slow path: we dont already have xfrm_state */
  1994. x = xfrm_stateonly_find(pn->net, DUMMY_MARK, 0,
  1995. (xfrm_address_t *)&pkt_dev->cur_daddr,
  1996. (xfrm_address_t *)&pkt_dev->cur_saddr,
  1997. AF_INET,
  1998. pkt_dev->ipsmode,
  1999. pkt_dev->ipsproto, 0);
  2000. }
  2001. if (x) {
  2002. pkt_dev->flows[flow].x = x;
  2003. set_pkt_overhead(pkt_dev);
  2004. pkt_dev->pkt_overhead += x->props.header_len;
  2005. }
  2006. }
  2007. }
  2008. #endif
  2009. static void set_cur_queue_map(struct pktgen_dev *pkt_dev)
  2010. {
  2011. if (pkt_dev->flags & F_QUEUE_MAP_CPU)
  2012. pkt_dev->cur_queue_map = smp_processor_id();
  2013. else if (pkt_dev->queue_map_min <= pkt_dev->queue_map_max) {
  2014. __u16 t;
  2015. if (pkt_dev->flags & F_QUEUE_MAP_RND) {
  2016. t = prandom_u32_max(pkt_dev->queue_map_max -
  2017. pkt_dev->queue_map_min + 1) +
  2018. pkt_dev->queue_map_min;
  2019. } else {
  2020. t = pkt_dev->cur_queue_map + 1;
  2021. if (t > pkt_dev->queue_map_max)
  2022. t = pkt_dev->queue_map_min;
  2023. }
  2024. pkt_dev->cur_queue_map = t;
  2025. }
  2026. pkt_dev->cur_queue_map = pkt_dev->cur_queue_map % pkt_dev->odev->real_num_tx_queues;
  2027. }
  2028. /* Increment/randomize headers according to flags and current values
  2029. * for IP src/dest, UDP src/dst port, MAC-Addr src/dst
  2030. */
  2031. static void mod_cur_headers(struct pktgen_dev *pkt_dev)
  2032. {
  2033. __u32 imn;
  2034. __u32 imx;
  2035. int flow = 0;
  2036. if (pkt_dev->cflows)
  2037. flow = f_pick(pkt_dev);
  2038. /* Deal with source MAC */
  2039. if (pkt_dev->src_mac_count > 1) {
  2040. __u32 mc;
  2041. __u32 tmp;
  2042. if (pkt_dev->flags & F_MACSRC_RND)
  2043. mc = prandom_u32_max(pkt_dev->src_mac_count);
  2044. else {
  2045. mc = pkt_dev->cur_src_mac_offset++;
  2046. if (pkt_dev->cur_src_mac_offset >=
  2047. pkt_dev->src_mac_count)
  2048. pkt_dev->cur_src_mac_offset = 0;
  2049. }
  2050. tmp = pkt_dev->src_mac[5] + (mc & 0xFF);
  2051. pkt_dev->hh[11] = tmp;
  2052. tmp = (pkt_dev->src_mac[4] + ((mc >> 8) & 0xFF) + (tmp >> 8));
  2053. pkt_dev->hh[10] = tmp;
  2054. tmp = (pkt_dev->src_mac[3] + ((mc >> 16) & 0xFF) + (tmp >> 8));
  2055. pkt_dev->hh[9] = tmp;
  2056. tmp = (pkt_dev->src_mac[2] + ((mc >> 24) & 0xFF) + (tmp >> 8));
  2057. pkt_dev->hh[8] = tmp;
  2058. tmp = (pkt_dev->src_mac[1] + (tmp >> 8));
  2059. pkt_dev->hh[7] = tmp;
  2060. }
  2061. /* Deal with Destination MAC */
  2062. if (pkt_dev->dst_mac_count > 1) {
  2063. __u32 mc;
  2064. __u32 tmp;
  2065. if (pkt_dev->flags & F_MACDST_RND)
  2066. mc = prandom_u32_max(pkt_dev->dst_mac_count);
  2067. else {
  2068. mc = pkt_dev->cur_dst_mac_offset++;
  2069. if (pkt_dev->cur_dst_mac_offset >=
  2070. pkt_dev->dst_mac_count) {
  2071. pkt_dev->cur_dst_mac_offset = 0;
  2072. }
  2073. }
  2074. tmp = pkt_dev->dst_mac[5] + (mc & 0xFF);
  2075. pkt_dev->hh[5] = tmp;
  2076. tmp = (pkt_dev->dst_mac[4] + ((mc >> 8) & 0xFF) + (tmp >> 8));
  2077. pkt_dev->hh[4] = tmp;
  2078. tmp = (pkt_dev->dst_mac[3] + ((mc >> 16) & 0xFF) + (tmp >> 8));
  2079. pkt_dev->hh[3] = tmp;
  2080. tmp = (pkt_dev->dst_mac[2] + ((mc >> 24) & 0xFF) + (tmp >> 8));
  2081. pkt_dev->hh[2] = tmp;
  2082. tmp = (pkt_dev->dst_mac[1] + (tmp >> 8));
  2083. pkt_dev->hh[1] = tmp;
  2084. }
  2085. if (pkt_dev->flags & F_MPLS_RND) {
  2086. unsigned int i;
  2087. for (i = 0; i < pkt_dev->nr_labels; i++)
  2088. if (pkt_dev->labels[i] & MPLS_STACK_BOTTOM)
  2089. pkt_dev->labels[i] = MPLS_STACK_BOTTOM |
  2090. ((__force __be32)get_random_u32() &
  2091. htonl(0x000fffff));
  2092. }
  2093. if ((pkt_dev->flags & F_VID_RND) && (pkt_dev->vlan_id != 0xffff)) {
  2094. pkt_dev->vlan_id = prandom_u32_max(4096);
  2095. }
  2096. if ((pkt_dev->flags & F_SVID_RND) && (pkt_dev->svlan_id != 0xffff)) {
  2097. pkt_dev->svlan_id = prandom_u32_max(4096);
  2098. }
  2099. if (pkt_dev->udp_src_min < pkt_dev->udp_src_max) {
  2100. if (pkt_dev->flags & F_UDPSRC_RND)
  2101. pkt_dev->cur_udp_src = prandom_u32_max(
  2102. pkt_dev->udp_src_max - pkt_dev->udp_src_min) +
  2103. pkt_dev->udp_src_min;
  2104. else {
  2105. pkt_dev->cur_udp_src++;
  2106. if (pkt_dev->cur_udp_src >= pkt_dev->udp_src_max)
  2107. pkt_dev->cur_udp_src = pkt_dev->udp_src_min;
  2108. }
  2109. }
  2110. if (pkt_dev->udp_dst_min < pkt_dev->udp_dst_max) {
  2111. if (pkt_dev->flags & F_UDPDST_RND) {
  2112. pkt_dev->cur_udp_dst = prandom_u32_max(
  2113. pkt_dev->udp_dst_max - pkt_dev->udp_dst_min) +
  2114. pkt_dev->udp_dst_min;
  2115. } else {
  2116. pkt_dev->cur_udp_dst++;
  2117. if (pkt_dev->cur_udp_dst >= pkt_dev->udp_dst_max)
  2118. pkt_dev->cur_udp_dst = pkt_dev->udp_dst_min;
  2119. }
  2120. }
  2121. if (!(pkt_dev->flags & F_IPV6)) {
  2122. imn = ntohl(pkt_dev->saddr_min);
  2123. imx = ntohl(pkt_dev->saddr_max);
  2124. if (imn < imx) {
  2125. __u32 t;
  2126. if (pkt_dev->flags & F_IPSRC_RND)
  2127. t = prandom_u32_max(imx - imn) + imn;
  2128. else {
  2129. t = ntohl(pkt_dev->cur_saddr);
  2130. t++;
  2131. if (t > imx)
  2132. t = imn;
  2133. }
  2134. pkt_dev->cur_saddr = htonl(t);
  2135. }
  2136. if (pkt_dev->cflows && f_seen(pkt_dev, flow)) {
  2137. pkt_dev->cur_daddr = pkt_dev->flows[flow].cur_daddr;
  2138. } else {
  2139. imn = ntohl(pkt_dev->daddr_min);
  2140. imx = ntohl(pkt_dev->daddr_max);
  2141. if (imn < imx) {
  2142. __u32 t;
  2143. __be32 s;
  2144. if (pkt_dev->flags & F_IPDST_RND) {
  2145. do {
  2146. t = prandom_u32_max(imx - imn) +
  2147. imn;
  2148. s = htonl(t);
  2149. } while (ipv4_is_loopback(s) ||
  2150. ipv4_is_multicast(s) ||
  2151. ipv4_is_lbcast(s) ||
  2152. ipv4_is_zeronet(s) ||
  2153. ipv4_is_local_multicast(s));
  2154. pkt_dev->cur_daddr = s;
  2155. } else {
  2156. t = ntohl(pkt_dev->cur_daddr);
  2157. t++;
  2158. if (t > imx) {
  2159. t = imn;
  2160. }
  2161. pkt_dev->cur_daddr = htonl(t);
  2162. }
  2163. }
  2164. if (pkt_dev->cflows) {
  2165. pkt_dev->flows[flow].flags |= F_INIT;
  2166. pkt_dev->flows[flow].cur_daddr =
  2167. pkt_dev->cur_daddr;
  2168. #ifdef CONFIG_XFRM
  2169. if (pkt_dev->flags & F_IPSEC)
  2170. get_ipsec_sa(pkt_dev, flow);
  2171. #endif
  2172. pkt_dev->nflows++;
  2173. }
  2174. }
  2175. } else { /* IPV6 * */
  2176. if (!ipv6_addr_any(&pkt_dev->min_in6_daddr)) {
  2177. int i;
  2178. /* Only random destinations yet */
  2179. for (i = 0; i < 4; i++) {
  2180. pkt_dev->cur_in6_daddr.s6_addr32[i] =
  2181. (((__force __be32)get_random_u32() |
  2182. pkt_dev->min_in6_daddr.s6_addr32[i]) &
  2183. pkt_dev->max_in6_daddr.s6_addr32[i]);
  2184. }
  2185. }
  2186. }
  2187. if (pkt_dev->min_pkt_size < pkt_dev->max_pkt_size) {
  2188. __u32 t;
  2189. if (pkt_dev->flags & F_TXSIZE_RND) {
  2190. t = prandom_u32_max(pkt_dev->max_pkt_size -
  2191. pkt_dev->min_pkt_size) +
  2192. pkt_dev->min_pkt_size;
  2193. } else {
  2194. t = pkt_dev->cur_pkt_size + 1;
  2195. if (t > pkt_dev->max_pkt_size)
  2196. t = pkt_dev->min_pkt_size;
  2197. }
  2198. pkt_dev->cur_pkt_size = t;
  2199. } else if (pkt_dev->n_imix_entries > 0) {
  2200. struct imix_pkt *entry;
  2201. __u32 t = prandom_u32_max(IMIX_PRECISION);
  2202. __u8 entry_index = pkt_dev->imix_distribution[t];
  2203. entry = &pkt_dev->imix_entries[entry_index];
  2204. entry->count_so_far++;
  2205. pkt_dev->cur_pkt_size = entry->size;
  2206. }
  2207. set_cur_queue_map(pkt_dev);
  2208. pkt_dev->flows[flow].count++;
  2209. }
  2210. static void fill_imix_distribution(struct pktgen_dev *pkt_dev)
  2211. {
  2212. int cumulative_probabilites[MAX_IMIX_ENTRIES];
  2213. int j = 0;
  2214. __u64 cumulative_prob = 0;
  2215. __u64 total_weight = 0;
  2216. int i = 0;
  2217. for (i = 0; i < pkt_dev->n_imix_entries; i++)
  2218. total_weight += pkt_dev->imix_entries[i].weight;
  2219. /* Fill cumulative_probabilites with sum of normalized probabilities */
  2220. for (i = 0; i < pkt_dev->n_imix_entries - 1; i++) {
  2221. cumulative_prob += div64_u64(pkt_dev->imix_entries[i].weight *
  2222. IMIX_PRECISION,
  2223. total_weight);
  2224. cumulative_probabilites[i] = cumulative_prob;
  2225. }
  2226. cumulative_probabilites[pkt_dev->n_imix_entries - 1] = 100;
  2227. for (i = 0; i < IMIX_PRECISION; i++) {
  2228. if (i == cumulative_probabilites[j])
  2229. j++;
  2230. pkt_dev->imix_distribution[i] = j;
  2231. }
  2232. }
  2233. #ifdef CONFIG_XFRM
  2234. static u32 pktgen_dst_metrics[RTAX_MAX + 1] = {
  2235. [RTAX_HOPLIMIT] = 0x5, /* Set a static hoplimit */
  2236. };
  2237. static int pktgen_output_ipsec(struct sk_buff *skb, struct pktgen_dev *pkt_dev)
  2238. {
  2239. struct xfrm_state *x = pkt_dev->flows[pkt_dev->curfl].x;
  2240. int err = 0;
  2241. struct net *net = dev_net(pkt_dev->odev);
  2242. if (!x)
  2243. return 0;
  2244. /* XXX: we dont support tunnel mode for now until
  2245. * we resolve the dst issue */
  2246. if ((x->props.mode != XFRM_MODE_TRANSPORT) && (pkt_dev->spi == 0))
  2247. return 0;
  2248. /* But when user specify an valid SPI, transformation
  2249. * supports both transport/tunnel mode + ESP/AH type.
  2250. */
  2251. if ((x->props.mode == XFRM_MODE_TUNNEL) && (pkt_dev->spi != 0))
  2252. skb->_skb_refdst = (unsigned long)&pkt_dev->xdst.u.dst | SKB_DST_NOREF;
  2253. rcu_read_lock_bh();
  2254. err = pktgen_xfrm_outer_mode_output(x, skb);
  2255. rcu_read_unlock_bh();
  2256. if (err) {
  2257. XFRM_INC_STATS(net, LINUX_MIB_XFRMOUTSTATEMODEERROR);
  2258. goto error;
  2259. }
  2260. err = x->type->output(x, skb);
  2261. if (err) {
  2262. XFRM_INC_STATS(net, LINUX_MIB_XFRMOUTSTATEPROTOERROR);
  2263. goto error;
  2264. }
  2265. spin_lock_bh(&x->lock);
  2266. x->curlft.bytes += skb->len;
  2267. x->curlft.packets++;
  2268. spin_unlock_bh(&x->lock);
  2269. error:
  2270. return err;
  2271. }
  2272. static void free_SAs(struct pktgen_dev *pkt_dev)
  2273. {
  2274. if (pkt_dev->cflows) {
  2275. /* let go of the SAs if we have them */
  2276. int i;
  2277. for (i = 0; i < pkt_dev->cflows; i++) {
  2278. struct xfrm_state *x = pkt_dev->flows[i].x;
  2279. if (x) {
  2280. xfrm_state_put(x);
  2281. pkt_dev->flows[i].x = NULL;
  2282. }
  2283. }
  2284. }
  2285. }
  2286. static int process_ipsec(struct pktgen_dev *pkt_dev,
  2287. struct sk_buff *skb, __be16 protocol)
  2288. {
  2289. if (pkt_dev->flags & F_IPSEC) {
  2290. struct xfrm_state *x = pkt_dev->flows[pkt_dev->curfl].x;
  2291. int nhead = 0;
  2292. if (x) {
  2293. struct ethhdr *eth;
  2294. struct iphdr *iph;
  2295. int ret;
  2296. nhead = x->props.header_len - skb_headroom(skb);
  2297. if (nhead > 0) {
  2298. ret = pskb_expand_head(skb, nhead, 0, GFP_ATOMIC);
  2299. if (ret < 0) {
  2300. pr_err("Error expanding ipsec packet %d\n",
  2301. ret);
  2302. goto err;
  2303. }
  2304. }
  2305. /* ipsec is not expecting ll header */
  2306. skb_pull(skb, ETH_HLEN);
  2307. ret = pktgen_output_ipsec(skb, pkt_dev);
  2308. if (ret) {
  2309. pr_err("Error creating ipsec packet %d\n", ret);
  2310. goto err;
  2311. }
  2312. /* restore ll */
  2313. eth = skb_push(skb, ETH_HLEN);
  2314. memcpy(eth, pkt_dev->hh, 2 * ETH_ALEN);
  2315. eth->h_proto = protocol;
  2316. /* Update IPv4 header len as well as checksum value */
  2317. iph = ip_hdr(skb);
  2318. iph->tot_len = htons(skb->len - ETH_HLEN);
  2319. ip_send_check(iph);
  2320. }
  2321. }
  2322. return 1;
  2323. err:
  2324. kfree_skb(skb);
  2325. return 0;
  2326. }
  2327. #endif
  2328. static void mpls_push(__be32 *mpls, struct pktgen_dev *pkt_dev)
  2329. {
  2330. unsigned int i;
  2331. for (i = 0; i < pkt_dev->nr_labels; i++)
  2332. *mpls++ = pkt_dev->labels[i] & ~MPLS_STACK_BOTTOM;
  2333. mpls--;
  2334. *mpls |= MPLS_STACK_BOTTOM;
  2335. }
  2336. static inline __be16 build_tci(unsigned int id, unsigned int cfi,
  2337. unsigned int prio)
  2338. {
  2339. return htons(id | (cfi << 12) | (prio << 13));
  2340. }
  2341. static void pktgen_finalize_skb(struct pktgen_dev *pkt_dev, struct sk_buff *skb,
  2342. int datalen)
  2343. {
  2344. struct timespec64 timestamp;
  2345. struct pktgen_hdr *pgh;
  2346. pgh = skb_put(skb, sizeof(*pgh));
  2347. datalen -= sizeof(*pgh);
  2348. if (pkt_dev->nfrags <= 0) {
  2349. skb_put_zero(skb, datalen);
  2350. } else {
  2351. int frags = pkt_dev->nfrags;
  2352. int i, len;
  2353. int frag_len;
  2354. if (frags > MAX_SKB_FRAGS)
  2355. frags = MAX_SKB_FRAGS;
  2356. len = datalen - frags * PAGE_SIZE;
  2357. if (len > 0) {
  2358. skb_put_zero(skb, len);
  2359. datalen = frags * PAGE_SIZE;
  2360. }
  2361. i = 0;
  2362. frag_len = (datalen/frags) < PAGE_SIZE ?
  2363. (datalen/frags) : PAGE_SIZE;
  2364. while (datalen > 0) {
  2365. if (unlikely(!pkt_dev->page)) {
  2366. int node = numa_node_id();
  2367. if (pkt_dev->node >= 0 && (pkt_dev->flags & F_NODE))
  2368. node = pkt_dev->node;
  2369. pkt_dev->page = alloc_pages_node(node, GFP_KERNEL | __GFP_ZERO, 0);
  2370. if (!pkt_dev->page)
  2371. break;
  2372. }
  2373. get_page(pkt_dev->page);
  2374. skb_frag_set_page(skb, i, pkt_dev->page);
  2375. skb_frag_off_set(&skb_shinfo(skb)->frags[i], 0);
  2376. /*last fragment, fill rest of data*/
  2377. if (i == (frags - 1))
  2378. skb_frag_size_set(&skb_shinfo(skb)->frags[i],
  2379. (datalen < PAGE_SIZE ? datalen : PAGE_SIZE));
  2380. else
  2381. skb_frag_size_set(&skb_shinfo(skb)->frags[i], frag_len);
  2382. datalen -= skb_frag_size(&skb_shinfo(skb)->frags[i]);
  2383. skb->len += skb_frag_size(&skb_shinfo(skb)->frags[i]);
  2384. skb->data_len += skb_frag_size(&skb_shinfo(skb)->frags[i]);
  2385. i++;
  2386. skb_shinfo(skb)->nr_frags = i;
  2387. }
  2388. }
  2389. /* Stamp the time, and sequence number,
  2390. * convert them to network byte order
  2391. */
  2392. pgh->pgh_magic = htonl(PKTGEN_MAGIC);
  2393. pgh->seq_num = htonl(pkt_dev->seq_num);
  2394. if (pkt_dev->flags & F_NO_TIMESTAMP) {
  2395. pgh->tv_sec = 0;
  2396. pgh->tv_usec = 0;
  2397. } else {
  2398. /*
  2399. * pgh->tv_sec wraps in y2106 when interpreted as unsigned
  2400. * as done by wireshark, or y2038 when interpreted as signed.
  2401. * This is probably harmless, but if anyone wants to improve
  2402. * it, we could introduce a variant that puts 64-bit nanoseconds
  2403. * into the respective header bytes.
  2404. * This would also be slightly faster to read.
  2405. */
  2406. ktime_get_real_ts64(&timestamp);
  2407. pgh->tv_sec = htonl(timestamp.tv_sec);
  2408. pgh->tv_usec = htonl(timestamp.tv_nsec / NSEC_PER_USEC);
  2409. }
  2410. }
  2411. static struct sk_buff *pktgen_alloc_skb(struct net_device *dev,
  2412. struct pktgen_dev *pkt_dev)
  2413. {
  2414. unsigned int extralen = LL_RESERVED_SPACE(dev);
  2415. struct sk_buff *skb = NULL;
  2416. unsigned int size;
  2417. size = pkt_dev->cur_pkt_size + 64 + extralen + pkt_dev->pkt_overhead;
  2418. if (pkt_dev->flags & F_NODE) {
  2419. int node = pkt_dev->node >= 0 ? pkt_dev->node : numa_node_id();
  2420. skb = __alloc_skb(NET_SKB_PAD + size, GFP_NOWAIT, 0, node);
  2421. if (likely(skb)) {
  2422. skb_reserve(skb, NET_SKB_PAD);
  2423. skb->dev = dev;
  2424. }
  2425. } else {
  2426. skb = __netdev_alloc_skb(dev, size, GFP_NOWAIT);
  2427. }
  2428. /* the caller pre-fetches from skb->data and reserves for the mac hdr */
  2429. if (likely(skb))
  2430. skb_reserve(skb, extralen - 16);
  2431. return skb;
  2432. }
  2433. static struct sk_buff *fill_packet_ipv4(struct net_device *odev,
  2434. struct pktgen_dev *pkt_dev)
  2435. {
  2436. struct sk_buff *skb = NULL;
  2437. __u8 *eth;
  2438. struct udphdr *udph;
  2439. int datalen, iplen;
  2440. struct iphdr *iph;
  2441. __be16 protocol = htons(ETH_P_IP);
  2442. __be32 *mpls;
  2443. __be16 *vlan_tci = NULL; /* Encapsulates priority and VLAN ID */
  2444. __be16 *vlan_encapsulated_proto = NULL; /* packet type ID field (or len) for VLAN tag */
  2445. __be16 *svlan_tci = NULL; /* Encapsulates priority and SVLAN ID */
  2446. __be16 *svlan_encapsulated_proto = NULL; /* packet type ID field (or len) for SVLAN tag */
  2447. u16 queue_map;
  2448. if (pkt_dev->nr_labels)
  2449. protocol = htons(ETH_P_MPLS_UC);
  2450. if (pkt_dev->vlan_id != 0xffff)
  2451. protocol = htons(ETH_P_8021Q);
  2452. /* Update any of the values, used when we're incrementing various
  2453. * fields.
  2454. */
  2455. mod_cur_headers(pkt_dev);
  2456. queue_map = pkt_dev->cur_queue_map;
  2457. skb = pktgen_alloc_skb(odev, pkt_dev);
  2458. if (!skb) {
  2459. sprintf(pkt_dev->result, "No memory");
  2460. return NULL;
  2461. }
  2462. prefetchw(skb->data);
  2463. skb_reserve(skb, 16);
  2464. /* Reserve for ethernet and IP header */
  2465. eth = skb_push(skb, 14);
  2466. mpls = skb_put(skb, pkt_dev->nr_labels * sizeof(__u32));
  2467. if (pkt_dev->nr_labels)
  2468. mpls_push(mpls, pkt_dev);
  2469. if (pkt_dev->vlan_id != 0xffff) {
  2470. if (pkt_dev->svlan_id != 0xffff) {
  2471. svlan_tci = skb_put(skb, sizeof(__be16));
  2472. *svlan_tci = build_tci(pkt_dev->svlan_id,
  2473. pkt_dev->svlan_cfi,
  2474. pkt_dev->svlan_p);
  2475. svlan_encapsulated_proto = skb_put(skb,
  2476. sizeof(__be16));
  2477. *svlan_encapsulated_proto = htons(ETH_P_8021Q);
  2478. }
  2479. vlan_tci = skb_put(skb, sizeof(__be16));
  2480. *vlan_tci = build_tci(pkt_dev->vlan_id,
  2481. pkt_dev->vlan_cfi,
  2482. pkt_dev->vlan_p);
  2483. vlan_encapsulated_proto = skb_put(skb, sizeof(__be16));
  2484. *vlan_encapsulated_proto = htons(ETH_P_IP);
  2485. }
  2486. skb_reset_mac_header(skb);
  2487. skb_set_network_header(skb, skb->len);
  2488. iph = skb_put(skb, sizeof(struct iphdr));
  2489. skb_set_transport_header(skb, skb->len);
  2490. udph = skb_put(skb, sizeof(struct udphdr));
  2491. skb_set_queue_mapping(skb, queue_map);
  2492. skb->priority = pkt_dev->skb_priority;
  2493. memcpy(eth, pkt_dev->hh, 12);
  2494. *(__be16 *) & eth[12] = protocol;
  2495. /* Eth + IPh + UDPh + mpls */
  2496. datalen = pkt_dev->cur_pkt_size - 14 - 20 - 8 -
  2497. pkt_dev->pkt_overhead;
  2498. if (datalen < 0 || datalen < sizeof(struct pktgen_hdr))
  2499. datalen = sizeof(struct pktgen_hdr);
  2500. udph->source = htons(pkt_dev->cur_udp_src);
  2501. udph->dest = htons(pkt_dev->cur_udp_dst);
  2502. udph->len = htons(datalen + 8); /* DATA + udphdr */
  2503. udph->check = 0;
  2504. iph->ihl = 5;
  2505. iph->version = 4;
  2506. iph->ttl = 32;
  2507. iph->tos = pkt_dev->tos;
  2508. iph->protocol = IPPROTO_UDP; /* UDP */
  2509. iph->saddr = pkt_dev->cur_saddr;
  2510. iph->daddr = pkt_dev->cur_daddr;
  2511. iph->id = htons(pkt_dev->ip_id);
  2512. pkt_dev->ip_id++;
  2513. iph->frag_off = 0;
  2514. iplen = 20 + 8 + datalen;
  2515. iph->tot_len = htons(iplen);
  2516. ip_send_check(iph);
  2517. skb->protocol = protocol;
  2518. skb->dev = odev;
  2519. skb->pkt_type = PACKET_HOST;
  2520. pktgen_finalize_skb(pkt_dev, skb, datalen);
  2521. if (!(pkt_dev->flags & F_UDPCSUM)) {
  2522. skb->ip_summed = CHECKSUM_NONE;
  2523. } else if (odev->features & (NETIF_F_HW_CSUM | NETIF_F_IP_CSUM)) {
  2524. skb->ip_summed = CHECKSUM_PARTIAL;
  2525. skb->csum = 0;
  2526. udp4_hwcsum(skb, iph->saddr, iph->daddr);
  2527. } else {
  2528. __wsum csum = skb_checksum(skb, skb_transport_offset(skb), datalen + 8, 0);
  2529. /* add protocol-dependent pseudo-header */
  2530. udph->check = csum_tcpudp_magic(iph->saddr, iph->daddr,
  2531. datalen + 8, IPPROTO_UDP, csum);
  2532. if (udph->check == 0)
  2533. udph->check = CSUM_MANGLED_0;
  2534. }
  2535. #ifdef CONFIG_XFRM
  2536. if (!process_ipsec(pkt_dev, skb, protocol))
  2537. return NULL;
  2538. #endif
  2539. return skb;
  2540. }
  2541. static struct sk_buff *fill_packet_ipv6(struct net_device *odev,
  2542. struct pktgen_dev *pkt_dev)
  2543. {
  2544. struct sk_buff *skb = NULL;
  2545. __u8 *eth;
  2546. struct udphdr *udph;
  2547. int datalen, udplen;
  2548. struct ipv6hdr *iph;
  2549. __be16 protocol = htons(ETH_P_IPV6);
  2550. __be32 *mpls;
  2551. __be16 *vlan_tci = NULL; /* Encapsulates priority and VLAN ID */
  2552. __be16 *vlan_encapsulated_proto = NULL; /* packet type ID field (or len) for VLAN tag */
  2553. __be16 *svlan_tci = NULL; /* Encapsulates priority and SVLAN ID */
  2554. __be16 *svlan_encapsulated_proto = NULL; /* packet type ID field (or len) for SVLAN tag */
  2555. u16 queue_map;
  2556. if (pkt_dev->nr_labels)
  2557. protocol = htons(ETH_P_MPLS_UC);
  2558. if (pkt_dev->vlan_id != 0xffff)
  2559. protocol = htons(ETH_P_8021Q);
  2560. /* Update any of the values, used when we're incrementing various
  2561. * fields.
  2562. */
  2563. mod_cur_headers(pkt_dev);
  2564. queue_map = pkt_dev->cur_queue_map;
  2565. skb = pktgen_alloc_skb(odev, pkt_dev);
  2566. if (!skb) {
  2567. sprintf(pkt_dev->result, "No memory");
  2568. return NULL;
  2569. }
  2570. prefetchw(skb->data);
  2571. skb_reserve(skb, 16);
  2572. /* Reserve for ethernet and IP header */
  2573. eth = skb_push(skb, 14);
  2574. mpls = skb_put(skb, pkt_dev->nr_labels * sizeof(__u32));
  2575. if (pkt_dev->nr_labels)
  2576. mpls_push(mpls, pkt_dev);
  2577. if (pkt_dev->vlan_id != 0xffff) {
  2578. if (pkt_dev->svlan_id != 0xffff) {
  2579. svlan_tci = skb_put(skb, sizeof(__be16));
  2580. *svlan_tci = build_tci(pkt_dev->svlan_id,
  2581. pkt_dev->svlan_cfi,
  2582. pkt_dev->svlan_p);
  2583. svlan_encapsulated_proto = skb_put(skb,
  2584. sizeof(__be16));
  2585. *svlan_encapsulated_proto = htons(ETH_P_8021Q);
  2586. }
  2587. vlan_tci = skb_put(skb, sizeof(__be16));
  2588. *vlan_tci = build_tci(pkt_dev->vlan_id,
  2589. pkt_dev->vlan_cfi,
  2590. pkt_dev->vlan_p);
  2591. vlan_encapsulated_proto = skb_put(skb, sizeof(__be16));
  2592. *vlan_encapsulated_proto = htons(ETH_P_IPV6);
  2593. }
  2594. skb_reset_mac_header(skb);
  2595. skb_set_network_header(skb, skb->len);
  2596. iph = skb_put(skb, sizeof(struct ipv6hdr));
  2597. skb_set_transport_header(skb, skb->len);
  2598. udph = skb_put(skb, sizeof(struct udphdr));
  2599. skb_set_queue_mapping(skb, queue_map);
  2600. skb->priority = pkt_dev->skb_priority;
  2601. memcpy(eth, pkt_dev->hh, 12);
  2602. *(__be16 *) &eth[12] = protocol;
  2603. /* Eth + IPh + UDPh + mpls */
  2604. datalen = pkt_dev->cur_pkt_size - 14 -
  2605. sizeof(struct ipv6hdr) - sizeof(struct udphdr) -
  2606. pkt_dev->pkt_overhead;
  2607. if (datalen < 0 || datalen < sizeof(struct pktgen_hdr)) {
  2608. datalen = sizeof(struct pktgen_hdr);
  2609. net_info_ratelimited("increased datalen to %d\n", datalen);
  2610. }
  2611. udplen = datalen + sizeof(struct udphdr);
  2612. udph->source = htons(pkt_dev->cur_udp_src);
  2613. udph->dest = htons(pkt_dev->cur_udp_dst);
  2614. udph->len = htons(udplen);
  2615. udph->check = 0;
  2616. *(__be32 *) iph = htonl(0x60000000); /* Version + flow */
  2617. if (pkt_dev->traffic_class) {
  2618. /* Version + traffic class + flow (0) */
  2619. *(__be32 *)iph |= htonl(0x60000000 | (pkt_dev->traffic_class << 20));
  2620. }
  2621. iph->hop_limit = 32;
  2622. iph->payload_len = htons(udplen);
  2623. iph->nexthdr = IPPROTO_UDP;
  2624. iph->daddr = pkt_dev->cur_in6_daddr;
  2625. iph->saddr = pkt_dev->cur_in6_saddr;
  2626. skb->protocol = protocol;
  2627. skb->dev = odev;
  2628. skb->pkt_type = PACKET_HOST;
  2629. pktgen_finalize_skb(pkt_dev, skb, datalen);
  2630. if (!(pkt_dev->flags & F_UDPCSUM)) {
  2631. skb->ip_summed = CHECKSUM_NONE;
  2632. } else if (odev->features & (NETIF_F_HW_CSUM | NETIF_F_IPV6_CSUM)) {
  2633. skb->ip_summed = CHECKSUM_PARTIAL;
  2634. skb->csum_start = skb_transport_header(skb) - skb->head;
  2635. skb->csum_offset = offsetof(struct udphdr, check);
  2636. udph->check = ~csum_ipv6_magic(&iph->saddr, &iph->daddr, udplen, IPPROTO_UDP, 0);
  2637. } else {
  2638. __wsum csum = skb_checksum(skb, skb_transport_offset(skb), udplen, 0);
  2639. /* add protocol-dependent pseudo-header */
  2640. udph->check = csum_ipv6_magic(&iph->saddr, &iph->daddr, udplen, IPPROTO_UDP, csum);
  2641. if (udph->check == 0)
  2642. udph->check = CSUM_MANGLED_0;
  2643. }
  2644. return skb;
  2645. }
  2646. static struct sk_buff *fill_packet(struct net_device *odev,
  2647. struct pktgen_dev *pkt_dev)
  2648. {
  2649. if (pkt_dev->flags & F_IPV6)
  2650. return fill_packet_ipv6(odev, pkt_dev);
  2651. else
  2652. return fill_packet_ipv4(odev, pkt_dev);
  2653. }
  2654. static void pktgen_clear_counters(struct pktgen_dev *pkt_dev)
  2655. {
  2656. pkt_dev->seq_num = 1;
  2657. pkt_dev->idle_acc = 0;
  2658. pkt_dev->sofar = 0;
  2659. pkt_dev->tx_bytes = 0;
  2660. pkt_dev->errors = 0;
  2661. }
  2662. /* Set up structure for sending pkts, clear counters */
  2663. static void pktgen_run(struct pktgen_thread *t)
  2664. {
  2665. struct pktgen_dev *pkt_dev;
  2666. int started = 0;
  2667. func_enter();
  2668. rcu_read_lock();
  2669. list_for_each_entry_rcu(pkt_dev, &t->if_list, list) {
  2670. /*
  2671. * setup odev and create initial packet.
  2672. */
  2673. pktgen_setup_inject(pkt_dev);
  2674. if (pkt_dev->odev) {
  2675. pktgen_clear_counters(pkt_dev);
  2676. pkt_dev->skb = NULL;
  2677. pkt_dev->started_at = pkt_dev->next_tx = ktime_get();
  2678. set_pkt_overhead(pkt_dev);
  2679. strcpy(pkt_dev->result, "Starting");
  2680. pkt_dev->running = 1; /* Cranke yeself! */
  2681. started++;
  2682. } else
  2683. strcpy(pkt_dev->result, "Error starting");
  2684. }
  2685. rcu_read_unlock();
  2686. if (started)
  2687. t->control &= ~(T_STOP);
  2688. }
  2689. static void pktgen_handle_all_threads(struct pktgen_net *pn, u32 flags)
  2690. {
  2691. struct pktgen_thread *t;
  2692. mutex_lock(&pktgen_thread_lock);
  2693. list_for_each_entry(t, &pn->pktgen_threads, th_list)
  2694. t->control |= (flags);
  2695. mutex_unlock(&pktgen_thread_lock);
  2696. }
  2697. static void pktgen_stop_all_threads(struct pktgen_net *pn)
  2698. {
  2699. func_enter();
  2700. pktgen_handle_all_threads(pn, T_STOP);
  2701. }
  2702. static int thread_is_running(const struct pktgen_thread *t)
  2703. {
  2704. const struct pktgen_dev *pkt_dev;
  2705. rcu_read_lock();
  2706. list_for_each_entry_rcu(pkt_dev, &t->if_list, list)
  2707. if (pkt_dev->running) {
  2708. rcu_read_unlock();
  2709. return 1;
  2710. }
  2711. rcu_read_unlock();
  2712. return 0;
  2713. }
  2714. static int pktgen_wait_thread_run(struct pktgen_thread *t)
  2715. {
  2716. while (thread_is_running(t)) {
  2717. /* note: 't' will still be around even after the unlock/lock
  2718. * cycle because pktgen_thread threads are only cleared at
  2719. * net exit
  2720. */
  2721. mutex_unlock(&pktgen_thread_lock);
  2722. msleep_interruptible(100);
  2723. mutex_lock(&pktgen_thread_lock);
  2724. if (signal_pending(current))
  2725. goto signal;
  2726. }
  2727. return 1;
  2728. signal:
  2729. return 0;
  2730. }
  2731. static int pktgen_wait_all_threads_run(struct pktgen_net *pn)
  2732. {
  2733. struct pktgen_thread *t;
  2734. int sig = 1;
  2735. /* prevent from racing with rmmod */
  2736. if (!try_module_get(THIS_MODULE))
  2737. return sig;
  2738. mutex_lock(&pktgen_thread_lock);
  2739. list_for_each_entry(t, &pn->pktgen_threads, th_list) {
  2740. sig = pktgen_wait_thread_run(t);
  2741. if (sig == 0)
  2742. break;
  2743. }
  2744. if (sig == 0)
  2745. list_for_each_entry(t, &pn->pktgen_threads, th_list)
  2746. t->control |= (T_STOP);
  2747. mutex_unlock(&pktgen_thread_lock);
  2748. module_put(THIS_MODULE);
  2749. return sig;
  2750. }
  2751. static void pktgen_run_all_threads(struct pktgen_net *pn)
  2752. {
  2753. func_enter();
  2754. pktgen_handle_all_threads(pn, T_RUN);
  2755. /* Propagate thread->control */
  2756. schedule_timeout_interruptible(msecs_to_jiffies(125));
  2757. pktgen_wait_all_threads_run(pn);
  2758. }
  2759. static void pktgen_reset_all_threads(struct pktgen_net *pn)
  2760. {
  2761. func_enter();
  2762. pktgen_handle_all_threads(pn, T_REMDEVALL);
  2763. /* Propagate thread->control */
  2764. schedule_timeout_interruptible(msecs_to_jiffies(125));
  2765. pktgen_wait_all_threads_run(pn);
  2766. }
  2767. static void show_results(struct pktgen_dev *pkt_dev, int nr_frags)
  2768. {
  2769. __u64 bps, mbps, pps;
  2770. char *p = pkt_dev->result;
  2771. ktime_t elapsed = ktime_sub(pkt_dev->stopped_at,
  2772. pkt_dev->started_at);
  2773. ktime_t idle = ns_to_ktime(pkt_dev->idle_acc);
  2774. p += sprintf(p, "OK: %llu(c%llu+d%llu) usec, %llu (%dbyte,%dfrags)\n",
  2775. (unsigned long long)ktime_to_us(elapsed),
  2776. (unsigned long long)ktime_to_us(ktime_sub(elapsed, idle)),
  2777. (unsigned long long)ktime_to_us(idle),
  2778. (unsigned long long)pkt_dev->sofar,
  2779. pkt_dev->cur_pkt_size, nr_frags);
  2780. pps = div64_u64(pkt_dev->sofar * NSEC_PER_SEC,
  2781. ktime_to_ns(elapsed));
  2782. if (pkt_dev->n_imix_entries > 0) {
  2783. int i;
  2784. struct imix_pkt *entry;
  2785. bps = 0;
  2786. for (i = 0; i < pkt_dev->n_imix_entries; i++) {
  2787. entry = &pkt_dev->imix_entries[i];
  2788. bps += entry->size * entry->count_so_far;
  2789. }
  2790. bps = div64_u64(bps * 8 * NSEC_PER_SEC, ktime_to_ns(elapsed));
  2791. } else {
  2792. bps = pps * 8 * pkt_dev->cur_pkt_size;
  2793. }
  2794. mbps = bps;
  2795. do_div(mbps, 1000000);
  2796. p += sprintf(p, " %llupps %lluMb/sec (%llubps) errors: %llu",
  2797. (unsigned long long)pps,
  2798. (unsigned long long)mbps,
  2799. (unsigned long long)bps,
  2800. (unsigned long long)pkt_dev->errors);
  2801. }
  2802. /* Set stopped-at timer, remove from running list, do counters & statistics */
  2803. static int pktgen_stop_device(struct pktgen_dev *pkt_dev)
  2804. {
  2805. int nr_frags = pkt_dev->skb ? skb_shinfo(pkt_dev->skb)->nr_frags : -1;
  2806. if (!pkt_dev->running) {
  2807. pr_warn("interface: %s is already stopped\n",
  2808. pkt_dev->odevname);
  2809. return -EINVAL;
  2810. }
  2811. pkt_dev->running = 0;
  2812. kfree_skb(pkt_dev->skb);
  2813. pkt_dev->skb = NULL;
  2814. pkt_dev->stopped_at = ktime_get();
  2815. show_results(pkt_dev, nr_frags);
  2816. return 0;
  2817. }
  2818. static struct pktgen_dev *next_to_run(struct pktgen_thread *t)
  2819. {
  2820. struct pktgen_dev *pkt_dev, *best = NULL;
  2821. rcu_read_lock();
  2822. list_for_each_entry_rcu(pkt_dev, &t->if_list, list) {
  2823. if (!pkt_dev->running)
  2824. continue;
  2825. if (best == NULL)
  2826. best = pkt_dev;
  2827. else if (ktime_compare(pkt_dev->next_tx, best->next_tx) < 0)
  2828. best = pkt_dev;
  2829. }
  2830. rcu_read_unlock();
  2831. return best;
  2832. }
  2833. static void pktgen_stop(struct pktgen_thread *t)
  2834. {
  2835. struct pktgen_dev *pkt_dev;
  2836. func_enter();
  2837. rcu_read_lock();
  2838. list_for_each_entry_rcu(pkt_dev, &t->if_list, list) {
  2839. pktgen_stop_device(pkt_dev);
  2840. }
  2841. rcu_read_unlock();
  2842. }
  2843. /*
  2844. * one of our devices needs to be removed - find it
  2845. * and remove it
  2846. */
  2847. static void pktgen_rem_one_if(struct pktgen_thread *t)
  2848. {
  2849. struct list_head *q, *n;
  2850. struct pktgen_dev *cur;
  2851. func_enter();
  2852. list_for_each_safe(q, n, &t->if_list) {
  2853. cur = list_entry(q, struct pktgen_dev, list);
  2854. if (!cur->removal_mark)
  2855. continue;
  2856. kfree_skb(cur->skb);
  2857. cur->skb = NULL;
  2858. pktgen_remove_device(t, cur);
  2859. break;
  2860. }
  2861. }
  2862. static void pktgen_rem_all_ifs(struct pktgen_thread *t)
  2863. {
  2864. struct list_head *q, *n;
  2865. struct pktgen_dev *cur;
  2866. func_enter();
  2867. /* Remove all devices, free mem */
  2868. list_for_each_safe(q, n, &t->if_list) {
  2869. cur = list_entry(q, struct pktgen_dev, list);
  2870. kfree_skb(cur->skb);
  2871. cur->skb = NULL;
  2872. pktgen_remove_device(t, cur);
  2873. }
  2874. }
  2875. static void pktgen_rem_thread(struct pktgen_thread *t)
  2876. {
  2877. /* Remove from the thread list */
  2878. remove_proc_entry(t->tsk->comm, t->net->proc_dir);
  2879. }
  2880. static void pktgen_resched(struct pktgen_dev *pkt_dev)
  2881. {
  2882. ktime_t idle_start = ktime_get();
  2883. schedule();
  2884. pkt_dev->idle_acc += ktime_to_ns(ktime_sub(ktime_get(), idle_start));
  2885. }
  2886. static void pktgen_wait_for_skb(struct pktgen_dev *pkt_dev)
  2887. {
  2888. ktime_t idle_start = ktime_get();
  2889. while (refcount_read(&(pkt_dev->skb->users)) != 1) {
  2890. if (signal_pending(current))
  2891. break;
  2892. if (need_resched())
  2893. pktgen_resched(pkt_dev);
  2894. else
  2895. cpu_relax();
  2896. }
  2897. pkt_dev->idle_acc += ktime_to_ns(ktime_sub(ktime_get(), idle_start));
  2898. }
  2899. static void pktgen_xmit(struct pktgen_dev *pkt_dev)
  2900. {
  2901. unsigned int burst = READ_ONCE(pkt_dev->burst);
  2902. struct net_device *odev = pkt_dev->odev;
  2903. struct netdev_queue *txq;
  2904. struct sk_buff *skb;
  2905. int ret;
  2906. /* If device is offline, then don't send */
  2907. if (unlikely(!netif_running(odev) || !netif_carrier_ok(odev))) {
  2908. pktgen_stop_device(pkt_dev);
  2909. return;
  2910. }
  2911. /* This is max DELAY, this has special meaning of
  2912. * "never transmit"
  2913. */
  2914. if (unlikely(pkt_dev->delay == ULLONG_MAX)) {
  2915. pkt_dev->next_tx = ktime_add_ns(ktime_get(), ULONG_MAX);
  2916. return;
  2917. }
  2918. /* If no skb or clone count exhausted then get new one */
  2919. if (!pkt_dev->skb || (pkt_dev->last_ok &&
  2920. ++pkt_dev->clone_count >= pkt_dev->clone_skb)) {
  2921. /* build a new pkt */
  2922. kfree_skb(pkt_dev->skb);
  2923. pkt_dev->skb = fill_packet(odev, pkt_dev);
  2924. if (pkt_dev->skb == NULL) {
  2925. pr_err("ERROR: couldn't allocate skb in fill_packet\n");
  2926. schedule();
  2927. pkt_dev->clone_count--; /* back out increment, OOM */
  2928. return;
  2929. }
  2930. pkt_dev->last_pkt_size = pkt_dev->skb->len;
  2931. pkt_dev->clone_count = 0; /* reset counter */
  2932. }
  2933. if (pkt_dev->delay && pkt_dev->last_ok)
  2934. spin(pkt_dev, pkt_dev->next_tx);
  2935. if (pkt_dev->xmit_mode == M_NETIF_RECEIVE) {
  2936. skb = pkt_dev->skb;
  2937. skb->protocol = eth_type_trans(skb, skb->dev);
  2938. refcount_add(burst, &skb->users);
  2939. local_bh_disable();
  2940. do {
  2941. ret = netif_receive_skb(skb);
  2942. if (ret == NET_RX_DROP)
  2943. pkt_dev->errors++;
  2944. pkt_dev->sofar++;
  2945. pkt_dev->seq_num++;
  2946. if (refcount_read(&skb->users) != burst) {
  2947. /* skb was queued by rps/rfs or taps,
  2948. * so cannot reuse this skb
  2949. */
  2950. WARN_ON(refcount_sub_and_test(burst - 1, &skb->users));
  2951. /* get out of the loop and wait
  2952. * until skb is consumed
  2953. */
  2954. break;
  2955. }
  2956. /* skb was 'freed' by stack, so clean few
  2957. * bits and reuse it
  2958. */
  2959. skb_reset_redirect(skb);
  2960. } while (--burst > 0);
  2961. goto out; /* Skips xmit_mode M_START_XMIT */
  2962. } else if (pkt_dev->xmit_mode == M_QUEUE_XMIT) {
  2963. local_bh_disable();
  2964. refcount_inc(&pkt_dev->skb->users);
  2965. ret = dev_queue_xmit(pkt_dev->skb);
  2966. switch (ret) {
  2967. case NET_XMIT_SUCCESS:
  2968. pkt_dev->sofar++;
  2969. pkt_dev->seq_num++;
  2970. pkt_dev->tx_bytes += pkt_dev->last_pkt_size;
  2971. break;
  2972. case NET_XMIT_DROP:
  2973. case NET_XMIT_CN:
  2974. /* These are all valid return codes for a qdisc but
  2975. * indicate packets are being dropped or will likely
  2976. * be dropped soon.
  2977. */
  2978. case NETDEV_TX_BUSY:
  2979. /* qdisc may call dev_hard_start_xmit directly in cases
  2980. * where no queues exist e.g. loopback device, virtual
  2981. * devices, etc. In this case we need to handle
  2982. * NETDEV_TX_ codes.
  2983. */
  2984. default:
  2985. pkt_dev->errors++;
  2986. net_info_ratelimited("%s xmit error: %d\n",
  2987. pkt_dev->odevname, ret);
  2988. break;
  2989. }
  2990. goto out;
  2991. }
  2992. txq = skb_get_tx_queue(odev, pkt_dev->skb);
  2993. local_bh_disable();
  2994. HARD_TX_LOCK(odev, txq, smp_processor_id());
  2995. if (unlikely(netif_xmit_frozen_or_drv_stopped(txq))) {
  2996. pkt_dev->last_ok = 0;
  2997. goto unlock;
  2998. }
  2999. refcount_add(burst, &pkt_dev->skb->users);
  3000. xmit_more:
  3001. ret = netdev_start_xmit(pkt_dev->skb, odev, txq, --burst > 0);
  3002. switch (ret) {
  3003. case NETDEV_TX_OK:
  3004. pkt_dev->last_ok = 1;
  3005. pkt_dev->sofar++;
  3006. pkt_dev->seq_num++;
  3007. pkt_dev->tx_bytes += pkt_dev->last_pkt_size;
  3008. if (burst > 0 && !netif_xmit_frozen_or_drv_stopped(txq))
  3009. goto xmit_more;
  3010. break;
  3011. case NET_XMIT_DROP:
  3012. case NET_XMIT_CN:
  3013. /* skb has been consumed */
  3014. pkt_dev->errors++;
  3015. break;
  3016. default: /* Drivers are not supposed to return other values! */
  3017. net_info_ratelimited("%s xmit error: %d\n",
  3018. pkt_dev->odevname, ret);
  3019. pkt_dev->errors++;
  3020. fallthrough;
  3021. case NETDEV_TX_BUSY:
  3022. /* Retry it next time */
  3023. refcount_dec(&(pkt_dev->skb->users));
  3024. pkt_dev->last_ok = 0;
  3025. }
  3026. if (unlikely(burst))
  3027. WARN_ON(refcount_sub_and_test(burst, &pkt_dev->skb->users));
  3028. unlock:
  3029. HARD_TX_UNLOCK(odev, txq);
  3030. out:
  3031. local_bh_enable();
  3032. /* If pkt_dev->count is zero, then run forever */
  3033. if ((pkt_dev->count != 0) && (pkt_dev->sofar >= pkt_dev->count)) {
  3034. pktgen_wait_for_skb(pkt_dev);
  3035. /* Done with this */
  3036. pktgen_stop_device(pkt_dev);
  3037. }
  3038. }
  3039. /*
  3040. * Main loop of the thread goes here
  3041. */
  3042. static int pktgen_thread_worker(void *arg)
  3043. {
  3044. struct pktgen_thread *t = arg;
  3045. struct pktgen_dev *pkt_dev = NULL;
  3046. int cpu = t->cpu;
  3047. WARN_ON(smp_processor_id() != cpu);
  3048. init_waitqueue_head(&t->queue);
  3049. complete(&t->start_done);
  3050. pr_debug("starting pktgen/%d: pid=%d\n", cpu, task_pid_nr(current));
  3051. set_freezable();
  3052. while (!kthread_should_stop()) {
  3053. pkt_dev = next_to_run(t);
  3054. if (unlikely(!pkt_dev && t->control == 0)) {
  3055. if (t->net->pktgen_exiting)
  3056. break;
  3057. wait_event_interruptible_timeout(t->queue,
  3058. t->control != 0,
  3059. HZ/10);
  3060. try_to_freeze();
  3061. continue;
  3062. }
  3063. if (likely(pkt_dev)) {
  3064. pktgen_xmit(pkt_dev);
  3065. if (need_resched())
  3066. pktgen_resched(pkt_dev);
  3067. else
  3068. cpu_relax();
  3069. }
  3070. if (t->control & T_STOP) {
  3071. pktgen_stop(t);
  3072. t->control &= ~(T_STOP);
  3073. }
  3074. if (t->control & T_RUN) {
  3075. pktgen_run(t);
  3076. t->control &= ~(T_RUN);
  3077. }
  3078. if (t->control & T_REMDEVALL) {
  3079. pktgen_rem_all_ifs(t);
  3080. t->control &= ~(T_REMDEVALL);
  3081. }
  3082. if (t->control & T_REMDEV) {
  3083. pktgen_rem_one_if(t);
  3084. t->control &= ~(T_REMDEV);
  3085. }
  3086. try_to_freeze();
  3087. }
  3088. pr_debug("%s stopping all device\n", t->tsk->comm);
  3089. pktgen_stop(t);
  3090. pr_debug("%s removing all device\n", t->tsk->comm);
  3091. pktgen_rem_all_ifs(t);
  3092. pr_debug("%s removing thread\n", t->tsk->comm);
  3093. pktgen_rem_thread(t);
  3094. return 0;
  3095. }
  3096. static struct pktgen_dev *pktgen_find_dev(struct pktgen_thread *t,
  3097. const char *ifname, bool exact)
  3098. {
  3099. struct pktgen_dev *p, *pkt_dev = NULL;
  3100. size_t len = strlen(ifname);
  3101. rcu_read_lock();
  3102. list_for_each_entry_rcu(p, &t->if_list, list)
  3103. if (strncmp(p->odevname, ifname, len) == 0) {
  3104. if (p->odevname[len]) {
  3105. if (exact || p->odevname[len] != '@')
  3106. continue;
  3107. }
  3108. pkt_dev = p;
  3109. break;
  3110. }
  3111. rcu_read_unlock();
  3112. pr_debug("find_dev(%s) returning %p\n", ifname, pkt_dev);
  3113. return pkt_dev;
  3114. }
  3115. /*
  3116. * Adds a dev at front of if_list.
  3117. */
  3118. static int add_dev_to_thread(struct pktgen_thread *t,
  3119. struct pktgen_dev *pkt_dev)
  3120. {
  3121. int rv = 0;
  3122. /* This function cannot be called concurrently, as its called
  3123. * under pktgen_thread_lock mutex, but it can run from
  3124. * userspace on another CPU than the kthread. The if_lock()
  3125. * is used here to sync with concurrent instances of
  3126. * _rem_dev_from_if_list() invoked via kthread, which is also
  3127. * updating the if_list */
  3128. if_lock(t);
  3129. if (pkt_dev->pg_thread) {
  3130. pr_err("ERROR: already assigned to a thread\n");
  3131. rv = -EBUSY;
  3132. goto out;
  3133. }
  3134. pkt_dev->running = 0;
  3135. pkt_dev->pg_thread = t;
  3136. list_add_rcu(&pkt_dev->list, &t->if_list);
  3137. out:
  3138. if_unlock(t);
  3139. return rv;
  3140. }
  3141. /* Called under thread lock */
  3142. static int pktgen_add_device(struct pktgen_thread *t, const char *ifname)
  3143. {
  3144. struct pktgen_dev *pkt_dev;
  3145. int err;
  3146. int node = cpu_to_node(t->cpu);
  3147. /* We don't allow a device to be on several threads */
  3148. pkt_dev = __pktgen_NN_threads(t->net, ifname, FIND);
  3149. if (pkt_dev) {
  3150. pr_err("ERROR: interface already used\n");
  3151. return -EBUSY;
  3152. }
  3153. pkt_dev = kzalloc_node(sizeof(struct pktgen_dev), GFP_KERNEL, node);
  3154. if (!pkt_dev)
  3155. return -ENOMEM;
  3156. strcpy(pkt_dev->odevname, ifname);
  3157. pkt_dev->flows = vzalloc_node(array_size(MAX_CFLOWS,
  3158. sizeof(struct flow_state)),
  3159. node);
  3160. if (pkt_dev->flows == NULL) {
  3161. kfree(pkt_dev);
  3162. return -ENOMEM;
  3163. }
  3164. pkt_dev->removal_mark = 0;
  3165. pkt_dev->nfrags = 0;
  3166. pkt_dev->delay = pg_delay_d;
  3167. pkt_dev->count = pg_count_d;
  3168. pkt_dev->sofar = 0;
  3169. pkt_dev->udp_src_min = 9; /* sink port */
  3170. pkt_dev->udp_src_max = 9;
  3171. pkt_dev->udp_dst_min = 9;
  3172. pkt_dev->udp_dst_max = 9;
  3173. pkt_dev->vlan_p = 0;
  3174. pkt_dev->vlan_cfi = 0;
  3175. pkt_dev->vlan_id = 0xffff;
  3176. pkt_dev->svlan_p = 0;
  3177. pkt_dev->svlan_cfi = 0;
  3178. pkt_dev->svlan_id = 0xffff;
  3179. pkt_dev->burst = 1;
  3180. pkt_dev->node = NUMA_NO_NODE;
  3181. err = pktgen_setup_dev(t->net, pkt_dev, ifname);
  3182. if (err)
  3183. goto out1;
  3184. if (pkt_dev->odev->priv_flags & IFF_TX_SKB_SHARING)
  3185. pkt_dev->clone_skb = pg_clone_skb_d;
  3186. pkt_dev->entry = proc_create_data(ifname, 0600, t->net->proc_dir,
  3187. &pktgen_if_proc_ops, pkt_dev);
  3188. if (!pkt_dev->entry) {
  3189. pr_err("cannot create %s/%s procfs entry\n",
  3190. PG_PROC_DIR, ifname);
  3191. err = -EINVAL;
  3192. goto out2;
  3193. }
  3194. #ifdef CONFIG_XFRM
  3195. pkt_dev->ipsmode = XFRM_MODE_TRANSPORT;
  3196. pkt_dev->ipsproto = IPPROTO_ESP;
  3197. /* xfrm tunnel mode needs additional dst to extract outter
  3198. * ip header protocol/ttl/id field, here creat a phony one.
  3199. * instead of looking for a valid rt, which definitely hurting
  3200. * performance under such circumstance.
  3201. */
  3202. pkt_dev->dstops.family = AF_INET;
  3203. pkt_dev->xdst.u.dst.dev = pkt_dev->odev;
  3204. dst_init_metrics(&pkt_dev->xdst.u.dst, pktgen_dst_metrics, false);
  3205. pkt_dev->xdst.child = &pkt_dev->xdst.u.dst;
  3206. pkt_dev->xdst.u.dst.ops = &pkt_dev->dstops;
  3207. #endif
  3208. return add_dev_to_thread(t, pkt_dev);
  3209. out2:
  3210. netdev_put(pkt_dev->odev, &pkt_dev->dev_tracker);
  3211. out1:
  3212. #ifdef CONFIG_XFRM
  3213. free_SAs(pkt_dev);
  3214. #endif
  3215. vfree(pkt_dev->flows);
  3216. kfree(pkt_dev);
  3217. return err;
  3218. }
  3219. static int __net_init pktgen_create_thread(int cpu, struct pktgen_net *pn)
  3220. {
  3221. struct pktgen_thread *t;
  3222. struct proc_dir_entry *pe;
  3223. struct task_struct *p;
  3224. t = kzalloc_node(sizeof(struct pktgen_thread), GFP_KERNEL,
  3225. cpu_to_node(cpu));
  3226. if (!t) {
  3227. pr_err("ERROR: out of memory, can't create new thread\n");
  3228. return -ENOMEM;
  3229. }
  3230. mutex_init(&t->if_lock);
  3231. t->cpu = cpu;
  3232. INIT_LIST_HEAD(&t->if_list);
  3233. list_add_tail(&t->th_list, &pn->pktgen_threads);
  3234. init_completion(&t->start_done);
  3235. p = kthread_create_on_node(pktgen_thread_worker,
  3236. t,
  3237. cpu_to_node(cpu),
  3238. "kpktgend_%d", cpu);
  3239. if (IS_ERR(p)) {
  3240. pr_err("kthread_create_on_node() failed for cpu %d\n", t->cpu);
  3241. list_del(&t->th_list);
  3242. kfree(t);
  3243. return PTR_ERR(p);
  3244. }
  3245. kthread_bind(p, cpu);
  3246. t->tsk = p;
  3247. pe = proc_create_data(t->tsk->comm, 0600, pn->proc_dir,
  3248. &pktgen_thread_proc_ops, t);
  3249. if (!pe) {
  3250. pr_err("cannot create %s/%s procfs entry\n",
  3251. PG_PROC_DIR, t->tsk->comm);
  3252. kthread_stop(p);
  3253. list_del(&t->th_list);
  3254. kfree(t);
  3255. return -EINVAL;
  3256. }
  3257. t->net = pn;
  3258. get_task_struct(p);
  3259. wake_up_process(p);
  3260. wait_for_completion(&t->start_done);
  3261. return 0;
  3262. }
  3263. /*
  3264. * Removes a device from the thread if_list.
  3265. */
  3266. static void _rem_dev_from_if_list(struct pktgen_thread *t,
  3267. struct pktgen_dev *pkt_dev)
  3268. {
  3269. struct list_head *q, *n;
  3270. struct pktgen_dev *p;
  3271. if_lock(t);
  3272. list_for_each_safe(q, n, &t->if_list) {
  3273. p = list_entry(q, struct pktgen_dev, list);
  3274. if (p == pkt_dev)
  3275. list_del_rcu(&p->list);
  3276. }
  3277. if_unlock(t);
  3278. }
  3279. static int pktgen_remove_device(struct pktgen_thread *t,
  3280. struct pktgen_dev *pkt_dev)
  3281. {
  3282. pr_debug("remove_device pkt_dev=%p\n", pkt_dev);
  3283. if (pkt_dev->running) {
  3284. pr_warn("WARNING: trying to remove a running interface, stopping it now\n");
  3285. pktgen_stop_device(pkt_dev);
  3286. }
  3287. /* Dis-associate from the interface */
  3288. if (pkt_dev->odev) {
  3289. netdev_put(pkt_dev->odev, &pkt_dev->dev_tracker);
  3290. pkt_dev->odev = NULL;
  3291. }
  3292. /* Remove proc before if_list entry, because add_device uses
  3293. * list to determine if interface already exist, avoid race
  3294. * with proc_create_data() */
  3295. proc_remove(pkt_dev->entry);
  3296. /* And update the thread if_list */
  3297. _rem_dev_from_if_list(t, pkt_dev);
  3298. #ifdef CONFIG_XFRM
  3299. free_SAs(pkt_dev);
  3300. #endif
  3301. vfree(pkt_dev->flows);
  3302. if (pkt_dev->page)
  3303. put_page(pkt_dev->page);
  3304. kfree_rcu(pkt_dev, rcu);
  3305. return 0;
  3306. }
  3307. static int __net_init pg_net_init(struct net *net)
  3308. {
  3309. struct pktgen_net *pn = net_generic(net, pg_net_id);
  3310. struct proc_dir_entry *pe;
  3311. int cpu, ret = 0;
  3312. pn->net = net;
  3313. INIT_LIST_HEAD(&pn->pktgen_threads);
  3314. pn->pktgen_exiting = false;
  3315. pn->proc_dir = proc_mkdir(PG_PROC_DIR, pn->net->proc_net);
  3316. if (!pn->proc_dir) {
  3317. pr_warn("cannot create /proc/net/%s\n", PG_PROC_DIR);
  3318. return -ENODEV;
  3319. }
  3320. pe = proc_create(PGCTRL, 0600, pn->proc_dir, &pktgen_proc_ops);
  3321. if (pe == NULL) {
  3322. pr_err("cannot create %s procfs entry\n", PGCTRL);
  3323. ret = -EINVAL;
  3324. goto remove;
  3325. }
  3326. for_each_online_cpu(cpu) {
  3327. int err;
  3328. err = pktgen_create_thread(cpu, pn);
  3329. if (err)
  3330. pr_warn("Cannot create thread for cpu %d (%d)\n",
  3331. cpu, err);
  3332. }
  3333. if (list_empty(&pn->pktgen_threads)) {
  3334. pr_err("Initialization failed for all threads\n");
  3335. ret = -ENODEV;
  3336. goto remove_entry;
  3337. }
  3338. return 0;
  3339. remove_entry:
  3340. remove_proc_entry(PGCTRL, pn->proc_dir);
  3341. remove:
  3342. remove_proc_entry(PG_PROC_DIR, pn->net->proc_net);
  3343. return ret;
  3344. }
  3345. static void __net_exit pg_net_exit(struct net *net)
  3346. {
  3347. struct pktgen_net *pn = net_generic(net, pg_net_id);
  3348. struct pktgen_thread *t;
  3349. struct list_head *q, *n;
  3350. LIST_HEAD(list);
  3351. /* Stop all interfaces & threads */
  3352. pn->pktgen_exiting = true;
  3353. mutex_lock(&pktgen_thread_lock);
  3354. list_splice_init(&pn->pktgen_threads, &list);
  3355. mutex_unlock(&pktgen_thread_lock);
  3356. list_for_each_safe(q, n, &list) {
  3357. t = list_entry(q, struct pktgen_thread, th_list);
  3358. list_del(&t->th_list);
  3359. kthread_stop(t->tsk);
  3360. put_task_struct(t->tsk);
  3361. kfree(t);
  3362. }
  3363. remove_proc_entry(PGCTRL, pn->proc_dir);
  3364. remove_proc_entry(PG_PROC_DIR, pn->net->proc_net);
  3365. }
  3366. static struct pernet_operations pg_net_ops = {
  3367. .init = pg_net_init,
  3368. .exit = pg_net_exit,
  3369. .id = &pg_net_id,
  3370. .size = sizeof(struct pktgen_net),
  3371. };
  3372. static int __init pg_init(void)
  3373. {
  3374. int ret = 0;
  3375. pr_info("%s", version);
  3376. ret = register_pernet_subsys(&pg_net_ops);
  3377. if (ret)
  3378. return ret;
  3379. ret = register_netdevice_notifier(&pktgen_notifier_block);
  3380. if (ret)
  3381. unregister_pernet_subsys(&pg_net_ops);
  3382. return ret;
  3383. }
  3384. static void __exit pg_cleanup(void)
  3385. {
  3386. unregister_netdevice_notifier(&pktgen_notifier_block);
  3387. unregister_pernet_subsys(&pg_net_ops);
  3388. /* Don't need rcu_barrier() due to use of kfree_rcu() */
  3389. }
  3390. module_init(pg_init);
  3391. module_exit(pg_cleanup);
  3392. MODULE_AUTHOR("Robert Olsson <[email protected]>");
  3393. MODULE_DESCRIPTION("Packet Generator tool");
  3394. MODULE_LICENSE("GPL");
  3395. MODULE_VERSION(VERSION);
  3396. module_param(pg_count_d, int, 0);
  3397. MODULE_PARM_DESC(pg_count_d, "Default number of packets to inject");
  3398. module_param(pg_delay_d, int, 0);
  3399. MODULE_PARM_DESC(pg_delay_d, "Default delay between packets (nanoseconds)");
  3400. module_param(pg_clone_skb_d, int, 0);
  3401. MODULE_PARM_DESC(pg_clone_skb_d, "Default number of copies of the same packet");
  3402. module_param(debug, int, 0);
  3403. MODULE_PARM_DESC(debug, "Enable debugging of pktgen module");