noncoherent_xbar.cc revision 10888:85a001f2193b
1/* 2 * Copyright (c) 2011-2015 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) 2006 The Regents of The University of Michigan 15 * All rights reserved. 16 * 17 * Redistribution and use in source and binary forms, with or without 18 * modification, are permitted provided that the following conditions are 19 * met: redistributions of source code must retain the above copyright 20 * notice, this list of conditions and the following disclaimer; 21 * redistributions in binary form must reproduce the above copyright 22 * notice, this list of conditions and the following disclaimer in the 23 * documentation and/or other materials provided with the distribution; 24 * neither the name of the copyright holders nor the names of its 25 * contributors may be used to endorse or promote products derived from 26 * this software without specific prior written permission. 27 * 28 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS 29 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT 30 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR 31 * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT 32 * OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, 33 * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT 34 * LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, 35 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY 36 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT 37 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE 38 * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. 39 * 40 * Authors: Ali Saidi 41 * Andreas Hansson 42 * William Wang 43 */ 44 45/** 46 * @file 47 * Definition of a non-coherent crossbar object. 48 */ 49 50#include "base/misc.hh" 51#include "base/trace.hh" 52#include "debug/NoncoherentXBar.hh" 53#include "debug/XBar.hh" 54#include "mem/noncoherent_xbar.hh" 55 56NoncoherentXBar::NoncoherentXBar(const NoncoherentXBarParams *p) 57 : BaseXBar(p) 58{ 59 // create the ports based on the size of the master and slave 60 // vector ports, and the presence of the default port, the ports 61 // are enumerated starting from zero 62 for (int i = 0; i < p->port_master_connection_count; ++i) { 63 std::string portName = csprintf("%s.master[%d]", name(), i); 64 MasterPort* bp = new NoncoherentXBarMasterPort(portName, *this, i); 65 masterPorts.push_back(bp); 66 reqLayers.push_back(new ReqLayer(*bp, *this, 67 csprintf(".reqLayer%d", i))); 68 } 69 70 // see if we have a default slave device connected and if so add 71 // our corresponding master port 72 if (p->port_default_connection_count) { 73 defaultPortID = masterPorts.size(); 74 std::string portName = name() + ".default"; 75 MasterPort* bp = new NoncoherentXBarMasterPort(portName, *this, 76 defaultPortID); 77 masterPorts.push_back(bp); 78 reqLayers.push_back(new ReqLayer(*bp, *this, csprintf(".reqLayer%d", 79 defaultPortID))); 80 } 81 82 // create the slave ports, once again starting at zero 83 for (int i = 0; i < p->port_slave_connection_count; ++i) { 84 std::string portName = csprintf("%s.slave[%d]", name(), i); 85 QueuedSlavePort* bp = new NoncoherentXBarSlavePort(portName, *this, i); 86 slavePorts.push_back(bp); 87 respLayers.push_back(new RespLayer(*bp, *this, 88 csprintf(".respLayer%d", i))); 89 } 90 91 clearPortCache(); 92} 93 94NoncoherentXBar::~NoncoherentXBar() 95{ 96 for (auto l: reqLayers) 97 delete l; 98 for (auto l: respLayers) 99 delete l; 100} 101 102bool 103NoncoherentXBar::recvTimingReq(PacketPtr pkt, PortID slave_port_id) 104{ 105 // determine the source port based on the id 106 SlavePort *src_port = slavePorts[slave_port_id]; 107 108 // we should never see express snoops on a non-coherent crossbar 109 assert(!pkt->isExpressSnoop()); 110 111 // determine the destination based on the address 112 PortID master_port_id = findPort(pkt->getAddr()); 113 114 // test if the layer should be considered occupied for the current 115 // port 116 if (!reqLayers[master_port_id]->tryTiming(src_port)) { 117 DPRINTF(NoncoherentXBar, "recvTimingReq: src %s %s 0x%x BUSY\n", 118 src_port->name(), pkt->cmdString(), pkt->getAddr()); 119 return false; 120 } 121 122 DPRINTF(NoncoherentXBar, "recvTimingReq: src %s %s 0x%x\n", 123 src_port->name(), pkt->cmdString(), pkt->getAddr()); 124 125 // store size and command as they might be modified when 126 // forwarding the packet 127 unsigned int pkt_size = pkt->hasData() ? pkt->getSize() : 0; 128 unsigned int pkt_cmd = pkt->cmdToIndex(); 129 130 // store the old header delay so we can restore it if needed 131 Tick old_header_delay = pkt->headerDelay; 132 133 // a request sees the frontend and forward latency 134 Tick xbar_delay = (frontendLatency + forwardLatency) * clockPeriod(); 135 136 // set the packet header and payload delay 137 calcPacketTiming(pkt, xbar_delay); 138 139 // determine how long to be crossbar layer is busy 140 Tick packetFinishTime = clockEdge(Cycles(1)) + pkt->payloadDelay; 141 142 // before forwarding the packet (and possibly altering it), 143 // remember if we are expecting a response 144 const bool expect_response = pkt->needsResponse() && 145 !pkt->memInhibitAsserted(); 146 147 // since it is a normal request, attempt to send the packet 148 bool success = masterPorts[master_port_id]->sendTimingReq(pkt); 149 150 if (!success) { 151 // inhibited packets should never be forced to retry 152 assert(!pkt->memInhibitAsserted()); 153 154 DPRINTF(NoncoherentXBar, "recvTimingReq: src %s %s 0x%x RETRY\n", 155 src_port->name(), pkt->cmdString(), pkt->getAddr()); 156 157 // restore the header delay as it is additive 158 pkt->headerDelay = old_header_delay; 159 160 // occupy until the header is sent 161 reqLayers[master_port_id]->failedTiming(src_port, 162 clockEdge(Cycles(1))); 163 164 return false; 165 } 166 167 // remember where to route the response to 168 if (expect_response) { 169 assert(routeTo.find(pkt->req) == routeTo.end()); 170 routeTo[pkt->req] = slave_port_id; 171 } 172 173 reqLayers[master_port_id]->succeededTiming(packetFinishTime); 174 175 // stats updates 176 pktCount[slave_port_id][master_port_id]++; 177 pktSize[slave_port_id][master_port_id] += pkt_size; 178 transDist[pkt_cmd]++; 179 180 return true; 181} 182 183bool 184NoncoherentXBar::recvTimingResp(PacketPtr pkt, PortID master_port_id) 185{ 186 // determine the source port based on the id 187 MasterPort *src_port = masterPorts[master_port_id]; 188 189 // determine the destination 190 const auto route_lookup = routeTo.find(pkt->req); 191 assert(route_lookup != routeTo.end()); 192 const PortID slave_port_id = route_lookup->second; 193 assert(slave_port_id != InvalidPortID); 194 assert(slave_port_id < respLayers.size()); 195 196 // test if the layer should be considered occupied for the current 197 // port 198 if (!respLayers[slave_port_id]->tryTiming(src_port)) { 199 DPRINTF(NoncoherentXBar, "recvTimingResp: src %s %s 0x%x BUSY\n", 200 src_port->name(), pkt->cmdString(), pkt->getAddr()); 201 return false; 202 } 203 204 DPRINTF(NoncoherentXBar, "recvTimingResp: src %s %s 0x%x\n", 205 src_port->name(), pkt->cmdString(), pkt->getAddr()); 206 207 // store size and command as they might be modified when 208 // forwarding the packet 209 unsigned int pkt_size = pkt->hasData() ? pkt->getSize() : 0; 210 unsigned int pkt_cmd = pkt->cmdToIndex(); 211 212 // a response sees the response latency 213 Tick xbar_delay = responseLatency * clockPeriod(); 214 215 // set the packet header and payload delay 216 calcPacketTiming(pkt, xbar_delay); 217 218 // determine how long to be crossbar layer is busy 219 Tick packetFinishTime = clockEdge(Cycles(1)) + pkt->payloadDelay; 220 221 // send the packet through the destination slave port, and pay for 222 // any outstanding latency 223 Tick latency = pkt->headerDelay; 224 pkt->headerDelay = 0; 225 slavePorts[slave_port_id]->schedTimingResp(pkt, curTick() + latency); 226 227 // remove the request from the routing table 228 routeTo.erase(route_lookup); 229 230 respLayers[slave_port_id]->succeededTiming(packetFinishTime); 231 232 // stats updates 233 pktCount[slave_port_id][master_port_id]++; 234 pktSize[slave_port_id][master_port_id] += pkt_size; 235 transDist[pkt_cmd]++; 236 237 return true; 238} 239 240void 241NoncoherentXBar::recvReqRetry(PortID master_port_id) 242{ 243 // responses never block on forwarding them, so the retry will 244 // always be coming from a port to which we tried to forward a 245 // request 246 reqLayers[master_port_id]->recvRetry(); 247} 248 249Tick 250NoncoherentXBar::recvAtomic(PacketPtr pkt, PortID slave_port_id) 251{ 252 DPRINTF(NoncoherentXBar, "recvAtomic: packet src %s addr 0x%x cmd %s\n", 253 slavePorts[slave_port_id]->name(), pkt->getAddr(), 254 pkt->cmdString()); 255 256 unsigned int pkt_size = pkt->hasData() ? pkt->getSize() : 0; 257 unsigned int pkt_cmd = pkt->cmdToIndex(); 258 259 // determine the destination port 260 PortID master_port_id = findPort(pkt->getAddr()); 261 262 // stats updates for the request 263 pktCount[slave_port_id][master_port_id]++; 264 pktSize[slave_port_id][master_port_id] += pkt_size; 265 transDist[pkt_cmd]++; 266 267 // forward the request to the appropriate destination 268 Tick response_latency = masterPorts[master_port_id]->sendAtomic(pkt); 269 270 // add the response data 271 if (pkt->isResponse()) { 272 pkt_size = pkt->hasData() ? pkt->getSize() : 0; 273 pkt_cmd = pkt->cmdToIndex(); 274 275 // stats updates 276 pktCount[slave_port_id][master_port_id]++; 277 pktSize[slave_port_id][master_port_id] += pkt_size; 278 transDist[pkt_cmd]++; 279 } 280 281 // @todo: Not setting first-word time 282 pkt->payloadDelay = response_latency; 283 return response_latency; 284} 285 286void 287NoncoherentXBar::recvFunctional(PacketPtr pkt, PortID slave_port_id) 288{ 289 if (!pkt->isPrint()) { 290 // don't do DPRINTFs on PrintReq as it clutters up the output 291 DPRINTF(NoncoherentXBar, 292 "recvFunctional: packet src %s addr 0x%x cmd %s\n", 293 slavePorts[slave_port_id]->name(), pkt->getAddr(), 294 pkt->cmdString()); 295 } 296 297 // since our slave ports are queued ports we need to check them as well 298 for (const auto& p : slavePorts) { 299 // if we find a response that has the data, then the 300 // downstream caches/memories may be out of date, so simply stop 301 // here 302 if (p->checkFunctional(pkt)) { 303 if (pkt->needsResponse()) 304 pkt->makeResponse(); 305 return; 306 } 307 } 308 309 // determine the destination port 310 PortID dest_id = findPort(pkt->getAddr()); 311 312 // forward the request to the appropriate destination 313 masterPorts[dest_id]->sendFunctional(pkt); 314} 315 316unsigned int 317NoncoherentXBar::drain(DrainManager *dm) 318{ 319 // sum up the individual layers 320 unsigned int total = 0; 321 for (auto l: reqLayers) 322 total += l->drain(dm); 323 for (auto l: respLayers) 324 total += l->drain(dm); 325 return total; 326} 327 328NoncoherentXBar* 329NoncoherentXBarParams::create() 330{ 331 return new NoncoherentXBar(this); 332} 333 334void 335NoncoherentXBar::regStats() 336{ 337 // register the stats of the base class and our layers 338 BaseXBar::regStats(); 339 for (auto l: reqLayers) 340 l->regStats(); 341 for (auto l: respLayers) 342 l->regStats(); 343} 344