gem5/src/dev/x86/i8237.cc

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/*
* Copyright (c) 2008 The Regents of The University of Michigan
* All rights reserved.
*
* Redistribution and use in source and binary forms, with or without
* modification, are permitted provided that the following conditions are
* met: redistributions of source code must retain the above copyright
* notice, this list of conditions and the following disclaimer;
* redistributions in binary form must reproduce the above copyright
* notice, this list of conditions and the following disclaimer in the
* documentation and/or other materials provided with the distribution;
* neither the name of the copyright holders nor the names of its
* contributors may be used to endorse or promote products derived from
* this software without specific prior written permission.
*
* THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
* "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
* LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
* A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
* OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
* SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
* LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
* DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
* THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
* (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
* OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
*
* Authors: Gabe Black
*/
#include "dev/x86/i8237.hh"
#include "mem/packet.hh"
#include "mem/packet_access.hh"
Tick
X86ISA::I8237::read(PacketPtr pkt)
{
assert(pkt->getSize() == 1);
Addr offset = pkt->getAddr() - pioAddr;
switch (offset) {
case 0x0:
panic("Read from i8237 channel 0 current address unimplemented.\n");
case 0x1:
panic("Read from i8237 channel 0 remaining "
"word count unimplemented.\n");
case 0x2:
panic("Read from i8237 channel 1 current address unimplemented.\n");
case 0x3:
panic("Read from i8237 channel 1 remaining "
"word count unimplemented.\n");
case 0x4:
panic("Read from i8237 channel 2 current address unimplemented.\n");
case 0x5:
panic("Read from i8237 channel 2 remaining "
"word count unimplemented.\n");
case 0x6:
panic("Read from i8237 channel 3 current address unimplemented.\n");
case 0x7:
panic("Read from i8237 channel 3 remaining "
"word count unimplemented.\n");
case 0x8:
panic("Read from i8237 status register unimplemented.\n");
default:
panic("Read from undefined i8237 register %d.\n", offset);
}
pkt->makeAtomicResponse();
return latency;
}
Tick
X86ISA::I8237::write(PacketPtr pkt)
{
assert(pkt->getSize() == 1);
Addr offset = pkt->getAddr() - pioAddr;
switch (offset) {
case 0x0:
panic("Write to i8237 channel 0 starting address unimplemented.\n");
case 0x1:
panic("Write to i8237 channel 0 starting "
"word count unimplemented.\n");
case 0x2:
panic("Write to i8237 channel 1 starting address unimplemented.\n");
case 0x3:
panic("Write to i8237 channel 1 starting "
"word count unimplemented.\n");
case 0x4:
panic("Write to i8237 channel 2 starting address unimplemented.\n");
case 0x5:
panic("Write to i8237 channel 2 starting "
"word count unimplemented.\n");
case 0x6:
panic("Write to i8237 channel 3 starting address unimplemented.\n");
case 0x7:
panic("Write to i8237 channel 3 starting "
"word count unimplemented.\n");
case 0x8:
panic("Write to i8237 command register unimplemented.\n");
case 0x9:
panic("Write to i8237 request register unimplemented.\n");
case 0xa:
{
uint8_t command = pkt->get<uint8_t>();
uint8_t select = bits(command, 1, 0);
uint8_t bitVal = bits(command, 2);
if (!bitVal)
panic("Turning on i8237 channels unimplemented.\n");
replaceBits(maskReg, select, bitVal);
}
break;
case 0xb:
panic("Write to i8237 mode register unimplemented.\n");
case 0xc:
panic("Write to i8237 clear LSB/MSB flip-flop "
"register unimplemented.\n");
case 0xd:
panic("Write to i8237 master clear/reset register unimplemented.\n");
case 0xe:
panic("Write to i8237 clear mask register unimplemented.\n");
case 0xf:
panic("Write to i8237 write all mask register bits unimplemented.\n");
default:
panic("Write to undefined i8237 register.\n");
}
pkt->makeAtomicResponse();
return latency;
}
void
sim: Refactor the serialization base class Objects that are can be serialized are supposed to inherit from the Serializable class. This class is meant to provide a unified API for such objects. However, so far it has mainly been used by SimObjects due to some fundamental design limitations. This changeset redesigns to the serialization interface to make it more generic and hide the underlying checkpoint storage. Specifically: * Add a set of APIs to serialize into a subsection of the current object. Previously, objects that needed this functionality would use ad-hoc solutions using nameOut() and section name generation. In the new world, an object that implements the interface has the methods serializeSection() and unserializeSection() that serialize into a named /subsection/ of the current object. Calling serialize() serializes an object into the current section. * Move the name() method from Serializable to SimObject as it is no longer needed for serialization. The fully qualified section name is generated by the main serialization code on the fly as objects serialize sub-objects. * Add a scoped ScopedCheckpointSection helper class. Some objects need to serialize data structures, that are not deriving from Serializable, into subsections. Previously, this was done using nameOut() and manual section name generation. To simplify this, this changeset introduces a ScopedCheckpointSection() helper class. When this class is instantiated, it adds a new /subsection/ and subsequent serialization calls during the lifetime of this helper class happen inside this section (or a subsection in case of nested sections). * The serialize() call is now const which prevents accidental state manipulation during serialization. Objects that rely on modifying state can use the serializeOld() call instead. The default implementation simply calls serialize(). Note: The old-style calls need to be explicitly called using the serializeOld()/serializeSectionOld() style APIs. These are used by default when serializing SimObjects. * Both the input and output checkpoints now use their own named types. This hides underlying checkpoint implementation from objects that need checkpointing and makes it easier to change the underlying checkpoint storage code.
2015-07-07 10:51:03 +02:00
X86ISA::I8237::serialize(CheckpointOut &cp) const
{
SERIALIZE_SCALAR(maskReg);
}
void
sim: Refactor the serialization base class Objects that are can be serialized are supposed to inherit from the Serializable class. This class is meant to provide a unified API for such objects. However, so far it has mainly been used by SimObjects due to some fundamental design limitations. This changeset redesigns to the serialization interface to make it more generic and hide the underlying checkpoint storage. Specifically: * Add a set of APIs to serialize into a subsection of the current object. Previously, objects that needed this functionality would use ad-hoc solutions using nameOut() and section name generation. In the new world, an object that implements the interface has the methods serializeSection() and unserializeSection() that serialize into a named /subsection/ of the current object. Calling serialize() serializes an object into the current section. * Move the name() method from Serializable to SimObject as it is no longer needed for serialization. The fully qualified section name is generated by the main serialization code on the fly as objects serialize sub-objects. * Add a scoped ScopedCheckpointSection helper class. Some objects need to serialize data structures, that are not deriving from Serializable, into subsections. Previously, this was done using nameOut() and manual section name generation. To simplify this, this changeset introduces a ScopedCheckpointSection() helper class. When this class is instantiated, it adds a new /subsection/ and subsequent serialization calls during the lifetime of this helper class happen inside this section (or a subsection in case of nested sections). * The serialize() call is now const which prevents accidental state manipulation during serialization. Objects that rely on modifying state can use the serializeOld() call instead. The default implementation simply calls serialize(). Note: The old-style calls need to be explicitly called using the serializeOld()/serializeSectionOld() style APIs. These are used by default when serializing SimObjects. * Both the input and output checkpoints now use their own named types. This hides underlying checkpoint implementation from objects that need checkpointing and makes it easier to change the underlying checkpoint storage code.
2015-07-07 10:51:03 +02:00
X86ISA::I8237::unserialize(CheckpointIn &cp)
{
UNSERIALIZE_SCALAR(maskReg);
}
X86ISA::I8237 *
I8237Params::create()
{
return new X86ISA::I8237(this);
}