OpenSTA/search/CheckSlewLimits.cc

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// OpenSTA, Static Timing Analyzer
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// Copyright (c) 2021, Parallax Software, Inc.
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//
// This program is free software: you can redistribute it and/or modify
// it under the terms of the GNU General Public License as published by
// the Free Software Foundation, either version 3 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, see <https://www.gnu.org/licenses/>.
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#include "CheckSlewLimits.hh"
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#include "Fuzzy.hh"
#include "Liberty.hh"
#include "Network.hh"
#include "Sdc.hh"
#include "Graph.hh"
#include "DcalcAnalysisPt.hh"
#include "GraphDelayCalc.hh"
#include "StaState.hh"
#include "Corner.hh"
#include "PathVertex.hh"
#include "PortDirection.hh"
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#include "Search.hh"
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#include "ClkNetwork.hh"
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namespace sta {
class PinSlewLimitSlackLess
{
public:
PinSlewLimitSlackLess(const Corner *corner,
const MinMax *min_max,
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CheckSlewLimits *check_slew_limit,
const StaState *sta);
bool operator()(Pin *pin1,
Pin *pin2) const;
private:
const Corner *corner_;
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const MinMax *min_max_;
CheckSlewLimits *check_slew_limit_;
const StaState *sta_;
};
PinSlewLimitSlackLess::PinSlewLimitSlackLess(const Corner *corner,
const MinMax *min_max,
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CheckSlewLimits *check_slew_limit,
const StaState *sta) :
corner_(corner),
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min_max_(min_max),
check_slew_limit_(check_slew_limit),
sta_(sta)
{
}
bool
PinSlewLimitSlackLess::operator()(Pin *pin1,
Pin *pin2) const
{
const Corner *corner1, *corner2;
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const RiseFall *rf1, *rf2;
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Slew slew1, slew2;
float limit1, limit2, slack1, slack2;
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check_slew_limit_->checkSlew(pin1, corner_, min_max_, true,
corner1, rf1, slew1, limit1, slack1);
check_slew_limit_->checkSlew(pin2, corner_, min_max_, true,
corner2, rf2, slew2, limit2, slack2);
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return fuzzyLess(slack1, slack2)
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|| (fuzzyEqual(slack1, slack2)
// Break ties for the sake of regression stability.
&& sta_->network()->pinLess(pin1, pin2));
}
////////////////////////////////////////////////////////////////
CheckSlewLimits::CheckSlewLimits(const StaState *sta) :
sta_(sta)
{
}
void
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CheckSlewLimits::checkSlew(const Pin *pin,
const Corner *corner,
const MinMax *min_max,
bool check_clks,
// Return values.
const Corner *&corner1,
const RiseFall *&rf,
Slew &slew,
float &limit,
float &slack) const
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{
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corner1 = nullptr;
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rf = nullptr;
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slew = 0.0;
limit = 0.0;
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slack = MinMax::min()->initValue();
if (corner)
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checkSlews1(pin, corner, min_max, check_clks,
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corner1, rf, slew, limit, slack);
else {
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for (auto corner : *sta_->corners()) {
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checkSlews1(pin, corner, min_max, check_clks,
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corner1, rf, slew, limit, slack);
}
}
}
void
CheckSlewLimits::checkSlews1(const Pin *pin,
const Corner *corner,
const MinMax *min_max,
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bool check_clks,
// Return values.
const Corner *&corner1,
const RiseFall *&rf1,
Slew &slew1,
float &limit1,
float &slack1) const
{
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Vertex *vertex, *bidirect_drvr_vertex;
sta_->graph()->pinVertices(pin, vertex, bidirect_drvr_vertex);
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if (vertex)
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checkSlews1(vertex, corner, min_max, check_clks,
corner1, rf1, slew1, limit1, slack1);
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if (bidirect_drvr_vertex)
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checkSlews1(bidirect_drvr_vertex, corner, min_max, check_clks,
corner1, rf1, slew1, limit1, slack1);
}
void
CheckSlewLimits::checkSlews1(Vertex *vertex,
const Corner *corner,
const MinMax *min_max,
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bool check_clks,
// Return values.
const Corner *&corner1,
const RiseFall *&rf1,
Slew &slew1,
float &limit1,
float &slack1) const
{
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const Pin *pin = vertex->pin();
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if (!vertex->isDisabledConstraint()
&& !vertex->isConstant()
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&& !sta_->clkNetwork()->isIdealClock(pin)) {
for (auto rf : RiseFall::range()) {
float limit;
bool limit_exists;
findLimit(pin, vertex, corner, rf, min_max, check_clks,
limit, limit_exists);
if (limit_exists) {
checkSlew(vertex, corner, rf, min_max, limit,
corner1, rf1, slew1, slack1, limit1);
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}
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}
}
}
// return the tightest limit.
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void
CheckSlewLimits::findLimit(const Pin *pin,
const Vertex *vertex,
const Corner *corner,
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const RiseFall *rf,
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const MinMax *min_max,
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bool check_clks,
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// Return values.
float &limit,
bool &exists) const
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{
exists = false;
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const Network *network = sta_->network();
Sdc *sdc = sta_->sdc();
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// Default to top ("design") limit.
Cell *top_cell = network->cell(network->topInstance());
sdc->slewLimit(top_cell, min_max,
limit, exists);
float limit1;
bool exists1;
if (check_clks) {
// Look for clock slew limits.
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bool is_clk = sta_->clkNetwork()->isIdealClock(pin);
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ClockSet clks;
clockDomains(vertex, clks);
ClockSet::Iterator clk_iter(clks);
while (clk_iter.hasNext()) {
Clock *clk = clk_iter.next();
PathClkOrData clk_data = is_clk ? PathClkOrData::clk : PathClkOrData::data;
sdc->slewLimit(clk, rf, clk_data, min_max,
limit1, exists1);
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if (exists1
&& (!exists
|| min_max->compare(limit, limit1))) {
limit = limit1;
exists = true;
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}
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}
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}
if (network->isTopLevelPort(pin)) {
Port *port = network->port(pin);
sdc->slewLimit(port, min_max, limit1, exists1);
if (exists1
&& (!exists
|| min_max->compare(limit, limit1))) {
limit = limit1;
exists = true;
}
}
else {
LibertyPort *port = network->libertyPort(pin);
if (port) {
LibertyPort *corner_port = port->cornerPort(corner->libertyIndex(min_max));
corner_port->slewLimit(min_max, limit1, exists1);
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if (!exists1
&& port->direction()->isAnyOutput()
&& min_max == MinMax::max())
corner_port->libertyLibrary()->defaultMaxSlew(limit1, exists1);
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if (exists1
&& (!exists
|| min_max->compare(limit, limit1))) {
limit = limit1;
exists = true;
}
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}
}
}
void
CheckSlewLimits::clockDomains(const Vertex *vertex,
// Return value.
ClockSet &clks) const
{
VertexPathIterator path_iter(const_cast<Vertex*>(vertex), sta_);
while (path_iter.hasNext()) {
Path *path = path_iter.next();
Clock *clk = path->clock(sta_);
if (clk)
clks.insert(clk);
}
}
void
CheckSlewLimits::checkSlew(Vertex *vertex,
const Corner *corner,
const RiseFall *rf,
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const MinMax *min_max,
float limit,
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// Return values.
const Corner *&corner1,
const RiseFall *&rf1,
Slew &slew1,
float &slack1,
float &limit1) const
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{
const DcalcAnalysisPt *dcalc_ap = corner->findDcalcAnalysisPt(min_max);
Slew slew = sta_->graph()->slew(vertex, rf, dcalc_ap->index());
float slew2 = delayAsFloat(slew);
float slack = (min_max == MinMax::max())
? limit - slew2 : slew2 - limit;
if (corner1 == nullptr
|| (slack < slack1
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// Break ties for the sake of regression stability.
|| (fuzzyEqual(slack, slack1)
&& rf->index() < rf1->index()))) {
corner1 = corner;
rf1 = rf;
slew1 = slew;
slack1 = slack;
limit1 = limit;
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}
}
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////////////////////////////////////////////////////////////////
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PinSeq *
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CheckSlewLimits::checkSlewLimits(Net *net,
bool violators,
const Corner *corner,
const MinMax *min_max)
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{
const Network *network = sta_->network();
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PinSeq *slew_pins = new PinSeq;
Slack min_slack = MinMax::min()->initValue();
if (net) {
NetPinIterator *pin_iter = network->pinIterator(net);
while (pin_iter->hasNext()) {
Pin *pin = pin_iter->next();
checkSlewLimits(pin, violators, corner, min_max, slew_pins, min_slack);
}
delete pin_iter;
}
else {
LeafInstanceIterator *inst_iter = network->leafInstanceIterator();
while (inst_iter->hasNext()) {
Instance *inst = inst_iter->next();
checkSlewLimits(inst, violators,corner, min_max, slew_pins, min_slack);
}
delete inst_iter;
// Check top level ports.
checkSlewLimits(network->topInstance(), violators, corner, min_max,
slew_pins, min_slack);
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}
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sort(slew_pins, PinSlewLimitSlackLess(corner, min_max, this, sta_));
// Keep the min slack pin unless all violators or net pins.
if (!slew_pins->empty() && !violators && net == nullptr)
slew_pins->resize(1);
return slew_pins;
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}
void
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CheckSlewLimits::checkSlewLimits(Instance *inst,
bool violators,
const Corner *corner,
const MinMax *min_max,
PinSeq *slew_pins,
float &min_slack)
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{
const Network *network = sta_->network();
InstancePinIterator *pin_iter = network->pinIterator(inst);
while (pin_iter->hasNext()) {
Pin *pin = pin_iter->next();
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checkSlewLimits(pin, violators, corner, min_max, slew_pins, min_slack);
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}
delete pin_iter;
}
void
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CheckSlewLimits::checkSlewLimits(Pin *pin,
bool violators,
const Corner *corner,
const MinMax *min_max,
PinSeq *slew_pins,
float &min_slack)
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{
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const Corner *corner1;
const RiseFall *rf;
Slew slew;
float limit, slack;
checkSlew(pin, corner, min_max, true, corner1, rf, slew, limit, slack);
if (!fuzzyInf(slack)) {
if (violators) {
if (slack < 0.0)
slew_pins->push_back(pin);
}
else {
if (slew_pins->empty()
|| slack < min_slack) {
slew_pins->push_back(pin);
min_slack = slack;
}
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}
}
}
} // namespace