mshr.cc revision 11742
1/* 2 * Copyright (c) 2012-2013, 2015-2016 ARM Limited 3 * All rights reserved. 4 * 5 * The license below extends only to copyright in the software and shall 6 * not be construed as granting a license to any other intellectual 7 * property including but not limited to intellectual property relating 8 * to a hardware implementation of the functionality of the software 9 * licensed hereunder. You may use the software subject to the license 10 * terms below provided that you ensure that this notice is replicated 11 * unmodified and in its entirety in all distributions of the software, 12 * modified or unmodified, in source code or in binary form. 13 * 14 * Copyright (c) 2002-2005 The Regents of The University of Michigan 15 * Copyright (c) 2010 Advanced Micro Devices, Inc. 16 * All rights reserved. 17 * 18 * Redistribution and use in source and binary forms, with or without 19 * modification, are permitted provided that the following conditions are 20 * met: redistributions of source code must retain the above copyright 21 * notice, this list of conditions and the following disclaimer; 22 * redistributions in binary form must reproduce the above copyright 23 * notice, this list of conditions and the following disclaimer in the 24 * documentation and/or other materials provided with the distribution; 25 * neither the name of the copyright holders nor the names of its 26 * contributors may be used to endorse or promote products derived from 27 * this software without specific prior written permission. 28 * 29 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS 30 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT 31 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR 32 * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT 33 * OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, 34 * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT 35 * LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, 36 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY 37 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT 38 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE 39 * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. 40 * 41 * Authors: Erik Hallnor 42 * Dave Greene 43 */ 44 45/** 46 * @file 47 * Miss Status and Handling Register (MSHR) definitions. 48 */ 49 50#include "mem/cache/mshr.hh" 51 52#include <algorithm> 53#include <cassert> 54#include <string> 55#include <vector> 56 57#include "base/misc.hh" 58#include "base/types.hh" 59#include "debug/Cache.hh" 60#include "mem/cache/cache.hh" 61#include "sim/core.hh" 62 63using namespace std; 64 65MSHR::MSHR() : downstreamPending(false), 66 pendingModified(false), 67 postInvalidate(false), postDowngrade(false), 68 isForward(false) 69{ 70} 71 72MSHR::TargetList::TargetList() 73 : needsWritable(false), hasUpgrade(false), allocOnFill(false) 74{} 75 76 77void 78MSHR::TargetList::updateFlags(PacketPtr pkt, Target::Source source, 79 bool alloc_on_fill) 80{ 81 if (source != Target::FromSnoop) { 82 if (pkt->needsWritable()) { 83 needsWritable = true; 84 } 85 86 // StoreCondReq is effectively an upgrade if it's in an MSHR 87 // since it would have been failed already if we didn't have a 88 // read-only copy 89 if (pkt->isUpgrade() || pkt->cmd == MemCmd::StoreCondReq) { 90 hasUpgrade = true; 91 } 92 93 // potentially re-evaluate whether we should allocate on a fill or 94 // not 95 allocOnFill = allocOnFill || alloc_on_fill; 96 } 97} 98 99void 100MSHR::TargetList::populateFlags() 101{ 102 resetFlags(); 103 for (auto& t: *this) { 104 updateFlags(t.pkt, t.source, t.allocOnFill); 105 } 106} 107 108inline void 109MSHR::TargetList::add(PacketPtr pkt, Tick readyTime, 110 Counter order, Target::Source source, bool markPending, 111 bool alloc_on_fill) 112{ 113 updateFlags(pkt, source, alloc_on_fill); 114 if (markPending) { 115 // Iterate over the SenderState stack and see if we find 116 // an MSHR entry. If we do, set the downstreamPending 117 // flag. Otherwise, do nothing. 118 MSHR *mshr = pkt->findNextSenderState<MSHR>(); 119 if (mshr != nullptr) { 120 assert(!mshr->downstreamPending); 121 mshr->downstreamPending = true; 122 } else { 123 // No need to clear downstreamPending later 124 markPending = false; 125 } 126 } 127 128 emplace_back(pkt, readyTime, order, source, markPending, alloc_on_fill); 129} 130 131 132static void 133replaceUpgrade(PacketPtr pkt) 134{ 135 // remember if the current packet has data allocated 136 bool has_data = pkt->hasData() || pkt->hasRespData(); 137 138 if (pkt->cmd == MemCmd::UpgradeReq) { 139 pkt->cmd = MemCmd::ReadExReq; 140 DPRINTF(Cache, "Replacing UpgradeReq with ReadExReq\n"); 141 } else if (pkt->cmd == MemCmd::SCUpgradeReq) { 142 pkt->cmd = MemCmd::SCUpgradeFailReq; 143 DPRINTF(Cache, "Replacing SCUpgradeReq with SCUpgradeFailReq\n"); 144 } else if (pkt->cmd == MemCmd::StoreCondReq) { 145 pkt->cmd = MemCmd::StoreCondFailReq; 146 DPRINTF(Cache, "Replacing StoreCondReq with StoreCondFailReq\n"); 147 } 148 149 if (!has_data) { 150 // there is no sensible way of setting the data field if the 151 // new command actually would carry data 152 assert(!pkt->hasData()); 153 154 if (pkt->hasRespData()) { 155 // we went from a packet that had no data (neither request, 156 // nor response), to one that does, and therefore we need to 157 // actually allocate space for the data payload 158 pkt->allocate(); 159 } 160 } 161} 162 163 164void 165MSHR::TargetList::replaceUpgrades() 166{ 167 if (!hasUpgrade) 168 return; 169 170 for (auto& t : *this) { 171 replaceUpgrade(t.pkt); 172 } 173 174 hasUpgrade = false; 175} 176 177 178void 179MSHR::TargetList::clearDownstreamPending() 180{ 181 for (auto& t : *this) { 182 if (t.markedPending) { 183 // Iterate over the SenderState stack and see if we find 184 // an MSHR entry. If we find one, clear the 185 // downstreamPending flag by calling 186 // clearDownstreamPending(). This recursively clears the 187 // downstreamPending flag in all caches this packet has 188 // passed through. 189 MSHR *mshr = t.pkt->findNextSenderState<MSHR>(); 190 if (mshr != nullptr) { 191 mshr->clearDownstreamPending(); 192 } 193 t.markedPending = false; 194 } 195 } 196} 197 198 199bool 200MSHR::TargetList::checkFunctional(PacketPtr pkt) 201{ 202 for (auto& t : *this) { 203 if (pkt->checkFunctional(t.pkt)) { 204 return true; 205 } 206 } 207 208 return false; 209} 210 211 212void 213MSHR::TargetList::print(std::ostream &os, int verbosity, 214 const std::string &prefix) const 215{ 216 for (auto& t : *this) { 217 const char *s; 218 switch (t.source) { 219 case Target::FromCPU: 220 s = "FromCPU"; 221 break; 222 case Target::FromSnoop: 223 s = "FromSnoop"; 224 break; 225 case Target::FromPrefetcher: 226 s = "FromPrefetcher"; 227 break; 228 default: 229 s = ""; 230 break; 231 } 232 ccprintf(os, "%s%s: ", prefix, s); 233 t.pkt->print(os, verbosity, ""); 234 } 235} 236 237 238void 239MSHR::allocate(Addr blk_addr, unsigned blk_size, PacketPtr target, 240 Tick when_ready, Counter _order, bool alloc_on_fill) 241{ 242 blkAddr = blk_addr; 243 blkSize = blk_size; 244 isSecure = target->isSecure(); 245 readyTime = when_ready; 246 order = _order; 247 assert(target); 248 isForward = false; 249 _isUncacheable = target->req->isUncacheable(); 250 inService = false; 251 downstreamPending = false; 252 assert(targets.isReset()); 253 // Don't know of a case where we would allocate a new MSHR for a 254 // snoop (mem-side request), so set source according to request here 255 Target::Source source = (target->cmd == MemCmd::HardPFReq) ? 256 Target::FromPrefetcher : Target::FromCPU; 257 targets.add(target, when_ready, _order, source, true, alloc_on_fill); 258 assert(deferredTargets.isReset()); 259} 260 261 262void 263MSHR::clearDownstreamPending() 264{ 265 assert(downstreamPending); 266 downstreamPending = false; 267 // recursively clear flag on any MSHRs we will be forwarding 268 // responses to 269 targets.clearDownstreamPending(); 270} 271 272void 273MSHR::markInService(bool pending_modified_resp) 274{ 275 assert(!inService); 276 277 inService = true; 278 pendingModified = targets.needsWritable || pending_modified_resp; 279 postInvalidate = postDowngrade = false; 280 281 if (!downstreamPending) { 282 // let upstream caches know that the request has made it to a 283 // level where it's going to get a response 284 targets.clearDownstreamPending(); 285 } 286} 287 288 289void 290MSHR::deallocate() 291{ 292 assert(targets.empty()); 293 targets.resetFlags(); 294 assert(deferredTargets.isReset()); 295 inService = false; 296} 297 298/* 299 * Adds a target to an MSHR 300 */ 301void 302MSHR::allocateTarget(PacketPtr pkt, Tick whenReady, Counter _order, 303 bool alloc_on_fill) 304{ 305 // assume we'd never issue a prefetch when we've got an 306 // outstanding miss 307 assert(pkt->cmd != MemCmd::HardPFReq); 308 309 // uncacheable accesses always allocate a new MSHR, and cacheable 310 // accesses ignore any uncacheable MSHRs, thus we should never 311 // have targets addded if originally allocated uncacheable 312 assert(!_isUncacheable); 313 314 // if there's a request already in service for this MSHR, we will 315 // have to defer the new target until after the response if any of 316 // the following are true: 317 // - there are other targets already deferred 318 // - there's a pending invalidate to be applied after the response 319 // comes back (but before this target is processed) 320 // - this target requires a writable block and either we're not 321 // getting a writable block back or we have already snooped 322 // another read request that will downgrade our writable block 323 // to non-writable (Shared or Owned) 324 if (inService && 325 (!deferredTargets.empty() || hasPostInvalidate() || 326 (pkt->needsWritable() && 327 (!isPendingModified() || hasPostDowngrade() || isForward)))) { 328 // need to put on deferred list 329 if (hasPostInvalidate()) 330 replaceUpgrade(pkt); 331 deferredTargets.add(pkt, whenReady, _order, Target::FromCPU, true, 332 alloc_on_fill); 333 } else { 334 // No request outstanding, or still OK to append to 335 // outstanding request: append to regular target list. Only 336 // mark pending if current request hasn't been issued yet 337 // (isn't in service). 338 targets.add(pkt, whenReady, _order, Target::FromCPU, !inService, 339 alloc_on_fill); 340 } 341} 342 343bool 344MSHR::handleSnoop(PacketPtr pkt, Counter _order) 345{ 346 DPRINTF(Cache, "%s for %s addr %#llx size %d\n", __func__, 347 pkt->cmdString(), pkt->getAddr(), pkt->getSize()); 348 349 // when we snoop packets the needsWritable and isInvalidate flags 350 // should always be the same, however, this assumes that we never 351 // snoop writes as they are currently not marked as invalidations 352 panic_if(pkt->needsWritable() != pkt->isInvalidate(), 353 "%s got snoop %s to addr %#llx where needsWritable, " 354 "does not match isInvalidate", name(), pkt->cmdString(), 355 pkt->getAddr()); 356 357 if (!inService || (pkt->isExpressSnoop() && downstreamPending)) { 358 // Request has not been issued yet, or it's been issued 359 // locally but is buffered unissued at some downstream cache 360 // which is forwarding us this snoop. Either way, the packet 361 // we're snooping logically precedes this MSHR's request, so 362 // the snoop has no impact on the MSHR, but must be processed 363 // in the standard way by the cache. The only exception is 364 // that if we're an L2+ cache buffering an UpgradeReq from a 365 // higher-level cache, and the snoop is invalidating, then our 366 // buffered upgrades must be converted to read exclusives, 367 // since the upper-level cache no longer has a valid copy. 368 // That is, even though the upper-level cache got out on its 369 // local bus first, some other invalidating transaction 370 // reached the global bus before the upgrade did. 371 if (pkt->needsWritable()) { 372 targets.replaceUpgrades(); 373 deferredTargets.replaceUpgrades(); 374 } 375 376 return false; 377 } 378 379 // From here on down, the request issued by this MSHR logically 380 // precedes the request we're snooping. 381 if (pkt->needsWritable()) { 382 // snooped request still precedes the re-request we'll have to 383 // issue for deferred targets, if any... 384 deferredTargets.replaceUpgrades(); 385 } 386 387 if (hasPostInvalidate()) { 388 // a prior snoop has already appended an invalidation, so 389 // logically we don't have the block anymore; no need for 390 // further snooping. 391 return true; 392 } 393 394 if (isPendingModified() || pkt->isInvalidate()) { 395 // We need to save and replay the packet in two cases: 396 // 1. We're awaiting a writable copy (Modified or Exclusive), 397 // so this MSHR is the orgering point, and we need to respond 398 // after we receive data. 399 // 2. It's an invalidation (e.g., UpgradeReq), and we need 400 // to forward the snoop up the hierarchy after the current 401 // transaction completes. 402 403 // Start by determining if we will eventually respond or not, 404 // matching the conditions checked in Cache::handleSnoop 405 bool will_respond = isPendingModified() && pkt->needsResponse() && 406 pkt->cmd != MemCmd::InvalidateReq; 407 408 // The packet we are snooping may be deleted by the time we 409 // actually process the target, and we consequently need to 410 // save a copy here. Clear flags and also allocate new data as 411 // the original packet data storage may have been deleted by 412 // the time we get to process this packet. In the cases where 413 // we are not responding after handling the snoop we also need 414 // to create a copy of the request to be on the safe side. In 415 // the latter case the cache is responsible for deleting both 416 // the packet and the request as part of handling the deferred 417 // snoop. 418 PacketPtr cp_pkt = will_respond ? new Packet(pkt, true, true) : 419 new Packet(new Request(*pkt->req), pkt->cmd); 420 421 if (will_respond) { 422 // we are the ordering point, and will consequently 423 // respond, and depending on whether the packet 424 // needsWritable or not we either pass a Shared line or a 425 // Modified line 426 pkt->setCacheResponding(); 427 428 // inform the cache hierarchy that this cache had the line 429 // in the Modified state, even if the response is passed 430 // as Shared (and thus non-writable) 431 pkt->setResponderHadWritable(); 432 433 // in the case of an uncacheable request there is no need 434 // to set the responderHadWritable flag, but since the 435 // recipient does not care there is no harm in doing so 436 } 437 targets.add(cp_pkt, curTick(), _order, Target::FromSnoop, 438 downstreamPending && targets.needsWritable, false); 439 440 if (pkt->needsWritable()) { 441 // This transaction will take away our pending copy 442 postInvalidate = true; 443 } 444 } 445 446 if (!pkt->needsWritable() && !pkt->req->isUncacheable()) { 447 // This transaction will get a read-shared copy, downgrading 448 // our copy if we had a writable one 449 postDowngrade = true; 450 // make sure that any downstream cache does not respond with a 451 // writable (and dirty) copy even if it has one, unless it was 452 // explicitly asked for one 453 pkt->setHasSharers(); 454 } 455 456 return true; 457} 458 459MSHR::TargetList 460MSHR::extractServiceableTargets(PacketPtr pkt) 461{ 462 TargetList ready_targets; 463 // If the downstream MSHR got an invalidation request then we only 464 // service the first of the FromCPU targets and any other 465 // non-FromCPU target. This way the remaining FromCPU targets 466 // issue a new request and get a fresh copy of the block and we 467 // avoid memory consistency violations. 468 if (pkt->cmd == MemCmd::ReadRespWithInvalidate) { 469 auto it = targets.begin(); 470 assert(it->source == Target::FromCPU); 471 ready_targets.push_back(*it); 472 it = targets.erase(it); 473 while (it != targets.end()) { 474 if (it->source == Target::FromCPU) { 475 it++; 476 } else { 477 assert(it->source == Target::FromSnoop); 478 ready_targets.push_back(*it); 479 it = targets.erase(it); 480 } 481 } 482 ready_targets.populateFlags(); 483 } else { 484 std::swap(ready_targets, targets); 485 } 486 targets.populateFlags(); 487 488 return ready_targets; 489} 490 491bool 492MSHR::promoteDeferredTargets() 493{ 494 if (targets.empty()) { 495 if (deferredTargets.empty()) { 496 return false; 497 } 498 499 std::swap(targets, deferredTargets); 500 } else { 501 // If the targets list is not empty then we have one targets 502 // from the deferredTargets list to the targets list. A new 503 // request will then service the targets list. 504 targets.splice(targets.end(), deferredTargets); 505 targets.populateFlags(); 506 } 507 508 // clear deferredTargets flags 509 deferredTargets.resetFlags(); 510 511 order = targets.front().order; 512 readyTime = std::max(curTick(), targets.front().readyTime); 513 514 return true; 515} 516 517 518void 519MSHR::promoteWritable() 520{ 521 if (deferredTargets.needsWritable && 522 !(hasPostInvalidate() || hasPostDowngrade())) { 523 // We got a writable response, but we have deferred targets 524 // which are waiting to request a writable copy (not because 525 // of a pending invalidate). This can happen if the original 526 // request was for a read-only block, but we got a writable 527 // response anyway. Since we got the writable copy there's no 528 // need to defer the targets, so move them up to the regular 529 // target list. 530 assert(!targets.needsWritable); 531 targets.needsWritable = true; 532 // if any of the deferred targets were upper-level cache 533 // requests marked downstreamPending, need to clear that 534 assert(!downstreamPending); // not pending here anymore 535 deferredTargets.clearDownstreamPending(); 536 // this clears out deferredTargets too 537 targets.splice(targets.end(), deferredTargets); 538 deferredTargets.resetFlags(); 539 } 540} 541 542 543bool 544MSHR::checkFunctional(PacketPtr pkt) 545{ 546 // For printing, we treat the MSHR as a whole as single entity. 547 // For other requests, we iterate over the individual targets 548 // since that's where the actual data lies. 549 if (pkt->isPrint()) { 550 pkt->checkFunctional(this, blkAddr, isSecure, blkSize, nullptr); 551 return false; 552 } else { 553 return (targets.checkFunctional(pkt) || 554 deferredTargets.checkFunctional(pkt)); 555 } 556} 557 558bool 559MSHR::sendPacket(Cache &cache) 560{ 561 return cache.sendMSHRQueuePacket(this); 562} 563 564void 565MSHR::print(std::ostream &os, int verbosity, const std::string &prefix) const 566{ 567 ccprintf(os, "%s[%#llx:%#llx](%s) %s %s %s state: %s %s %s %s %s\n", 568 prefix, blkAddr, blkAddr + blkSize - 1, 569 isSecure ? "s" : "ns", 570 isForward ? "Forward" : "", 571 allocOnFill() ? "AllocOnFill" : "", 572 needsWritable() ? "Wrtbl" : "", 573 _isUncacheable ? "Unc" : "", 574 inService ? "InSvc" : "", 575 downstreamPending ? "DwnPend" : "", 576 postInvalidate ? "PostInv" : "", 577 postDowngrade ? "PostDowngr" : ""); 578 579 if (!targets.empty()) { 580 ccprintf(os, "%s Targets:\n", prefix); 581 targets.print(os, verbosity, prefix + " "); 582 } 583 if (!deferredTargets.empty()) { 584 ccprintf(os, "%s Deferred Targets:\n", prefix); 585 deferredTargets.print(os, verbosity, prefix + " "); 586 } 587} 588 589std::string 590MSHR::print() const 591{ 592 ostringstream str; 593 print(str); 594 return str.str(); 595} 596