iverilog/netlist.cc

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1998-11-04 00:28:49 +01:00
/*
* Copyright (c) 1998-1999 Stephen Williams (steve@icarus.com)
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*
* This source code is free software; you can redistribute it
* and/or modify it in source code form under the terms of the GNU
* General Public License as published by the Free Software
* Foundation; either version 2 of the License, or (at your option)
* any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program; if not, write to the Free Software
* Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA
*/
#if !defined(WINNT)
#ident "$Id: netlist.cc,v 1.96 1999/11/28 23:42:02 steve Exp $"
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#endif
# include <cassert>
# include <typeinfo>
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# include "netlist.h"
# include "netmisc.h"
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ostream& operator<< (ostream&o, NetNet::Type t)
{
switch (t) {
case NetNet::IMPLICIT:
o << "wire /*implicit*/";
break;
case NetNet::IMPLICIT_REG:
o << "reg /*implicit*/";
break;
case NetNet::INTEGER:
o << "integer";
break;
case NetNet::REG:
o << "reg";
break;
case NetNet::SUPPLY0:
o << "supply0";
break;
case NetNet::SUPPLY1:
o << "supply1";
break;
case NetNet::TRI:
o << "tri";
break;
case NetNet::TRI0:
o << "tri0";
break;
case NetNet::TRI1:
o << "tri1";
break;
case NetNet::TRIAND:
o << "triand";
break;
case NetNet::TRIOR:
o << "trior";
break;
case NetNet::WAND:
o << "wand";
break;
case NetNet::WOR:
o << "wor";
break;
case NetNet::WIRE:
o << "wire";
break;
}
return o;
}
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void connect(NetObj::Link&l, NetObj::Link&r)
{
assert(&l != &r);
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assert(l.next_->prev_ == &l);
assert(l.prev_->next_ == &l);
assert(r.next_->prev_ == &r);
assert(r.prev_->next_ == &r);
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NetObj::Link* cur = &l;
do {
NetObj::Link*tmp = cur->next_;
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// If I stumble on r in the nexus, then stop now because
// we are already connected.
if (tmp == &r) break;
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// Pull cur out of left list...
cur->prev_->next_ = cur->next_;
cur->next_->prev_ = cur->prev_;
// Put cur in right list
cur->next_ = r.next_;
cur->prev_ = &r;
cur->next_->prev_ = cur;
cur->prev_->next_ = cur;
// Go to the next item in the left list.
cur = tmp;
} while (cur != &l);
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assert(l.next_->prev_ == &l);
assert(l.prev_->next_ == &l);
assert(r.next_->prev_ == &r);
assert(r.prev_->next_ == &r);
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}
NetObj::Link::Link()
: dir_(PASSIVE), inst_(0), next_(this), prev_(this)
{
}
NetObj::Link::~Link()
{
unlink();
}
void NetObj::Link::unlink()
{
next_->prev_ = prev_;
prev_->next_ = next_;
next_ = prev_ = this;
}
bool NetObj::Link::is_linked() const
{
return next_ != this;
}
bool NetObj::Link::is_linked(const NetObj&that) const
{
for (const Link*idx = next_ ; this != idx ; idx = idx->next_)
if (idx->node_ == &that)
return true;
return false;
}
bool NetObj::Link::is_linked(const NetObj::Link&that) const
{
for (const Link*idx = next_ ; this != idx ; idx = idx->next_)
if (idx == &that)
return true;
return false;
}
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void NetObj::Link::next_link(NetObj*&net, unsigned&pin)
{
assert(next_->prev_ == this);
assert(prev_->next_ == this);
net = next_->node_;
pin = next_->pin_;
}
void NetObj::Link::next_link(const NetObj*&net, unsigned&pin) const
{
assert(next_->prev_ == this);
assert(prev_->next_ == this);
net = next_->node_;
pin = next_->pin_;
}
NetObj::Link* NetObj::Link::next_link()
{
assert(next_->prev_ == this);
assert(prev_->next_ == this);
return next_;
}
const NetObj::Link* NetObj::Link::next_link() const
{
assert(next_->prev_ == this);
assert(prev_->next_ == this);
return next_;
}
const NetObj*NetObj::Link::get_obj() const
{
return node_;
}
NetObj*NetObj::Link::get_obj()
{
return node_;
}
unsigned NetObj::Link::get_pin() const
{
return pin_;
}
void NetObj::Link::set_name(const string&n, unsigned i)
{
name_ = n;
inst_ = i;
}
const string& NetObj::Link::get_name() const
{
return name_;
}
unsigned NetObj::Link::get_inst() const
{
return inst_;
}
bool connected(const NetObj&l, const NetObj&r)
{
for (unsigned idx = 0 ; idx < l.pin_count() ; idx += 1)
if (! l.pin(idx).is_linked(r))
return false;
return true;
}
unsigned count_inputs(const NetObj::Link&pin)
{
unsigned count = (pin.get_dir() == NetObj::Link::INPUT)? 1 : 0;
const NetObj*cur;
unsigned cpin;
pin.next_link(cur, cpin);
while (cur->pin(cpin) != pin) {
if (cur->pin(cpin).get_dir() == NetObj::Link::INPUT)
count += 1;
cur->pin(cpin).next_link(cur, cpin);
}
return count;
}
unsigned count_outputs(const NetObj::Link&pin)
{
unsigned count = (pin.get_dir() == NetObj::Link::OUTPUT)? 1 : 0;
const NetObj*cur;
unsigned cpin;
pin.next_link(cur, cpin);
while (cur->pin(cpin) != pin) {
if (cur->pin(cpin).get_dir() == NetObj::Link::OUTPUT)
count += 1;
cur->pin(cpin).next_link(cur, cpin);
}
return count;
}
unsigned count_signals(const NetObj::Link&pin)
{
unsigned count = 0;
if (dynamic_cast<const NetNet*>(pin.get_obj()))
count += 1;
const NetObj*cur;
unsigned cpin;
pin.next_link(cur, cpin);
while (cur->pin(cpin) != pin) {
if (dynamic_cast<const NetNet*>(cur))
count += 1;
cur->pin(cpin).next_link(cur, cpin);
}
return count;
}
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const NetNet* find_link_signal(const NetObj*net, unsigned pin, unsigned&bidx)
{
const NetObj*cur;
unsigned cpin;
net->pin(pin).next_link(cur, cpin);
while (cur != net) {
const NetNet*sig = dynamic_cast<const NetNet*>(cur);
if (sig) {
bidx = cpin;
return sig;
}
cur->pin(cpin).next_link(cur, cpin);
}
return 0;
}
NetObj::Link* find_next_output(NetObj::Link*lnk)
{
for (NetObj::Link*cur = lnk->next_link()
; cur != lnk ; cur = cur->next_link())
if (cur->get_dir() == NetObj::Link::OUTPUT)
return cur;
return 0;
}
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NetObj::NetObj(const string&n, unsigned np)
: name_(n), npins_(np), delay1_(0), delay2_(0), delay3_(0), mark_(false)
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{
pins_ = new Link[npins_];
for (unsigned idx = 0 ; idx < npins_ ; idx += 1) {
pins_[idx].node_ = this;
pins_[idx].pin_ = idx;
}
}
NetObj::~NetObj()
{
delete[]pins_;
}
void NetObj::set_attributes(const map<string,string>&attr)
{
assert(attributes_.size() == 0);
attributes_ = attr;
}
string NetObj::attribute(const string&key) const
{
map<string,string>::const_iterator idx = attributes_.find(key);
if (idx == attributes_.end())
return "";
return (*idx).second;
}
void NetObj::attribute(const string&key, const string&value)
{
attributes_[key] = value;
}
bool NetObj::has_compat_attributes(const NetObj&that) const
{
map<string,string>::const_iterator idx;
for (idx = that.attributes_.begin()
; idx != that.attributes_.end() ; idx ++) {
map<string,string>::const_iterator cur;
cur = attributes_.find((*idx).first);
if (cur == attributes_.end())
return false;
if ((*cur).second != (*idx).second)
return false;
}
return true;
}
NetObj::Link& NetObj::pin(unsigned idx)
{
assert(idx < npins_);
return pins_[idx];
}
const NetObj::Link& NetObj::pin(unsigned idx) const
{
assert(idx < npins_);
return pins_[idx];
}
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NetNode::~NetNode()
{
if (design_)
design_->del_node(this);
}
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NetNet::NetNet(NetScope*s, const string&n, Type t, unsigned npins)
: NetObj(n, npins), sig_next_(0), sig_prev_(0), design_(0), scope_(s),
type_(t), port_type_(NOT_A_PORT), msb_(npins-1), lsb_(0),
local_flag_(false), eref_count_(0)
{
ivalue_ = new verinum::V[npins];
for (unsigned idx = 0 ; idx < npins ; idx += 1) {
pin(idx).set_name("P", idx);
ivalue_[idx] = verinum::Vz;
}
}
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NetNet::NetNet(NetScope*s, const string&n, Type t, long ms, long ls)
: NetObj(n, ((ms>ls)?ms-ls:ls-ms) + 1), sig_next_(0),
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sig_prev_(0), design_(0), scope_(s), type_(t),
port_type_(NOT_A_PORT), msb_(ms), lsb_(ls), local_flag_(false),
eref_count_(0)
{
ivalue_ = new verinum::V[pin_count()];
for (unsigned idx = 0 ; idx < pin_count() ; idx += 1) {
pin(idx).set_name("P", idx);
ivalue_[idx] = verinum::Vz;
}
}
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NetNet::~NetNet()
{
assert(eref_count_ == 0);
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if (design_)
design_->del_signal(this);
}
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NetScope* NetNet::scope()
{
return scope_;
}
const NetScope* NetNet::scope() const
{
return scope_;
}
unsigned NetNet::sb_to_idx(long sb) const
{
if (msb_ >= lsb_)
return sb - lsb_;
else
return lsb_ - sb;
}
void NetNet::incr_eref()
{
eref_count_ += 1;
}
void NetNet::decr_eref()
{
assert(eref_count_ > 0);
eref_count_ -= 1;
}
unsigned NetNet::get_eref() const
{
return eref_count_;
}
NetTmp::NetTmp(const string&name, unsigned npins)
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: NetNet(0, name, IMPLICIT, npins)
{
local_flag(true);
}
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NetProc::NetProc()
: next_(0)
{
}
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NetProc::~NetProc()
{
}
NetProcTop::NetProcTop(Type t, NetProc*st)
: type_(t), statement_(st)
{
}
NetProcTop::~NetProcTop()
{
delete statement_;
}
NetProc* NetProcTop::statement()
{
return statement_;
}
const NetProc* NetProcTop::statement() const
{
return statement_;
}
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/*
* The NetFF class represents an LPM_FF device. The pinout is assigned
* like so:
* 0 -- Clock
* 1 -- Enable
* 2 -- Aload
* 3 -- Aset
* 4 -- Aclr
* 5 -- Sload
* 6 -- Sset
* 7 -- Sclr
*
* 8 -- Data[0]
* 9 -- Q[0]
* ...
*/
NetFF::NetFF(const string&n, unsigned wid)
: NetNode(n, 8 + 2*wid)
{
pin_Clock().set_dir(Link::INPUT);
pin_Clock().set_name("Clock", 0);
pin_Enable().set_dir(Link::INPUT);
pin_Enable().set_name("Enable", 0);
pin_Aload().set_dir(Link::INPUT);
pin_Aload().set_name("Aload", 0);
pin_Aset().set_dir(Link::INPUT);
pin_Aset().set_name("Aset", 0);
pin_Aclr().set_dir(Link::INPUT);
pin_Aclr().set_name("Aclr", 0);
pin_Sload().set_dir(Link::INPUT);
pin_Sload().set_name("Sload", 0);
pin_Sset().set_dir(Link::INPUT);
pin_Sset().set_name("Sset", 0);
pin_Sclr().set_dir(Link::INPUT);
pin_Sclr().set_name("Sclr", 0);
for (unsigned idx = 0 ; idx < wid ; idx += 1) {
pin_Data(idx).set_dir(Link::INPUT);
pin_Data(idx).set_name("Data", idx);
pin_Q(idx).set_dir(Link::OUTPUT);
pin_Q(idx).set_name("Q", idx);
}
}
NetFF::~NetFF()
{
}
unsigned NetFF::width() const
{
return (pin_count() - 8) / 2;
}
NetObj::Link& NetFF::pin_Clock()
{
return pin(0);
}
const NetObj::Link& NetFF::pin_Clock() const
{
return pin(0);
}
NetObj::Link& NetFF::pin_Enable()
{
return pin(1);
}
const NetObj::Link& NetFF::pin_Enable() const
{
return pin(1);
}
NetObj::Link& NetFF::pin_Aload()
{
return pin(2);
}
NetObj::Link& NetFF::pin_Aset()
{
return pin(3);
}
NetObj::Link& NetFF::pin_Aclr()
{
return pin(4);
}
NetObj::Link& NetFF::pin_Sload()
{
return pin(5);
}
NetObj::Link& NetFF::pin_Sset()
{
return pin(6);
}
NetObj::Link& NetFF::pin_Sclr()
{
return pin(7);
}
NetObj::Link& NetFF::pin_Data(unsigned w)
{
unsigned pn = 8 + 2*w;
assert(pn < pin_count());
return pin(pn);
}
const NetObj::Link& NetFF::pin_Data(unsigned w) const
{
unsigned pn = 8 + 2*w;
assert(pn < pin_count());
return pin(pn);
}
NetObj::Link& NetFF::pin_Q(unsigned w)
{
unsigned pn = 9 + w*2;
assert(pn < pin_count());
return pin(pn);
}
const NetObj::Link& NetFF::pin_Q(unsigned w) const
{
unsigned pn = 9 + w*2;
assert(pn < pin_count());
return pin(pn);
}
/*
* The NetAddSub class represents an LPM_ADD_SUB device. The pinout is
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* assigned like so:
* 0 -- Add_Sub
* 1 -- Aclr
* 2 -- Clock
* 3 -- Cin
* 4 -- Cout
* 5 -- Overflow
* 6 -- DataA[0]
* 7 -- DataB[0]
* 8 -- Result[0]
*/
NetAddSub::NetAddSub(const string&n, unsigned w)
: NetNode(n, w*3+6)
{
pin(0).set_dir(NetObj::Link::INPUT); pin(0).set_name("Add_Sub", 0);
pin(1).set_dir(NetObj::Link::INPUT); pin(1).set_name("Aclr", 0);
pin(2).set_dir(NetObj::Link::INPUT); pin(2).set_name("Clock", 0);
pin(3).set_dir(NetObj::Link::INPUT); pin(3).set_name("Cin", 0);
pin(4).set_dir(NetObj::Link::OUTPUT); pin(4).set_name("Cout", 0);
pin(5).set_dir(NetObj::Link::OUTPUT); pin(5).set_name("Overflow", 0);
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for (unsigned idx = 0 ; idx < w ; idx += 1) {
pin_DataA(idx).set_dir(NetObj::Link::INPUT);
pin_DataB(idx).set_dir(NetObj::Link::INPUT);
pin_Result(idx).set_dir(NetObj::Link::OUTPUT);
pin_DataA(idx).set_name("DataA", idx);
pin_DataB(idx).set_name("DataB", idx);
pin_Result(idx).set_name("Result", idx);
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}
}
NetAddSub::~NetAddSub()
{
}
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unsigned NetAddSub::width()const
{
return (pin_count() - 6) / 3;
}
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NetObj::Link& NetAddSub::pin_DataA(unsigned idx)
{
idx = 6 + idx*3;
assert(idx < pin_count());
return pin(idx);
}
const NetObj::Link& NetAddSub::pin_DataA(unsigned idx) const
{
idx = 6 + idx*3;
assert(idx < pin_count());
return pin(idx);
}
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NetObj::Link& NetAddSub::pin_DataB(unsigned idx)
{
idx = 7 + idx*3;
assert(idx < pin_count());
return pin(idx);
}
const NetObj::Link& NetAddSub::pin_DataB(unsigned idx) const
{
idx = 7 + idx*3;
assert(idx < pin_count());
return pin(idx);
}
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NetObj::Link& NetAddSub::pin_Result(unsigned idx)
{
idx = 8 + idx*3;
assert(idx < pin_count());
return pin(idx);
}
const NetObj::Link& NetAddSub::pin_Result(unsigned idx) const
{
idx = 8 + idx*3;
assert(idx < pin_count());
return pin(idx);
}
/*
* The pinout for the NetCLShift is:
* 0 -- Direction
* 1 -- Underflow
* 2 -- Overflow
* 3 -- Data(0)
* 3+W -- Result(0)
* 3+2W -- Distance(0)
*/
NetCLShift::NetCLShift(const string&n, unsigned width, unsigned width_dist)
: NetNode(n, 3+2*width+width_dist), width_(width), width_dist_(width_dist)
{
pin(0).set_dir(NetObj::Link::INPUT); pin(0).set_name("Direction", 0);
pin(1).set_dir(NetObj::Link::OUTPUT); pin(1).set_name("Underflow", 0);
pin(2).set_dir(NetObj::Link::OUTPUT); pin(2).set_name("Overflow", 0);
for (unsigned idx = 0 ; idx < width_ ; idx += 1) {
pin(3+idx).set_dir(NetObj::Link::INPUT);
pin(3+idx).set_name("Data", idx);
pin(3+width_+idx).set_dir(NetObj::Link::OUTPUT);
pin(3+width_+idx).set_name("Result", idx);
}
for (unsigned idx = 0 ; idx < width_dist_ ; idx += 1) {
pin(3+2*width_+idx).set_dir(NetObj::Link::INPUT);
pin(3+2*width_+idx).set_name("Distance", idx);
}
}
NetCLShift::~NetCLShift()
{
}
unsigned NetCLShift::width() const
{
return width_;
}
unsigned NetCLShift::width_dist() const
{
return width_dist_;
}
NetObj::Link& NetCLShift::pin_Direction()
{
return pin(0);
}
const NetObj::Link& NetCLShift::pin_Direction() const
{
return pin(0);
}
NetObj::Link& NetCLShift::pin_Underflow()
{
return pin(1);
}
const NetObj::Link& NetCLShift::pin_Underflow() const
{
return pin(1);
}
NetObj::Link& NetCLShift::pin_Overflow()
{
return pin(2);
}
const NetObj::Link& NetCLShift::pin_Overflow() const
{
return pin(2);
}
NetObj::Link& NetCLShift::pin_Data(unsigned idx)
{
assert(idx < width_);
return pin(3+idx);
}
const NetObj::Link& NetCLShift::pin_Data(unsigned idx) const
{
assert(idx < width_);
return pin(3+idx);
}
NetObj::Link& NetCLShift::pin_Result(unsigned idx)
{
assert(idx < width_);
return pin(3+width_+idx);
}
const NetObj::Link& NetCLShift::pin_Result(unsigned idx) const
{
assert(idx < width_);
return pin(3+width_+idx);
}
NetObj::Link& NetCLShift::pin_Distance(unsigned idx)
{
assert(idx < width_dist_);
return pin(3+2*width_+idx);
}
const NetObj::Link& NetCLShift::pin_Distance(unsigned idx) const
{
assert(idx < width_dist_);
return pin(3+2*width_+idx);
}
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NetCompare::NetCompare(const string&n, unsigned wi)
: NetNode(n, 8+2*wi), width_(wi)
{
pin(0).set_dir(NetObj::Link::INPUT); pin(0).set_name("Aclr");
pin(1).set_dir(NetObj::Link::INPUT); pin(1).set_name("Clock");
pin(2).set_dir(NetObj::Link::OUTPUT); pin(2).set_name("AGB");
pin(3).set_dir(NetObj::Link::OUTPUT); pin(3).set_name("AGEB");
pin(4).set_dir(NetObj::Link::OUTPUT); pin(4).set_name("AEB");
pin(5).set_dir(NetObj::Link::OUTPUT); pin(5).set_name("ANEB");
pin(6).set_dir(NetObj::Link::OUTPUT); pin(6).set_name("ALB");
pin(7).set_dir(NetObj::Link::OUTPUT); pin(7).set_name("ALEB");
for (unsigned idx = 0 ; idx < width_ ; idx += 1) {
pin(8+idx).set_dir(NetObj::Link::INPUT);
pin(8+idx).set_name("DataA", idx);
pin(8+width_+idx).set_dir(NetObj::Link::INPUT);
pin(8+width_+idx).set_name("DataB", idx);
}
}
NetCompare::~NetCompare()
{
}
unsigned NetCompare::width() const
{
return width_;
}
NetObj::Link& NetCompare::pin_Aclr()
{
return pin(0);
}
const NetObj::Link& NetCompare::pin_Aclr() const
{
return pin(0);
}
NetObj::Link& NetCompare::pin_Clock()
{
return pin(1);
}
const NetObj::Link& NetCompare::pin_Clock() const
{
return pin(1);
}
NetObj::Link& NetCompare::pin_AGB()
{
return pin(2);
}
const NetObj::Link& NetCompare::pin_AGB() const
{
return pin(2);
}
NetObj::Link& NetCompare::pin_AGEB()
{
return pin(3);
}
const NetObj::Link& NetCompare::pin_AGEB() const
{
return pin(3);
}
NetObj::Link& NetCompare::pin_AEB()
{
return pin(4);
}
const NetObj::Link& NetCompare::pin_AEB() const
{
return pin(4);
}
NetObj::Link& NetCompare::pin_ANEB()
{
return pin(5);
}
const NetObj::Link& NetCompare::pin_ANEB() const
{
return pin(5);
}
NetObj::Link& NetCompare::pin_ALB()
{
return pin(6);
}
const NetObj::Link& NetCompare::pin_ALB() const
{
return pin(6);
}
NetObj::Link& NetCompare::pin_ALEB()
{
return pin(7);
}
const NetObj::Link& NetCompare::pin_ALEB() const
{
return pin(7);
}
NetObj::Link& NetCompare::pin_DataA(unsigned idx)
{
return pin(8+idx);
}
const NetObj::Link& NetCompare::pin_DataA(unsigned idx) const
{
return pin(8+idx);
}
NetObj::Link& NetCompare::pin_DataB(unsigned idx)
{
return pin(8+width_+idx);
}
const NetObj::Link& NetCompare::pin_DataB(unsigned idx) const
{
return pin(8+width_+idx);
}
/*
* The NetMux class represents an LPM_MUX device. The pinout is assigned
* like so:
* 0 -- Aclr (optional)
* 1 -- Clock (optional)
* 2 -- Result[0]
* 2+N -- Result[N]
*/
NetMux::NetMux(const string&n, unsigned wi, unsigned si, unsigned sw)
: NetNode(n, 2+wi+sw+wi*si), width_(wi), size_(si), swidth_(sw)
{
pin(0).set_dir(NetObj::Link::INPUT); pin(0).set_name("Aclr", 0);
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pin(1).set_dir(NetObj::Link::INPUT); pin(1).set_name("Clock", 0);
for (unsigned idx = 0 ; idx < width_ ; idx += 1) {
pin_Result(idx).set_dir(NetObj::Link::OUTPUT);
pin_Result(idx).set_name("Result", idx);
for (unsigned jdx = 0 ; jdx < size_ ; jdx += 1) {
pin_Data(idx,jdx).set_dir(Link::INPUT);
pin_Data(idx,jdx).set_name("Data", jdx*width_+idx);
}
}
for (unsigned idx = 0 ; idx < swidth_ ; idx += 1) {
pin_Sel(idx).set_dir(Link::INPUT);
pin_Sel(idx).set_name("Sel", idx);
}
}
NetMux::~NetMux()
{
}
unsigned NetMux::width()const
{
return width_;
}
unsigned NetMux::size() const
{
return size_;
}
unsigned NetMux::sel_width() const
{
return swidth_;
}
NetObj::Link& NetMux::pin_Aclr()
{
return pin(0);
}
const NetObj::Link& NetMux::pin_Aclr() const
{
return pin(0);
}
NetObj::Link& NetMux::pin_Clock()
{
return pin(1);
}
const NetObj::Link& NetMux::pin_Clock() const
{
return pin(1);
}
NetObj::Link& NetMux::pin_Result(unsigned w)
{
assert(w < width_);
return pin(2+w);
}
const NetObj::Link& NetMux::pin_Result(unsigned w) const
{
assert(w < width_);
return pin(2+w);
}
NetObj::Link& NetMux::pin_Sel(unsigned w)
{
assert(w < swidth_);
return pin(2+width_+w);
}
const NetObj::Link& NetMux::pin_Sel(unsigned w) const
{
assert(w < swidth_);
return pin(2+width_+w);
}
NetObj::Link& NetMux::pin_Data(unsigned w, unsigned s)
{
assert(w < width_);
assert(s < size_);
return pin(2+width_+swidth_+s*width_+w);
}
const NetObj::Link& NetMux::pin_Data(unsigned w, unsigned s) const
{
assert(w < width_);
assert(s < size_);
return pin(2+width_+swidth_+s*width_+w);
}
NetRamDq::NetRamDq(const string&n, NetMemory*mem, unsigned awid)
: NetNode(n, 3+2*mem->width()+awid), mem_(mem), awidth_(awid)
{
pin(0).set_dir(NetObj::Link::INPUT); pin(0).set_name("InClock", 0);
pin(1).set_dir(NetObj::Link::INPUT); pin(1).set_name("OutClock", 0);
pin(2).set_dir(NetObj::Link::INPUT); pin(2).set_name("WE", 0);
for (unsigned idx = 0 ; idx < awidth_ ; idx += 1) {
pin(3+idx).set_dir(NetObj::Link::INPUT);
pin(3+idx).set_name("Address", idx);
}
for (unsigned idx = 0 ; idx < width() ; idx += 1) {
pin(3+awidth_+idx).set_dir(NetObj::Link::INPUT);
pin(3+awidth_+idx).set_name("Data", idx);
}
for (unsigned idx = 0 ; idx < width() ; idx += 1) {
pin(3+awidth_+width()+idx).set_dir(NetObj::Link::OUTPUT);
pin(3+awidth_+width()+idx).set_name("Q", idx);
}
}
NetRamDq::~NetRamDq()
{
}
unsigned NetRamDq::width() const
{
return mem_->width();
}
unsigned NetRamDq::awidth() const
{
return awidth_;
}
unsigned NetRamDq::size() const
{
return mem_->count();
}
const NetMemory* NetRamDq::mem() const
{
return mem_;
}
NetObj::Link& NetRamDq::pin_InClock()
{
return pin(0);
}
const NetObj::Link& NetRamDq::pin_InClock() const
{
return pin(0);
}
NetObj::Link& NetRamDq::pin_OutClock()
{
return pin(1);
}
const NetObj::Link& NetRamDq::pin_OutClock() const
{
return pin(1);
}
NetObj::Link& NetRamDq::pin_WE()
{
return pin(2);
}
const NetObj::Link& NetRamDq::pin_WE() const
{
return pin(2);
}
NetObj::Link& NetRamDq::pin_Address(unsigned idx)
{
assert(idx < awidth_);
return pin(3+idx);
}
const NetObj::Link& NetRamDq::pin_Address(unsigned idx) const
{
assert(idx < awidth_);
return pin(3+idx);
}
NetObj::Link& NetRamDq::pin_Data(unsigned idx)
{
assert(idx < width());
return pin(3+awidth_+idx);
}
const NetObj::Link& NetRamDq::pin_Data(unsigned idx) const
{
assert(idx < width());
return pin(3+awidth_+idx);
}
NetObj::Link& NetRamDq::pin_Q(unsigned idx)
{
assert(idx < width());
return pin(3+awidth_+width()+idx);
}
const NetObj::Link& NetRamDq::pin_Q(unsigned idx) const
{
assert(idx < width());
return pin(3+awidth_+width()+idx);
}
/*
* NetAssign
*/
NetAssign_::NetAssign_(const string&n, unsigned w)
: NetNode(n, w), rval_(0), bmux_(0)
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{
for (unsigned idx = 0 ; idx < pin_count() ; idx += 1) {
pin(idx).set_dir(NetObj::Link::OUTPUT);
pin(idx).set_name("P", idx);
}
}
NetAssign_::~NetAssign_()
{
if (rval_) delete rval_;
if (bmux_) delete bmux_;
}
void NetAssign_::set_rval(NetExpr*r)
{
assert(rval_ == 0);
rval_ = r;
}
void NetAssign_::set_bmux(NetExpr*r)
{
assert(bmux_ == 0);
bmux_ = r;
}
NetExpr* NetAssign_::rval()
{
return rval_;
}
const NetExpr* NetAssign_::rval() const
{
return rval_;
}
const NetExpr* NetAssign_::bmux() const
{
return bmux_;
}
NetAssign::NetAssign(const string&n, Design*des, unsigned w, NetExpr*rv)
: NetAssign_(n, w)
{
set_rval(rv);
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}
NetAssign::NetAssign(const string&n, Design*des, unsigned w,
NetExpr*mu, NetExpr*rv)
: NetAssign_(n, w)
{
bool flag = rv->set_width(1);
if (flag == false) {
cerr << rv->get_line() << ": Expression bit width" <<
" conflicts with l-value bit width." << endl;
des->errors += 1;
}
set_rval(rv);
set_bmux(mu);
}
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NetAssign::~NetAssign()
{
}
NetAssignNB::NetAssignNB(const string&n, Design*des, unsigned w, NetExpr*rv)
: NetAssign_(n, w)
{
if (rv->expr_width() < w) {
cerr << rv->get_line() << ": Expression bit width (" <<
rv->expr_width() << ") conflicts with l-value "
"bit width (" << w << ")." << endl;
des->errors += 1;
}
set_rval(rv);
}
NetAssignNB::NetAssignNB(const string&n, Design*des, unsigned w,
NetExpr*mu, NetExpr*rv)
: NetAssign_(n, w)
{
bool flag = rv->set_width(1);
if (flag == false) {
cerr << rv->get_line() << ": Expression bit width" <<
" conflicts with l-value bit width." << endl;
des->errors += 1;
}
set_rval(rv);
set_bmux(mu);
}
NetAssignNB::~NetAssignNB()
{
}
NetAssignMem_::NetAssignMem_(NetMemory*m, NetExpr*i, NetExpr*r)
: mem_(m), index_(i), rval_(r)
{
}
NetAssignMem_::~NetAssignMem_()
{
}
NetAssignMem::NetAssignMem(NetMemory*m, NetExpr*i, NetExpr*r)
: NetAssignMem_(m, i, r)
{
}
NetAssignMem::~NetAssignMem()
{
}
NetAssignMemNB::NetAssignMemNB(NetMemory*m, NetExpr*i, NetExpr*r)
: NetAssignMem_(m, i, r)
{
}
NetAssignMemNB::~NetAssignMemNB()
{
}
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NetBlock::~NetBlock()
{
}
void NetBlock::append(NetProc*cur)
{
if (last_ == 0) {
last_ = cur;
cur->next_ = cur;
} else {
cur->next_ = last_->next_;
last_->next_ = cur;
last_ = cur;
}
}
NetBUFZ::NetBUFZ(const string&n)
: NetNode(n, 2)
{
pin(0).set_dir(Link::OUTPUT);
pin(1).set_dir(Link::INPUT);
pin(0).set_name("O", 0);
pin(1).set_name("I", 0);
}
NetBUFZ::~NetBUFZ()
{
}
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NetCase::NetCase(NetCase::TYPE c, NetExpr*ex, unsigned cnt)
: type_(c), expr_(ex), nitems_(cnt)
{
assert(expr_);
items_ = new Item[nitems_];
for (unsigned idx = 0 ; idx < nitems_ ; idx += 1) {
items_[idx].statement = 0;
}
}
NetCase::~NetCase()
{
delete expr_;
for (unsigned idx = 0 ; idx < nitems_ ; idx += 1) {
delete items_[idx].guard;
if (items_[idx].statement) delete items_[idx].statement;
}
delete[]items_;
}
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NetCase::TYPE NetCase::type() const
{
return type_;
}
void NetCase::set_case(unsigned idx, NetExpr*e, NetProc*p)
{
assert(idx < nitems_);
items_[idx].guard = e;
items_[idx].statement = p;
if (items_[idx].guard)
items_[idx].guard->set_width(expr_->expr_width());
}
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NetCaseCmp::NetCaseCmp(const string&n)
: NetNode(n, 3)
{
pin(0).set_dir(Link::OUTPUT);
pin(1).set_dir(Link::INPUT);
pin(2).set_dir(Link::INPUT);
}
NetCaseCmp::~NetCaseCmp()
{
}
NetCondit::NetCondit(NetExpr*ex, NetProc*i, NetProc*e)
: expr_(ex), if_(i), else_(e)
{
}
NetCondit::~NetCondit()
{
delete expr_;
if (if_) delete if_;
if (else_) delete else_;
}
const NetExpr* NetCondit::expr() const
{
return expr_;
}
NetExpr* NetCondit::expr()
{
return expr_;
}
NetProc* NetCondit::if_clause()
{
return if_;
}
NetProc* NetCondit::else_clause()
{
return else_;
}
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NetConst::NetConst(const string&n, verinum::V v)
: NetNode(n, 1), value_(v)
{
pin(0).set_dir(Link::OUTPUT);
pin(0).set_name("O", 0);
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}
NetConst::~NetConst()
{
}
NetFuncDef::NetFuncDef(const string&n, const svector<NetNet*>&po)
: name_(n), statement_(0), ports_(po)
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{
}
NetFuncDef::~NetFuncDef()
{
}
const string& NetFuncDef::name() const
{
return name_;
}
void NetFuncDef::set_proc(NetProc*st)
{
assert(statement_ == 0);
assert(st != 0);
statement_ = st;
}
const NetProc* NetFuncDef::proc() const
{
return statement_;
}
unsigned NetFuncDef::port_count() const
{
return ports_.count();
}
const NetNet* NetFuncDef::port(unsigned idx) const
{
assert(idx < ports_.count());
return ports_[idx];
}
NetNEvent::NetNEvent(const string&ev, unsigned wid, Type e, NetPEvent*pe)
: NetNode(ev, wid), sref<NetPEvent,NetNEvent>(pe), edge_(e)
{
for (unsigned idx = 0 ; idx < wid ; idx += 1) {
pin(idx).set_name("P", idx);
}
}
NetNEvent::~NetNEvent()
{
}
NetPEvent::NetPEvent(const string&n, NetProc*st)
: name_(n), statement_(st)
{
}
NetPEvent::~NetPEvent()
{
svector<NetNEvent*>*back = back_list();
if (back) {
for (unsigned idx = 0 ; idx < back->count() ; idx += 1) {
NetNEvent*ne = (*back)[idx];
delete ne;
}
delete back;
}
delete statement_;
}
NetProc* NetPEvent::statement()
{
return statement_;
}
const NetProc* NetPEvent::statement() const
{
return statement_;
}
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NetSTask::NetSTask(const string&na, const svector<NetExpr*>&pa)
: name_(na), parms_(pa)
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{
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assert(name_[0] == '$');
}
NetSTask::~NetSTask()
{
for (unsigned idx = 0 ; idx < parms_.count() ; idx += 1)
delete parms_[idx];
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}
const NetExpr* NetSTask::parm(unsigned idx) const
{
return parms_[idx];
}
NetEUFunc::NetEUFunc(NetFuncDef*def, NetESignal*res, svector<NetExpr*>&p)
: func_(def), result_(res), parms_(p)
{
expr_width(result_->expr_width());
}
NetEUFunc::~NetEUFunc()
{
for (unsigned idx = 0 ; idx < parms_.count() ; idx += 1)
delete parms_[idx];
}
const string& NetEUFunc::name() const
{
return func_->name();
}
const NetESignal*NetEUFunc::result() const
{
return result_;
}
unsigned NetEUFunc::parm_count() const
{
return parms_.count();
}
const NetExpr* NetEUFunc::parm(unsigned idx) const
{
assert(idx < parms_.count());
return parms_[idx];
}
const NetFuncDef* NetEUFunc::definition() const
{
return func_;
}
NetEUFunc* NetEUFunc::dup_expr() const
{
assert(0);
return 0;
}
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NetUTask::NetUTask(NetTaskDef*def)
: task_(def)
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{
}
NetUTask::~NetUTask()
{
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}
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NetExpr::NetExpr(unsigned w)
: width_(w)
{
}
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NetExpr::~NetExpr()
{
}
NetEBAdd::NetEBAdd(char op, NetExpr*l, NetExpr*r)
: NetEBinary(op, l, r)
{
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if (l->expr_width() > r->expr_width())
r->set_width(l->expr_width());
if (r->expr_width() > l->expr_width())
l->set_width(r->expr_width());
if (l->expr_width() < r->expr_width())
r->set_width(l->expr_width());
if (r->expr_width() < l->expr_width())
l->set_width(r->expr_width());
if (r->expr_width() != l->expr_width())
expr_width(0);
else
expr_width(l->expr_width());
}
NetEBAdd::~NetEBAdd()
{
}
NetEBAdd* NetEBAdd::dup_expr() const
{
NetEBAdd*result = new NetEBAdd(op_, left_->dup_expr(),
right_->dup_expr());
return result;
}
NetEBBits::NetEBBits(char op, NetExpr*l, NetExpr*r)
: NetEBinary(op, l, r)
{
/* First try to naturally adjust the size of the
expressions to match. */
if (l->expr_width() > r->expr_width())
r->set_width(l->expr_width());
if (r->expr_width() > l->expr_width())
l->set_width(r->expr_width());
if (l->expr_width() < r->expr_width())
r->set_width(l->expr_width());
if (r->expr_width() < l->expr_width())
l->set_width(r->expr_width());
/* If the expressions cannot be matched, pad them to fit. */
if (l->expr_width() > r->expr_width())
right_ = pad_to_width(r, l->expr_width());
if (r->expr_width() > l->expr_width())
left_ = pad_to_width(l, r->expr_width());
assert(left_->expr_width() == right_->expr_width());
expr_width(left_->expr_width());
}
NetEBBits::~NetEBBits()
{
}
NetEBBits* NetEBBits::dup_expr() const
{
NetEBBits*result = new NetEBBits(op_, left_->dup_expr(),
right_->dup_expr());
return result;
}
NetEBComp::NetEBComp(char op, NetExpr*l, NetExpr*r)
: NetEBinary(op, l, r)
{
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expr_width(1);
}
NetEBComp::~NetEBComp()
{
}
NetEBComp* NetEBComp::dup_expr() const
{
NetEBComp*result = new NetEBComp(op_, left_->dup_expr(),
right_->dup_expr());
return result;
}
NetEBinary::NetEBinary(char op, NetExpr*l, NetExpr*r)
: op_(op), left_(l), right_(r)
{
}
NetEBinary::~NetEBinary()
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{
delete left_;
delete right_;
}
NetEBinary* NetEBinary::dup_expr() const
{
assert(0);
}
NetEBLogic::NetEBLogic(char op, NetExpr*l, NetExpr*r)
: NetEBinary(op, l, r)
{
expr_width(1);
}
NetEBLogic::~NetEBLogic()
{
}
NetEBLogic* NetEBLogic::dup_expr() const
{
NetEBLogic*result = new NetEBLogic(op_, left_->dup_expr(),
right_->dup_expr());
return result;
}
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NetEBShift::NetEBShift(char op, NetExpr*l, NetExpr*r)
: NetEBinary(op, l, r)
{
expr_width(l->expr_width());
}
NetEBShift::~NetEBShift()
{
}
NetEBShift* NetEBShift::dup_expr() const
{
NetEBShift*result = new NetEBShift(op_, left_->dup_expr(),
right_->dup_expr());
return result;
}
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NetEConcat::NetEConcat(unsigned cnt, unsigned r)
: parms_(cnt), repeat_(r)
{
expr_width(0);
}
NetEConcat::~NetEConcat()
{
for (unsigned idx = 0 ; idx < parms_.count() ; idx += 1)
delete parms_[idx];
}
void NetEConcat::set(unsigned idx, NetExpr*e)
{
assert(idx < parms_.count());
assert(parms_[idx] == 0);
parms_[idx] = e;
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expr_width( expr_width() + repeat_*e->expr_width() );
}
NetEConcat* NetEConcat::dup_expr() const
{
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NetEConcat*dup = new NetEConcat(parms_.count(), repeat_);
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for (unsigned idx = 0 ; idx < parms_.count() ; idx += 1)
if (parms_[idx]) {
assert(parms_[idx]->dup_expr());
dup->parms_[idx] = parms_[idx]->dup_expr();
}
dup->expr_width(expr_width());
return dup;
}
1999-09-20 04:21:10 +02:00
NetEConst::NetEConst(const verinum&val)
: NetExpr(val.len()), value_(val)
{
}
NetEConst::~NetEConst()
{
}
NetEConst* NetEConst::dup_expr() const
{
NetEConst*tmp = new NetEConst(value_);
tmp->set_line(*this);
return tmp;
}
NetEIdent* NetEIdent::dup_expr() const
{
assert(0);
}
NetEMemory::NetEMemory(NetMemory*m, NetExpr*i)
: NetExpr(m->width()), mem_(m), idx_(i)
{
}
NetEMemory::~NetEMemory()
{
}
NetMemory::NetMemory(const string&n, long w, long s, long e)
: name_(n), width_(w), idxh_(s), idxl_(e)
{
}
unsigned NetMemory::count() const
{
if (idxh_ < idxl_)
return idxl_ - idxh_ + 1;
else
return idxh_ - idxl_ + 1;
}
unsigned NetMemory::index_to_address(long idx) const
{
if (idxh_ < idxl_)
return idx - idxh_;
else
return idx - idxl_;
}
void NetMemory::set_attributes(const map<string,string>&attr)
{
assert(attributes_.size() == 0);
attributes_ = attr;
}
NetEMemory* NetEMemory::dup_expr() const
{
assert(0);
}
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NetEParam::NetEParam()
: des_(0)
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{
}
NetEParam::NetEParam(Design*d, const string&p, const string&n)
: des_(d), path_(p), name_(n)
1999-09-20 04:21:10 +02:00
{
}
NetEParam::~NetEParam()
{
}
NetEParam* NetEParam::dup_expr() const
{
return 0;
}
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NetEScope::NetEScope(NetScope*s)
: scope_(s)
{
}
NetEScope::~NetEScope()
{
}
const NetScope* NetEScope::scope() const
{
return scope_;
}
NetESignal::NetESignal(NetNet*n)
: NetExpr(n->pin_count()), net_(n)
{
net_->incr_eref();
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set_line(*n);
}
NetESignal::~NetESignal()
1999-07-17 05:08:31 +02:00
{
net_->decr_eref();
1999-07-17 05:08:31 +02:00
}
const string& NetESignal::name() const
{
return net_->name();
}
unsigned NetESignal::pin_count() const
{
return net_->pin_count();
}
NetObj::Link& NetESignal::pin(unsigned idx)
{
return net_->pin(idx);
}
NetESignal* NetESignal::dup_expr() const
{
assert(0);
}
1999-04-25 02:44:10 +02:00
NetESubSignal::NetESubSignal(NetESignal*sig, NetExpr*ex)
: sig_(sig), idx_(ex)
{
// This supports mux type indexing of an expression, so the
1999-07-16 06:33:41 +02:00
// with is by definition 1 bit.
expr_width(1);
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}
NetESubSignal::~NetESubSignal()
{
delete idx_;
}
NetESubSignal* NetESubSignal::dup_expr() const
{
assert(0);
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}
1999-07-17 21:50:59 +02:00
NetETernary::NetETernary(NetExpr*c, NetExpr*t, NetExpr*f)
: cond_(c), true_val_(t), false_val_(f)
{
expr_width(true_val_->expr_width());
}
NetETernary::~NetETernary()
{
delete cond_;
delete true_val_;
delete false_val_;
}
const NetExpr* NetETernary::cond_expr() const
{
return cond_;
}
const NetExpr* NetETernary::true_expr() const
{
return true_val_;
}
const NetExpr* NetETernary::false_expr() const
{
return false_val_;
}
1999-07-17 21:50:59 +02:00
NetETernary* NetETernary::dup_expr() const
{
assert(0);
}
NetEUnary::NetEUnary(char op, NetExpr*ex)
: NetExpr(ex->expr_width()), op_(op), expr_(ex)
{
switch (op_) {
case '!': // Logical not
case '&': // Reduction and
case '|': // Reduction or
case '^': // Reduction XOR
case 'A': // Reduction NAND (~&)
case 'N': // Reduction NOR (~|)
case 'X': // Reduction NXOR (~^)
expr_width(1);
break;
}
}
NetEUnary::~NetEUnary()
{
delete expr_;
}
NetEUnary* NetEUnary::dup_expr() const
{
assert(0);
}
NetEUBits::NetEUBits(char op, NetExpr*ex)
: NetEUnary(op, ex)
{
}
NetEUBits::~NetEUBits()
{
}
NetForever::NetForever(NetProc*p)
: statement_(p)
{
}
NetForever::~NetForever()
{
delete statement_;
}
NetLogic::NetLogic(const string&n, unsigned pins, TYPE t)
: NetNode(n, pins), type_(t)
{
pin(0).set_dir(Link::OUTPUT);
pin(0).set_name("O", 0);
for (unsigned idx = 1 ; idx < pins ; idx += 1) {
pin(idx).set_dir(Link::INPUT);
pin(idx).set_name("I", idx-1);
}
}
NetRepeat::NetRepeat(NetExpr*e, NetProc*p)
: expr_(e), statement_(p)
{
}
NetRepeat::~NetRepeat()
{
delete expr_;
delete statement_;
}
const NetExpr* NetRepeat::expr() const
{
return expr_;
}
1999-11-24 05:01:58 +01:00
NetScope::NetScope(const string&n)
1999-11-27 20:07:57 +01:00
: type_(NetScope::MODULE), name_(n)
1999-11-24 05:01:58 +01:00
{
}
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NetScope::NetScope(const string&p, NetScope::TYPE t)
: type_(t), name_(p)
1999-11-24 05:01:58 +01:00
{
}
NetScope::~NetScope()
{
}
1999-11-27 20:07:57 +01:00
NetScope::TYPE NetScope::type() const
{
return type_;
}
1999-11-24 05:01:58 +01:00
string NetScope::name() const
{
return name_;
}
NetTaskDef::NetTaskDef(const string&n, const svector<NetNet*>&po)
: name_(n), proc_(0), ports_(po)
1999-07-03 04:12:51 +02:00
{
}
NetTaskDef::~NetTaskDef()
{
delete proc_;
}
void NetTaskDef::set_proc(NetProc*p)
{
assert(proc_ == 0);
proc_ = p;
}
1999-07-24 04:11:19 +02:00
NetNet* NetTaskDef::port(unsigned idx)
{
assert(idx < ports_.count());
return ports_[idx];
}
NetUDP::NetUDP(const string&n, unsigned pins, bool sequ)
: NetNode(n, pins), sequential_(sequ), init_('x')
{
pin(0).set_dir(Link::OUTPUT);
for (unsigned idx = 1 ; idx < pins ; idx += 1)
pin(idx).set_dir(Link::INPUT);
}
NetUDP::state_t_* NetUDP::find_state_(const string&str)
{
map<string,state_t_*>::iterator cur = fsm_.find(str);
if (cur != fsm_.end())
return (*cur).second;
state_t_*st = fsm_[str];
if (st == 0) {
st = new state_t_(pin_count());
st->out = str[0];
fsm_[str] = st;
}
return st;
}
/*
* This method takes the input string, which contains exactly one
* edge, and connects it to the correct output state. The output state
* will be generated if needed, and the value compared.
*/
bool NetUDP::set_sequ_(const string&input, char output)
{
if (output == '-')
output = input[0];
string frm = input;
string to = input;
to[0] = output;
unsigned edge = frm.find_first_not_of("01x");
assert(frm.find_last_not_of("01x") == edge);
switch (input[edge]) {
case 'r':
frm[edge] = '0';
to[edge] = '1';
break;
case 'R':
frm[edge] = 'x';
to[edge] = '1';
break;
case 'f':
frm[edge] = '1';
to[edge] = '0';
break;
case 'F':
frm[edge] = 'x';
to[edge] = '0';
break;
case 'P':
frm[edge] = '0';
to[edge] = 'x';
break;
case 'N':
frm[edge] = '1';
to[edge] = 'x';
break;
default:
assert(0);
}
state_t_*sfrm = find_state_(frm);
state_t_*sto = find_state_(to);
switch (to[edge]) {
case '0':
// Notice that I might have caught this edge already
if (sfrm->pins[edge].zer != sto) {
assert(sfrm->pins[edge].zer == 0);
sfrm->pins[edge].zer = sto;
}
break;
case '1':
// Notice that I might have caught this edge already
if (sfrm->pins[edge].one != sto) {
assert(sfrm->pins[edge].one == 0);
sfrm->pins[edge].one = sto;
}
break;
case 'x':
// Notice that I might have caught this edge already
if (sfrm->pins[edge].xxx != sto) {
assert(sfrm->pins[edge].xxx == 0);
sfrm->pins[edge].xxx = sto;
}
break;
}
return true;
}
bool NetUDP::sequ_glob_(string input, char output)
{
for (unsigned idx = 0 ; idx < input.length() ; idx += 1)
switch (input[idx]) {
case '0':
case '1':
case 'x':
case 'r':
case 'R':
case 'f':
case 'F':
case 'P':
case 'N':
break;
case '?': // Iterate over all the levels
input[idx] = '0';
sequ_glob_(input, output);
input[idx] = '1';
sequ_glob_(input, output);
input[idx] = 'x';
sequ_glob_(input, output);
return true;
case 'n': // Iterate over (n) edges
input[idx] = 'f';
sequ_glob_(input, output);
input[idx] = 'F';
sequ_glob_(input, output);
input[idx] = 'N';
sequ_glob_(input, output);
return true;
case 'p': // Iterate over (p) edges
input[idx] = 'r';
sequ_glob_(input, output);
input[idx] = 'R';
sequ_glob_(input, output);
input[idx] = 'P';
sequ_glob_(input, output);
return true;
case '_': // Iterate over (?0) edges
input[idx] = 'f';
sequ_glob_(input, output);
input[idx] = 'F';
sequ_glob_(input, output);
return true;
case '*': // Iterate over all the edges
input[idx] = 'r';
sequ_glob_(input, output);
input[idx] = 'R';
sequ_glob_(input, output);
input[idx] = 'f';
sequ_glob_(input, output);
input[idx] = 'F';
sequ_glob_(input, output);
input[idx] = 'P';
sequ_glob_(input, output);
input[idx] = 'N';
sequ_glob_(input, output);
return true;
default:
assert(0);
}
return set_sequ_(input, output);
}
bool NetUDP::set_table(const string&input, char output)
{
assert((output == '0') || (output == '1') || (sequential_ &&
(output == '-')));
if (sequential_) {
assert(input.length() == pin_count());
/* XXXX Need to check to make sure that the input vector
contains a legal combination of characters. */
return sequ_glob_(input, output);
} else {
assert(input.length() == (pin_count()-1));
/* XXXX Need to check to make sure that the input vector
contains a legal combination of characters. In
combinational UDPs, only 0, 1 and x are allowed. */
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cm_[input] = output;
return true;
}
}
void NetUDP::cleanup_table()
{
for (FSM_::iterator idx = fsm_.begin() ; idx != fsm_.end() ; idx++) {
string str = (*idx).first;
state_t_*st = (*idx).second;
assert(str[0] == st->out);
for (unsigned pin = 0 ; pin < pin_count() ; pin += 1) {
if (st->pins[pin].zer && st->pins[pin].zer->out == 'x')
st->pins[pin].zer = 0;
if (st->pins[pin].one && st->pins[pin].one->out == 'x')
st->pins[pin].one = 0;
if (st->pins[pin].xxx && st->pins[pin].xxx->out == 'x')
st->pins[pin].xxx = 0;
}
}
for (FSM_::iterator idx = fsm_.begin() ; idx != fsm_.end() ; ) {
FSM_::iterator cur = idx;
idx ++;
state_t_*st = (*cur).second;
if (st->out != 'x')
continue;
for (unsigned pin = 0 ; pin < pin_count() ; pin += 1) {
if (st->pins[pin].zer)
goto break_label;
if (st->pins[pin].one)
goto break_label;
if (st->pins[pin].xxx)
goto break_label;
}
//delete st;
fsm_.erase(cur);
break_label:;
}
}
char NetUDP::table_lookup(const string&from, char to, unsigned pin) const
{
assert(pin <= pin_count());
assert(from.length() == pin_count());
FSM_::const_iterator idx = fsm_.find(from);
if (idx == fsm_.end())
return 'x';
state_t_*next;
switch (to) {
case '0':
next = (*idx).second->pins[pin].zer;
break;
case '1':
next = (*idx).second->pins[pin].one;
break;
case 'x':
next = (*idx).second->pins[pin].xxx;
break;
default:
assert(0);
next = 0;
}
return next? next->out : 'x';
}
void NetUDP::set_initial(char val)
{
assert(sequential_);
assert((val == '0') || (val == '1') || (val == 'x'));
init_ = val;
}
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Design:: Design()
: errors(0), signals_(0), nodes_(0), procs_(0), lcounter_(0)
{
}
Design::~Design()
{
}
1999-11-27 20:07:57 +01:00
NetScope* Design::make_root_scope(const string&root)
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{
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NetScope*scope = new NetScope(root);
scopes_[root] = scope;
return scope;
1999-11-24 05:01:58 +01:00
}
1999-11-27 20:07:57 +01:00
NetScope* Design::make_scope(const string&path,
NetScope::TYPE t,
const string&name)
1999-11-24 05:01:58 +01:00
{
string npath = path + "." + name;
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NetScope*scope = new NetScope(npath, t);
scopes_[npath] = scope;
return scope;
}
NetScope* Design::find_scope(const string&key)
{
map<string,NetScope*>::const_iterator tmp = scopes_.find(key);
if (tmp == scopes_.end())
return 0;
else
return (*tmp).second;
1999-11-24 05:01:58 +01:00
}
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void Design::set_parameter(const string&key, NetExpr*expr)
{
parameters_[key] = expr;
}
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/*
* Find a parameter from within a specified context. If the name is
* not here, keep looking up until I run out of up to look at.
*/
const NetExpr* Design::find_parameter(const string&path,
const string&name) const
1999-02-21 18:01:57 +01:00
{
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string root = path;
for (;;) {
string fulname = root + "." + name;
map<string,NetExpr*>::const_iterator cur
= parameters_.find(fulname);
if (cur != parameters_.end())
return (*cur).second;
unsigned pos = root.rfind('.');
if (pos > root.length())
break;
root = root.substr(0, pos);
}
return 0;
1999-02-21 18:01:57 +01:00
}
string Design::get_flag(const string&key) const
{
map<string,string>::const_iterator tmp = flags_.find(key);
if (tmp == flags_.end())
return "";
else
return (*tmp).second;
}
1998-11-04 00:28:49 +01:00
void Design::add_signal(NetNet*net)
{
assert(net->design_ == 0);
if (signals_ == 0) {
net->sig_next_ = net;
net->sig_prev_ = net;
} else {
net->sig_next_ = signals_->sig_next_;
net->sig_prev_ = signals_;
net->sig_next_->sig_prev_ = net;
net->sig_prev_->sig_next_ = net;
}
signals_ = net;
net->design_ = this;
}
void Design::del_signal(NetNet*net)
{
assert(net->design_ == this);
if (signals_ == net)
signals_ = net->sig_prev_;
if (signals_ == net) {
signals_ = 0;
} else {
net->sig_prev_->sig_next_ = net->sig_next_;
net->sig_next_->sig_prev_ = net->sig_prev_;
}
net->design_ = 0;
}
/*
* This method looks for a string given a current context as a
* starting point.
*/
NetNet* Design::find_signal(const string&path, const string&name)
1998-11-04 00:28:49 +01:00
{
if (signals_ == 0)
return 0;
string root = path;
for (;;) {
1998-11-04 00:28:49 +01:00
string fulname = root + "." + name;
NetNet*cur = signals_;
do {
if (cur->name() == fulname)
return cur;
cur = cur->sig_prev_;
} while (cur != signals_);
unsigned pos = root.rfind('.');
if (pos > root.length())
break;
root = root.substr(0, pos);
}
1998-11-04 00:28:49 +01:00
return 0;
}
void Design::add_memory(NetMemory*mem)
{
memories_[mem->name()] = mem;
}
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NetMemory* Design::find_memory(const string&path, const string&name)
{
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string root = path;
1999-11-21 18:35:37 +01:00
for (;;) {
string fulname = root + "." + name;
map<string,NetMemory*>::const_iterator cur
= memories_.find(fulname);
if (cur != memories_.end())
return (*cur).second;
unsigned pos = root.rfind('.');
if (pos > root.length())
break;
root = root.substr(0, pos);
}
return 0;
}
1999-08-26 00:22:41 +02:00
void Design::add_function(const string&key, NetFuncDef*def)
{
funcs_[key] = def;
}
NetFuncDef* Design::find_function(const string&path, const string&name)
{
string root = path;
for (;;) {
string key = root + "." + name;
map<string,NetFuncDef*>::const_iterator cur = funcs_.find(key);
if (cur != funcs_.end())
return (*cur).second;
unsigned pos = root.rfind('.');
if (pos > root.length())
break;
root = root.substr(0, pos);
}
return 0;
}
NetFuncDef* Design::find_function(const string&key)
{
map<string,NetFuncDef*>::const_iterator cur = funcs_.find(key);
if (cur != funcs_.end())
return (*cur).second;
return 0;
}
1999-07-03 04:12:51 +02:00
void Design::add_task(const string&key, NetTaskDef*def)
{
tasks_[key] = def;
}
NetTaskDef* Design::find_task(const string&path, const string&name)
{
string root = path;
for (;;) {
string key = root + "." + name;
map<string,NetTaskDef*>::const_iterator cur = tasks_.find(key);
if (cur != tasks_.end())
return (*cur).second;
unsigned pos = root.rfind('.');
if (pos > root.length())
break;
root = root.substr(0, pos);
}
return 0;
}
1999-07-03 04:12:51 +02:00
NetTaskDef* Design::find_task(const string&key)
{
map<string,NetTaskDef*>::const_iterator cur = tasks_.find(key);
if (cur == tasks_.end())
return 0;
return (*cur).second;
}
1998-11-04 00:28:49 +01:00
void Design::add_node(NetNode*net)
{
assert(net->design_ == 0);
if (nodes_ == 0) {
net->node_next_ = net;
net->node_prev_ = net;
} else {
net->node_next_ = nodes_->node_next_;
net->node_prev_ = nodes_;
net->node_next_->node_prev_ = net;
net->node_prev_->node_next_ = net;
}
nodes_ = net;
net->design_ = this;
}
void Design::del_node(NetNode*net)
{
assert(net->design_ == this);
if (nodes_ == net)
nodes_ = net->node_prev_;
if (nodes_ == net) {
nodes_ = 0;
} else {
net->node_next_->node_prev_ = net->node_prev_;
net->node_prev_->node_next_ = net->node_next_;
}
net->design_ = 0;
}
void Design::add_process(NetProcTop*pro)
{
pro->next_ = procs_;
procs_ = pro;
}
void Design::delete_process(NetProcTop*top)
{
assert(top);
if (procs_ == top) {
procs_ = top->next_;
} else {
NetProcTop*cur = procs_;
while (cur->next_ != top) {
assert(cur->next_);
cur = cur->next_;
}
cur->next_ = top->next_;
}
if (procs_idx_ == top)
procs_idx_ = top->next_;
delete top;
}
void Design::clear_node_marks()
{
if (nodes_ == 0)
return;
NetNode*cur = nodes_;
do {
cur->set_mark(false);
cur = cur->node_next_;
} while (cur != nodes_);
}
void Design::clear_signal_marks()
{
if (signals_ == 0)
return;
NetNet*cur = signals_;
do {
cur->set_mark(false);
cur = cur->sig_next_;
} while (cur != signals_);
}
NetNode* Design::find_node(bool (*func)(const NetNode*))
{
if (nodes_ == 0)
return 0;
NetNode*cur = nodes_->node_next_;
do {
if ((cur->test_mark() == false) && func(cur))
return cur;
cur = cur->node_next_;
} while (cur != nodes_->node_next_);
return 0;
}
1998-11-04 00:28:49 +01:00
NetNet* Design::find_signal(bool (*func)(const NetNet*))
{
if (signals_ == 0)
return 0;
NetNet*cur = signals_->sig_next_;
do {
if ((cur->test_mark() == false) && func(cur))
return cur;
cur = cur->sig_next_;
} while (cur != signals_->sig_next_);
return 0;
}
1998-11-04 00:28:49 +01:00
/*
* $Log: netlist.cc,v $
* Revision 1.96 1999/11/28 23:42:02 steve
* NetESignal object no longer need to be NetNode
* objects. Let them keep a pointer to NetNet objects.
*
* Revision 1.95 1999/11/28 01:16:18 steve
* gate outputs need to set signal values.
*
1999-11-27 20:07:57 +01:00
* Revision 1.94 1999/11/27 19:07:57 steve
* Support the creation of scopes.
*
1999-11-24 05:01:58 +01:00
* Revision 1.93 1999/11/24 04:01:59 steve
* Detect and list scope names.
*
* Revision 1.92 1999/11/21 18:03:35 steve
* Fix expression width of memory references.
*
1999-11-21 18:35:37 +01:00
* Revision 1.91 1999/11/21 17:35:37 steve
* Memory name lookup handles scopes.
*
* Revision 1.90 1999/11/21 00:13:08 steve
* Support memories in continuous assignments.
*
1999-11-19 06:02:37 +01:00
* Revision 1.89 1999/11/19 05:02:37 steve
* handle duplicate connect to a nexus.
*
* Revision 1.88 1999/11/19 03:02:25 steve
* Detect flip-flops connected to opads and turn
* them into OUTFF devices. Inprove support for
* the XNF-LCA attribute in the process.
*
* Revision 1.87 1999/11/18 03:52:19 steve
* Turn NetTmp objects into normal local NetNet objects,
* and add the nodangle functor to clean up the local
* symbols generated by elaboration and other steps.
*
1999-11-15 00:43:45 +01:00
* Revision 1.86 1999/11/14 23:43:45 steve
* Support combinatorial comparators.
*
* Revision 1.85 1999/11/14 20:24:28 steve
* Add support for the LPM_CLSHIFT device.
*
1999-11-13 04:46:52 +01:00
* Revision 1.84 1999/11/13 03:46:52 steve
* Support the LPM_MUX in vvm.
*
* Revision 1.83 1999/11/05 04:40:40 steve
* Patch to synthesize LPM_ADD_SUB from expressions,
* Thanks to Larry Doolittle. Also handle constants
* in expressions.
*
* Synthesize adders in XNF, based on a patch from
* Larry. Accept synthesis of constants from Larry
* as is.
*
* Revision 1.82 1999/11/04 03:53:26 steve
* Patch to synthesize unary ~ and the ternary operator.
* Thanks to Larry Doolittle <LRDoolittle@lbl.gov>.
*
* Add the LPM_MUX device, and integrate it with the
* ternary synthesis from Larry. Replace the lpm_mux
* generator in t-xnf.cc to use XNF EQU devices to
* put muxs into function units.
*
* Rewrite elaborate_net for the PETernary class to
* also use the LPM_MUX device.
*
1999-11-04 02:12:41 +01:00
* Revision 1.81 1999/11/04 01:12:42 steve
* Elaborate combinational UDP devices.
*
* Revision 1.80 1999/11/02 04:55:34 steve
* Add the synthesize method to NetExpr to handle
* synthesis of expressions, and use that method
* to improve r-value handling of LPM_FF synthesis.
*
* Modify the XNF target to handle LPM_FF objects.
*
* Revision 1.79 1999/11/01 02:07:40 steve
* Add the synth functor to do generic synthesis
* and add the LPM_FF device to handle rows of
* flip-flops.
*
* Revision 1.78 1999/10/31 04:11:27 steve
* Add to netlist links pin name and instance number,
* and arrange in vvm for pin connections by name
* and instance number.
*
* Revision 1.77 1999/10/10 23:29:37 steve
* Support evaluating + operator at compile time.
*
1999-10-10 03:59:54 +02:00
* Revision 1.76 1999/10/10 01:59:55 steve
* Structural case equals device.
*
* Revision 1.75 1999/10/07 05:25:34 steve
* Add non-const bit select in l-value of assignment.
*
* Revision 1.74 1999/10/06 05:06:16 steve
* Move the rvalue into NetAssign_ common code.
*
* Revision 1.73 1999/10/05 04:02:10 steve
* Relaxed width handling for <= assignment.
*
* Revision 1.72 1999/09/30 21:28:34 steve
* Handle mutual reference of tasks by elaborating
* task definitions in two passes, like functions.
*
1999-09-29 20:36:02 +02:00
* Revision 1.71 1999/09/29 18:36:03 steve
* Full case support
*
* Revision 1.70 1999/09/28 03:11:29 steve
* Get the bit widths of unary operators that return one bit.
*
1999-09-23 05:56:57 +02:00
* Revision 1.69 1999/09/23 03:56:57 steve
* Support shift operators.
*
* Revision 1.68 1999/09/23 00:21:54 steve
* Move set_width methods into a single file,
* Add the NetEBLogic class for logic expressions,
* Fix error setting with of && in if statements.
*
* Revision 1.67 1999/09/21 00:13:40 steve
* Support parameters that reference other paramters.
*
1999-09-20 04:21:10 +02:00
* Revision 1.66 1999/09/20 02:21:10 steve
* Elaborate parameters in phases.
*
* Revision 1.65 1999/09/18 01:53:08 steve
* Detect constant lessthen-equal expressions.
*
1999-09-16 06:18:15 +02:00
* Revision 1.64 1999/09/16 04:18:15 steve
* elaborate concatenation repeats.
*
1999-09-16 02:33:45 +02:00
* Revision 1.63 1999/09/16 00:33:45 steve
* Handle implicit !=0 in if statements.
*
* Revision 1.62 1999/09/15 01:55:06 steve
* Elaborate non-blocking assignment to memories.
*
* Revision 1.61 1999/09/13 03:10:59 steve
* Clarify msb/lsb in context of netlist. Properly
* handle part selects in lval and rval of expressions,
* and document where the least significant bit goes
* in NetNet objects.
*
1999-09-12 03:16:51 +02:00
* Revision 1.60 1999/09/12 01:16:51 steve
* Pad r-values in certain assignments.
*
* Revision 1.59 1999/09/11 04:43:17 steve
* Support ternary and <= operators in vvm.
*
* Revision 1.58 1999/09/08 04:05:30 steve
* Allow assign to not match rvalue width.
*
1999-09-04 03:57:15 +02:00
* Revision 1.57 1999/09/04 01:57:15 steve
* Generate fake adder code in vvm.
*
1999-09-03 06:28:38 +02:00
* Revision 1.56 1999/09/03 04:28:38 steve
* elaborate the binary plus operator.
*
* Revision 1.55 1999/09/01 20:46:19 steve
* Handle recursive functions and arbitrary function
* references to other functions, properly pass
* function parameters and save function results.
*
* Revision 1.54 1999/08/31 22:38:29 steve
* Elaborate and emit to vvm procedural functions.
*
1999-08-26 00:22:41 +02:00
* Revision 1.53 1999/08/25 22:22:41 steve
* elaborate some aspects of functions.
*
1999-08-06 06:05:28 +02:00
* Revision 1.52 1999/08/06 04:05:28 steve
* Handle scope of parameters.
*
* Revision 1.51 1999/08/01 21:48:11 steve
* set width of procedural r-values when then
* l-value is a memory word.
*
* Revision 1.50 1999/07/31 19:14:47 steve
* Add functions up to elaboration (Ed Carter)
*
* Revision 1.49 1999/07/31 03:16:54 steve
* move binary operators to derived classes.
*
1999-07-24 04:11:19 +02:00
* Revision 1.48 1999/07/24 02:11:20 steve
* Elaborate task input ports.
*
* Revision 1.47 1999/07/18 21:17:50 steve
* Add support for CE input to XNF DFF, and do
* complete cleanup of replaced design nodes.
*
* Revision 1.46 1999/07/18 05:52:46 steve
* xnfsyn generates DFF objects for XNF output, and
* properly rewrites the Design netlist in the process.
*
1999-07-17 21:50:59 +02:00
* Revision 1.45 1999/07/17 19:51:00 steve
* netlist support for ternary operator.
*
* Revision 1.44 1999/07/17 18:06:02 steve
* Better handling of bit width of + operators.
*
1999-07-17 05:08:31 +02:00
* Revision 1.43 1999/07/17 03:08:31 steve
* part select in expressions.
*
1999-07-16 06:33:41 +02:00
* Revision 1.42 1999/07/16 04:33:41 steve
* set_width for NetESubSignal.
*
1999-07-03 04:12:51 +02:00
* Revision 1.41 1999/07/03 02:12:51 steve
* Elaborate user defined tasks.
*
* Revision 1.40 1999/06/24 05:02:36 steve
* Properly terminate signal matching scan.
*
* Revision 1.39 1999/06/24 04:24:18 steve
* Handle expression widths for EEE and NEE operators,
* add named blocks and scope handling,
* add registers declared in named blocks.
*
* Revision 1.38 1999/06/19 21:06:16 steve
* Elaborate and supprort to vvm the forever
* and repeat statements.
*
* Revision 1.37 1999/06/13 23:51:16 steve
* l-value part select for procedural assignments.
*
* Revision 1.36 1999/06/13 16:30:06 steve
* Unify the NetAssign constructors a bit.
*
1999-06-10 07:33:28 +02:00
* Revision 1.35 1999/06/10 05:33:28 steve
* Handle a few more operator bit widths.
*
* Revision 1.34 1999/06/09 03:00:06 steve
* Add support for procedural concatenation expression.
*
* Revision 1.33 1999/06/07 02:23:31 steve
* Support non-blocking assignment down to vvm.
*
* Revision 1.32 1999/06/06 20:45:38 steve
* Add parse and elaboration of non-blocking assignments,
* Replace list<PCase::Item*> with an svector version,
* Add integer support.
*
* Revision 1.31 1999/06/03 05:16:25 steve
* Compile time evalutation of constant expressions.
*
1999-06-02 17:38:46 +02:00
* Revision 1.30 1999/06/02 15:38:46 steve
* Line information with nets.
*
* Revision 1.29 1999/05/30 01:11:46 steve
* Exressions are trees that can duplicate, and not DAGS.
*
* Revision 1.28 1999/05/27 04:13:08 steve
* Handle expression bit widths with non-fatal errors.
*
* Revision 1.27 1999/05/20 05:07:37 steve
* Line number info with match error message.
*
* Revision 1.26 1999/05/16 05:08:42 steve
* Redo constant expression detection to happen
* after parsing.
*
* Parse more operators and expressions.
*
* Revision 1.25 1999/05/13 04:02:09 steve
* More precise handling of verinum bit lengths.
*
* Revision 1.24 1999/05/12 04:03:19 steve
* emit NetAssignMem objects in vvm target.
*
* Revision 1.23 1999/05/10 00:16:58 steve
* Parse and elaborate the concatenate operator
* in structural contexts, Replace vector<PExpr*>
* and list<PExpr*> with svector<PExpr*>, evaluate
* constant expressions with parameters, handle
* memories as lvalues.
*
* Parse task declarations, integer types.
*
* Revision 1.22 1999/05/01 02:57:53 steve
* Handle much more complex event expressions.
*
1999-04-25 02:44:10 +02:00
* Revision 1.21 1999/04/25 00:44:10 steve
* Core handles subsignal expressions.
*
* Revision 1.20 1999/04/19 01:59:36 steve
* Add memories to the parse and elaboration phases.
*
* Revision 1.19 1999/03/15 02:43:32 steve
* Support more operators, especially logical.
*
* Revision 1.18 1999/03/01 03:27:53 steve
* Prevent the duplicate allocation of ESignal objects.
*
1999-02-21 18:01:57 +01:00
* Revision 1.17 1999/02/21 17:01:57 steve
* Add support for module parameters.
*
* Revision 1.16 1999/02/08 02:49:56 steve
* Turn the NetESignal into a NetNode so
* that it can connect to the netlist.
* Implement the case statement.
* Convince t-vvm to output code for
* the case statement.
*
* Revision 1.15 1999/02/03 04:20:11 steve
* Parse and elaborate the Verilog CASE statement.
1998-11-04 00:28:49 +01:00
*/