// SPDX-License-Identifier: BSD-3-Clause // Copyright (c) 2023-2025, The OpenROAD Authors #include "ord/Timing.h" #include #include #include #include #include #include #include #include "db_sta/dbNetwork.hh" #include "db_sta/dbSta.hh" #include "odb/PtrSetMap.h" #include "odb/db.h" #include "ord/Design.h" #include "ord/OpenRoad.hh" #include "ord/Tech.h" #include "rsz/Resizer.hh" #include "sta/Clock.hh" #include "sta/Delay.hh" #include "sta/Graph.hh" #include "sta/GraphDelayCalc.hh" #include "sta/Liberty.hh" #include "sta/LibertyClass.hh" #include "sta/MinMax.hh" #include "sta/Mode.hh" #include "sta/Path.hh" #include "sta/PathEnd.hh" #include "sta/PathExpanded.hh" #include "sta/PathGroup.hh" #include "sta/PowerClass.hh" #include "sta/Scene.hh" #include "sta/Sdc.hh" #include "sta/SdcClass.hh" #include "sta/Search.hh" #include "sta/SearchClass.hh" #include "sta/StringUtil.hh" #include "sta/TimingArc.hh" #include "sta/TimingRole.hh" #include "utl/Logger.h" namespace ord { Timing::Timing(Design* design) : design_(design) { } sta::dbSta* Timing::getSta() { return design_->getTech()->getSta(); } std::pair Timing::staToDBPin(const sta::Pin* pin) { sta::dbNetwork* db_network = getSta()->getDbNetwork(); odb::dbITerm* iterm; odb::dbBTerm* bterm; odb::dbModITerm* moditerm; db_network->staToDb(pin, iterm, bterm, moditerm); return std::make_pair(iterm, bterm); } bool Timing::isEndpoint(odb::dbITerm* db_pin) { sta::Pin* sta_pin = getSta()->getDbNetwork()->dbToSta(db_pin); return isEndpoint(sta_pin); } bool Timing::isEndpoint(odb::dbBTerm* db_pin) { sta::Pin* sta_pin = getSta()->getDbNetwork()->dbToSta(db_pin); return isEndpoint(sta_pin); } bool Timing::isEndpoint(sta::Pin* sta_pin) { auto search = getSta()->search(); auto vertex_array = vertices(sta_pin); for (auto vertex : vertex_array) { if (vertex != nullptr && search->isEndpoint(vertex)) { return true; } } return false; } float Timing::slewAllCorners(sta::Vertex* vertex, const sta::MinMax* minmax) { auto sta = getSta(); return sta::delayAsFloat( sta->slew(vertex, sta::RiseFallBoth::riseFall(), sta->scenes(), minmax)); } float Timing::getPinSlew(odb::dbITerm* db_pin, MinMax minmax) { sta::dbSta* sta = getSta(); sta::Pin* sta_pin = sta->getDbNetwork()->dbToSta(db_pin); return getPinSlew(sta_pin, minmax); } float Timing::getPinSlew(odb::dbBTerm* db_pin, MinMax minmax) { sta::dbSta* sta = getSta(); sta::Pin* sta_pin = sta->getDbNetwork()->dbToSta(db_pin); return getPinSlew(sta_pin, minmax); } float Timing::getPinSlew(sta::Pin* sta_pin, MinMax minmax) { auto vertex_array = vertices(sta_pin); float pin_slew = (minmax == Max) ? -sta::INF : sta::INF; for (auto vertex : vertex_array) { if (vertex != nullptr) { const float pin_slew_temp = slewAllCorners(vertex, getMinMax(minmax)); pin_slew = (minmax == Max) ? std::max(pin_slew, pin_slew_temp) : std::min(pin_slew, pin_slew_temp); } } return pin_slew; } sta::Network* Timing::cmdLinkedNetwork() { sta::Network* network = getSta()->cmdNetwork(); if (network->isLinked()) { return network; } design_->getLogger()->error(utl::ORD, 104, "STA network is not linked."); } sta::Graph* Timing::cmdGraph() { cmdLinkedNetwork(); return getSta()->ensureGraph(); } std::array Timing::vertices(const sta::Pin* pin) { sta::Vertex *vertex, *vertex_bidirect_drvr; std::array vertices; cmdGraph()->pinVertices(pin, vertex, vertex_bidirect_drvr); vertices[0] = vertex; vertices[1] = vertex_bidirect_drvr; return vertices; } bool Timing::isTimeInf(float time) { return (time > 1e+10 || time < -1e+10); } float Timing::getPinArrivalTime(sta::Clock* clk, const sta::RiseFall* clk_rf, sta::Vertex* vertex, const sta::RiseFall* rf) { sta::dbSta* sta = getSta(); (void) clk; (void) clk_rf; return sta::delayAsFloat(sta->arrival( vertex, rf->asRiseFallBoth(), sta->scenes(), sta::MinMax::max())); } sta::ClockSeq Timing::findClocksMatching(const char* pattern, bool regexp, bool nocase) { auto sta = getSta(); cmdLinkedNetwork(); sta::PatternMatch matcher(pattern, regexp, nocase, sta->tclInterp()); return sta->cmdMode()->sdc()->findClocksMatching(&matcher); } float Timing::getPinArrival(odb::dbITerm* db_pin, RiseFall rf, MinMax minmax) { sta::dbSta* sta = getSta(); sta::Pin* sta_pin = sta->getDbNetwork()->dbToSta(db_pin); return getPinArrival(sta_pin, rf, minmax); } float Timing::getPinArrival(odb::dbBTerm* db_pin, RiseFall rf, MinMax minmax) { sta::dbSta* sta = getSta(); sta::Pin* sta_pin = sta->getDbNetwork()->dbToSta(db_pin); return getPinArrival(sta_pin, rf, minmax); } float Timing::getPinArrival(sta::Pin* sta_pin, RiseFall rf, MinMax minmax) { auto vertex_array = vertices(sta_pin); float delay = (minmax == Max) ? -sta::INF : sta::INF; float d1, d2; sta::Clock* default_arrival_clock = getSta()->cmdMode()->sdc()->defaultArrivalClock(); for (auto vertex : vertex_array) { if (vertex == nullptr) { continue; } const sta::RiseFall* clk_r = sta::RiseFall::rise(); const sta::RiseFall* clk_f = sta::RiseFall::fall(); const sta::RiseFall* arrive_hold = (rf == Rise) ? clk_r : clk_f; d1 = getPinArrivalTime(nullptr, clk_r, vertex, arrive_hold); d2 = getPinArrivalTime(default_arrival_clock, clk_r, vertex, arrive_hold); delay = (minmax == Max) ? std::max({d1, d2, delay}) : std::min({d1, d2, delay}); for (auto clk : findClocksMatching("*", false, false)) { d1 = getPinArrivalTime(clk, clk_r, vertex, arrive_hold); d2 = getPinArrivalTime(clk, clk_f, vertex, arrive_hold); delay = (minmax == Max) ? std::max({d1, d2, delay}) : std::min({d1, d2, delay}); } } return delay; } std::vector Timing::getCorners() { auto& corners = getSta()->scenes(); return {corners.begin(), corners.end()}; } sta::Scene* Timing::cmdCorner() { return getSta()->cmdScene(); } sta::Scene* Timing::findCorner(const char* name) { for (auto* corner : getCorners()) { if (strcmp(corner->name().c_str(), name) == 0) { return corner; } } return nullptr; } float Timing::getPinSlack(odb::dbITerm* db_pin, RiseFall rf, MinMax minmax) { sta::dbSta* sta = getSta(); sta::Pin* sta_pin = sta->getDbNetwork()->dbToSta(db_pin); return getPinSlack(sta_pin, rf, minmax); } float Timing::getPinSlack(odb::dbBTerm* db_pin, RiseFall rf, MinMax minmax) { sta::dbSta* sta = getSta(); sta::Pin* sta_pin = sta->getDbNetwork()->dbToSta(db_pin); return getPinSlack(sta_pin, rf, minmax); } float Timing::getPinSlack(sta::Pin* sta_pin, RiseFall rf, MinMax minmax) { sta::dbSta* sta = getSta(); auto sta_rf = (rf == Rise) ? sta::RiseFall::rise() : sta::RiseFall::fall(); return sta->slack( sta_pin, sta_rf->asRiseFallBoth(), sta->scenes(), getMinMax(minmax)); } // I'd like to return a std::set but swig gave me way too much grief // so I just copy the set to a vector. std::vector Timing::getTimingFanoutFrom(odb::dbMTerm* input) { sta::dbSta* sta = getSta(); sta::dbNetwork* network = sta->getDbNetwork(); odb::dbMaster* master = input->getMaster(); sta::Cell* cell = network->dbToSta(master); if (!cell) { return {}; } sta::LibertyCell* lib_cell = network->libertyCell(cell); if (!lib_cell) { return {}; } sta::Port* port = network->dbToSta(input); sta::LibertyPort* lib_port = network->libertyPort(port); odb::PtrSet outputs; for (auto arc_set : lib_cell->timingArcSets(lib_port, /* to */ nullptr)) { const sta::TimingRole* role = arc_set->role(); if (role->isTimingCheck() || role->isAsyncTimingCheck() || role->isNonSeqTimingCheck() || role->isDataCheck()) { continue; } sta::LibertyPort* to_port = arc_set->to(); odb::dbMTerm* to_mterm = master->findMTerm(to_port->name().c_str()); if (to_mterm) { outputs.insert(to_mterm); } } return {outputs.begin(), outputs.end()}; } const sta::MinMax* Timing::getMinMax(MinMax type) { return type == Max ? sta::MinMax::max() : sta::MinMax::min(); } float Timing::getNetCap(odb::dbNet* net, sta::Scene* corner, MinMax minmax) { sta::dbSta* sta = getSta(); sta::Net* sta_net = sta->getDbNetwork()->dbToSta(net); float pin_cap; float wire_cap; sta->connectedCap(sta_net, corner, getMinMax(minmax), pin_cap, wire_cap); return pin_cap + wire_cap; } float Timing::getPortCap(odb::dbITerm* pin, sta::Scene* corner, MinMax minmax) { sta::dbSta* sta = getSta(); sta::dbNetwork* network = sta->getDbNetwork(); sta::Pin* sta_pin = network->dbToSta(pin); sta::LibertyPort* lib_port = network->libertyPort(sta_pin); return sta->capacitance(lib_port, corner, getMinMax(minmax)); } float Timing::getMaxCapLimit(odb::dbMTerm* pin) { sta::dbSta* sta = getSta(); sta::dbNetwork* network = sta->getDbNetwork(); sta::Port* port = network->dbToSta(pin); sta::LibertyPort* lib_port = network->libertyPort(port); sta::LibertyLibrary* lib = network->defaultLibertyLibrary(); float max_cap = 0.0; bool max_cap_exists = false; if (!pin->getSigType().isSupply()) { lib_port->capacitanceLimit(sta::MinMax::max(), max_cap, max_cap_exists); if (!max_cap_exists) { lib->defaultMaxCapacitance(max_cap, max_cap_exists); } } return max_cap; } float Timing::getMaxSlewLimit(odb::dbMTerm* pin) { sta::dbSta* sta = getSta(); sta::dbNetwork* network = sta->getDbNetwork(); sta::Port* port = network->dbToSta(pin); sta::LibertyPort* lib_port = network->libertyPort(port); sta::LibertyLibrary* lib = network->defaultLibertyLibrary(); float max_slew = 0.0; bool max_slew_exists = false; if (!pin->getSigType().isSupply()) { lib_port->slewLimit(sta::MinMax::max(), max_slew, max_slew_exists); if (!max_slew_exists) { lib->defaultMaxSlew(max_slew, max_slew_exists); } } return max_slew; } float Timing::staticPower(odb::dbInst* inst, sta::Scene* corner) { sta::dbSta* sta = getSta(); sta::dbNetwork* network = sta->getDbNetwork(); sta::Instance* sta_inst = network->dbToSta(inst); if (!sta_inst) { return 0.0; } sta::PowerResult power = sta->power(sta_inst, corner); return power.leakage(); } float Timing::dynamicPower(odb::dbInst* inst, sta::Scene* corner) { sta::dbSta* sta = getSta(); sta::dbNetwork* network = sta->getDbNetwork(); sta::Instance* sta_inst = network->dbToSta(inst); if (!sta_inst) { return 0.0; } sta::PowerResult power = sta->power(sta_inst, corner); return (power.internal() + power.switching()); } void Timing::makeEquivCells() { rsz::Resizer* resizer = design_->getResizer(); resizer->makeEquivCells(); } std::vector Timing::equivCells(odb::dbMaster* master) { sta::dbSta* sta = getSta(); sta::dbNetwork* network = sta->getDbNetwork(); rsz::Resizer* resizer = design_->getResizer(); sta::Cell* cell = network->dbToSta(master); std::vector master_seq; if (cell) { sta::LibertyCell* libcell = network->libertyCell(cell); sta::LibertyCellSeq* equiv_cells = resizer->equivCells(libcell); if (equiv_cells) { for (sta::LibertyCell* equiv_cell : *equiv_cells) { // The classes are built without dont_use filtering. The cell asked // about is always reported, dont_use or not. if (equiv_cell != libcell && resizer->dontUse(equiv_cell)) { continue; } odb::dbMaster* equiv_master = network->staToDb(equiv_cell); if (equiv_master != nullptr) { master_seq.emplace_back(equiv_master); } } } if (master_seq.empty()) { master_seq.emplace_back(master); } } return master_seq; } float Timing::getWorstSlack(MinMax minmax) { sta::dbSta* sta = getSta(); cmdLinkedNetwork(); return sta->worstSlack(getMinMax(minmax)); } float Timing::getTotalNegativeSlack(MinMax minmax) { sta::dbSta* sta = getSta(); cmdLinkedNetwork(); return sta->totalNegativeSlack(getMinMax(minmax)); } int Timing::getEndpointCount() { sta::dbSta* sta = getSta(); cmdLinkedNetwork(); return sta->endpoints().size(); } std::vector Timing::getEndpointSlacks(MinMax minmax) { sta::dbSta* sta = getSta(); cmdLinkedNetwork(); std::vector result; for (sta::Vertex* vertex : sta->endpoints()) { const sta::Pin* pin = vertex->pin(); float slack = sta->slack( pin, sta::RiseFallBoth::riseFall(), sta->scenes(), getMinMax(minmax)); auto [iterm, bterm] = staToDBPin(pin); result.push_back({iterm, bterm, slack}); } return result; } std::vector Timing::getClockInfo() { sta::dbSta* sta = getSta(); cmdLinkedNetwork(); std::vector result; for (const sta::Clock* clk : sta->cmdMode()->sdc()->clocks()) { ClockInfo info; info.name = clk->name(); info.period = clk->period(); info.waveform = clk->waveform(); for (const sta::Pin* pin : clk->pins()) { auto [iterm, bterm] = staToDBPin(pin); if (iterm) { info.source_iterms.push_back(iterm); } if (bterm) { info.source_bterms.push_back(bterm); } } result.push_back(std::move(info)); } return result; } std::vector Timing::getTimingPaths(MinMax minmax, int max_paths, float slack_threshold) { sta::dbSta* sta = getSta(); cmdLinkedNetwork(); sta::dbNetwork* network = sta->getDbNetwork(); const bool is_setup = (minmax == Max); sta::SceneSeq scenes = sta->scenes(); sta::StringSeq group_names; sta->ensureGraph(); sta->searchPreamble(); sta::Search* search = sta->search(); sta::PathEndSeq path_ends = search->findPathEnds( nullptr, // from nullptr, // thrus nullptr, // to false, // unconstrained scenes, is_setup ? sta::MinMaxAll::max() : sta::MinMaxAll::min(), max_paths, // group_count 1, // endpoint_count (one per endpoint) true, // unique_pins true, // unique_edges -sta::INF, // slack_min slack_threshold, // slack_max true, // sort_by_slack group_names, is_setup, // setup !is_setup, // hold false, // recovery false, // removal false, // clk_gating_setup false); // clk_gating_hold std::vector result; auto* graph = sta->graph(); const sta::Sdc* sdc = sta->cmdScene()->sdc(); sta::Mode* mode = sta->cmdScene()->mode(); sta::GraphDelayCalc* gdc = sta->graphDelayCalc(); sta::dbNetwork* db_network = sta->getDbNetwork(); for (auto& path_end : path_ends) { TimingPathInfo path_info; sta::Path* path = path_end->path(); path_info.slack = path_end->slack(sta); path_info.arrival = path_end->dataArrivalTime(sta); path_info.required = path_end->requiredTime(sta); path_info.skew = path_end->clkSkew(sta); auto* path_delay = path_end->pathDelay(); path_info.path_delay = path_delay ? path_delay->delay() : 0.0f; auto* start_clk_edge = path_end->sourceClkEdge(sta); path_info.start_clock = start_clk_edge ? start_clk_edge->clock()->name() : ""; auto* end_clk = path_end->targetClk(sta); path_info.end_clock = end_clk ? end_clk->name() : ""; auto* path_group = path_end->pathGroup(); path_info.path_group = path_group ? path_group->name() : ""; // Expand path to get arc detail sta::PathExpanded expand(path, sta); float arrival_prev = 0.0f; float logic_delay_total = 0.0f; int logic_depth_count = 0; int max_fanout = 0; std::unordered_set logic_insts; for (size_t i = 0; i < expand.size(); i++) { const auto* ref = expand.path(i); sta::Vertex* vertex = ref->vertex(sta); const sta::Pin* pin = vertex->pin(); const bool is_rising = ref->transition(sta) == sta::RiseFall::rise(); const float arr = sta::delayAsFloat(ref->arrival()); const float slw = sta::delayAsFloat(ref->slew(sta)); const float pin_delay = arr - arrival_prev; // Compute fanout int node_fanout = 0; sta::VertexOutEdgeIterator iter(vertex, graph); while (iter.hasNext()) { sta::Edge* edge = iter.next(); if (edge->isWire()) { const sta::Pin* to_pin = edge->to(graph)->pin(); if (network->isTopLevelPort(to_pin)) { sta::Port* port = network->port(to_pin); node_fanout += sdc->portExtFanout(port, sta::MinMax::max()) + 1; } else { node_fanout++; } } } max_fanout = std::max(node_fanout, max_fanout); // Compute load capacitance float cap = 0.0f; const bool is_driver = network->isDriver(pin); if (is_driver && i > 0) { cap = gdc->loadCap( pin, ref->transition(sta), ref->scene(sta), ref->minMax(sta)); } // Determine master, net arcs, logic depth, and build arc info if (i > 0) { const auto* prev_ref = expand.path(i - 1); sta::Vertex* prev_vertex = prev_ref->vertex(sta); const sta::Pin* prev_pin = prev_vertex->pin(); sta::Instance* inst = network->instance(pin); sta::Instance* prev_inst = network->instance(prev_pin); const bool same_inst = (inst == prev_inst && inst != nullptr); // Track logic depth (non-clock, non-net arcs) bool pin_is_clock = sta->isClock(pin, mode); if (same_inst && !pin_is_clock) { if (logic_insts.find(inst) == logic_insts.end()) { logic_insts.insert(inst); logic_depth_count++; logic_delay_total += pin_delay; } } TimingArcInfo arc; odb::dbModITerm* mod_iterm; db_network->staToDb( prev_pin, arc.from_iterm, arc.from_bterm, mod_iterm); db_network->staToDb(pin, arc.to_iterm, arc.to_bterm, mod_iterm); if (same_inst && arc.to_iterm) { arc.master = arc.to_iterm->getInst()->getMaster(); } arc.delay = pin_delay; arc.slew = slw; arc.load = cap; arc.fanout = node_fanout; arc.is_rising = is_rising; path_info.arcs.push_back(arc); } arrival_prev = arr; } // Get startpoint/endpoint objects odb::dbModITerm* mod_iterm; db_network->staToDb(expand.path(0)->vertex(sta)->pin(), path_info.start_iterm, path_info.start_bterm, mod_iterm); db_network->staToDb(path_end->vertex(sta)->pin(), path_info.end_iterm, path_info.end_bterm, mod_iterm); path_info.logic_delay = logic_delay_total; path_info.logic_depth = logic_depth_count; path_info.fanout = max_fanout; result.push_back(std::move(path_info)); } return result; } } // namespace ord