verilog_data-1 / OpenROAD /src /est /test /cpp /TestEstimateParasitics.cc
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// SPDX-License-Identifier: BSD-3-Clause
// Copyright (c) 2026, The OpenROAD Authors
#include "db_sta/dbNetwork.hh"
#include "est/EstimateParasitics.h"
#include "gtest/gtest.h"
#include "odb/db.h"
#include "rsz/Resizer.hh"
#include "sta/Liberty.hh"
#include "sta/MinMax.hh"
#include "sta/Mode.hh"
#include "sta/Network.hh"
#include "sta/NetworkClass.hh"
#include "sta/Parasitics.hh"
#include "sta/Scene.hh"
#include "sta/SdcClass.hh"
#include "sta/Search.hh"
#include "sta/Transition.hh"
#include "sta/Units.hh"
#include "tst/IntegratedFixture.h"
namespace est {
class TestEstimateParasitics : public tst::IntegratedFixture
{
protected:
TestEstimateParasitics()
: tst::IntegratedFixture(tst::IntegratedFixture::Technology::kNangate45,
"_main/src/est/test/")
{
}
sta::Pin* findTopPin(const char* port_name) const
{
sta::Instance* top_inst = db_network_->topInstance();
sta::Cell* top_cell = db_network_->cell(top_inst);
if (top_cell == nullptr) {
ADD_FAILURE() << "missing top cell";
return nullptr;
}
sta::Port* port = db_network_->findPort(top_cell, port_name);
if (port == nullptr) {
ADD_FAILURE() << "missing top port " << port_name;
return nullptr;
}
sta::Pin* pin = db_network_->findPin(top_inst, port);
if (pin == nullptr) {
ADD_FAILURE() << "missing top pin " << port_name;
return nullptr;
}
return pin;
}
sta::Net* flatNet(sta::Pin* pin) const
{
odb::dbNet* db_net = nullptr;
if (db_network_->isTopLevelPort(pin)) {
db_net = db_network_->flatNet(db_network_->term(pin));
} else {
db_net = db_network_->flatNet(pin);
}
if (db_net == nullptr) {
ADD_FAILURE() << "missing flat net for " << db_network_->pathName(pin);
return nullptr;
}
sta::Net* net = db_network_->dbToSta(db_net);
if (net == nullptr) {
ADD_FAILURE() << "missing sta net for " << db_net->getName();
return nullptr;
}
return net;
}
void makeClock(const char* clock_name, sta::Pin* pin) const
{
sta::PinSet pins(db_network_);
pins.insert(pin);
const double period = sta_->units()->timeUnit()->userToSta(1.0);
sta::FloatSeq waveform;
waveform.push_back(0.0);
waveform.push_back(period / 2.0);
sta_->makeClock(
clock_name, pins, false, period, waveform, "", sta_->cmdMode());
}
void resizeDff(const char* inst_name)
{
odb::dbInst* db_inst = block_->findInst(inst_name);
ASSERT_NE(db_inst, nullptr) << "missing instance " << inst_name;
sta::Instance* inst = db_network_->dbToSta(db_inst);
ASSERT_NE(inst, nullptr) << "missing sta instance " << inst_name;
sta::LibertyCell* dff_x2 = sta_->network()->findLibertyCell("DFF_X2");
ASSERT_NE(dff_x2, nullptr);
ASSERT_TRUE(resizer_.replaceCell(inst, dff_x2));
}
// Give every instance and top port a legal location so that
// estimateWireParasitics() can build Steiner trees (it skips unplaced nets).
void placeDesign()
{
odb::dbTechLayer* layer = block_->getTech()->findRoutingLayer(1);
ASSERT_NE(layer, nullptr);
int x = 100;
for (odb::dbInst* inst : block_->getInsts()) {
inst->setLocation(x, x);
inst->setPlacementStatus(odb::dbPlacementStatus::PLACED);
x += 100;
}
int y = 50;
for (odb::dbBTerm* bterm : block_->getBTerms()) {
odb::dbBPin* bpin = odb::dbBPin::create(bterm);
odb::dbBox::create(bpin, layer, y, y, y + 10, y + 10);
bpin->setPlacementStatus(odb::dbPlacementStatus::PLACED);
y += 100;
}
}
// True if the net's driver has a reduced (pi-Elmore) parasitic, i.e. wire
// parasitics were actually estimated for it.
bool hasPi(sta::Net* net) const
{
sta::PinSet* drivers = db_network_->drivers(net);
if (drivers == nullptr || drivers->empty()) {
return false;
}
const sta::Pin* drvr = *drivers->begin();
sta::Parasitics* par
= sta_->scenes().front()->parasitics(sta::MinMax::max());
return par->findPiElmore(drvr, sta::RiseFall::rise(), sta::MinMax::max())
!= nullptr;
}
};
// Verifies that a net whose driver pin is held at a logic constant is skipped
// by updateParasitics(): its wire parasitics are not re-estimated, while an
// ordinary net in the same invalidation set is. A pin that is constant in every
// mode carries no parasitic-dependent timing.
TEST_F(TestEstimateParasitics, ConstantNetSkipsParasiticEstimation)
{
readVerilogAndSetup("TestEstimateParasitics.v");
placeDesign();
ep_.estimateWireParasitics();
// Hold the top data port at a constant in the only mode.
sta::Pin* d_pin = findTopPin("d");
ASSERT_NE(d_pin, nullptr);
sta_->setCaseAnalysis(d_pin, sta::LogicValue::zero, sta_->cmdMode());
ASSERT_TRUE(sta_->isConstant(d_pin, sta_->cmdMode()));
sta::Net* d_net = flatNet(d_pin);
sta::Net* q0_net = flatNet(findTopPin("q0"));
ASSERT_NE(d_net, nullptr);
ASSERT_NE(q0_net, nullptr);
// Start from a clean slate so re-estimation is observable per net.
sta_->scenes().front()->parasitics(sta::MinMax::max())->deleteParasitics();
ASSERT_FALSE(hasPi(d_net));
ASSERT_FALSE(hasPi(q0_net));
ep_.setParasiticsSrc(ParasiticsSrc::kPlacement);
ep_.setIncrementalParasiticsEnabled(true);
ep_.parasiticsInvalid(d_net);
ep_.parasiticsInvalid(q0_net);
ep_.updateParasitics();
// The ordinary net is re-estimated; the constant net is skipped.
EXPECT_TRUE(hasPi(q0_net));
EXPECT_FALSE(hasPi(d_net));
ep_.setIncrementalParasiticsEnabled(false);
}
// Verifies that a net whose driver pin has a set_disable_timing constraint is
// skipped by updateParasitics(): its wire parasitics are not re-estimated,
// while an ordinary net in the same invalidation set is.
TEST_F(TestEstimateParasitics, DisabledConstraintNetSkipsParasiticEstimation)
{
readVerilogAndSetup("TestEstimateParasitics.v");
placeDesign();
ep_.estimateWireParasitics();
// Disable timing on the top data port so its net is a skip candidate.
sta::Pin* d_pin = findTopPin("d");
ASSERT_NE(d_pin, nullptr);
sta_->disable(d_pin, sta_->cmdSdc());
sta::Net* d_net = flatNet(d_pin);
sta::Net* q0_net = flatNet(findTopPin("q0"));
ASSERT_NE(d_net, nullptr);
ASSERT_NE(q0_net, nullptr);
// Start from a clean slate so re-estimation is observable per net.
sta_->scenes().front()->parasitics(sta::MinMax::max())->deleteParasitics();
ASSERT_FALSE(hasPi(d_net));
ASSERT_FALSE(hasPi(q0_net));
ep_.setParasiticsSrc(ParasiticsSrc::kPlacement);
ep_.setIncrementalParasiticsEnabled(true);
ep_.parasiticsInvalid(d_net);
ep_.parasiticsInvalid(q0_net);
ep_.updateParasitics();
// The ordinary net is re-estimated; the disabled net is skipped.
EXPECT_TRUE(hasPi(q0_net));
EXPECT_FALSE(hasPi(d_net));
ep_.setIncrementalParasiticsEnabled(false);
}
// Verifies that skippability is combined per mode: a pin that is timing
// irrelevant in every mode is skipped even when the reason differs across
// modes. Here d is constant in function mode and disabled in test mode; it is
// irrelevant in both, so its net must be skipped. A per-reason (all_constant ||
// all_disabled) check would wrongly re-estimate it.
TEST_F(TestEstimateParasitics, MixedConstantDisabledNetSkipsParasiticEstimation)
{
readVerilogAndSetup("TestEstimateParasitics.v", false);
// Two modes: d is constant only in function mode, disabled only in test mode.
sta_->setCmdMode("function");
sta::Mode* function_mode = sta_->cmdMode();
sta_->setCmdMode("test");
sta::Mode* test_mode = sta_->cmdMode();
// Build the graph before adding constraints: disable() invalidates delays
// through the delay calculator, which requires an existing graph.
sta_->ensureGraph();
sta_->ensureLevelized();
resizer_.initBlock();
placeDesign();
sta::Pin* d_pin = findTopPin("d");
ASSERT_NE(d_pin, nullptr);
sta_->setCaseAnalysis(d_pin, sta::LogicValue::zero, function_mode);
sta_->disable(d_pin, test_mode->sdc());
ep_.estimateWireParasitics();
ASSERT_TRUE(sta_->isConstant(d_pin, function_mode));
ASSERT_FALSE(sta_->isConstant(d_pin, test_mode));
sta::Net* d_net = flatNet(d_pin);
sta::Net* q0_net = flatNet(findTopPin("q0"));
ASSERT_NE(d_net, nullptr);
ASSERT_NE(q0_net, nullptr);
// Start from a clean slate so re-estimation is observable per net.
sta_->scenes().front()->parasitics(sta::MinMax::max())->deleteParasitics();
ASSERT_FALSE(hasPi(d_net));
ASSERT_FALSE(hasPi(q0_net));
ep_.setParasiticsSrc(ParasiticsSrc::kPlacement);
ep_.setIncrementalParasiticsEnabled(true);
ep_.parasiticsInvalid(d_net);
ep_.parasiticsInvalid(q0_net);
ep_.updateParasitics();
// The ordinary net is re-estimated; the mixed-reason net is skipped.
EXPECT_TRUE(hasPi(q0_net));
EXPECT_FALSE(hasPi(d_net));
ep_.setIncrementalParasiticsEnabled(false);
}
// Verifies that an ideal clock net can be present in the incremental
// parasitic invalidation set without forcing STA delay invalidation.
//
// DFF resizing may mark the clock net parasitics invalid. For an ideal clock,
// those parasitics do not contribute to clock arrival/slew, so updateParasitics
// should skip both RC re-estimation and delaysInvalidFromFanin() for that net.
TEST_F(TestEstimateParasitics, IdealClockNetSkipsStaInvalidation)
{
// Build a small clocked design and seed valid timing/parasitic state.
readVerilogAndSetup("TestEstimateParasitics.v");
sta_->updateTiming(true);
// Use the default ideal clock from IntegratedFixture::initStaDefaultSdc().
sta::Pin* clk_pin = findTopPin("clk");
ASSERT_NE(clk_pin, nullptr);
sta::Net* clk_net = flatNet(clk_pin);
ASSERT_NE(clk_net, nullptr);
// Model the ECO source: resizing a DFF is the class of netlist edit that can
// make the clock net appear in the parasitic invalidation set.
resizeDff("reg0");
// Clear any ordinary resize-related STA invalidation so the assertions below
// measure only updateParasitics() side effects.
sta_->updateTiming(true);
ASSERT_TRUE(sta_->search()->arrivalsValid());
// Seed the exact condition under test: an ideal clock net is pending in
// EstimateParasitics' incremental invalidation set.
ep_.setParasiticsSrc(ParasiticsSrc::kPlacement);
ep_.setIncrementalParasiticsEnabled(true);
ep_.parasiticsInvalid(clk_net);
ASSERT_TRUE(ep_.hasParasiticsInvalid());
ep_.updateParasitics();
// A regression calls sta_->delaysInvalidFromFanin(clk_net), which invalidates
// the top clock port and every ideal CK load vertex.
EXPECT_TRUE(sta_->search()->arrivalsValid());
ep_.setIncrementalParasiticsEnabled(false);
}
// Verifies multi-mode ideal-clock classification for scan clocks.
//
// The original implementation rejected a pin if isIdealClock(pin, mode) was
// false in any mode. That is wrong for scan clocks that are only created in a
// test mode: the scan pin is not a clock in function mode, so that mode must be
// ignored. The fixed logic first checks isClock(pin, mode), then requires ideal
// status only in modes where the pin is actually a clock.
TEST_F(TestEstimateParasitics, ScanClockIdealOnlyInTestMode)
{
// Do not create the default SDC. This test constructs function/test modes
// explicitly so scan_clk is intentionally absent from function mode.
readVerilogAndSetup("TestEstimateParasitics.v", false);
// Create two modes, but create scan_clk only in test mode.
sta_->setCmdMode("function");
sta::Mode* function_mode = sta_->cmdMode();
sta_->setCmdMode("test");
sta::Mode* test_mode = sta_->cmdMode();
sta::Pin* scan_clk_pin = findTopPin("scan_clk");
ASSERT_NE(scan_clk_pin, nullptr);
makeClock("scan_clk", scan_clk_pin);
// This is the exact multi-mode condition being guarded:
// scan_clk is not a function-mode clock, but it is an ideal test-mode clock.
ASSERT_FALSE(sta_->isClock(scan_clk_pin, function_mode));
ASSERT_TRUE(sta_->isClock(scan_clk_pin, test_mode));
ASSERT_TRUE(sta_->isIdealClock(scan_clk_pin, test_mode));
// Build timing/parasitics after the mode-specific clock setup is complete.
sta_->ensureGraph();
sta_->ensureLevelized();
resizer_.initBlock();
ep_.estimateWireParasitics();
sta_->updateTiming(true);
sta::Net* scan_clk_net = flatNet(scan_clk_pin);
ASSERT_NE(scan_clk_net, nullptr);
// Isolate the invalidation caused by updateParasitics().
ASSERT_TRUE(sta_->search()->arrivalsValid());
// Seed the scan clock net as invalid. A buggy all-modes ideal-clock check
// treats this net as non-ideal because function mode has no scan clock.
ep_.setParasiticsSrc(ParasiticsSrc::kPlacement);
ep_.setIncrementalParasiticsEnabled(true);
ep_.parasiticsInvalid(scan_clk_net);
ASSERT_TRUE(ep_.hasParasiticsInvalid());
ep_.updateParasitics();
// If non-clock modes are not ignored, updateParasitics() invalidates the
// scan clock port and scan_reg/CK through delaysInvalidFromFanin().
EXPECT_TRUE(sta_->search()->arrivalsValid());
ep_.setIncrementalParasiticsEnabled(false);
}
// Verifies that wire RC values are stored per chip: chip-specific values take
// precedence over the defaults, and chips without an entry use the defaults.
TEST_F(TestEstimateParasitics, WireRcPerTech)
{
readVerilogAndSetup("TestEstimateParasitics.v");
sta::Scene* scene = sta_->scenes().front();
odb::dbChip* chip1 = db_->getChip();
ASSERT_NE(chip1, nullptr);
// A null tech sets the default values used by techs without an entry.
ep_.initChip(chip1);
ep_.setHWireSignalRC(nullptr, scene, 1.0e3, 1.0e-10);
ep_.setVWireSignalRC(nullptr, scene, 2.0e3, 2.0e-10);
ep_.setHWireClkRC(nullptr, scene, 5.0e3, 5.0e-10);
ep_.setVWireClkRC(nullptr, scene, 5.0e3, 5.0e-10);
EXPECT_DOUBLE_EQ(ep_.wireSignalHResistance(scene), 1.0e3);
EXPECT_DOUBLE_EQ(ep_.wireSignalVCapacitance(scene), 2.0e-10);
// A second technology with tech-specific values, used by a second chip.
loadTechAndLib(
"tech2", "lib2", getFilePath("_main/test/Nangate45/Nangate45.lef"));
odb::dbTech* tech2 = db_->findTech("tech2");
ASSERT_NE(tech2, nullptr);
odb::dbChip* chip2 = odb::dbChip::create(
db_.get(), tech2, "chip2", odb::dbChip::ChipType::DIE);
ASSERT_NE(chip2, nullptr);
odb::dbBlock::create(chip2, "chip2_block");
ep_.setHWireSignalRC(tech2, scene, 3.0e3, 3.0e-10);
ep_.setVWireSignalRC(tech2, scene, 4.0e3, 4.0e-10);
// The tech-specific values do not leak into the default-valued tech.
EXPECT_DOUBLE_EQ(ep_.wireSignalHResistance(scene), 1.0e3);
// Rebinding to the second chip resolves tech2's signal values; its unset
// clock values fall back to the defaults independently.
ep_.initChip(chip2);
EXPECT_DOUBLE_EQ(ep_.wireSignalHResistance(scene), 3.0e3);
EXPECT_DOUBLE_EQ(ep_.wireSignalVCapacitance(scene), 4.0e-10);
EXPECT_DOUBLE_EQ(ep_.wireClkHResistance(scene), 5.0e3);
// Rebinding back to a chip whose tech has no entry falls back to defaults.
ep_.initChip(chip1);
EXPECT_DOUBLE_EQ(ep_.wireSignalHResistance(scene), 1.0e3);
EXPECT_DOUBLE_EQ(ep_.wireSignalVResistance(scene), 2.0e3);
}
} // namespace est