1 // SPDX-License-Identifier: GPL-2.0 OR BSD-3-Clause 2 3 /* COMMON Applications Kept Enhanced (CAKE) discipline 4 * 5 * Copyright (C) 2014-2018 Jonathan Morton <chromatix99@gmail.com> 6 * Copyright (C) 2015-2018 Toke Høiland-Jørgensen <toke@toke.dk> 7 * Copyright (C) 2014-2018 Dave Täht <dave.taht@gmail.com> 8 * Copyright (C) 2015-2018 Sebastian Moeller <moeller0@gmx.de> 9 * (C) 2015-2018 Kevin Darbyshire-Bryant <kevin@darbyshire-bryant.me.uk> 10 * Copyright (C) 2017-2018 Ryan Mounce <ryan@mounce.com.au> 11 * 12 * The CAKE Principles: 13 * (or, how to have your cake and eat it too) 14 * 15 * This is a combination of several shaping, AQM and FQ techniques into one 16 * easy-to-use package: 17 * 18 * - An overall bandwidth shaper, to move the bottleneck away from dumb CPE 19 * equipment and bloated MACs. This operates in deficit mode (as in sch_fq), 20 * eliminating the need for any sort of burst parameter (eg. token bucket 21 * depth). Burst support is limited to that necessary to overcome scheduling 22 * latency. 23 * 24 * - A Diffserv-aware priority queue, giving more priority to certain classes, 25 * up to a specified fraction of bandwidth. Above that bandwidth threshold, 26 * the priority is reduced to avoid starving other tins. 27 * 28 * - Each priority tin has a separate Flow Queue system, to isolate traffic 29 * flows from each other. This prevents a burst on one flow from increasing 30 * the delay to another. Flows are distributed to queues using a 31 * set-associative hash function. 32 * 33 * - Each queue is actively managed by Cobalt, which is a combination of the 34 * Codel and Blue AQM algorithms. This serves flows fairly, and signals 35 * congestion early via ECN (if available) and/or packet drops, to keep 36 * latency low. The codel parameters are auto-tuned based on the bandwidth 37 * setting, as is necessary at low bandwidths. 38 * 39 * The configuration parameters are kept deliberately simple for ease of use. 40 * Everything has sane defaults. Complete generality of configuration is *not* 41 * a goal. 42 * 43 * The priority queue operates according to a weighted DRR scheme, combined with 44 * a bandwidth tracker which reuses the shaper logic to detect which side of the 45 * bandwidth sharing threshold the tin is operating. This determines whether a 46 * priority-based weight (high) or a bandwidth-based weight (low) is used for 47 * that tin in the current pass. 48 * 49 * This qdisc was inspired by Eric Dumazet's fq_codel code, which he kindly 50 * granted us permission to leverage. 51 */ 52 53 #include <linux/module.h> 54 #include <linux/types.h> 55 #include <linux/kernel.h> 56 #include <linux/jiffies.h> 57 #include <linux/string.h> 58 #include <linux/in.h> 59 #include <linux/errno.h> 60 #include <linux/init.h> 61 #include <linux/skbuff.h> 62 #include <linux/jhash.h> 63 #include <linux/slab.h> 64 #include <linux/vmalloc.h> 65 #include <linux/reciprocal_div.h> 66 #include <net/netlink.h> 67 #include <linux/if_vlan.h> 68 #include <net/gso.h> 69 #include <net/pkt_sched.h> 70 #include <net/sch_priv.h> 71 #include <net/pkt_cls.h> 72 #include <net/tcp.h> 73 #include <net/flow_dissector.h> 74 75 #if IS_ENABLED(CONFIG_NF_CONNTRACK) 76 #include <net/netfilter/nf_conntrack_core.h> 77 #endif 78 79 #define CAKE_SET_WAYS (8) 80 #define CAKE_MAX_TINS (8) 81 #define CAKE_QUEUES (1024) 82 #define CAKE_FLOW_MASK 63 83 #define CAKE_FLOW_NAT_FLAG 64 84 85 /* struct cobalt_params - contains codel and blue parameters 86 * @interval: codel initial drop rate 87 * @target: maximum persistent sojourn time & blue update rate 88 * @mtu_time: serialisation delay of maximum-size packet 89 * @p_inc: increment of blue drop probability (0.32 fxp) 90 * @p_dec: decrement of blue drop probability (0.32 fxp) 91 */ 92 struct cobalt_params { 93 u64 interval; 94 u64 target; 95 u64 mtu_time; 96 u32 p_inc; 97 u32 p_dec; 98 }; 99 100 /* struct cobalt_vars - contains codel and blue variables 101 * @count: codel dropping frequency 102 * @rec_inv_sqrt: reciprocal value of sqrt(count) >> 1 103 * @drop_next: time to drop next packet, or when we dropped last 104 * @blue_timer: Blue time to next drop 105 * @p_drop: BLUE drop probability (0.32 fxp) 106 * @dropping: set if in dropping state 107 * @ecn_marked: set if marked 108 */ 109 struct cobalt_vars { 110 u32 count; 111 u32 rec_inv_sqrt; 112 ktime_t drop_next; 113 ktime_t blue_timer; 114 u32 p_drop; 115 bool dropping; 116 bool ecn_marked; 117 }; 118 119 enum { 120 CAKE_SET_NONE = 0, 121 CAKE_SET_SPARSE, 122 CAKE_SET_SPARSE_WAIT, /* counted in SPARSE, actually in BULK */ 123 CAKE_SET_BULK, 124 CAKE_SET_DECAYING 125 }; 126 127 struct cake_flow { 128 /* this stuff is all needed per-flow at dequeue time */ 129 struct sk_buff *head; 130 struct sk_buff *tail; 131 struct list_head flowchain; 132 s32 deficit; 133 u32 dropped; 134 struct cobalt_vars cvars; 135 u16 srchost; /* index into cake_host table */ 136 u16 dsthost; 137 u8 set; 138 }; /* please try to keep this structure <= 64 bytes */ 139 140 struct cake_host { 141 u32 srchost_tag; 142 u32 dsthost_tag; 143 u16 srchost_bulk_flow_count; 144 u16 dsthost_bulk_flow_count; 145 }; 146 147 struct cake_heap_entry { 148 u16 t:3, b:10; 149 }; 150 151 struct cake_tin_data { 152 struct cake_flow flows[CAKE_QUEUES]; 153 u32 backlogs[CAKE_QUEUES]; 154 u32 tags[CAKE_QUEUES]; /* for set association */ 155 u16 overflow_idx[CAKE_QUEUES]; 156 struct cake_host hosts[CAKE_QUEUES]; /* for triple isolation */ 157 u16 flow_quantum; 158 159 struct cobalt_params cparams; 160 u32 drop_overlimit; 161 u16 bulk_flow_count; 162 u16 sparse_flow_count; 163 u16 decaying_flow_count; 164 u16 unresponsive_flow_count; 165 166 u32 max_skblen; 167 168 struct list_head new_flows; 169 struct list_head old_flows; 170 struct list_head decaying_flows; 171 172 /* time_next = time_this + ((len * rate_ns) >> rate_shft) */ 173 ktime_t time_next_packet; 174 u64 tin_rate_ns; 175 u64 tin_rate_bps; 176 u16 tin_rate_shft; 177 178 u16 tin_quantum; 179 s32 tin_deficit; 180 u32 tin_backlog; 181 u32 tin_dropped; 182 u32 tin_ecn_mark; 183 184 u32 packets; 185 u64 bytes; 186 187 u32 ack_drops; 188 189 /* moving averages */ 190 u64 avge_delay; 191 u64 peak_delay; 192 u64 base_delay; 193 194 /* hash function stats */ 195 u32 way_directs; 196 u32 way_hits; 197 u32 way_misses; 198 u32 way_collisions; 199 }; /* number of tins is small, so size of this struct doesn't matter much */ 200 201 struct cake_sched_config { 202 u64 rate_bps; 203 u64 interval; 204 u64 target; 205 u64 sync_time; 206 u32 buffer_config_limit; 207 u32 fwmark_mask; 208 u16 fwmark_shft; 209 s16 rate_overhead; 210 u16 rate_mpu; 211 u16 rate_flags; 212 u8 tin_mode; 213 u8 flow_mode; 214 u8 atm_mode; 215 u8 ack_filter; 216 u8 is_shared; 217 }; 218 219 struct cake_sched_data { 220 struct tcf_proto __rcu *filter_list; /* optional external classifier */ 221 struct tcf_block *block; 222 struct cake_tin_data *tins; 223 struct cake_sched_config *config; 224 struct cake_sched_config initial_config; 225 226 struct cake_heap_entry overflow_heap[CAKE_QUEUES * CAKE_MAX_TINS]; 227 228 /* time_next = time_this + ((len * rate_ns) >> rate_shft) */ 229 ktime_t time_next_packet; 230 ktime_t failsafe_next_packet; 231 u64 rate_ns; 232 u16 rate_shft; 233 u16 overflow_timeout; 234 u16 tin_cnt; 235 236 /* resource tracking */ 237 u32 buffer_used; 238 u32 buffer_max_used; 239 u32 buffer_limit; 240 241 /* indices for dequeue */ 242 u16 cur_tin; 243 u16 cur_flow; 244 245 struct qdisc_watchdog watchdog; 246 const u8 *tin_index; 247 const u8 *tin_order; 248 249 /* bandwidth capacity estimate */ 250 ktime_t last_packet_time; 251 ktime_t avg_window_begin; 252 u64 avg_packet_interval; 253 u64 avg_window_bytes; 254 u64 avg_peak_bandwidth; 255 ktime_t last_reconfig_time; 256 257 /* packet length stats */ 258 u32 avg_netoff; 259 u16 max_netlen; 260 u16 max_adjlen; 261 u16 min_netlen; 262 u16 min_adjlen; 263 264 /* mq sync state */ 265 u64 last_checked_active; 266 u64 last_active; 267 u32 active_queues; 268 }; 269 270 enum { 271 CAKE_FLAG_OVERHEAD = BIT(0), 272 CAKE_FLAG_AUTORATE_INGRESS = BIT(1), 273 CAKE_FLAG_INGRESS = BIT(2), 274 CAKE_FLAG_WASH = BIT(3), 275 CAKE_FLAG_SPLIT_GSO = BIT(4) 276 }; 277 278 /* COBALT operates the Codel and BLUE algorithms in parallel, in order to 279 * obtain the best features of each. Codel is excellent on flows which 280 * respond to congestion signals in a TCP-like way. BLUE is more effective on 281 * unresponsive flows. 282 */ 283 284 struct cobalt_skb_cb { 285 ktime_t enqueue_time; 286 u32 adjusted_len; 287 }; 288 289 static u64 us_to_ns(u64 us) 290 { 291 return us * NSEC_PER_USEC; 292 } 293 294 static struct cobalt_skb_cb *get_cobalt_cb(const struct sk_buff *skb) 295 { 296 qdisc_cb_private_validate(skb, sizeof(struct cobalt_skb_cb)); 297 return (struct cobalt_skb_cb *)qdisc_skb_cb(skb)->data; 298 } 299 300 static ktime_t cobalt_get_enqueue_time(const struct sk_buff *skb) 301 { 302 return get_cobalt_cb(skb)->enqueue_time; 303 } 304 305 static void cobalt_set_enqueue_time(struct sk_buff *skb, 306 ktime_t now) 307 { 308 get_cobalt_cb(skb)->enqueue_time = now; 309 } 310 311 static u16 quantum_div[CAKE_QUEUES + 1] = {0}; 312 313 /* Diffserv lookup tables */ 314 315 static const u8 precedence[] = { 316 0, 0, 0, 0, 0, 0, 0, 0, 317 1, 1, 1, 1, 1, 1, 1, 1, 318 2, 2, 2, 2, 2, 2, 2, 2, 319 3, 3, 3, 3, 3, 3, 3, 3, 320 4, 4, 4, 4, 4, 4, 4, 4, 321 5, 5, 5, 5, 5, 5, 5, 5, 322 6, 6, 6, 6, 6, 6, 6, 6, 323 7, 7, 7, 7, 7, 7, 7, 7, 324 }; 325 326 static const u8 diffserv8[] = { 327 2, 0, 1, 2, 4, 2, 2, 2, 328 1, 2, 1, 2, 1, 2, 1, 2, 329 5, 2, 4, 2, 4, 2, 4, 2, 330 3, 2, 3, 2, 3, 2, 3, 2, 331 6, 2, 3, 2, 3, 2, 3, 2, 332 6, 2, 2, 2, 6, 2, 6, 2, 333 7, 2, 2, 2, 2, 2, 2, 2, 334 7, 2, 2, 2, 2, 2, 2, 2, 335 }; 336 337 static const u8 diffserv4[] = { 338 0, 1, 0, 0, 2, 0, 0, 0, 339 1, 0, 0, 0, 0, 0, 0, 0, 340 2, 0, 2, 0, 2, 0, 2, 0, 341 2, 0, 2, 0, 2, 0, 2, 0, 342 3, 0, 2, 0, 2, 0, 2, 0, 343 3, 0, 0, 0, 3, 0, 3, 0, 344 3, 0, 0, 0, 0, 0, 0, 0, 345 3, 0, 0, 0, 0, 0, 0, 0, 346 }; 347 348 static const u8 diffserv3[] = { 349 0, 1, 0, 0, 2, 0, 0, 0, 350 1, 0, 0, 0, 0, 0, 0, 0, 351 0, 0, 0, 0, 0, 0, 0, 0, 352 0, 0, 0, 0, 0, 0, 0, 0, 353 0, 0, 0, 0, 0, 0, 0, 0, 354 0, 0, 0, 0, 2, 0, 2, 0, 355 2, 0, 0, 0, 0, 0, 0, 0, 356 2, 0, 0, 0, 0, 0, 0, 0, 357 }; 358 359 static const u8 besteffort[] = { 360 0, 0, 0, 0, 0, 0, 0, 0, 361 0, 0, 0, 0, 0, 0, 0, 0, 362 0, 0, 0, 0, 0, 0, 0, 0, 363 0, 0, 0, 0, 0, 0, 0, 0, 364 0, 0, 0, 0, 0, 0, 0, 0, 365 0, 0, 0, 0, 0, 0, 0, 0, 366 0, 0, 0, 0, 0, 0, 0, 0, 367 0, 0, 0, 0, 0, 0, 0, 0, 368 }; 369 370 /* tin priority order for stats dumping */ 371 372 static const u8 normal_order[] = {0, 1, 2, 3, 4, 5, 6, 7}; 373 static const u8 bulk_order[] = {1, 0, 2, 3}; 374 375 /* There is a big difference in timing between the accurate values placed in the 376 * cache and the approximations given by a single Newton step for small count 377 * values, particularly when stepping from count 1 to 2 or vice versa. Hence, 378 * these values are calculated using eight Newton steps, using the 379 * implementation below. Above 16, a single Newton step gives sufficient 380 * accuracy in either direction, given the precision stored. 381 * 382 * The magnitude of the error when stepping up to count 2 is such as to give the 383 * value that *should* have been produced at count 4. 384 */ 385 386 #define REC_INV_SQRT_CACHE (16) 387 static const u32 inv_sqrt_cache[REC_INV_SQRT_CACHE] = { 388 ~0, ~0, 3037000500, 2479700525, 389 2147483647, 1920767767, 1753413056, 1623345051, 390 1518500250, 1431655765, 1358187914, 1294981364, 391 1239850263, 1191209601, 1147878294, 1108955788 392 }; 393 394 static void cake_configure_rates(struct Qdisc *sch, u64 rate, bool rate_adjust); 395 396 /* http://en.wikipedia.org/wiki/Methods_of_computing_square_roots 397 * new_invsqrt = (invsqrt / 2) * (3 - count * invsqrt^2) 398 * 399 * Here, invsqrt is a fixed point number (< 1.0), 32bit mantissa, aka Q0.32 400 */ 401 402 static void cobalt_newton_step(struct cobalt_vars *vars, u32 count) 403 { 404 u32 invsqrt, invsqrt2; 405 u64 val; 406 407 invsqrt = vars->rec_inv_sqrt; 408 invsqrt2 = ((u64)invsqrt * invsqrt) >> 32; 409 val = (3LL << 32) - ((u64)count * invsqrt2); 410 411 val >>= 2; /* avoid overflow in following multiply */ 412 val = (val * invsqrt) >> (32 - 2 + 1); 413 414 vars->rec_inv_sqrt = val; 415 } 416 417 static void cobalt_invsqrt(struct cobalt_vars *vars, u32 count) 418 { 419 if (count < REC_INV_SQRT_CACHE) 420 vars->rec_inv_sqrt = inv_sqrt_cache[count]; 421 else 422 cobalt_newton_step(vars, count); 423 } 424 425 static void cobalt_vars_init(struct cobalt_vars *vars) 426 { 427 memset(vars, 0, sizeof(*vars)); 428 } 429 430 /* CoDel control_law is t + interval/sqrt(count) 431 * We maintain in rec_inv_sqrt the reciprocal value of sqrt(count) to avoid 432 * both sqrt() and divide operation. 433 */ 434 static ktime_t cobalt_control(ktime_t t, 435 u64 interval, 436 u32 rec_inv_sqrt) 437 { 438 return ktime_add_ns(t, reciprocal_scale(interval, 439 rec_inv_sqrt)); 440 } 441 442 /* Call this when a packet had to be dropped due to queue overflow. Returns 443 * true if the BLUE state was quiescent before but active after this call. 444 */ 445 static bool cobalt_queue_full(struct cobalt_vars *vars, 446 struct cobalt_params *p, 447 ktime_t now) 448 { 449 bool up = false; 450 451 if (ktime_to_ns(ktime_sub(now, vars->blue_timer)) > p->target) { 452 u32 p_drop = vars->p_drop; 453 454 up = !p_drop; 455 p_drop += p->p_inc; 456 if (p_drop < p->p_inc) 457 p_drop = ~0; 458 WRITE_ONCE(vars->p_drop, p_drop); 459 WRITE_ONCE(vars->blue_timer, now); 460 } 461 WRITE_ONCE(vars->dropping, true); 462 WRITE_ONCE(vars->drop_next, now); 463 if (!vars->count) 464 WRITE_ONCE(vars->count, 1); 465 466 return up; 467 } 468 469 /* Call this when the queue was serviced but turned out to be empty. Returns 470 * true if the BLUE state was active before but quiescent after this call. 471 */ 472 static bool cobalt_queue_empty(struct cobalt_vars *vars, 473 struct cobalt_params *p, 474 ktime_t now) 475 { 476 bool down = false; 477 478 if (vars->p_drop && 479 ktime_to_ns(ktime_sub(now, vars->blue_timer)) > p->target) { 480 if (vars->p_drop < p->p_dec) 481 WRITE_ONCE(vars->p_drop, 0); 482 else 483 WRITE_ONCE(vars->p_drop, vars->p_drop - p->p_dec); 484 WRITE_ONCE(vars->blue_timer, now); 485 down = !vars->p_drop; 486 } 487 WRITE_ONCE(vars->dropping, false); 488 489 if (vars->count && ktime_to_ns(ktime_sub(now, vars->drop_next)) >= 0) { 490 WRITE_ONCE(vars->count, vars->count - 1); 491 cobalt_invsqrt(vars, vars->count); 492 WRITE_ONCE(vars->drop_next, 493 cobalt_control(vars->drop_next, p->interval, 494 vars->rec_inv_sqrt)); 495 } 496 497 return down; 498 } 499 500 /* Call this with a freshly dequeued packet for possible congestion marking. 501 * Returns true as an instruction to drop the packet, false for delivery. 502 */ 503 static enum qdisc_drop_reason cobalt_should_drop(struct cobalt_vars *vars, 504 struct cobalt_params *p, 505 ktime_t now, 506 struct sk_buff *skb, 507 u32 bulk_flows) 508 { 509 enum qdisc_drop_reason reason = QDISC_DROP_UNSPEC; 510 bool next_due, over_target; 511 ktime_t schedule; 512 u64 sojourn; 513 u32 count; 514 515 /* The 'schedule' variable records, in its sign, whether 'now' is before or 516 * after 'drop_next'. This allows 'drop_next' to be updated before the next 517 * scheduling decision is actually branched, without destroying that 518 * information. Similarly, the first 'schedule' value calculated is preserved 519 * in the boolean 'next_due'. 520 * 521 * As for 'drop_next', we take advantage of the fact that 'interval' is both 522 * the delay between first exceeding 'target' and the first signalling event, 523 * *and* the scaling factor for the signalling frequency. It's therefore very 524 * natural to use a single mechanism for both purposes, and eliminates a 525 * significant amount of reference Codel's spaghetti code. To help with this, 526 * both the '0' and '1' entries in the invsqrt cache are 0xFFFFFFFF, as close 527 * as possible to 1.0 in fixed-point. 528 */ 529 530 sojourn = ktime_to_ns(ktime_sub(now, cobalt_get_enqueue_time(skb))); 531 schedule = ktime_sub(now, vars->drop_next); 532 over_target = sojourn > p->target && 533 sojourn > p->mtu_time * bulk_flows * 2 && 534 sojourn > p->mtu_time * 4; 535 count = vars->count; 536 next_due = count && ktime_to_ns(schedule) >= 0; 537 538 vars->ecn_marked = false; 539 540 if (over_target) { 541 if (!vars->dropping) { 542 WRITE_ONCE(vars->dropping, true); 543 WRITE_ONCE(vars->drop_next, 544 cobalt_control(now, p->interval, 545 vars->rec_inv_sqrt)); 546 } 547 if (!count) 548 count = 1; 549 } else if (vars->dropping) { 550 WRITE_ONCE(vars->dropping, false); 551 } 552 553 if (next_due && vars->dropping) { 554 /* Use ECN mark if possible, otherwise drop */ 555 if (!(vars->ecn_marked = INET_ECN_set_ce(skb))) 556 reason = QDISC_DROP_CONGESTED; 557 558 count++; 559 if (!count) 560 count--; 561 cobalt_invsqrt(vars, count); 562 WRITE_ONCE(vars->drop_next, 563 cobalt_control(vars->drop_next, p->interval, 564 vars->rec_inv_sqrt)); 565 schedule = ktime_sub(now, vars->drop_next); 566 } else { 567 while (next_due) { 568 count--; 569 cobalt_invsqrt(vars, count); 570 WRITE_ONCE(vars->drop_next, 571 cobalt_control(vars->drop_next, p->interval, 572 vars->rec_inv_sqrt)); 573 schedule = ktime_sub(now, vars->drop_next); 574 next_due = count && ktime_to_ns(schedule) >= 0; 575 } 576 } 577 578 /* Simple BLUE implementation. Lack of ECN is deliberate. */ 579 if (vars->p_drop && reason == QDISC_DROP_UNSPEC && 580 get_random_u32() < vars->p_drop) 581 reason = QDISC_DROP_FLOOD_PROTECTION; 582 583 WRITE_ONCE(vars->count, count); 584 /* Overload the drop_next field as an activity timeout */ 585 if (!count) 586 WRITE_ONCE(vars->drop_next, ktime_add_ns(now, p->interval)); 587 else if (ktime_to_ns(schedule) > 0 && reason == QDISC_DROP_UNSPEC) 588 WRITE_ONCE(vars->drop_next, now); 589 590 return reason; 591 } 592 593 static bool cake_update_flowkeys(struct flow_keys *keys, 594 const struct sk_buff *skb) 595 { 596 #if IS_ENABLED(CONFIG_NF_CONNTRACK) 597 struct nf_conntrack_tuple tuple = {}; 598 bool rev = !skb->_nfct, upd = false; 599 __be32 ip; 600 601 if (skb_protocol(skb, true) != htons(ETH_P_IP)) 602 return false; 603 604 if (!nf_ct_get_tuple_skb(&tuple, skb)) 605 return false; 606 607 ip = rev ? tuple.dst.u3.ip : tuple.src.u3.ip; 608 if (ip != keys->addrs.v4addrs.src) { 609 keys->addrs.v4addrs.src = ip; 610 upd = true; 611 } 612 ip = rev ? tuple.src.u3.ip : tuple.dst.u3.ip; 613 if (ip != keys->addrs.v4addrs.dst) { 614 keys->addrs.v4addrs.dst = ip; 615 upd = true; 616 } 617 618 if (keys->ports.ports) { 619 __be16 port; 620 621 port = rev ? tuple.dst.u.all : tuple.src.u.all; 622 if (port != keys->ports.src) { 623 keys->ports.src = port; 624 upd = true; 625 } 626 port = rev ? tuple.src.u.all : tuple.dst.u.all; 627 if (port != keys->ports.dst) { 628 keys->ports.dst = port; 629 upd = true; 630 } 631 } 632 return upd; 633 #else 634 return false; 635 #endif 636 } 637 638 /* Cake has several subtle multiple bit settings. In these cases you 639 * would be matching triple isolate mode as well. 640 */ 641 642 static bool cake_dsrc(int flow_mode) 643 { 644 return (flow_mode & CAKE_FLOW_DUAL_SRC) == CAKE_FLOW_DUAL_SRC; 645 } 646 647 static bool cake_ddst(int flow_mode) 648 { 649 return (flow_mode & CAKE_FLOW_DUAL_DST) == CAKE_FLOW_DUAL_DST; 650 } 651 652 static void cake_dec_srchost_bulk_flow_count(struct cake_tin_data *q, 653 struct cake_flow *flow, 654 int flow_mode) 655 { 656 if (likely(cake_dsrc(flow_mode) && 657 q->hosts[flow->srchost].srchost_bulk_flow_count)) 658 q->hosts[flow->srchost].srchost_bulk_flow_count--; 659 } 660 661 static void cake_inc_srchost_bulk_flow_count(struct cake_tin_data *q, 662 struct cake_flow *flow, 663 int flow_mode) 664 { 665 if (likely(cake_dsrc(flow_mode) && 666 q->hosts[flow->srchost].srchost_bulk_flow_count < CAKE_QUEUES)) 667 q->hosts[flow->srchost].srchost_bulk_flow_count++; 668 } 669 670 static void cake_dec_dsthost_bulk_flow_count(struct cake_tin_data *q, 671 struct cake_flow *flow, 672 int flow_mode) 673 { 674 if (likely(cake_ddst(flow_mode) && 675 q->hosts[flow->dsthost].dsthost_bulk_flow_count)) 676 q->hosts[flow->dsthost].dsthost_bulk_flow_count--; 677 } 678 679 static void cake_inc_dsthost_bulk_flow_count(struct cake_tin_data *q, 680 struct cake_flow *flow, 681 int flow_mode) 682 { 683 if (likely(cake_ddst(flow_mode) && 684 q->hosts[flow->dsthost].dsthost_bulk_flow_count < CAKE_QUEUES)) 685 q->hosts[flow->dsthost].dsthost_bulk_flow_count++; 686 } 687 688 static u16 cake_get_flow_quantum(struct cake_tin_data *q, 689 struct cake_flow *flow, 690 int flow_mode) 691 { 692 u16 host_load = 1; 693 694 if (cake_dsrc(flow_mode)) 695 host_load = max(host_load, 696 q->hosts[flow->srchost].srchost_bulk_flow_count); 697 698 if (cake_ddst(flow_mode)) 699 host_load = max(host_load, 700 q->hosts[flow->dsthost].dsthost_bulk_flow_count); 701 702 /* The get_random_u16() is a way to apply dithering to avoid 703 * accumulating roundoff errors 704 */ 705 return (q->flow_quantum * quantum_div[host_load] + 706 get_random_u16()) >> 16; 707 } 708 709 static u32 cake_hash(struct cake_tin_data *q, const struct sk_buff *skb, 710 int flow_mode, u16 flow_override, u16 host_override) 711 { 712 bool hash_flows = (!flow_override && !!(flow_mode & CAKE_FLOW_FLOWS)); 713 bool hash_hosts = (!host_override && !!(flow_mode & CAKE_FLOW_HOSTS)); 714 bool nat_enabled = !!(flow_mode & CAKE_FLOW_NAT_FLAG); 715 u32 flow_hash = 0, srchost_hash = 0, dsthost_hash = 0; 716 u16 reduced_hash, srchost_idx, dsthost_idx; 717 struct flow_keys keys, host_keys; 718 bool use_skbhash = skb->l4_hash; 719 720 if (unlikely(flow_mode == CAKE_FLOW_NONE)) 721 return 0; 722 723 /* If both overrides are set, or we can use the SKB hash and nat mode is 724 * disabled, we can skip packet dissection entirely. If nat mode is 725 * enabled there's another check below after doing the conntrack lookup. 726 */ 727 if ((!hash_flows || (use_skbhash && !nat_enabled)) && !hash_hosts) 728 goto skip_hash; 729 730 skb_flow_dissect_flow_keys(skb, &keys, 731 FLOW_DISSECTOR_F_STOP_AT_FLOW_LABEL); 732 733 /* Don't use the SKB hash if we change the lookup keys from conntrack */ 734 if (nat_enabled && cake_update_flowkeys(&keys, skb)) 735 use_skbhash = false; 736 737 /* If we can still use the SKB hash and don't need the host hash, we can 738 * skip the rest of the hashing procedure 739 */ 740 if (use_skbhash && !hash_hosts) 741 goto skip_hash; 742 743 /* flow_hash_from_keys() sorts the addresses by value, so we have 744 * to preserve their order in a separate data structure to treat 745 * src and dst host addresses as independently selectable. 746 */ 747 host_keys = keys; 748 host_keys.ports.ports = 0; 749 host_keys.basic.ip_proto = 0; 750 host_keys.keyid.keyid = 0; 751 host_keys.tags.flow_label = 0; 752 753 switch (host_keys.control.addr_type) { 754 case FLOW_DISSECTOR_KEY_IPV4_ADDRS: 755 host_keys.addrs.v4addrs.src = 0; 756 dsthost_hash = flow_hash_from_keys(&host_keys); 757 host_keys.addrs.v4addrs.src = keys.addrs.v4addrs.src; 758 host_keys.addrs.v4addrs.dst = 0; 759 srchost_hash = flow_hash_from_keys(&host_keys); 760 break; 761 762 case FLOW_DISSECTOR_KEY_IPV6_ADDRS: 763 memset(&host_keys.addrs.v6addrs.src, 0, 764 sizeof(host_keys.addrs.v6addrs.src)); 765 dsthost_hash = flow_hash_from_keys(&host_keys); 766 host_keys.addrs.v6addrs.src = keys.addrs.v6addrs.src; 767 memset(&host_keys.addrs.v6addrs.dst, 0, 768 sizeof(host_keys.addrs.v6addrs.dst)); 769 srchost_hash = flow_hash_from_keys(&host_keys); 770 break; 771 772 default: 773 dsthost_hash = 0; 774 srchost_hash = 0; 775 } 776 777 /* This *must* be after the above switch, since as a 778 * side-effect it sorts the src and dst addresses. 779 */ 780 if (hash_flows && !use_skbhash) 781 flow_hash = flow_hash_from_keys(&keys); 782 783 skip_hash: 784 if (flow_override) 785 flow_hash = flow_override - 1; 786 else if (use_skbhash && (flow_mode & CAKE_FLOW_FLOWS)) 787 flow_hash = skb->hash; 788 if (host_override) { 789 dsthost_hash = host_override - 1; 790 srchost_hash = host_override - 1; 791 } 792 793 if (!(flow_mode & CAKE_FLOW_FLOWS)) { 794 if (flow_mode & CAKE_FLOW_SRC_IP) 795 flow_hash ^= srchost_hash; 796 797 if (flow_mode & CAKE_FLOW_DST_IP) 798 flow_hash ^= dsthost_hash; 799 } 800 801 reduced_hash = flow_hash % CAKE_QUEUES; 802 803 /* set-associative hashing */ 804 /* fast path if no hash collision (direct lookup succeeds) */ 805 if (likely(q->tags[reduced_hash] == flow_hash && 806 q->flows[reduced_hash].set)) { 807 q->way_directs++; 808 } else { 809 u32 inner_hash = reduced_hash % CAKE_SET_WAYS; 810 u32 outer_hash = reduced_hash - inner_hash; 811 bool allocate_src = false; 812 bool allocate_dst = false; 813 u32 i, k; 814 815 /* check if any active queue in the set is reserved for 816 * this flow. 817 */ 818 for (i = 0, k = inner_hash; i < CAKE_SET_WAYS; 819 i++, k = (k + 1) % CAKE_SET_WAYS) { 820 if (q->tags[outer_hash + k] == flow_hash) { 821 if (i) 822 WRITE_ONCE(q->way_hits, q->way_hits + 1); 823 824 if (!q->flows[outer_hash + k].set) { 825 /* need to increment host refcnts */ 826 allocate_src = cake_dsrc(flow_mode); 827 allocate_dst = cake_ddst(flow_mode); 828 } 829 830 goto found; 831 } 832 } 833 834 /* no queue is reserved for this flow, look for an 835 * empty one. 836 */ 837 for (i = 0; i < CAKE_SET_WAYS; 838 i++, k = (k + 1) % CAKE_SET_WAYS) { 839 if (!q->flows[outer_hash + k].set) { 840 WRITE_ONCE(q->way_misses, q->way_misses + 1); 841 allocate_src = cake_dsrc(flow_mode); 842 allocate_dst = cake_ddst(flow_mode); 843 goto found; 844 } 845 } 846 847 /* With no empty queues, default to the original 848 * queue, accept the collision, update the host tags. 849 */ 850 WRITE_ONCE(q->way_collisions, q->way_collisions + 1); 851 allocate_src = cake_dsrc(flow_mode); 852 allocate_dst = cake_ddst(flow_mode); 853 854 if (q->flows[outer_hash + k].set == CAKE_SET_BULK) { 855 cake_dec_srchost_bulk_flow_count(q, &q->flows[outer_hash + k], flow_mode); 856 cake_dec_dsthost_bulk_flow_count(q, &q->flows[outer_hash + k], flow_mode); 857 } 858 found: 859 /* reserve queue for future packets in same flow */ 860 reduced_hash = outer_hash + k; 861 q->tags[reduced_hash] = flow_hash; 862 863 if (allocate_src) { 864 srchost_idx = srchost_hash % CAKE_QUEUES; 865 inner_hash = srchost_idx % CAKE_SET_WAYS; 866 outer_hash = srchost_idx - inner_hash; 867 for (i = 0, k = inner_hash; i < CAKE_SET_WAYS; 868 i++, k = (k + 1) % CAKE_SET_WAYS) { 869 if (q->hosts[outer_hash + k].srchost_tag == 870 srchost_hash) 871 goto found_src; 872 } 873 for (i = 0; i < CAKE_SET_WAYS; 874 i++, k = (k + 1) % CAKE_SET_WAYS) { 875 if (!q->hosts[outer_hash + k].srchost_bulk_flow_count) 876 break; 877 } 878 q->hosts[outer_hash + k].srchost_tag = srchost_hash; 879 found_src: 880 srchost_idx = outer_hash + k; 881 q->flows[reduced_hash].srchost = srchost_idx; 882 883 if (q->flows[reduced_hash].set == CAKE_SET_BULK) 884 cake_inc_srchost_bulk_flow_count(q, &q->flows[reduced_hash], flow_mode); 885 } 886 887 if (allocate_dst) { 888 dsthost_idx = dsthost_hash % CAKE_QUEUES; 889 inner_hash = dsthost_idx % CAKE_SET_WAYS; 890 outer_hash = dsthost_idx - inner_hash; 891 for (i = 0, k = inner_hash; i < CAKE_SET_WAYS; 892 i++, k = (k + 1) % CAKE_SET_WAYS) { 893 if (q->hosts[outer_hash + k].dsthost_tag == 894 dsthost_hash) 895 goto found_dst; 896 } 897 for (i = 0; i < CAKE_SET_WAYS; 898 i++, k = (k + 1) % CAKE_SET_WAYS) { 899 if (!q->hosts[outer_hash + k].dsthost_bulk_flow_count) 900 break; 901 } 902 q->hosts[outer_hash + k].dsthost_tag = dsthost_hash; 903 found_dst: 904 dsthost_idx = outer_hash + k; 905 q->flows[reduced_hash].dsthost = dsthost_idx; 906 907 if (q->flows[reduced_hash].set == CAKE_SET_BULK) 908 cake_inc_dsthost_bulk_flow_count(q, &q->flows[reduced_hash], flow_mode); 909 } 910 } 911 912 return reduced_hash; 913 } 914 915 /* helper functions : might be changed when/if skb use a standard list_head */ 916 /* remove one skb from head of slot queue */ 917 918 static struct sk_buff *dequeue_head(struct cake_flow *flow) 919 { 920 struct sk_buff *skb = flow->head; 921 922 if (skb) { 923 WRITE_ONCE(flow->head, skb->next); 924 skb_mark_not_on_list(skb); 925 } 926 927 return skb; 928 } 929 930 /* add skb to flow queue (tail add) */ 931 932 static void flow_queue_add(struct cake_flow *flow, struct sk_buff *skb) 933 { 934 if (!flow->head) 935 WRITE_ONCE(flow->head, skb); 936 else 937 flow->tail->next = skb; 938 flow->tail = skb; 939 skb->next = NULL; 940 } 941 942 static struct iphdr *cake_get_iphdr(const struct sk_buff *skb, 943 struct ipv6hdr *buf) 944 { 945 unsigned int offset = skb_network_offset(skb); 946 struct iphdr *iph; 947 948 iph = skb_header_pointer(skb, offset, sizeof(struct iphdr), buf); 949 950 if (!iph) 951 return NULL; 952 953 if (iph->version == 4 && iph->protocol == IPPROTO_IPV6) 954 return skb_header_pointer(skb, offset + iph->ihl * 4, 955 sizeof(struct ipv6hdr), buf); 956 957 else if (iph->version == 4) 958 return iph; 959 960 else if (iph->version == 6) 961 return skb_header_pointer(skb, offset, sizeof(struct ipv6hdr), 962 buf); 963 964 return NULL; 965 } 966 967 static struct tcphdr *cake_get_tcphdr(const struct sk_buff *skb, 968 void *buf, unsigned int bufsize) 969 { 970 unsigned int offset = skb_network_offset(skb); 971 const struct ipv6hdr *ipv6h; 972 const struct tcphdr *tcph; 973 const struct iphdr *iph; 974 struct ipv6hdr _ipv6h; 975 struct tcphdr _tcph; 976 977 ipv6h = skb_header_pointer(skb, offset, sizeof(_ipv6h), &_ipv6h); 978 979 if (!ipv6h) 980 return NULL; 981 982 if (ipv6h->version == 4) { 983 iph = (struct iphdr *)ipv6h; 984 offset += iph->ihl * 4; 985 986 /* special-case 6in4 tunnelling, as that is a common way to get 987 * v6 connectivity in the home 988 */ 989 if (iph->protocol == IPPROTO_IPV6) { 990 ipv6h = skb_header_pointer(skb, offset, 991 sizeof(_ipv6h), &_ipv6h); 992 993 if (!ipv6h || ipv6h->nexthdr != IPPROTO_TCP) 994 return NULL; 995 996 offset += sizeof(struct ipv6hdr); 997 998 } else if (iph->protocol != IPPROTO_TCP) { 999 return NULL; 1000 } 1001 1002 } else if (ipv6h->version == 6) { 1003 if (ipv6h->nexthdr != IPPROTO_TCP) 1004 return NULL; 1005 1006 offset += sizeof(struct ipv6hdr); 1007 } else { 1008 return NULL; 1009 } 1010 1011 tcph = skb_header_pointer(skb, offset, sizeof(_tcph), &_tcph); 1012 if (!tcph || tcph->doff < 5) 1013 return NULL; 1014 1015 return skb_header_pointer(skb, offset, 1016 min(__tcp_hdrlen(tcph), bufsize), buf); 1017 } 1018 1019 static const void *cake_get_tcpopt(const struct tcphdr *tcph, 1020 int code, int *oplen) 1021 { 1022 /* inspired by tcp_parse_options in tcp_input.c */ 1023 int length = __tcp_hdrlen(tcph) - sizeof(struct tcphdr); 1024 const u8 *ptr = (const u8 *)(tcph + 1); 1025 1026 while (length > 0) { 1027 int opcode = *ptr++; 1028 int opsize; 1029 1030 if (opcode == TCPOPT_EOL) 1031 break; 1032 if (opcode == TCPOPT_NOP) { 1033 length--; 1034 continue; 1035 } 1036 if (length < 2) 1037 break; 1038 opsize = *ptr++; 1039 if (opsize < 2 || opsize > length) 1040 break; 1041 1042 if (opcode == code) { 1043 *oplen = opsize; 1044 return ptr; 1045 } 1046 1047 ptr += opsize - 2; 1048 length -= opsize; 1049 } 1050 1051 return NULL; 1052 } 1053 1054 /* Compare two SACK sequences. A sequence is considered greater if it SACKs more 1055 * bytes than the other. In the case where both sequences ACKs bytes that the 1056 * other doesn't, A is considered greater. DSACKs in A also makes A be 1057 * considered greater. 1058 * 1059 * @return -1, 0 or 1 as normal compare functions 1060 */ 1061 static int cake_tcph_sack_compare(const struct tcphdr *tcph_a, 1062 const struct tcphdr *tcph_b) 1063 { 1064 const struct tcp_sack_block_wire *sack_a, *sack_b; 1065 u32 ack_seq_a = ntohl(tcph_a->ack_seq); 1066 u32 bytes_a = 0, bytes_b = 0; 1067 int oplen_a, oplen_b; 1068 bool first = true; 1069 1070 sack_a = cake_get_tcpopt(tcph_a, TCPOPT_SACK, &oplen_a); 1071 sack_b = cake_get_tcpopt(tcph_b, TCPOPT_SACK, &oplen_b); 1072 1073 /* pointers point to option contents */ 1074 oplen_a -= TCPOLEN_SACK_BASE; 1075 oplen_b -= TCPOLEN_SACK_BASE; 1076 1077 if (sack_a && oplen_a >= sizeof(*sack_a) && 1078 (!sack_b || oplen_b < sizeof(*sack_b))) 1079 return -1; 1080 else if (sack_b && oplen_b >= sizeof(*sack_b) && 1081 (!sack_a || oplen_a < sizeof(*sack_a))) 1082 return 1; 1083 else if ((!sack_a || oplen_a < sizeof(*sack_a)) && 1084 (!sack_b || oplen_b < sizeof(*sack_b))) 1085 return 0; 1086 1087 while (oplen_a >= sizeof(*sack_a)) { 1088 const struct tcp_sack_block_wire *sack_tmp = sack_b; 1089 u32 start_a = get_unaligned_be32(&sack_a->start_seq); 1090 u32 end_a = get_unaligned_be32(&sack_a->end_seq); 1091 int oplen_tmp = oplen_b; 1092 bool found = false; 1093 1094 /* DSACK; always considered greater to prevent dropping */ 1095 if (before(start_a, ack_seq_a)) 1096 return -1; 1097 1098 bytes_a += end_a - start_a; 1099 1100 while (oplen_tmp >= sizeof(*sack_tmp)) { 1101 u32 start_b = get_unaligned_be32(&sack_tmp->start_seq); 1102 u32 end_b = get_unaligned_be32(&sack_tmp->end_seq); 1103 1104 /* first time through we count the total size */ 1105 if (first) 1106 bytes_b += end_b - start_b; 1107 1108 if (!after(start_b, start_a) && !before(end_b, end_a)) { 1109 found = true; 1110 if (!first) 1111 break; 1112 } 1113 oplen_tmp -= sizeof(*sack_tmp); 1114 sack_tmp++; 1115 } 1116 1117 if (!found) 1118 return -1; 1119 1120 oplen_a -= sizeof(*sack_a); 1121 sack_a++; 1122 first = false; 1123 } 1124 1125 /* If we made it this far, all ranges SACKed by A are covered by B, so 1126 * either the SACKs are equal, or B SACKs more bytes. 1127 */ 1128 return bytes_b > bytes_a ? 1 : 0; 1129 } 1130 1131 static void cake_tcph_get_tstamp(const struct tcphdr *tcph, 1132 u32 *tsval, u32 *tsecr) 1133 { 1134 const u8 *ptr; 1135 int opsize; 1136 1137 ptr = cake_get_tcpopt(tcph, TCPOPT_TIMESTAMP, &opsize); 1138 1139 if (ptr && opsize == TCPOLEN_TIMESTAMP) { 1140 *tsval = get_unaligned_be32(ptr); 1141 *tsecr = get_unaligned_be32(ptr + 4); 1142 } 1143 } 1144 1145 static bool cake_tcph_may_drop(const struct tcphdr *tcph, 1146 u32 tstamp_new, u32 tsecr_new) 1147 { 1148 /* inspired by tcp_parse_options in tcp_input.c */ 1149 int length = __tcp_hdrlen(tcph) - sizeof(struct tcphdr); 1150 const u8 *ptr = (const u8 *)(tcph + 1); 1151 u32 tstamp, tsecr; 1152 1153 /* 3 reserved flags must be unset to avoid future breakage 1154 * ACK must be set 1155 * ECE/CWR are handled separately 1156 * All other flags URG/PSH/RST/SYN/FIN must be unset 1157 * 0x0FFF0000 = all TCP flags (confirm ACK=1, others zero) 1158 * 0x00C00000 = CWR/ECE (handled separately) 1159 * 0x0F3F0000 = 0x0FFF0000 & ~0x00C00000 1160 */ 1161 if (((tcp_flag_word(tcph) & 1162 cpu_to_be32(0x0F3F0000)) != TCP_FLAG_ACK)) 1163 return false; 1164 1165 while (length > 0) { 1166 int opcode = *ptr++; 1167 int opsize; 1168 1169 if (opcode == TCPOPT_EOL) 1170 break; 1171 if (opcode == TCPOPT_NOP) { 1172 length--; 1173 continue; 1174 } 1175 if (length < 2) 1176 break; 1177 opsize = *ptr++; 1178 if (opsize < 2 || opsize > length) 1179 break; 1180 1181 switch (opcode) { 1182 case TCPOPT_MD5SIG: /* doesn't influence state */ 1183 break; 1184 1185 case TCPOPT_SACK: /* stricter checking performed later */ 1186 if (opsize % 8 != 2) 1187 return false; 1188 break; 1189 1190 case TCPOPT_TIMESTAMP: 1191 /* only drop timestamps lower than new */ 1192 if (opsize != TCPOLEN_TIMESTAMP) 1193 return false; 1194 tstamp = get_unaligned_be32(ptr); 1195 tsecr = get_unaligned_be32(ptr + 4); 1196 if (after(tstamp, tstamp_new) || 1197 after(tsecr, tsecr_new)) 1198 return false; 1199 break; 1200 1201 case TCPOPT_MSS: /* these should only be set on SYN */ 1202 case TCPOPT_WINDOW: 1203 case TCPOPT_SACK_PERM: 1204 case TCPOPT_FASTOPEN: 1205 case TCPOPT_EXP: 1206 default: /* don't drop if any unknown options are present */ 1207 return false; 1208 } 1209 1210 ptr += opsize - 2; 1211 length -= opsize; 1212 } 1213 1214 return true; 1215 } 1216 1217 static struct sk_buff *cake_ack_filter(struct cake_sched_data *q, 1218 struct cake_flow *flow) 1219 { 1220 bool aggressive = q->config->ack_filter == CAKE_ACK_AGGRESSIVE; 1221 struct sk_buff *elig_ack = NULL, *elig_ack_prev = NULL; 1222 struct sk_buff *skb_check, *skb_prev = NULL; 1223 const struct ipv6hdr *ipv6h, *ipv6h_check; 1224 unsigned char _tcph[64], _tcph_check[64]; 1225 const struct tcphdr *tcph, *tcph_check; 1226 const struct iphdr *iph, *iph_check; 1227 struct ipv6hdr _iph, _iph_check; 1228 const struct sk_buff *skb; 1229 int seglen, num_found = 0; 1230 u32 tstamp = 0, tsecr = 0; 1231 __be32 elig_flags = 0; 1232 int sack_comp; 1233 1234 /* no other possible ACKs to filter */ 1235 if (flow->head == flow->tail) 1236 return NULL; 1237 1238 skb = flow->tail; 1239 tcph = cake_get_tcphdr(skb, _tcph, sizeof(_tcph)); 1240 iph = cake_get_iphdr(skb, &_iph); 1241 if (!tcph) 1242 return NULL; 1243 1244 cake_tcph_get_tstamp(tcph, &tstamp, &tsecr); 1245 1246 /* the 'triggering' packet need only have the ACK flag set. 1247 * also check that SYN is not set, as there won't be any previous ACKs. 1248 */ 1249 if ((tcp_flag_word(tcph) & 1250 (TCP_FLAG_ACK | TCP_FLAG_SYN)) != TCP_FLAG_ACK) 1251 return NULL; 1252 1253 /* the 'triggering' ACK is at the tail of the queue, we have already 1254 * returned if it is the only packet in the flow. loop through the rest 1255 * of the queue looking for pure ACKs with the same 5-tuple as the 1256 * triggering one. 1257 */ 1258 for (skb_check = flow->head; 1259 skb_check && skb_check != skb; 1260 skb_prev = skb_check, skb_check = skb_check->next) { 1261 iph_check = cake_get_iphdr(skb_check, &_iph_check); 1262 tcph_check = cake_get_tcphdr(skb_check, &_tcph_check, 1263 sizeof(_tcph_check)); 1264 1265 /* only TCP packets with matching 5-tuple are eligible, and only 1266 * drop safe headers 1267 */ 1268 if (!tcph_check || iph->version != iph_check->version || 1269 tcph_check->source != tcph->source || 1270 tcph_check->dest != tcph->dest) 1271 continue; 1272 1273 if (iph_check->version == 4) { 1274 if (iph_check->saddr != iph->saddr || 1275 iph_check->daddr != iph->daddr) 1276 continue; 1277 1278 seglen = iph_totlen(skb, iph_check) - 1279 (4 * iph_check->ihl); 1280 } else if (iph_check->version == 6) { 1281 ipv6h = (struct ipv6hdr *)iph; 1282 ipv6h_check = (struct ipv6hdr *)iph_check; 1283 1284 if (ipv6_addr_cmp(&ipv6h_check->saddr, &ipv6h->saddr) || 1285 ipv6_addr_cmp(&ipv6h_check->daddr, &ipv6h->daddr)) 1286 continue; 1287 1288 seglen = ipv6_payload_len(skb, ipv6h_check); 1289 } else { 1290 continue; 1291 } 1292 1293 /* If the ECE/CWR flags changed from the previous eligible 1294 * packet in the same flow, we should no longer be dropping that 1295 * previous packet as this would lose information. 1296 */ 1297 if (elig_ack && (tcp_flag_word(tcph_check) & 1298 (TCP_FLAG_ECE | TCP_FLAG_CWR)) != elig_flags) { 1299 elig_ack = NULL; 1300 elig_ack_prev = NULL; 1301 num_found--; 1302 } 1303 1304 /* Check TCP options and flags, don't drop ACKs with segment 1305 * data, and don't drop ACKs with a higher cumulative ACK 1306 * counter than the triggering packet. Check ACK seqno here to 1307 * avoid parsing SACK options of packets we are going to exclude 1308 * anyway. 1309 */ 1310 if (!cake_tcph_may_drop(tcph_check, tstamp, tsecr) || 1311 (seglen - __tcp_hdrlen(tcph_check)) != 0 || 1312 after(ntohl(tcph_check->ack_seq), ntohl(tcph->ack_seq))) 1313 continue; 1314 1315 /* Check SACK options. The triggering packet must SACK more data 1316 * than the ACK under consideration, or SACK the same range but 1317 * have a larger cumulative ACK counter. The latter is a 1318 * pathological case, but is contained in the following check 1319 * anyway, just to be safe. 1320 */ 1321 sack_comp = cake_tcph_sack_compare(tcph_check, tcph); 1322 1323 if (sack_comp < 0 || 1324 (ntohl(tcph_check->ack_seq) == ntohl(tcph->ack_seq) && 1325 sack_comp == 0)) 1326 continue; 1327 1328 /* At this point we have found an eligible pure ACK to drop; if 1329 * we are in aggressive mode, we are done. Otherwise, keep 1330 * searching unless this is the second eligible ACK we 1331 * found. 1332 * 1333 * Since we want to drop ACK closest to the head of the queue, 1334 * save the first eligible ACK we find, even if we need to loop 1335 * again. 1336 */ 1337 if (!elig_ack) { 1338 elig_ack = skb_check; 1339 elig_ack_prev = skb_prev; 1340 elig_flags = (tcp_flag_word(tcph_check) 1341 & (TCP_FLAG_ECE | TCP_FLAG_CWR)); 1342 } 1343 1344 if (num_found++ > 0) 1345 goto found; 1346 } 1347 1348 /* We made it through the queue without finding two eligible ACKs . If 1349 * we found a single eligible ACK we can drop it in aggressive mode if 1350 * we can guarantee that this does not interfere with ECN flag 1351 * information. We ensure this by dropping it only if the enqueued 1352 * packet is consecutive with the eligible ACK, and their flags match. 1353 */ 1354 if (elig_ack && aggressive && elig_ack->next == skb && 1355 (elig_flags == (tcp_flag_word(tcph) & 1356 (TCP_FLAG_ECE | TCP_FLAG_CWR)))) 1357 goto found; 1358 1359 return NULL; 1360 1361 found: 1362 if (elig_ack_prev) 1363 elig_ack_prev->next = elig_ack->next; 1364 else 1365 WRITE_ONCE(flow->head, elig_ack->next); 1366 1367 skb_mark_not_on_list(elig_ack); 1368 1369 return elig_ack; 1370 } 1371 1372 static u64 cake_ewma(u64 avg, u64 sample, u32 shift) 1373 { 1374 avg -= avg >> shift; 1375 avg += sample >> shift; 1376 return avg; 1377 } 1378 1379 static u32 cake_calc_overhead(struct cake_sched_data *qd, u32 len, u32 off) 1380 { 1381 struct cake_sched_config *q = qd->config; 1382 1383 if (q->rate_flags & CAKE_FLAG_OVERHEAD) 1384 len -= off; 1385 1386 if (qd->max_netlen < len) 1387 WRITE_ONCE(qd->max_netlen, len); 1388 if (qd->min_netlen > len) 1389 WRITE_ONCE(qd->min_netlen, len); 1390 1391 len = max((s32)len + q->rate_overhead, (s32)q->rate_mpu); 1392 1393 if (q->atm_mode == CAKE_ATM_ATM) { 1394 len += 47; 1395 len /= 48; 1396 len *= 53; 1397 } else if (q->atm_mode == CAKE_ATM_PTM) { 1398 /* Add one byte per 64 bytes or part thereof. 1399 * This is conservative and easier to calculate than the 1400 * precise value. 1401 */ 1402 len += (len + 63) / 64; 1403 } 1404 1405 if (qd->max_adjlen < len) 1406 WRITE_ONCE(qd->max_adjlen, len); 1407 if (qd->min_adjlen > len) 1408 WRITE_ONCE(qd->min_adjlen, len); 1409 1410 return len; 1411 } 1412 1413 static u32 cake_overhead(struct cake_sched_data *q, const struct sk_buff *skb) 1414 { 1415 const struct skb_shared_info *shinfo = skb_shinfo(skb); 1416 unsigned int hdr_len, last_len = 0; 1417 u32 off = skb_network_offset(skb); 1418 u16 segs = qdisc_pkt_segs(skb); 1419 u32 len = qdisc_pkt_len(skb); 1420 1421 WRITE_ONCE(q->avg_netoff, cake_ewma(q->avg_netoff, off << 16, 8)); 1422 1423 if (segs == 1) 1424 return cake_calc_overhead(q, len, off); 1425 1426 /* borrowed from qdisc_pkt_len_segs_init() */ 1427 if (!skb->encapsulation) 1428 hdr_len = skb_transport_offset(skb); 1429 else 1430 hdr_len = skb_inner_transport_offset(skb); 1431 1432 /* + transport layer */ 1433 if (likely(shinfo->gso_type & (SKB_GSO_TCPV4 | 1434 SKB_GSO_TCPV6))) { 1435 const struct tcphdr *th; 1436 struct tcphdr _tcphdr; 1437 1438 th = skb_header_pointer(skb, hdr_len, 1439 sizeof(_tcphdr), &_tcphdr); 1440 if (likely(th)) 1441 hdr_len += __tcp_hdrlen(th); 1442 } else { 1443 struct udphdr _udphdr; 1444 1445 if (skb_header_pointer(skb, hdr_len, 1446 sizeof(_udphdr), &_udphdr)) 1447 hdr_len += sizeof(struct udphdr); 1448 } 1449 1450 len = shinfo->gso_size + hdr_len; 1451 last_len = skb->len - shinfo->gso_size * (segs - 1); 1452 1453 return (cake_calc_overhead(q, len, off) * (segs - 1) + 1454 cake_calc_overhead(q, last_len, off)); 1455 } 1456 1457 static void cake_heap_swap(struct cake_sched_data *q, u16 i, u16 j) 1458 { 1459 struct cake_heap_entry ii = q->overflow_heap[i]; 1460 struct cake_heap_entry jj = q->overflow_heap[j]; 1461 1462 q->overflow_heap[i] = jj; 1463 q->overflow_heap[j] = ii; 1464 1465 q->tins[ii.t].overflow_idx[ii.b] = j; 1466 q->tins[jj.t].overflow_idx[jj.b] = i; 1467 } 1468 1469 static u32 cake_heap_get_backlog(const struct cake_sched_data *q, u16 i) 1470 { 1471 struct cake_heap_entry ii = q->overflow_heap[i]; 1472 1473 return q->tins[ii.t].backlogs[ii.b]; 1474 } 1475 1476 static void cake_heapify(struct cake_sched_data *q, u16 i) 1477 { 1478 static const u32 a = CAKE_MAX_TINS * CAKE_QUEUES; 1479 u32 mb = cake_heap_get_backlog(q, i); 1480 u32 m = i; 1481 1482 while (m < a) { 1483 u32 l = m + m + 1; 1484 u32 r = l + 1; 1485 1486 if (l < a) { 1487 u32 lb = cake_heap_get_backlog(q, l); 1488 1489 if (lb > mb) { 1490 m = l; 1491 mb = lb; 1492 } 1493 } 1494 1495 if (r < a) { 1496 u32 rb = cake_heap_get_backlog(q, r); 1497 1498 if (rb > mb) { 1499 m = r; 1500 mb = rb; 1501 } 1502 } 1503 1504 if (m != i) { 1505 cake_heap_swap(q, i, m); 1506 i = m; 1507 } else { 1508 break; 1509 } 1510 } 1511 } 1512 1513 static void cake_heapify_up(struct cake_sched_data *q, u16 i) 1514 { 1515 while (i > 0 && i < CAKE_MAX_TINS * CAKE_QUEUES) { 1516 u16 p = (i - 1) >> 1; 1517 u32 ib = cake_heap_get_backlog(q, i); 1518 u32 pb = cake_heap_get_backlog(q, p); 1519 1520 if (ib > pb) { 1521 cake_heap_swap(q, i, p); 1522 i = p; 1523 } else { 1524 break; 1525 } 1526 } 1527 } 1528 1529 static int cake_advance_shaper(struct cake_sched_data *q, 1530 struct cake_tin_data *b, 1531 struct sk_buff *skb, 1532 ktime_t now, bool drop) 1533 { 1534 u32 len = get_cobalt_cb(skb)->adjusted_len; 1535 1536 /* charge packet bandwidth to this tin 1537 * and to the global shaper. 1538 */ 1539 if (q->rate_ns) { 1540 u64 tin_dur = (len * b->tin_rate_ns) >> b->tin_rate_shft; 1541 u64 global_dur = (len * q->rate_ns) >> q->rate_shft; 1542 u64 failsafe_dur = global_dur + (global_dur >> 1); 1543 1544 if (ktime_before(b->time_next_packet, now)) 1545 b->time_next_packet = ktime_add_ns(b->time_next_packet, 1546 tin_dur); 1547 1548 else if (ktime_before(b->time_next_packet, 1549 ktime_add_ns(now, tin_dur))) 1550 b->time_next_packet = ktime_add_ns(now, tin_dur); 1551 1552 q->time_next_packet = ktime_add_ns(q->time_next_packet, 1553 global_dur); 1554 if (!drop) 1555 q->failsafe_next_packet = \ 1556 ktime_add_ns(q->failsafe_next_packet, 1557 failsafe_dur); 1558 } 1559 return len; 1560 } 1561 1562 static unsigned int cake_drop(struct Qdisc *sch, struct sk_buff **to_free) 1563 { 1564 struct cake_sched_data *q = qdisc_priv(sch); 1565 ktime_t now = ktime_get(); 1566 u32 idx = 0, tin = 0, len; 1567 struct cake_heap_entry qq; 1568 struct cake_tin_data *b; 1569 struct cake_flow *flow; 1570 struct sk_buff *skb; 1571 1572 if (!q->overflow_timeout) { 1573 int i; 1574 /* Build fresh max-heap */ 1575 for (i = CAKE_MAX_TINS * CAKE_QUEUES / 2 - 1; i >= 0; i--) 1576 cake_heapify(q, i); 1577 } 1578 q->overflow_timeout = 65535; 1579 1580 /* select longest queue for pruning */ 1581 qq = q->overflow_heap[0]; 1582 tin = qq.t; 1583 idx = qq.b; 1584 1585 b = &q->tins[tin]; 1586 flow = &b->flows[idx]; 1587 skb = dequeue_head(flow); 1588 if (unlikely(!skb)) { 1589 /* heap has gone wrong, rebuild it next time */ 1590 q->overflow_timeout = 0; 1591 return idx + (tin << 16); 1592 } 1593 1594 if (cobalt_queue_full(&flow->cvars, &b->cparams, now)) 1595 WRITE_ONCE(b->unresponsive_flow_count, 1596 b->unresponsive_flow_count + 1); 1597 1598 len = qdisc_pkt_len(skb); 1599 qstats_backlog_sub(sch, len); 1600 q->buffer_used -= skb->truesize; 1601 WRITE_ONCE(b->tin_backlog, b->tin_backlog - len); 1602 WRITE_ONCE(b->backlogs[idx], b->backlogs[idx] - len); 1603 1604 WRITE_ONCE(flow->dropped, flow->dropped + 1); 1605 WRITE_ONCE(b->tin_dropped, b->tin_dropped + 1); 1606 1607 if (q->config->rate_flags & CAKE_FLAG_INGRESS) 1608 cake_advance_shaper(q, b, skb, now, true); 1609 1610 qdisc_drop_reason(skb, sch, to_free, QDISC_DROP_OVERLIMIT); 1611 qdisc_qlen_dec(sch); 1612 1613 cake_heapify(q, 0); 1614 1615 return idx + (tin << 16); 1616 } 1617 1618 static u8 cake_handle_diffserv(struct sk_buff *skb, bool wash) 1619 { 1620 const int offset = skb_network_offset(skb); 1621 u16 *buf, buf_; 1622 u8 dscp; 1623 1624 switch (skb_protocol(skb, true)) { 1625 case htons(ETH_P_IP): 1626 buf = skb_header_pointer(skb, offset, sizeof(buf_), &buf_); 1627 if (unlikely(!buf)) 1628 return 0; 1629 1630 /* ToS is in the second byte of iphdr */ 1631 dscp = ipv4_get_dsfield((struct iphdr *)buf) >> 2; 1632 1633 if (wash && dscp) { 1634 const int wlen = offset + sizeof(struct iphdr); 1635 1636 if (!pskb_may_pull(skb, wlen) || 1637 skb_try_make_writable(skb, wlen)) 1638 return 0; 1639 1640 ipv4_change_dsfield(ip_hdr(skb), INET_ECN_MASK, 0); 1641 } 1642 1643 return dscp; 1644 1645 case htons(ETH_P_IPV6): 1646 buf = skb_header_pointer(skb, offset, sizeof(buf_), &buf_); 1647 if (unlikely(!buf)) 1648 return 0; 1649 1650 /* Traffic class is in the first and second bytes of ipv6hdr */ 1651 dscp = ipv6_get_dsfield((struct ipv6hdr *)buf) >> 2; 1652 1653 if (wash && dscp) { 1654 const int wlen = offset + sizeof(struct ipv6hdr); 1655 1656 if (!pskb_may_pull(skb, wlen) || 1657 skb_try_make_writable(skb, wlen)) 1658 return 0; 1659 1660 ipv6_change_dsfield(ipv6_hdr(skb), INET_ECN_MASK, 0); 1661 } 1662 1663 return dscp; 1664 1665 case htons(ETH_P_ARP): 1666 return 0x38; /* CS7 - Net Control */ 1667 1668 default: 1669 /* If there is no Diffserv field, treat as best-effort */ 1670 return 0; 1671 } 1672 } 1673 1674 static struct cake_tin_data *cake_select_tin(struct Qdisc *sch, 1675 struct sk_buff *skb) 1676 { 1677 struct cake_sched_data *qd = qdisc_priv(sch); 1678 struct cake_sched_config *q = qd->config; 1679 u32 tin, mark; 1680 bool wash; 1681 u8 dscp; 1682 1683 /* Tin selection: Default to diffserv-based selection, allow overriding 1684 * using firewall marks or skb->priority. Call DSCP parsing early if 1685 * wash is enabled, otherwise defer to below to skip unneeded parsing. 1686 */ 1687 mark = (skb->mark & q->fwmark_mask) >> q->fwmark_shft; 1688 wash = !!(q->rate_flags & CAKE_FLAG_WASH); 1689 if (wash) 1690 dscp = cake_handle_diffserv(skb, wash); 1691 1692 if (q->tin_mode == CAKE_DIFFSERV_BESTEFFORT) 1693 tin = 0; 1694 1695 else if (mark && mark <= qd->tin_cnt) 1696 tin = qd->tin_order[mark - 1]; 1697 1698 else if (TC_H_MAJ(skb->priority) == sch->handle && 1699 TC_H_MIN(skb->priority) > 0 && 1700 TC_H_MIN(skb->priority) <= qd->tin_cnt) 1701 tin = qd->tin_order[TC_H_MIN(skb->priority) - 1]; 1702 1703 else { 1704 if (!wash) 1705 dscp = cake_handle_diffserv(skb, wash); 1706 tin = qd->tin_index[dscp]; 1707 1708 if (unlikely(tin >= qd->tin_cnt)) 1709 tin = 0; 1710 } 1711 1712 return &qd->tins[tin]; 1713 } 1714 1715 static u32 cake_classify(struct Qdisc *sch, struct cake_tin_data **t, 1716 struct sk_buff *skb, int flow_mode, int *qerr) 1717 { 1718 struct cake_sched_data *q = qdisc_priv(sch); 1719 struct tcf_proto *filter; 1720 struct tcf_result res; 1721 u16 flow = 0, host = 0; 1722 int result; 1723 1724 filter = rcu_dereference_bh(q->filter_list); 1725 if (!filter) 1726 goto hash; 1727 1728 *qerr = NET_XMIT_SUCCESS | __NET_XMIT_BYPASS; 1729 result = tcf_classify_qdisc(skb, filter, &res, false); 1730 1731 if (result >= 0) { 1732 #ifdef CONFIG_NET_CLS_ACT 1733 switch (result) { 1734 case TC_ACT_STOLEN: 1735 case TC_ACT_QUEUED: 1736 case TC_ACT_TRAP: 1737 *qerr = NET_XMIT_SUCCESS | __NET_XMIT_STOLEN; 1738 fallthrough; 1739 case TC_ACT_SHOT: 1740 return 0; 1741 } 1742 #endif 1743 if (TC_H_MIN(res.classid) <= CAKE_QUEUES) 1744 flow = TC_H_MIN(res.classid); 1745 if (TC_H_MAJ(res.classid) <= (CAKE_QUEUES << 16)) 1746 host = TC_H_MAJ(res.classid) >> 16; 1747 } 1748 hash: 1749 *t = cake_select_tin(sch, skb); 1750 return cake_hash(*t, skb, flow_mode, flow, host) + 1; 1751 } 1752 1753 static void cake_reconfigure(struct Qdisc *sch); 1754 1755 static s32 cake_enqueue(struct sk_buff *skb, struct Qdisc *sch, 1756 struct sk_buff **to_free) 1757 { 1758 u32 idx, tin, prev_qlen, prev_backlog, drop_id; 1759 struct cake_sched_data *q = qdisc_priv(sch); 1760 int len = qdisc_pkt_len(skb), ret; 1761 struct sk_buff *ack = NULL; 1762 ktime_t now = ktime_get(); 1763 struct cake_tin_data *b; 1764 struct cake_flow *flow; 1765 bool same_flow = false; 1766 1767 /* choose flow to insert into */ 1768 idx = cake_classify(sch, &b, skb, q->config->flow_mode, &ret); 1769 if (idx == 0) { 1770 if (ret & __NET_XMIT_BYPASS) 1771 qdisc_qstats_drop(sch); 1772 __qdisc_drop(skb, to_free); 1773 return ret; 1774 } 1775 tin = (u32)(b - q->tins); 1776 idx--; 1777 flow = &b->flows[idx]; 1778 1779 /* ensure shaper state isn't stale */ 1780 if (!b->tin_backlog) { 1781 if (ktime_before(b->time_next_packet, now)) 1782 b->time_next_packet = now; 1783 1784 if (!sch->q.qlen) { 1785 if (ktime_before(q->time_next_packet, now)) { 1786 q->failsafe_next_packet = now; 1787 q->time_next_packet = now; 1788 } else if (ktime_after(q->time_next_packet, now) && 1789 ktime_after(q->failsafe_next_packet, now)) { 1790 u64 next = \ 1791 min(ktime_to_ns(q->time_next_packet), 1792 ktime_to_ns( 1793 q->failsafe_next_packet)); 1794 sch->qstats.overlimits++; 1795 qdisc_watchdog_schedule_ns(&q->watchdog, next); 1796 } 1797 } 1798 } 1799 1800 if (unlikely(len > b->max_skblen)) 1801 WRITE_ONCE(b->max_skblen, len); 1802 1803 if (qdisc_pkt_segs(skb) > 1 && q->config->rate_flags & CAKE_FLAG_SPLIT_GSO) { 1804 struct sk_buff *segs, *nskb; 1805 netdev_features_t features = netif_skb_features(skb); 1806 unsigned int slen = 0, numsegs = 0; 1807 1808 segs = skb_gso_segment(skb, features & ~NETIF_F_GSO_MASK); 1809 if (IS_ERR_OR_NULL(segs)) 1810 return qdisc_drop(skb, sch, to_free); 1811 1812 skb_list_walk_safe(segs, segs, nskb) { 1813 skb_mark_not_on_list(segs); 1814 qdisc_skb_cb(segs)->pkt_len = segs->len; 1815 qdisc_skb_cb(segs)->pkt_segs = 1; 1816 cobalt_set_enqueue_time(segs, now); 1817 get_cobalt_cb(segs)->adjusted_len = cake_overhead(q, 1818 segs); 1819 flow_queue_add(flow, segs); 1820 1821 qdisc_qlen_inc(sch); 1822 numsegs++; 1823 slen += segs->len; 1824 q->buffer_used += segs->truesize; 1825 WRITE_ONCE(b->packets, b->packets + 1); 1826 } 1827 1828 /* stats */ 1829 qstats_backlog_add(sch, slen); 1830 q->avg_window_bytes += slen; 1831 WRITE_ONCE(b->bytes, b->bytes + slen); 1832 WRITE_ONCE(b->tin_backlog, b->tin_backlog + slen); 1833 WRITE_ONCE(b->backlogs[idx], b->backlogs[idx] + slen); 1834 1835 qdisc_tree_reduce_backlog(sch, 1-numsegs, len-slen); 1836 consume_skb(skb); 1837 } else { 1838 /* not splitting */ 1839 int ack_pkt_len = 0; 1840 1841 cobalt_set_enqueue_time(skb, now); 1842 get_cobalt_cb(skb)->adjusted_len = cake_overhead(q, skb); 1843 flow_queue_add(flow, skb); 1844 1845 if (q->config->ack_filter) 1846 ack = cake_ack_filter(q, flow); 1847 1848 if (ack) { 1849 WRITE_ONCE(b->ack_drops, b->ack_drops + 1); 1850 qdisc_qstats_drop(sch); 1851 ack_pkt_len = qdisc_pkt_len(ack); 1852 WRITE_ONCE(b->bytes, b->bytes + ack_pkt_len); 1853 q->buffer_used += skb->truesize - ack->truesize; 1854 if (q->config->rate_flags & CAKE_FLAG_INGRESS) 1855 cake_advance_shaper(q, b, ack, now, true); 1856 1857 qdisc_tree_reduce_backlog(sch, 1, ack_pkt_len); 1858 consume_skb(ack); 1859 } else { 1860 qdisc_qlen_inc(sch); 1861 q->buffer_used += skb->truesize; 1862 } 1863 1864 /* stats */ 1865 WRITE_ONCE(b->packets, b->packets + 1); 1866 qstats_backlog_add(sch, len - ack_pkt_len); 1867 q->avg_window_bytes += len - ack_pkt_len; 1868 WRITE_ONCE(b->bytes, b->bytes + len - ack_pkt_len); 1869 WRITE_ONCE(b->tin_backlog, b->tin_backlog + len - ack_pkt_len); 1870 WRITE_ONCE(b->backlogs[idx], b->backlogs[idx] + len - ack_pkt_len); 1871 } 1872 1873 if (q->overflow_timeout) 1874 cake_heapify_up(q, b->overflow_idx[idx]); 1875 1876 /* incoming bandwidth capacity estimate */ 1877 if (q->config->rate_flags & CAKE_FLAG_AUTORATE_INGRESS) { 1878 u64 packet_interval = \ 1879 ktime_to_ns(ktime_sub(now, q->last_packet_time)); 1880 1881 if (packet_interval > NSEC_PER_SEC) 1882 packet_interval = NSEC_PER_SEC; 1883 1884 /* filter out short-term bursts, eg. wifi aggregation */ 1885 q->avg_packet_interval = \ 1886 cake_ewma(q->avg_packet_interval, 1887 packet_interval, 1888 (packet_interval > q->avg_packet_interval ? 1889 2 : 8)); 1890 1891 q->last_packet_time = now; 1892 1893 if (packet_interval > q->avg_packet_interval) { 1894 u64 window_interval = \ 1895 ktime_to_ns(ktime_sub(now, 1896 q->avg_window_begin)); 1897 u64 b = q->avg_window_bytes * (u64)NSEC_PER_SEC; 1898 1899 b = div64_u64(b, window_interval); 1900 WRITE_ONCE(q->avg_peak_bandwidth, 1901 cake_ewma(q->avg_peak_bandwidth, b, 1902 b > q->avg_peak_bandwidth ? 2 : 8)); 1903 q->avg_window_bytes = 0; 1904 q->avg_window_begin = now; 1905 1906 if (ktime_after(now, 1907 ktime_add_ms(q->last_reconfig_time, 1908 250))) { 1909 q->config->rate_bps = (q->avg_peak_bandwidth * 15) >> 4; 1910 cake_reconfigure(sch); 1911 } 1912 } 1913 } else { 1914 q->avg_window_bytes = 0; 1915 q->last_packet_time = now; 1916 } 1917 1918 /* flowchain */ 1919 if (!flow->set || flow->set == CAKE_SET_DECAYING) { 1920 if (!flow->set) { 1921 list_add_tail(&flow->flowchain, &b->new_flows); 1922 } else { 1923 WRITE_ONCE(b->decaying_flow_count, b->decaying_flow_count - 1); 1924 list_move_tail(&flow->flowchain, &b->new_flows); 1925 } 1926 flow->set = CAKE_SET_SPARSE; 1927 WRITE_ONCE(b->sparse_flow_count, b->sparse_flow_count + 1); 1928 1929 WRITE_ONCE(flow->deficit, cake_get_flow_quantum(b, flow, q->config->flow_mode)); 1930 } else if (flow->set == CAKE_SET_SPARSE_WAIT) { 1931 /* this flow was empty, accounted as a sparse flow, but actually 1932 * in the bulk rotation. 1933 */ 1934 flow->set = CAKE_SET_BULK; 1935 WRITE_ONCE(b->sparse_flow_count, b->sparse_flow_count - 1); 1936 WRITE_ONCE(b->bulk_flow_count, b->bulk_flow_count + 1); 1937 1938 cake_inc_srchost_bulk_flow_count(b, flow, q->config->flow_mode); 1939 cake_inc_dsthost_bulk_flow_count(b, flow, q->config->flow_mode); 1940 } 1941 1942 if (q->buffer_used > q->buffer_max_used) 1943 WRITE_ONCE(q->buffer_max_used, q->buffer_used); 1944 1945 if (q->buffer_used <= q->buffer_limit) 1946 return NET_XMIT_SUCCESS; 1947 1948 prev_qlen = sch->q.qlen; 1949 prev_backlog = sch->qstats.backlog; 1950 1951 while (q->buffer_used > q->buffer_limit) { 1952 drop_id = cake_drop(sch, to_free); 1953 if ((drop_id >> 16) == tin && 1954 (drop_id & 0xFFFF) == idx) 1955 same_flow = true; 1956 } 1957 1958 prev_qlen -= sch->q.qlen; 1959 prev_backlog -= sch->qstats.backlog; 1960 b->drop_overlimit += prev_qlen; 1961 1962 if (same_flow) { 1963 qdisc_tree_reduce_backlog(sch, prev_qlen - 1, 1964 prev_backlog - len); 1965 return NET_XMIT_CN; 1966 } 1967 qdisc_tree_reduce_backlog(sch, prev_qlen, prev_backlog); 1968 return NET_XMIT_SUCCESS; 1969 } 1970 1971 static struct sk_buff *cake_dequeue_one(struct Qdisc *sch) 1972 { 1973 struct cake_sched_data *q = qdisc_priv(sch); 1974 struct cake_tin_data *b = &q->tins[q->cur_tin]; 1975 struct cake_flow *flow = &b->flows[q->cur_flow]; 1976 struct sk_buff *skb = NULL; 1977 u32 len; 1978 1979 if (flow->head) { 1980 skb = dequeue_head(flow); 1981 len = qdisc_pkt_len(skb); 1982 WRITE_ONCE(b->backlogs[q->cur_flow], b->backlogs[q->cur_flow] - len); 1983 WRITE_ONCE(b->tin_backlog, b->tin_backlog - len); 1984 qstats_backlog_sub(sch, len); 1985 q->buffer_used -= skb->truesize; 1986 qdisc_qlen_dec(sch); 1987 1988 if (q->overflow_timeout) 1989 cake_heapify(q, b->overflow_idx[q->cur_flow]); 1990 } 1991 return skb; 1992 } 1993 1994 /* Discard leftover packets from a tin no longer in use. */ 1995 static void cake_clear_tin(struct Qdisc *sch, u16 tin) 1996 { 1997 struct cake_sched_data *q = qdisc_priv(sch); 1998 struct sk_buff *skb; 1999 2000 q->cur_tin = tin; 2001 for (q->cur_flow = 0; q->cur_flow < CAKE_QUEUES; q->cur_flow++) 2002 while (!!(skb = cake_dequeue_one(sch))) 2003 kfree_skb_reason(skb, SKB_DROP_REASON_QUEUE_PURGE); 2004 } 2005 2006 static struct sk_buff *cake_dequeue(struct Qdisc *sch) 2007 { 2008 struct cake_sched_data *q = qdisc_priv(sch); 2009 struct cake_tin_data *b = &q->tins[q->cur_tin]; 2010 enum qdisc_drop_reason reason; 2011 ktime_t now = ktime_get(); 2012 struct cake_flow *flow; 2013 struct list_head *head; 2014 bool first_flow = true; 2015 struct sk_buff *skb; 2016 u64 delay; 2017 u32 len; 2018 2019 if (q->config->is_shared && q->rate_ns && 2020 now - q->last_checked_active >= q->config->sync_time) { 2021 struct net_device *dev = qdisc_dev(sch); 2022 struct cake_sched_data *other_priv; 2023 u64 new_rate = q->config->rate_bps; 2024 u64 other_qlen, other_last_active; 2025 struct Qdisc *other_sch; 2026 u32 num_active_qs = 1; 2027 unsigned int ntx; 2028 2029 for (ntx = 0; ntx < dev->num_tx_queues; ntx++) { 2030 other_sch = rcu_dereference(netdev_get_tx_queue(dev, ntx)->qdisc_sleeping); 2031 other_priv = qdisc_priv(other_sch); 2032 2033 if (other_priv == q) 2034 continue; 2035 2036 other_qlen = READ_ONCE(other_sch->q.qlen); 2037 other_last_active = READ_ONCE(other_priv->last_active); 2038 2039 if (other_qlen || other_last_active > q->last_checked_active) 2040 num_active_qs++; 2041 } 2042 2043 if (num_active_qs > 1) 2044 new_rate = div64_u64(q->config->rate_bps, num_active_qs); 2045 2046 cake_configure_rates(sch, new_rate, true); 2047 q->last_checked_active = now; 2048 WRITE_ONCE(q->active_queues, num_active_qs); 2049 } 2050 2051 begin: 2052 if (!sch->q.qlen) 2053 return NULL; 2054 2055 /* global hard shaper */ 2056 if (ktime_after(q->time_next_packet, now) && 2057 ktime_after(q->failsafe_next_packet, now)) { 2058 u64 next = min(ktime_to_ns(q->time_next_packet), 2059 ktime_to_ns(q->failsafe_next_packet)); 2060 2061 sch->qstats.overlimits++; 2062 qdisc_watchdog_schedule_ns(&q->watchdog, next); 2063 return NULL; 2064 } 2065 2066 /* Choose a class to work on. */ 2067 if (!q->rate_ns) { 2068 /* In unlimited mode, can't rely on shaper timings, just balance 2069 * with DRR 2070 */ 2071 bool wrapped = false, empty = true; 2072 2073 while (b->tin_deficit < 0 || 2074 !(b->sparse_flow_count + b->bulk_flow_count)) { 2075 if (b->tin_deficit <= 0) 2076 b->tin_deficit += b->tin_quantum; 2077 if (b->sparse_flow_count + b->bulk_flow_count) 2078 empty = false; 2079 2080 q->cur_tin++; 2081 b++; 2082 if (q->cur_tin >= q->tin_cnt) { 2083 q->cur_tin = 0; 2084 b = q->tins; 2085 2086 if (wrapped) { 2087 /* It's possible for q->qlen to be 2088 * nonzero when we actually have no 2089 * packets anywhere. 2090 */ 2091 if (empty) 2092 return NULL; 2093 } else { 2094 wrapped = true; 2095 } 2096 } 2097 } 2098 } else { 2099 /* In shaped mode, choose: 2100 * - Highest-priority tin with queue and meeting schedule, or 2101 * - The earliest-scheduled tin with queue. 2102 */ 2103 ktime_t best_time = KTIME_MAX; 2104 int tin, best_tin = 0; 2105 2106 for (tin = 0; tin < q->tin_cnt; tin++) { 2107 b = q->tins + tin; 2108 if ((b->sparse_flow_count + b->bulk_flow_count) > 0) { 2109 ktime_t time_to_pkt = \ 2110 ktime_sub(b->time_next_packet, now); 2111 2112 if (ktime_to_ns(time_to_pkt) <= 0 || 2113 ktime_compare(time_to_pkt, 2114 best_time) <= 0) { 2115 best_time = time_to_pkt; 2116 best_tin = tin; 2117 } 2118 } 2119 } 2120 2121 q->cur_tin = best_tin; 2122 b = q->tins + best_tin; 2123 2124 /* No point in going further if no packets to deliver. */ 2125 if (unlikely(!(b->sparse_flow_count + b->bulk_flow_count))) 2126 return NULL; 2127 } 2128 2129 retry: 2130 /* service this class */ 2131 head = &b->decaying_flows; 2132 if (!first_flow || list_empty(head)) { 2133 head = &b->new_flows; 2134 if (list_empty(head)) { 2135 head = &b->old_flows; 2136 if (unlikely(list_empty(head))) { 2137 head = &b->decaying_flows; 2138 if (unlikely(list_empty(head))) 2139 goto begin; 2140 } 2141 } 2142 } 2143 flow = list_first_entry(head, struct cake_flow, flowchain); 2144 q->cur_flow = flow - b->flows; 2145 first_flow = false; 2146 2147 /* flow isolation (DRR++) */ 2148 if (flow->deficit <= 0) { 2149 /* Keep all flows with deficits out of the sparse and decaying 2150 * rotations. No non-empty flow can go into the decaying 2151 * rotation, so they can't get deficits 2152 */ 2153 if (flow->set == CAKE_SET_SPARSE) { 2154 if (flow->head) { 2155 WRITE_ONCE(b->sparse_flow_count, b->sparse_flow_count - 1); 2156 WRITE_ONCE(b->bulk_flow_count, b->bulk_flow_count + 1); 2157 2158 cake_inc_srchost_bulk_flow_count(b, flow, q->config->flow_mode); 2159 cake_inc_dsthost_bulk_flow_count(b, flow, q->config->flow_mode); 2160 2161 flow->set = CAKE_SET_BULK; 2162 } else { 2163 /* we've moved it to the bulk rotation for 2164 * correct deficit accounting but we still want 2165 * to count it as a sparse flow, not a bulk one. 2166 */ 2167 flow->set = CAKE_SET_SPARSE_WAIT; 2168 } 2169 } 2170 2171 WRITE_ONCE(flow->deficit, 2172 flow->deficit + cake_get_flow_quantum(b, flow, q->config->flow_mode)); 2173 list_move_tail(&flow->flowchain, &b->old_flows); 2174 2175 goto retry; 2176 } 2177 2178 /* Retrieve a packet via the AQM */ 2179 while (1) { 2180 skb = cake_dequeue_one(sch); 2181 if (!skb) { 2182 /* this queue was actually empty */ 2183 if (cobalt_queue_empty(&flow->cvars, &b->cparams, now)) 2184 WRITE_ONCE(b->unresponsive_flow_count, 2185 b->unresponsive_flow_count - 1); 2186 2187 if (flow->cvars.p_drop || flow->cvars.count || 2188 ktime_before(now, flow->cvars.drop_next)) { 2189 /* keep in the flowchain until the state has 2190 * decayed to rest 2191 */ 2192 list_move_tail(&flow->flowchain, 2193 &b->decaying_flows); 2194 if (flow->set == CAKE_SET_BULK) { 2195 WRITE_ONCE(b->bulk_flow_count, b->bulk_flow_count - 1); 2196 2197 cake_dec_srchost_bulk_flow_count(b, flow, q->config->flow_mode); 2198 cake_dec_dsthost_bulk_flow_count(b, flow, q->config->flow_mode); 2199 2200 WRITE_ONCE(b->decaying_flow_count, b->decaying_flow_count + 1); 2201 } else if (flow->set == CAKE_SET_SPARSE || 2202 flow->set == CAKE_SET_SPARSE_WAIT) { 2203 WRITE_ONCE(b->sparse_flow_count, b->sparse_flow_count - 1); 2204 WRITE_ONCE(b->decaying_flow_count, b->decaying_flow_count + 1); 2205 } 2206 flow->set = CAKE_SET_DECAYING; 2207 } else { 2208 /* remove empty queue from the flowchain */ 2209 list_del_init(&flow->flowchain); 2210 if (flow->set == CAKE_SET_SPARSE || 2211 flow->set == CAKE_SET_SPARSE_WAIT) { 2212 WRITE_ONCE(b->sparse_flow_count, b->sparse_flow_count - 1); 2213 } else if (flow->set == CAKE_SET_BULK) { 2214 WRITE_ONCE(b->bulk_flow_count, b->bulk_flow_count - 1); 2215 2216 cake_dec_srchost_bulk_flow_count(b, flow, q->config->flow_mode); 2217 cake_dec_dsthost_bulk_flow_count(b, flow, q->config->flow_mode); 2218 } else { 2219 WRITE_ONCE(b->decaying_flow_count, b->decaying_flow_count - 1); 2220 } 2221 flow->set = CAKE_SET_NONE; 2222 } 2223 goto begin; 2224 } 2225 2226 reason = cobalt_should_drop(&flow->cvars, &b->cparams, now, skb, 2227 (b->bulk_flow_count * 2228 !!(q->config->rate_flags & 2229 CAKE_FLAG_INGRESS))); 2230 /* Last packet in queue may be marked, shouldn't be dropped */ 2231 if (reason == QDISC_DROP_UNSPEC || !flow->head) 2232 break; 2233 2234 /* drop this packet, get another one */ 2235 if (q->config->rate_flags & CAKE_FLAG_INGRESS) { 2236 len = cake_advance_shaper(q, b, skb, 2237 now, true); 2238 WRITE_ONCE(flow->deficit, flow->deficit - len); 2239 b->tin_deficit -= len; 2240 } 2241 WRITE_ONCE(flow->dropped, flow->dropped + 1); 2242 WRITE_ONCE(b->tin_dropped, b->tin_dropped + 1); 2243 qdisc_tree_reduce_backlog(sch, 1, qdisc_pkt_len(skb)); 2244 qdisc_qstats_drop(sch); 2245 qdisc_dequeue_drop(sch, skb, reason); 2246 if (q->config->rate_flags & CAKE_FLAG_INGRESS) 2247 goto retry; 2248 } 2249 2250 WRITE_ONCE(b->tin_ecn_mark, b->tin_ecn_mark + !!flow->cvars.ecn_marked); 2251 qdisc_bstats_update(sch, skb); 2252 WRITE_ONCE(q->last_active, now); 2253 2254 /* collect delay stats */ 2255 delay = ktime_to_ns(ktime_sub(now, cobalt_get_enqueue_time(skb))); 2256 WRITE_ONCE(b->avge_delay, cake_ewma(b->avge_delay, delay, 8)); 2257 WRITE_ONCE(b->peak_delay, 2258 cake_ewma(b->peak_delay, delay, 2259 delay > b->peak_delay ? 2 : 8)); 2260 WRITE_ONCE(b->base_delay, 2261 cake_ewma(b->base_delay, delay, 2262 delay < b->base_delay ? 2 : 8)); 2263 2264 len = cake_advance_shaper(q, b, skb, now, false); 2265 WRITE_ONCE(flow->deficit, flow->deficit - len); 2266 b->tin_deficit -= len; 2267 2268 if (ktime_after(q->time_next_packet, now) && sch->q.qlen) { 2269 u64 next = min(ktime_to_ns(q->time_next_packet), 2270 ktime_to_ns(q->failsafe_next_packet)); 2271 2272 qdisc_watchdog_schedule_ns(&q->watchdog, next); 2273 } else if (!sch->q.qlen) { 2274 int i; 2275 2276 for (i = 0; i < q->tin_cnt; i++) { 2277 if (q->tins[i].decaying_flow_count) { 2278 ktime_t next = \ 2279 ktime_add_ns(now, 2280 q->tins[i].cparams.target); 2281 2282 qdisc_watchdog_schedule_ns(&q->watchdog, 2283 ktime_to_ns(next)); 2284 break; 2285 } 2286 } 2287 } 2288 2289 if (q->overflow_timeout) 2290 q->overflow_timeout--; 2291 2292 return skb; 2293 } 2294 2295 static void cake_reset(struct Qdisc *sch) 2296 { 2297 struct cake_sched_data *q = qdisc_priv(sch); 2298 u32 c; 2299 2300 if (!q->tins) 2301 return; 2302 2303 for (c = 0; c < CAKE_MAX_TINS; c++) 2304 cake_clear_tin(sch, c); 2305 } 2306 2307 static const struct nla_policy cake_policy[TCA_CAKE_MAX + 1] = { 2308 [TCA_CAKE_BASE_RATE64] = { .type = NLA_U64 }, 2309 [TCA_CAKE_DIFFSERV_MODE] = { .type = NLA_U32 }, 2310 [TCA_CAKE_ATM] = { .type = NLA_U32 }, 2311 [TCA_CAKE_FLOW_MODE] = { .type = NLA_U32 }, 2312 [TCA_CAKE_OVERHEAD] = { .type = NLA_S32 }, 2313 [TCA_CAKE_RTT] = { .type = NLA_U32 }, 2314 [TCA_CAKE_TARGET] = { .type = NLA_U32 }, 2315 [TCA_CAKE_AUTORATE] = { .type = NLA_U32 }, 2316 [TCA_CAKE_MEMORY] = { .type = NLA_U32 }, 2317 [TCA_CAKE_NAT] = { .type = NLA_U32 }, 2318 [TCA_CAKE_RAW] = { .type = NLA_U32 }, 2319 [TCA_CAKE_WASH] = { .type = NLA_U32 }, 2320 [TCA_CAKE_MPU] = { .type = NLA_U32 }, 2321 [TCA_CAKE_INGRESS] = { .type = NLA_U32 }, 2322 [TCA_CAKE_ACK_FILTER] = { .type = NLA_U32 }, 2323 [TCA_CAKE_SPLIT_GSO] = { .type = NLA_U32 }, 2324 [TCA_CAKE_FWMARK] = { .type = NLA_U32 }, 2325 }; 2326 2327 static void cake_set_rate(struct cake_tin_data *b, u64 rate, u32 mtu, 2328 u64 target_ns, u64 rtt_est_ns) 2329 { 2330 /* convert byte-rate into time-per-byte 2331 * so it will always unwedge in reasonable time. 2332 */ 2333 static const u64 MIN_RATE = 64; 2334 u32 byte_target = mtu; 2335 u64 byte_target_ns; 2336 u8 rate_shft = 0; 2337 u64 rate_ns = 0; 2338 2339 if (rate) { 2340 WRITE_ONCE(b->flow_quantum, 2341 max(min(rate >> 12, 1514ULL), 300ULL)); 2342 rate_shft = 34; 2343 rate_ns = ((u64)NSEC_PER_SEC) << rate_shft; 2344 rate_ns = div64_u64(rate_ns, max(MIN_RATE, rate)); 2345 while (!!(rate_ns >> 34)) { 2346 rate_ns >>= 1; 2347 rate_shft--; 2348 } 2349 } else { 2350 /* else unlimited, ie. zero delay */ 2351 WRITE_ONCE(b->flow_quantum, 1514); 2352 } 2353 WRITE_ONCE(b->tin_rate_bps, rate); 2354 b->tin_rate_ns = rate_ns; 2355 b->tin_rate_shft = rate_shft; 2356 2357 if (mtu == 0) 2358 return; 2359 2360 byte_target_ns = (byte_target * rate_ns) >> rate_shft; 2361 2362 WRITE_ONCE(b->cparams.target, 2363 max((byte_target_ns * 3) / 2, target_ns)); 2364 WRITE_ONCE(b->cparams.interval, 2365 max(rtt_est_ns + b->cparams.target - target_ns, 2366 b->cparams.target * 2)); 2367 b->cparams.mtu_time = byte_target_ns; 2368 b->cparams.p_inc = 1 << 24; /* 1/256 */ 2369 b->cparams.p_dec = 1 << 20; /* 1/4096 */ 2370 } 2371 2372 static int cake_config_besteffort(struct Qdisc *sch, u64 rate, u32 mtu) 2373 { 2374 struct cake_sched_data *q = qdisc_priv(sch); 2375 struct cake_tin_data *b = &q->tins[0]; 2376 2377 q->tin_cnt = 1; 2378 2379 q->tin_index = besteffort; 2380 q->tin_order = normal_order; 2381 2382 cake_set_rate(b, rate, mtu, 2383 us_to_ns(q->config->target), us_to_ns(q->config->interval)); 2384 b->tin_quantum = 65535; 2385 2386 return 0; 2387 } 2388 2389 static int cake_config_precedence(struct Qdisc *sch, u64 rate, u32 mtu) 2390 { 2391 /* convert high-level (user visible) parameters into internal format */ 2392 struct cake_sched_data *q = qdisc_priv(sch); 2393 u32 quantum = 256; 2394 u32 i; 2395 2396 q->tin_cnt = 8; 2397 q->tin_index = precedence; 2398 q->tin_order = normal_order; 2399 2400 for (i = 0; i < q->tin_cnt; i++) { 2401 struct cake_tin_data *b = &q->tins[i]; 2402 2403 cake_set_rate(b, rate, mtu, us_to_ns(q->config->target), 2404 us_to_ns(q->config->interval)); 2405 2406 b->tin_quantum = max_t(u16, 1U, quantum); 2407 2408 /* calculate next class's parameters */ 2409 rate *= 7; 2410 rate >>= 3; 2411 2412 quantum *= 7; 2413 quantum >>= 3; 2414 } 2415 2416 return 0; 2417 } 2418 2419 /* List of known Diffserv codepoints: 2420 * 2421 * Default Forwarding (DF/CS0) - Best Effort 2422 * Max Throughput (TOS2) 2423 * Min Delay (TOS4) 2424 * LLT "La" (TOS5) 2425 * Assured Forwarding 1 (AF1x) - x3 2426 * Assured Forwarding 2 (AF2x) - x3 2427 * Assured Forwarding 3 (AF3x) - x3 2428 * Assured Forwarding 4 (AF4x) - x3 2429 * Precedence Class 1 (CS1) 2430 * Precedence Class 2 (CS2) 2431 * Precedence Class 3 (CS3) 2432 * Precedence Class 4 (CS4) 2433 * Precedence Class 5 (CS5) 2434 * Precedence Class 6 (CS6) 2435 * Precedence Class 7 (CS7) 2436 * Voice Admit (VA) 2437 * Expedited Forwarding (EF) 2438 * Lower Effort (LE) 2439 * 2440 * Total 26 codepoints. 2441 */ 2442 2443 /* List of traffic classes in RFC 4594, updated by RFC 8622: 2444 * (roughly descending order of contended priority) 2445 * (roughly ascending order of uncontended throughput) 2446 * 2447 * Network Control (CS6,CS7) - routing traffic 2448 * Telephony (EF,VA) - aka. VoIP streams 2449 * Signalling (CS5) - VoIP setup 2450 * Multimedia Conferencing (AF4x) - aka. video calls 2451 * Realtime Interactive (CS4) - eg. games 2452 * Multimedia Streaming (AF3x) - eg. YouTube, NetFlix, Twitch 2453 * Broadcast Video (CS3) 2454 * Low-Latency Data (AF2x,TOS4) - eg. database 2455 * Ops, Admin, Management (CS2) - eg. ssh 2456 * Standard Service (DF & unrecognised codepoints) 2457 * High-Throughput Data (AF1x,TOS2) - eg. web traffic 2458 * Low-Priority Data (LE,CS1) - eg. BitTorrent 2459 * 2460 * Total 12 traffic classes. 2461 */ 2462 2463 static int cake_config_diffserv8(struct Qdisc *sch, u64 rate, u32 mtu) 2464 { 2465 /* Pruned list of traffic classes for typical applications: 2466 * 2467 * Network Control (CS6, CS7) 2468 * Minimum Latency (EF, VA, CS5, CS4) 2469 * Interactive Shell (CS2) 2470 * Low Latency Transactions (AF2x, TOS4) 2471 * Video Streaming (AF4x, AF3x, CS3) 2472 * Bog Standard (DF etc.) 2473 * High Throughput (AF1x, TOS2, CS1) 2474 * Background Traffic (LE) 2475 * 2476 * Total 8 traffic classes. 2477 */ 2478 2479 struct cake_sched_data *q = qdisc_priv(sch); 2480 u32 quantum = 256; 2481 u32 i; 2482 2483 q->tin_cnt = 8; 2484 2485 /* codepoint to class mapping */ 2486 q->tin_index = diffserv8; 2487 q->tin_order = normal_order; 2488 2489 /* class characteristics */ 2490 for (i = 0; i < q->tin_cnt; i++) { 2491 struct cake_tin_data *b = &q->tins[i]; 2492 2493 cake_set_rate(b, rate, mtu, us_to_ns(q->config->target), 2494 us_to_ns(q->config->interval)); 2495 2496 b->tin_quantum = max_t(u16, 1U, quantum); 2497 2498 /* calculate next class's parameters */ 2499 rate *= 7; 2500 rate >>= 3; 2501 2502 quantum *= 7; 2503 quantum >>= 3; 2504 } 2505 2506 return 0; 2507 } 2508 2509 static int cake_config_diffserv4(struct Qdisc *sch, u64 rate, u32 mtu) 2510 { 2511 /* Further pruned list of traffic classes for four-class system: 2512 * 2513 * Latency Sensitive (CS7, CS6, EF, VA, CS5, CS4) 2514 * Streaming Media (AF4x, AF3x, CS3, AF2x, TOS4, CS2) 2515 * Best Effort (DF, AF1x, TOS2, and those not specified) 2516 * Background Traffic (LE, CS1) 2517 * 2518 * Total 4 traffic classes. 2519 */ 2520 2521 struct cake_sched_data *q = qdisc_priv(sch); 2522 u32 quantum = 1024; 2523 2524 q->tin_cnt = 4; 2525 2526 /* codepoint to class mapping */ 2527 q->tin_index = diffserv4; 2528 q->tin_order = bulk_order; 2529 2530 /* class characteristics */ 2531 cake_set_rate(&q->tins[0], rate, mtu, 2532 us_to_ns(q->config->target), us_to_ns(q->config->interval)); 2533 cake_set_rate(&q->tins[1], rate >> 4, mtu, 2534 us_to_ns(q->config->target), us_to_ns(q->config->interval)); 2535 cake_set_rate(&q->tins[2], rate >> 1, mtu, 2536 us_to_ns(q->config->target), us_to_ns(q->config->interval)); 2537 cake_set_rate(&q->tins[3], rate >> 2, mtu, 2538 us_to_ns(q->config->target), us_to_ns(q->config->interval)); 2539 2540 /* bandwidth-sharing weights */ 2541 q->tins[0].tin_quantum = quantum; 2542 q->tins[1].tin_quantum = quantum >> 4; 2543 q->tins[2].tin_quantum = quantum >> 1; 2544 q->tins[3].tin_quantum = quantum >> 2; 2545 2546 return 0; 2547 } 2548 2549 static int cake_config_diffserv3(struct Qdisc *sch, u64 rate, u32 mtu) 2550 { 2551 /* Simplified Diffserv structure with 3 tins. 2552 * Latency Sensitive (CS7, CS6, EF, VA, TOS4) 2553 * Best Effort 2554 * Low Priority (LE, CS1) 2555 */ 2556 struct cake_sched_data *q = qdisc_priv(sch); 2557 u32 quantum = 1024; 2558 2559 q->tin_cnt = 3; 2560 2561 /* codepoint to class mapping */ 2562 q->tin_index = diffserv3; 2563 q->tin_order = bulk_order; 2564 2565 /* class characteristics */ 2566 cake_set_rate(&q->tins[0], rate, mtu, 2567 us_to_ns(q->config->target), us_to_ns(q->config->interval)); 2568 cake_set_rate(&q->tins[1], rate >> 4, mtu, 2569 us_to_ns(q->config->target), us_to_ns(q->config->interval)); 2570 cake_set_rate(&q->tins[2], rate >> 2, mtu, 2571 us_to_ns(q->config->target), us_to_ns(q->config->interval)); 2572 2573 /* bandwidth-sharing weights */ 2574 q->tins[0].tin_quantum = quantum; 2575 q->tins[1].tin_quantum = quantum >> 4; 2576 q->tins[2].tin_quantum = quantum >> 2; 2577 2578 return 0; 2579 } 2580 2581 static void cake_configure_rates(struct Qdisc *sch, u64 rate, bool rate_adjust) 2582 { 2583 u32 mtu = likely(rate_adjust) ? 0 : psched_mtu(qdisc_dev(sch)); 2584 struct cake_sched_data *qd = qdisc_priv(sch); 2585 struct cake_sched_config *q = qd->config; 2586 int c, ft; 2587 2588 switch (q->tin_mode) { 2589 case CAKE_DIFFSERV_BESTEFFORT: 2590 ft = cake_config_besteffort(sch, rate, mtu); 2591 break; 2592 2593 case CAKE_DIFFSERV_PRECEDENCE: 2594 ft = cake_config_precedence(sch, rate, mtu); 2595 break; 2596 2597 case CAKE_DIFFSERV_DIFFSERV8: 2598 ft = cake_config_diffserv8(sch, rate, mtu); 2599 break; 2600 2601 case CAKE_DIFFSERV_DIFFSERV4: 2602 ft = cake_config_diffserv4(sch, rate, mtu); 2603 break; 2604 2605 case CAKE_DIFFSERV_DIFFSERV3: 2606 default: 2607 ft = cake_config_diffserv3(sch, rate, mtu); 2608 break; 2609 } 2610 2611 if (!rate_adjust) { 2612 for (c = qd->tin_cnt; c < CAKE_MAX_TINS; c++) { 2613 cake_clear_tin(sch, c); 2614 qd->tins[c].cparams.mtu_time = qd->tins[ft].cparams.mtu_time; 2615 } 2616 } 2617 2618 qd->rate_ns = qd->tins[ft].tin_rate_ns; 2619 qd->rate_shft = qd->tins[ft].tin_rate_shft; 2620 } 2621 2622 static void cake_reconfigure(struct Qdisc *sch) 2623 { 2624 struct cake_sched_data *qd = qdisc_priv(sch); 2625 struct cake_sched_config *q = qd->config; 2626 u32 buffer_limit; 2627 2628 cake_configure_rates(sch, qd->config->rate_bps, false); 2629 2630 if (q->buffer_config_limit) { 2631 buffer_limit = q->buffer_config_limit; 2632 } else if (q->rate_bps) { 2633 u64 t = q->rate_bps * q->interval; 2634 2635 do_div(t, USEC_PER_SEC / 4); 2636 buffer_limit = max_t(u32, t, 4U << 20); 2637 } else { 2638 buffer_limit = ~0; 2639 } 2640 2641 sch->flags &= ~TCQ_F_CAN_BYPASS; 2642 2643 WRITE_ONCE(qd->buffer_limit, 2644 min(buffer_limit, 2645 max(sch->limit * psched_mtu(qdisc_dev(sch)), 2646 q->buffer_config_limit))); 2647 } 2648 2649 static int cake_config_change(struct cake_sched_config *q, struct nlattr *opt, 2650 struct netlink_ext_ack *extack, bool *overhead_changed) 2651 { 2652 struct nlattr *tb[TCA_CAKE_MAX + 1]; 2653 u16 rate_flags = q->rate_flags; 2654 u8 flow_mode = q->flow_mode; 2655 int err; 2656 2657 err = nla_parse_nested_deprecated(tb, TCA_CAKE_MAX, opt, cake_policy, 2658 extack); 2659 if (err < 0) 2660 return err; 2661 2662 if (tb[TCA_CAKE_NAT]) { 2663 #if IS_ENABLED(CONFIG_NF_CONNTRACK) 2664 flow_mode &= ~CAKE_FLOW_NAT_FLAG; 2665 flow_mode |= CAKE_FLOW_NAT_FLAG * 2666 !!nla_get_u32(tb[TCA_CAKE_NAT]); 2667 #else 2668 NL_SET_ERR_MSG_ATTR(extack, tb[TCA_CAKE_NAT], 2669 "No conntrack support in kernel"); 2670 return -EOPNOTSUPP; 2671 #endif 2672 } 2673 2674 if (tb[TCA_CAKE_AUTORATE]) { 2675 if (!!nla_get_u32(tb[TCA_CAKE_AUTORATE])) { 2676 if (q->is_shared) { 2677 NL_SET_ERR_MSG_ATTR(extack, tb[TCA_CAKE_AUTORATE], 2678 "Can't use autorate-ingress with cake_mq"); 2679 return -EOPNOTSUPP; 2680 } 2681 rate_flags |= CAKE_FLAG_AUTORATE_INGRESS; 2682 } else { 2683 rate_flags &= ~CAKE_FLAG_AUTORATE_INGRESS; 2684 } 2685 } 2686 2687 if (tb[TCA_CAKE_BASE_RATE64]) 2688 WRITE_ONCE(q->rate_bps, 2689 nla_get_u64(tb[TCA_CAKE_BASE_RATE64])); 2690 2691 if (tb[TCA_CAKE_DIFFSERV_MODE]) 2692 WRITE_ONCE(q->tin_mode, 2693 nla_get_u32(tb[TCA_CAKE_DIFFSERV_MODE])); 2694 2695 if (tb[TCA_CAKE_WASH]) { 2696 if (!!nla_get_u32(tb[TCA_CAKE_WASH])) 2697 rate_flags |= CAKE_FLAG_WASH; 2698 else 2699 rate_flags &= ~CAKE_FLAG_WASH; 2700 } 2701 2702 if (tb[TCA_CAKE_FLOW_MODE]) 2703 flow_mode = ((flow_mode & CAKE_FLOW_NAT_FLAG) | 2704 (nla_get_u32(tb[TCA_CAKE_FLOW_MODE]) & 2705 CAKE_FLOW_MASK)); 2706 2707 if (tb[TCA_CAKE_ATM]) 2708 WRITE_ONCE(q->atm_mode, 2709 nla_get_u32(tb[TCA_CAKE_ATM])); 2710 2711 if (tb[TCA_CAKE_OVERHEAD]) { 2712 WRITE_ONCE(q->rate_overhead, 2713 nla_get_s32(tb[TCA_CAKE_OVERHEAD])); 2714 rate_flags |= CAKE_FLAG_OVERHEAD; 2715 *overhead_changed = true; 2716 } 2717 2718 if (tb[TCA_CAKE_RAW]) { 2719 rate_flags &= ~CAKE_FLAG_OVERHEAD; 2720 *overhead_changed = true; 2721 } 2722 2723 if (tb[TCA_CAKE_MPU]) 2724 WRITE_ONCE(q->rate_mpu, 2725 nla_get_u32(tb[TCA_CAKE_MPU])); 2726 2727 if (tb[TCA_CAKE_RTT]) { 2728 u32 interval = nla_get_u32(tb[TCA_CAKE_RTT]); 2729 2730 WRITE_ONCE(q->interval, max(interval, 1U)); 2731 } 2732 2733 if (tb[TCA_CAKE_TARGET]) { 2734 u32 target = nla_get_u32(tb[TCA_CAKE_TARGET]); 2735 2736 WRITE_ONCE(q->target, max(target, 1U)); 2737 } 2738 2739 if (tb[TCA_CAKE_INGRESS]) { 2740 if (!!nla_get_u32(tb[TCA_CAKE_INGRESS])) 2741 rate_flags |= CAKE_FLAG_INGRESS; 2742 else 2743 rate_flags &= ~CAKE_FLAG_INGRESS; 2744 } 2745 2746 if (tb[TCA_CAKE_ACK_FILTER]) 2747 WRITE_ONCE(q->ack_filter, 2748 nla_get_u32(tb[TCA_CAKE_ACK_FILTER])); 2749 2750 if (tb[TCA_CAKE_MEMORY]) 2751 WRITE_ONCE(q->buffer_config_limit, 2752 nla_get_u32(tb[TCA_CAKE_MEMORY])); 2753 2754 if (tb[TCA_CAKE_SPLIT_GSO]) { 2755 if (!!nla_get_u32(tb[TCA_CAKE_SPLIT_GSO])) 2756 rate_flags |= CAKE_FLAG_SPLIT_GSO; 2757 else 2758 rate_flags &= ~CAKE_FLAG_SPLIT_GSO; 2759 } 2760 2761 if (tb[TCA_CAKE_FWMARK]) { 2762 WRITE_ONCE(q->fwmark_mask, nla_get_u32(tb[TCA_CAKE_FWMARK])); 2763 WRITE_ONCE(q->fwmark_shft, 2764 q->fwmark_mask ? __ffs(q->fwmark_mask) : 0); 2765 } 2766 2767 WRITE_ONCE(q->rate_flags, rate_flags); 2768 WRITE_ONCE(q->flow_mode, flow_mode); 2769 2770 return 0; 2771 } 2772 2773 static int cake_change(struct Qdisc *sch, struct nlattr *opt, 2774 struct netlink_ext_ack *extack) 2775 { 2776 struct cake_sched_data *qd = qdisc_priv(sch); 2777 struct cake_sched_config *q = qd->config; 2778 bool overhead_changed = false; 2779 int ret; 2780 2781 if (q->is_shared) { 2782 NL_SET_ERR_MSG(extack, "can't reconfigure cake_mq sub-qdiscs"); 2783 return -EOPNOTSUPP; 2784 } 2785 2786 ret = cake_config_change(q, opt, extack, &overhead_changed); 2787 if (ret) 2788 return ret; 2789 2790 if (overhead_changed) { 2791 WRITE_ONCE(qd->max_netlen, 0); 2792 WRITE_ONCE(qd->max_adjlen, 0); 2793 WRITE_ONCE(qd->min_netlen, ~0); 2794 WRITE_ONCE(qd->min_adjlen, ~0); 2795 } 2796 2797 if (qd->tins) { 2798 sch_tree_lock(sch); 2799 cake_reconfigure(sch); 2800 sch_tree_unlock(sch); 2801 } 2802 2803 return 0; 2804 } 2805 2806 static void cake_destroy(struct Qdisc *sch) 2807 { 2808 struct cake_sched_data *q = qdisc_priv(sch); 2809 2810 qdisc_watchdog_cancel(&q->watchdog); 2811 tcf_block_put(q->block); 2812 kvfree(q->tins); 2813 } 2814 2815 static void cake_config_init(struct cake_sched_config *q, bool is_shared) 2816 { 2817 q->tin_mode = CAKE_DIFFSERV_DIFFSERV3; 2818 q->flow_mode = CAKE_FLOW_TRIPLE; 2819 2820 q->rate_bps = 0; /* unlimited by default */ 2821 2822 q->interval = 100000; /* 100ms default */ 2823 q->target = 5000; /* 5ms: codel RFC argues 2824 * for 5 to 10% of interval 2825 */ 2826 q->rate_flags |= CAKE_FLAG_SPLIT_GSO; 2827 q->is_shared = is_shared; 2828 q->sync_time = 200 * NSEC_PER_USEC; 2829 } 2830 2831 static int cake_init(struct Qdisc *sch, struct nlattr *opt, 2832 struct netlink_ext_ack *extack) 2833 { 2834 struct cake_sched_data *qd = qdisc_priv(sch); 2835 struct cake_sched_config *q = &qd->initial_config; 2836 int i, j, err; 2837 2838 cake_config_init(q, false); 2839 2840 sch->limit = 10240; 2841 sch->flags |= TCQ_F_DEQUEUE_DROPS; 2842 2843 qd->cur_tin = 0; 2844 qd->cur_flow = 0; 2845 qd->config = q; 2846 2847 qdisc_watchdog_init(&qd->watchdog, sch); 2848 2849 if (opt) { 2850 err = cake_change(sch, opt, extack); 2851 if (err) 2852 return err; 2853 } 2854 2855 err = tcf_block_get(&qd->block, &qd->filter_list, sch, extack); 2856 if (err) 2857 return err; 2858 2859 quantum_div[0] = ~0; 2860 for (i = 1; i <= CAKE_QUEUES; i++) 2861 quantum_div[i] = 65535 / i; 2862 2863 qd->tins = kvzalloc_objs(struct cake_tin_data, CAKE_MAX_TINS); 2864 if (!qd->tins) 2865 return -ENOMEM; 2866 2867 for (i = 0; i < CAKE_MAX_TINS; i++) { 2868 struct cake_tin_data *b = qd->tins + i; 2869 2870 INIT_LIST_HEAD(&b->new_flows); 2871 INIT_LIST_HEAD(&b->old_flows); 2872 INIT_LIST_HEAD(&b->decaying_flows); 2873 b->sparse_flow_count = 0; 2874 b->bulk_flow_count = 0; 2875 b->decaying_flow_count = 0; 2876 2877 for (j = 0; j < CAKE_QUEUES; j++) { 2878 struct cake_flow *flow = b->flows + j; 2879 u32 k = j * CAKE_MAX_TINS + i; 2880 2881 INIT_LIST_HEAD(&flow->flowchain); 2882 cobalt_vars_init(&flow->cvars); 2883 2884 qd->overflow_heap[k].t = i; 2885 qd->overflow_heap[k].b = j; 2886 b->overflow_idx[j] = k; 2887 } 2888 } 2889 2890 cake_reconfigure(sch); 2891 qd->avg_peak_bandwidth = q->rate_bps; 2892 qd->min_netlen = ~0; 2893 qd->min_adjlen = ~0; 2894 qd->active_queues = 0; 2895 qd->last_checked_active = 0; 2896 2897 return 0; 2898 } 2899 2900 static void cake_config_replace(struct Qdisc *sch, struct cake_sched_config *cfg) 2901 { 2902 struct cake_sched_data *qd = qdisc_priv(sch); 2903 2904 qd->config = cfg; 2905 cake_reconfigure(sch); 2906 } 2907 2908 static int cake_config_dump(struct cake_sched_config *q, struct sk_buff *skb) 2909 { 2910 struct nlattr *opts; 2911 u16 rate_flags; 2912 u8 flow_mode; 2913 2914 opts = nla_nest_start_noflag(skb, TCA_OPTIONS); 2915 if (!opts) 2916 goto nla_put_failure; 2917 2918 if (nla_put_u64_64bit(skb, TCA_CAKE_BASE_RATE64, 2919 READ_ONCE(q->rate_bps), TCA_CAKE_PAD)) 2920 goto nla_put_failure; 2921 2922 flow_mode = READ_ONCE(q->flow_mode); 2923 if (nla_put_u32(skb, TCA_CAKE_FLOW_MODE, flow_mode & CAKE_FLOW_MASK)) 2924 goto nla_put_failure; 2925 2926 if (nla_put_u32(skb, TCA_CAKE_RTT, READ_ONCE(q->interval))) 2927 goto nla_put_failure; 2928 2929 if (nla_put_u32(skb, TCA_CAKE_TARGET, READ_ONCE(q->target))) 2930 goto nla_put_failure; 2931 2932 if (nla_put_u32(skb, TCA_CAKE_MEMORY, 2933 READ_ONCE(q->buffer_config_limit))) 2934 goto nla_put_failure; 2935 2936 rate_flags = READ_ONCE(q->rate_flags); 2937 if (nla_put_u32(skb, TCA_CAKE_AUTORATE, 2938 !!(rate_flags & CAKE_FLAG_AUTORATE_INGRESS))) 2939 goto nla_put_failure; 2940 2941 if (nla_put_u32(skb, TCA_CAKE_INGRESS, 2942 !!(rate_flags & CAKE_FLAG_INGRESS))) 2943 goto nla_put_failure; 2944 2945 if (nla_put_u32(skb, TCA_CAKE_ACK_FILTER, READ_ONCE(q->ack_filter))) 2946 goto nla_put_failure; 2947 2948 if (nla_put_u32(skb, TCA_CAKE_NAT, 2949 !!(flow_mode & CAKE_FLOW_NAT_FLAG))) 2950 goto nla_put_failure; 2951 2952 if (nla_put_u32(skb, TCA_CAKE_DIFFSERV_MODE, READ_ONCE(q->tin_mode))) 2953 goto nla_put_failure; 2954 2955 if (nla_put_u32(skb, TCA_CAKE_WASH, 2956 !!(rate_flags & CAKE_FLAG_WASH))) 2957 goto nla_put_failure; 2958 2959 if (nla_put_u32(skb, TCA_CAKE_OVERHEAD, READ_ONCE(q->rate_overhead))) 2960 goto nla_put_failure; 2961 2962 if (!(rate_flags & CAKE_FLAG_OVERHEAD)) 2963 if (nla_put_u32(skb, TCA_CAKE_RAW, 0)) 2964 goto nla_put_failure; 2965 2966 if (nla_put_u32(skb, TCA_CAKE_ATM, READ_ONCE(q->atm_mode))) 2967 goto nla_put_failure; 2968 2969 if (nla_put_u32(skb, TCA_CAKE_MPU, READ_ONCE(q->rate_mpu))) 2970 goto nla_put_failure; 2971 2972 if (nla_put_u32(skb, TCA_CAKE_SPLIT_GSO, 2973 !!(rate_flags & CAKE_FLAG_SPLIT_GSO))) 2974 goto nla_put_failure; 2975 2976 if (nla_put_u32(skb, TCA_CAKE_FWMARK, READ_ONCE(q->fwmark_mask))) 2977 goto nla_put_failure; 2978 2979 return nla_nest_end(skb, opts); 2980 2981 nla_put_failure: 2982 return -1; 2983 } 2984 2985 static int cake_dump(struct Qdisc *sch, struct sk_buff *skb) 2986 { 2987 struct cake_sched_data *qd = qdisc_priv(sch); 2988 2989 return cake_config_dump(qd->config, skb); 2990 } 2991 2992 static int cake_dump_stats(struct Qdisc *sch, struct gnet_dump *d) 2993 { 2994 struct nlattr *stats = nla_nest_start_noflag(d->skb, TCA_STATS_APP); 2995 struct cake_sched_data *q = qdisc_priv(sch); 2996 struct nlattr *tstats, *ts; 2997 int i; 2998 2999 if (!stats) 3000 return -1; 3001 3002 #define PUT_STAT_U32(attr, data) do { \ 3003 if (nla_put_u32(d->skb, TCA_CAKE_STATS_ ## attr, data)) \ 3004 goto nla_put_failure; \ 3005 } while (0) 3006 #define PUT_STAT_U64(attr, data) do { \ 3007 if (nla_put_u64_64bit(d->skb, TCA_CAKE_STATS_ ## attr, \ 3008 data, TCA_CAKE_STATS_PAD)) \ 3009 goto nla_put_failure; \ 3010 } while (0) 3011 3012 PUT_STAT_U64(CAPACITY_ESTIMATE64, READ_ONCE(q->avg_peak_bandwidth)); 3013 PUT_STAT_U32(MEMORY_LIMIT, READ_ONCE(q->buffer_limit)); 3014 PUT_STAT_U32(MEMORY_USED, READ_ONCE(q->buffer_max_used)); 3015 PUT_STAT_U32(AVG_NETOFF, ((READ_ONCE(q->avg_netoff) + 0x8000) >> 16)); 3016 PUT_STAT_U32(MAX_NETLEN, READ_ONCE(q->max_netlen)); 3017 PUT_STAT_U32(MAX_ADJLEN, READ_ONCE(q->max_adjlen)); 3018 PUT_STAT_U32(MIN_NETLEN, READ_ONCE(q->min_netlen)); 3019 PUT_STAT_U32(MIN_ADJLEN, READ_ONCE(q->min_adjlen)); 3020 PUT_STAT_U32(ACTIVE_QUEUES, READ_ONCE(q->active_queues)); 3021 3022 #undef PUT_STAT_U32 3023 #undef PUT_STAT_U64 3024 3025 tstats = nla_nest_start_noflag(d->skb, TCA_CAKE_STATS_TIN_STATS); 3026 if (!tstats) 3027 goto nla_put_failure; 3028 3029 #define PUT_TSTAT_U32(attr, data) do { \ 3030 if (nla_put_u32(d->skb, TCA_CAKE_TIN_STATS_ ## attr, data)) \ 3031 goto nla_put_failure; \ 3032 } while (0) 3033 #define PUT_TSTAT_U64(attr, data) do { \ 3034 if (nla_put_u64_64bit(d->skb, TCA_CAKE_TIN_STATS_ ## attr, \ 3035 data, TCA_CAKE_TIN_STATS_PAD)) \ 3036 goto nla_put_failure; \ 3037 } while (0) 3038 3039 for (i = 0; i < q->tin_cnt; i++) { 3040 struct cake_tin_data *b = &q->tins[q->tin_order[i]]; 3041 3042 ts = nla_nest_start_noflag(d->skb, i + 1); 3043 if (!ts) 3044 goto nla_put_failure; 3045 3046 PUT_TSTAT_U64(THRESHOLD_RATE64, READ_ONCE(b->tin_rate_bps)); 3047 PUT_TSTAT_U64(SENT_BYTES64, READ_ONCE(b->bytes)); 3048 PUT_TSTAT_U32(BACKLOG_BYTES, READ_ONCE(b->tin_backlog)); 3049 3050 PUT_TSTAT_U32(TARGET_US, 3051 ktime_to_us(ns_to_ktime(READ_ONCE(b->cparams.target)))); 3052 PUT_TSTAT_U32(INTERVAL_US, 3053 ktime_to_us(ns_to_ktime(READ_ONCE(b->cparams.interval)))); 3054 3055 PUT_TSTAT_U32(SENT_PACKETS, READ_ONCE(b->packets)); 3056 PUT_TSTAT_U32(DROPPED_PACKETS, READ_ONCE(b->tin_dropped)); 3057 PUT_TSTAT_U32(ECN_MARKED_PACKETS, READ_ONCE(b->tin_ecn_mark)); 3058 PUT_TSTAT_U32(ACKS_DROPPED_PACKETS, READ_ONCE(b->ack_drops)); 3059 3060 PUT_TSTAT_U32(PEAK_DELAY_US, 3061 ktime_to_us(ns_to_ktime(READ_ONCE(b->peak_delay)))); 3062 PUT_TSTAT_U32(AVG_DELAY_US, 3063 ktime_to_us(ns_to_ktime(READ_ONCE(b->avge_delay)))); 3064 PUT_TSTAT_U32(BASE_DELAY_US, 3065 ktime_to_us(ns_to_ktime(READ_ONCE(b->base_delay)))); 3066 3067 PUT_TSTAT_U32(WAY_INDIRECT_HITS, READ_ONCE(b->way_hits)); 3068 PUT_TSTAT_U32(WAY_MISSES, READ_ONCE(b->way_misses)); 3069 PUT_TSTAT_U32(WAY_COLLISIONS, READ_ONCE(b->way_collisions)); 3070 3071 PUT_TSTAT_U32(SPARSE_FLOWS, READ_ONCE(b->sparse_flow_count) + 3072 READ_ONCE(b->decaying_flow_count)); 3073 PUT_TSTAT_U32(BULK_FLOWS, READ_ONCE(b->bulk_flow_count)); 3074 PUT_TSTAT_U32(UNRESPONSIVE_FLOWS, READ_ONCE(b->unresponsive_flow_count)); 3075 PUT_TSTAT_U32(MAX_SKBLEN, READ_ONCE(b->max_skblen)); 3076 3077 PUT_TSTAT_U32(FLOW_QUANTUM, READ_ONCE(b->flow_quantum)); 3078 nla_nest_end(d->skb, ts); 3079 } 3080 3081 #undef PUT_TSTAT_U32 3082 #undef PUT_TSTAT_U64 3083 3084 nla_nest_end(d->skb, tstats); 3085 return nla_nest_end(d->skb, stats); 3086 3087 nla_put_failure: 3088 nla_nest_cancel(d->skb, stats); 3089 return -1; 3090 } 3091 3092 static struct Qdisc *cake_leaf(struct Qdisc *sch, unsigned long arg) 3093 { 3094 return NULL; 3095 } 3096 3097 static unsigned long cake_find(struct Qdisc *sch, u32 classid) 3098 { 3099 return 0; 3100 } 3101 3102 static unsigned long cake_bind(struct Qdisc *sch, unsigned long parent, 3103 u32 classid) 3104 { 3105 return 0; 3106 } 3107 3108 static void cake_unbind(struct Qdisc *q, unsigned long cl) 3109 { 3110 } 3111 3112 static struct tcf_block *cake_tcf_block(struct Qdisc *sch, unsigned long cl, 3113 struct netlink_ext_ack *extack) 3114 { 3115 struct cake_sched_data *q = qdisc_priv(sch); 3116 3117 if (cl) 3118 return NULL; 3119 return q->block; 3120 } 3121 3122 static int cake_dump_class(struct Qdisc *sch, unsigned long cl, 3123 struct sk_buff *skb, struct tcmsg *tcm) 3124 { 3125 tcm->tcm_handle |= TC_H_MIN(cl); 3126 return 0; 3127 } 3128 3129 static int cake_dump_class_stats(struct Qdisc *sch, unsigned long cl, 3130 struct gnet_dump *d) 3131 { 3132 struct cake_sched_data *q = qdisc_priv(sch); 3133 const struct cake_flow *flow = NULL; 3134 struct gnet_stats_queue qs = { 0 }; 3135 struct nlattr *stats; 3136 u32 idx = cl - 1; 3137 3138 if (idx < CAKE_QUEUES * q->tin_cnt) { 3139 const struct cake_tin_data *b = \ 3140 &q->tins[q->tin_order[idx / CAKE_QUEUES]]; 3141 const struct sk_buff *skb; 3142 3143 flow = &b->flows[idx % CAKE_QUEUES]; 3144 3145 if (READ_ONCE(flow->head)) { 3146 sch_tree_lock(sch); 3147 skb = flow->head; 3148 while (skb) { 3149 qs.qlen++; 3150 skb = skb->next; 3151 } 3152 sch_tree_unlock(sch); 3153 } 3154 qs.backlog = READ_ONCE(b->backlogs[idx % CAKE_QUEUES]); 3155 qs.drops = READ_ONCE(flow->dropped); 3156 } 3157 if (gnet_stats_copy_queue(d, NULL, &qs, qs.qlen) < 0) 3158 return -1; 3159 if (flow) { 3160 ktime_t now = ktime_get(); 3161 bool dropping; 3162 u32 p_drop; 3163 3164 stats = nla_nest_start_noflag(d->skb, TCA_STATS_APP); 3165 if (!stats) 3166 return -1; 3167 3168 #define PUT_STAT_U32(attr, data) do { \ 3169 if (nla_put_u32(d->skb, TCA_CAKE_STATS_ ## attr, data)) \ 3170 goto nla_put_failure; \ 3171 } while (0) 3172 #define PUT_STAT_S32(attr, data) do { \ 3173 if (nla_put_s32(d->skb, TCA_CAKE_STATS_ ## attr, data)) \ 3174 goto nla_put_failure; \ 3175 } while (0) 3176 3177 PUT_STAT_S32(DEFICIT, READ_ONCE(flow->deficit)); 3178 dropping = READ_ONCE(flow->cvars.dropping); 3179 PUT_STAT_U32(DROPPING, dropping); 3180 PUT_STAT_U32(COBALT_COUNT, READ_ONCE(flow->cvars.count)); 3181 p_drop = READ_ONCE(flow->cvars.p_drop); 3182 PUT_STAT_U32(P_DROP, p_drop); 3183 if (p_drop) { 3184 PUT_STAT_S32(BLUE_TIMER_US, 3185 ktime_to_us( 3186 ktime_sub(now, 3187 READ_ONCE(flow->cvars.blue_timer)))); 3188 } 3189 if (dropping) { 3190 PUT_STAT_S32(DROP_NEXT_US, 3191 ktime_to_us( 3192 ktime_sub(now, 3193 READ_ONCE(flow->cvars.drop_next)))); 3194 } 3195 3196 if (nla_nest_end(d->skb, stats) < 0) 3197 return -1; 3198 } 3199 3200 return 0; 3201 3202 nla_put_failure: 3203 nla_nest_cancel(d->skb, stats); 3204 return -1; 3205 } 3206 3207 static void cake_walk(struct Qdisc *sch, struct qdisc_walker *arg) 3208 { 3209 struct cake_sched_data *q = qdisc_priv(sch); 3210 unsigned int i, j; 3211 3212 if (arg->stop) 3213 return; 3214 3215 for (i = 0; i < q->tin_cnt; i++) { 3216 struct cake_tin_data *b = &q->tins[q->tin_order[i]]; 3217 3218 for (j = 0; j < CAKE_QUEUES; j++) { 3219 if (list_empty(&b->flows[j].flowchain)) { 3220 arg->count++; 3221 continue; 3222 } 3223 if (!tc_qdisc_stats_dump(sch, i * CAKE_QUEUES + j + 1, 3224 arg)) 3225 break; 3226 } 3227 } 3228 } 3229 3230 static const struct Qdisc_class_ops cake_class_ops = { 3231 .leaf = cake_leaf, 3232 .find = cake_find, 3233 .tcf_block = cake_tcf_block, 3234 .bind_tcf = cake_bind, 3235 .unbind_tcf = cake_unbind, 3236 .dump = cake_dump_class, 3237 .dump_stats = cake_dump_class_stats, 3238 .walk = cake_walk, 3239 }; 3240 3241 static struct Qdisc_ops cake_qdisc_ops __read_mostly = { 3242 .cl_ops = &cake_class_ops, 3243 .id = "cake", 3244 .priv_size = sizeof(struct cake_sched_data), 3245 .enqueue = cake_enqueue, 3246 .dequeue = cake_dequeue, 3247 .peek = qdisc_peek_dequeued, 3248 .init = cake_init, 3249 .reset = cake_reset, 3250 .destroy = cake_destroy, 3251 .change = cake_change, 3252 .dump = cake_dump, 3253 .dump_stats = cake_dump_stats, 3254 .owner = THIS_MODULE, 3255 }; 3256 MODULE_ALIAS_NET_SCH("cake"); 3257 3258 struct cake_mq_sched { 3259 struct mq_sched mq_priv; /* must be first */ 3260 struct cake_sched_config cake_config; 3261 }; 3262 3263 static void cake_mq_destroy(struct Qdisc *sch) 3264 { 3265 mq_destroy_common(sch); 3266 } 3267 3268 static int cake_mq_init(struct Qdisc *sch, struct nlattr *opt, 3269 struct netlink_ext_ack *extack) 3270 { 3271 struct cake_mq_sched *priv = qdisc_priv(sch); 3272 struct net_device *dev = qdisc_dev(sch); 3273 int ret, ntx; 3274 bool _unused; 3275 3276 cake_config_init(&priv->cake_config, true); 3277 if (opt) { 3278 ret = cake_config_change(&priv->cake_config, opt, extack, &_unused); 3279 if (ret) 3280 return ret; 3281 } 3282 3283 ret = mq_init_common(sch, opt, extack, &cake_qdisc_ops); 3284 if (ret) 3285 return ret; 3286 3287 for (ntx = 0; ntx < dev->num_tx_queues; ntx++) 3288 cake_config_replace(priv->mq_priv.qdiscs[ntx], &priv->cake_config); 3289 3290 return 0; 3291 } 3292 3293 static int cake_mq_dump(struct Qdisc *sch, struct sk_buff *skb) 3294 { 3295 struct cake_mq_sched *priv = qdisc_priv(sch); 3296 3297 mq_dump_common(sch, skb); 3298 return cake_config_dump(&priv->cake_config, skb); 3299 } 3300 3301 static int cake_mq_change(struct Qdisc *sch, struct nlattr *opt, 3302 struct netlink_ext_ack *extack) 3303 { 3304 struct cake_mq_sched *priv = qdisc_priv(sch); 3305 struct net_device *dev = qdisc_dev(sch); 3306 bool overhead_changed = false; 3307 unsigned int ntx; 3308 int ret; 3309 3310 ret = cake_config_change(&priv->cake_config, opt, extack, &overhead_changed); 3311 if (ret) 3312 return ret; 3313 3314 for (ntx = 0; ntx < dev->num_tx_queues; ntx++) { 3315 struct Qdisc *chld = rtnl_dereference(netdev_get_tx_queue(dev, ntx)->qdisc_sleeping); 3316 struct cake_sched_data *qd = qdisc_priv(chld); 3317 3318 if (overhead_changed) { 3319 WRITE_ONCE(qd->max_netlen, 0); 3320 WRITE_ONCE(qd->max_adjlen, 0); 3321 WRITE_ONCE(qd->min_netlen, ~0); 3322 WRITE_ONCE(qd->min_adjlen, ~0); 3323 } 3324 3325 if (qd->tins) { 3326 sch_tree_lock(chld); 3327 cake_reconfigure(chld); 3328 sch_tree_unlock(chld); 3329 } 3330 } 3331 3332 return 0; 3333 } 3334 3335 static int cake_mq_graft(struct Qdisc *sch, unsigned long cl, struct Qdisc *new, 3336 struct Qdisc **old, struct netlink_ext_ack *extack) 3337 { 3338 NL_SET_ERR_MSG(extack, "can't replace cake_mq sub-qdiscs"); 3339 return -EOPNOTSUPP; 3340 } 3341 3342 static const struct Qdisc_class_ops cake_mq_class_ops = { 3343 .select_queue = mq_select_queue, 3344 .graft = cake_mq_graft, 3345 .leaf = mq_leaf, 3346 .find = mq_find, 3347 .walk = mq_walk, 3348 .dump = mq_dump_class, 3349 .dump_stats = mq_dump_class_stats, 3350 }; 3351 3352 static struct Qdisc_ops cake_mq_qdisc_ops __read_mostly = { 3353 .cl_ops = &cake_mq_class_ops, 3354 .id = "cake_mq", 3355 .priv_size = sizeof(struct cake_mq_sched), 3356 .init = cake_mq_init, 3357 .destroy = cake_mq_destroy, 3358 .attach = mq_attach, 3359 .change = cake_mq_change, 3360 .change_real_num_tx = mq_change_real_num_tx, 3361 .dump = cake_mq_dump, 3362 .owner = THIS_MODULE, 3363 }; 3364 MODULE_ALIAS_NET_SCH("cake_mq"); 3365 3366 static int __init cake_module_init(void) 3367 { 3368 int ret; 3369 3370 ret = register_qdisc(&cake_qdisc_ops); 3371 if (ret) 3372 return ret; 3373 3374 ret = register_qdisc(&cake_mq_qdisc_ops); 3375 if (ret) 3376 unregister_qdisc(&cake_qdisc_ops); 3377 3378 return ret; 3379 } 3380 3381 static void __exit cake_module_exit(void) 3382 { 3383 unregister_qdisc(&cake_qdisc_ops); 3384 unregister_qdisc(&cake_mq_qdisc_ops); 3385 } 3386 3387 module_init(cake_module_init) 3388 module_exit(cake_module_exit) 3389 MODULE_AUTHOR("Jonathan Morton"); 3390 MODULE_LICENSE("Dual BSD/GPL"); 3391 MODULE_DESCRIPTION("The CAKE shaper."); 3392 MODULE_IMPORT_NS("NET_SCHED_INTERNAL"); 3393