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smmu_v3_proc.cc
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37 
38 #include "dev/arm/smmu_v3_proc.hh"
39 
40 #include "dev/arm/smmu_v3.hh"
41 #include "sim/system.hh"
42 
43 SMMUProcess::SMMUProcess(const std::string &name, SMMUv3 &_smmu) :
44  coroutine(NULL),
45  myName(name),
46  smmu(_smmu)
47 {}
48 
50 {
51  delete coroutine;
52 }
53 
54 void
56 {
57  smmu.runProcess(this, NULL);
58 }
59 
60 void
62 {
63  delete coroutine;
64  coroutine = new Coroutine(
65  std::bind(&SMMUProcess::main, this, std::placeholders::_1));
66 }
67 
68 void
69 SMMUProcess::doRead(Yield &yield, Addr addr, void *ptr, size_t size)
70 {
72  doDelay(yield, Cycles(1)); // request - assume 1 cycle
74 
75  SMMUAction a;
77 
78  RequestPtr req = std::make_shared<Request>(
79  addr, size, 0, smmu.masterId);
80 
81  req->taskId(ContextSwitchTaskId::DMA);
82 
83  a.pkt = new Packet(req, MemCmd::ReadReq);
84  a.pkt->dataStatic(ptr);
85 
86  a.delay = 0;
87 
88  PacketPtr pkt = yield(a).get();
89 
90  assert(pkt);
91  // >= because we may get the whole cache line
92  assert(pkt->getSize() >= size);
93 
94  delete pkt;
95 }
96 
97 void
98 SMMUProcess::doWrite(Yield &yield, Addr addr, const void *ptr, size_t size)
99 {
100  unsigned nbeats = (size + (smmu.masterPortWidth-1)) / smmu.masterPortWidth;
101 
103  doDelay(yield, Cycles(nbeats));
105 
106 
107  SMMUAction a;
108  a.type = ACTION_SEND_REQ;
109 
110  RequestPtr req = std::make_shared<Request>(
111  addr, size, 0, smmu.masterId);
112 
113  req->taskId(ContextSwitchTaskId::DMA);
114 
115  a.pkt = new Packet(req, MemCmd::WriteReq);
116  a.pkt->dataStatic(ptr);
117 
118  PacketPtr pkt = yield(a).get();
119 
120  delete pkt;
121 }
122 
123 void
125 {
126  if (smmu.system.isTimingMode())
127  scheduleWakeup(smmu.clockEdge(cycles));
128 
129  SMMUAction a;
130  a.type = ACTION_DELAY;
131  a.delay = cycles * smmu.clockPeriod();
132  yield(a);
133 }
134 
135 void
137 {
138  SMMUAction a;
139  a.type = ACTION_SLEEP;
140  yield(a);
141 }
142 
143 void
145 {
146  while (sem.count == 0) {
147  sem.queue.push(this);
148  doSleep(yield);
149  }
150 
151  sem.count--;
152  return;
153 }
154 
155 void
157 {
158  sem.count++;
159  if (!sem.queue.empty()) {
160  SMMUProcess *next_proc = sem.queue.front();
161  sem.queue.pop();
162 
163  // Schedule event in the current tick instead of
164  // calling the function directly to avoid overflowing
165  // the stack in this coroutine.
166  next_proc->scheduleWakeup(curTick());
167  }
168 }
169 
170 void
172 {
173  sig.waiting.push_back(this);
174  doSleep(yield);
175 }
176 
177 void
179 {
180  if (!sig.waiting.empty()) {
181  for (auto it : sig.waiting) {
182  // Schedule event in the current tick instead of
183  // calling the function directly to avoid overflowing
184  // the stack in this coroutine.
185  it->scheduleWakeup(curTick());
186  }
187 
188  sig.waiting.clear();
189  }
190 }
191 
192 void
194 {
195  auto *ep = new EventWrapper<
196  SMMUProcess, &SMMUProcess::wakeup> (this, true);
197 
198  smmu.schedule(ep, when);
199 }
200 
203 {
204  assert(coroutine != NULL);
205  assert(*coroutine);
206  return (*coroutine)(pkt).get();
207 }
void doDelay(Yield &yield, Cycles cycles)
std::queue< SMMUProcess * > queue
Definition: smmu_v3_proc.hh:85
Cycles is a wrapper class for representing cycle counts, i.e.
Definition: types.hh:81
SMMUAction runProcess(SMMUProcess *proc, PacketPtr pkt)
Definition: smmu_v3.cc:219
const std::string & name()
Definition: trace.cc:50
std::list< SMMUProcess * > waiting
Definition: smmu_v3_proc.hh:90
SMMUAction run(PacketPtr pkt)
void wakeup()
Definition: smmu_v3_proc.cc:55
std::shared_ptr< Request > RequestPtr
Definition: request.hh:81
Bitfield< 8 > a
ip6_addr_t addr
Definition: inet.hh:330
const unsigned masterPortWidth
Definition: smmu_v3.hh:111
void doSleep(Yield &yield)
SMMUProcess(const std::string &name, SMMUv3 &_smmu)
Definition: smmu_v3_proc.cc:43
unsigned count
Definition: smmu_v3_proc.hh:83
Tick clockPeriod() const
void reinit()
Definition: smmu_v3_proc.cc:61
void doBroadcastSignal(SMMUSignal &sig)
void dataStatic(T *p)
Set the data pointer to the following value that should not be freed.
Definition: packet.hh:1034
PacketPtr pkt
Definition: smmu_v3_proc.hh:69
CallerType: A reference to an object of this class will be passed to the coroutine task...
Definition: coroutine.hh:83
virtual void main(Yield &yield)=0
void doRead(Yield &yield, Addr addr, void *ptr, size_t size)
Definition: smmu_v3_proc.cc:69
unsigned getSize() const
Definition: packet.hh:730
Tick curTick()
The current simulated tick.
Definition: core.hh:44
void doWrite(Yield &yield, Addr addr, const void *ptr, size_t size)
Definition: smmu_v3_proc.cc:98
uint64_t Tick
Tick count type.
Definition: types.hh:61
virtual ~SMMUProcess()
Definition: smmu_v3_proc.cc:49
SMMUActionType type
Definition: smmu_v3_proc.hh:68
void doSemaphoreUp(SMMUSemaphore &sem)
void scheduleWakeup(Tick when)
void schedule(Event &event, Tick when)
Definition: eventq.hh:934
uint64_t Addr
Address type This will probably be moved somewhere else in the near future.
Definition: types.hh:140
SMMUSemaphore masterPortSem
Definition: smmu_v3.hh:119
A Packet is used to encapsulate a transfer between two objects in the memory system (e...
Definition: packet.hh:249
Tick clockEdge(Cycles cycles=Cycles(0)) const
Determine the tick when a cycle begins, by default the current one, but the argument also enables the...
This is an implementation of the SMMUv3 architecture.
SMMUv3 & smmu
m5::Coroutine< PacketPtr, SMMUAction > Coroutine
Definition: smmu_v3_proc.hh:96
const System & system
Definition: smmu_v3.hh:90
void doWaitForSignal(Yield &yield, SMMUSignal &sig)
std::enable_if<!std::is_same< T, void >::value, T >::type get()
get() is the way we can extrapolate arguments from the coroutine caller.
Definition: coroutine.hh:134
Coroutine * coroutine
Definition: smmu_v3_proc.hh:98
void doSemaphoreDown(Yield &yield, SMMUSemaphore &sem)
bool isTimingMode() const
Is the system in timing mode?
Definition: system.hh:142
const MasterID masterId
Definition: smmu_v3.hh:91
ProbePointArg< PacketInfo > Packet
Packet probe point.
Definition: mem.hh:103
Bitfield< 1 > ep

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