#include #include #include namespace ot { // Constructor Arc::Arc(Pin& from, Pin& to, Net& net) : _from {from}, _to {to}, _handle {&net} { } // Constructor Arc::Arc(Pin& from, Pin& to, TimingView t) : _from {from}, _to {to}, _handle {t} { } // Function: name std::string Arc::name() const { return _from._name + "->" + _to._name; } // Function: is_self_loop bool Arc::is_self_loop() const { return &_from == &_to; } // Function: is_loop_breaker bool Arc::is_loop_breaker() const { return _has_state(LOOP_BREAKER); } // Function: is_net_arc bool Arc::is_net_arc() const { return std::get_if(&_handle) != nullptr; } // Function: is_cell_arc bool Arc::is_cell_arc() const { return std::get_if(&_handle) != nullptr; } // Function: is_tseg bool Arc::is_tseg() const { if(auto ptr = std::get_if(&_handle); ptr) { return (*ptr)[MIN]->is_constraint(); } else return false; } // Function: is_pseg bool Arc::is_pseg() const { if(auto ptr = std::get_if(&_handle); ptr) { return !(*ptr)[MIN]->is_constraint(); } else return false; } // Function: timing_view TimingView Arc::timing_view() const { if(auto tv = std::get_if(&_handle); tv) { return *tv; } else return {nullptr, nullptr}; } // Procedure: _remap_timing void Arc::_remap_timing(Split el, const Timing& timing) { (std::get(_handle))[el] = &timing; } // Procedure: _reset_delay void Arc::_reset_delay() { FOR_EACH_EL_RF_RF(el, frf, trf) { _delay[el][frf][trf].reset(); _ipower[el][frf][trf].reset(); } } // Procedure: _fprop_slew void Arc::_fprop_slew() { if(_has_state(LOOP_BREAKER)) { return; } std::visit(Functors{ // Case 1: Net arc [this] (Net* net) { FOR_EACH_EL_RF(el, rf) { if(_from._slew[el][rf]) { if(auto so = net->_slew(el, rf, *(_from._slew[el][rf]), _to); so) { _to._relax_slew(this, el, rf, el, rf, *so); } } } }, // Case 2: Cell arc [this] (TimingView tv) { FOR_EACH_EL_RF_RF_IF(el, frf, trf, (tv[el] && _from._slew[el][frf])) { auto lc = (_to._net) ? _to._net->_load(el, trf) : 0.0f; if(auto so = tv[el]->slew(frf, trf, *_from._slew[el][frf], lc); so) { _to._relax_slew(this, el, frf, el, trf, *so); } } } }, _handle); } // Procedure: _fprop_delay void Arc::_fprop_delay() { if(_has_state(LOOP_BREAKER)) { return; } std::visit(Functors{ // Case 1: Net arc [this] (Net* net) { FOR_EACH_EL_RF(el, rf) { _delay[el][rf][rf] = net->_delay(el, rf, _to); } }, // Case 2: Cell arc [this] (TimingView tv) { FOR_EACH_EL_RF_RF_IF(el, frf, trf, (tv[el] && _from._slew[el][frf])) { auto lc = (_to._net) ? _to._net->_load(el, trf) : 0.0f; auto si = *_from._slew[el][frf]; auto delay = tv[el]->delay(frf, trf, si, lc); _delay[el][frf][trf] = delay; auto ipower = tv[el]->internal_power.power(frf, trf, si, lc); _ipower[el][frf][trf] = ipower; //std::cout << " name:" << _from._name << " delay:" << *delay << " slew:" << si << " lc:" << lc << " ipower:" << *ipower << "\n"; } } }, _handle); } // Procedure: _fprop_at void Arc::_fprop_at() { if(_has_state(LOOP_BREAKER)) { return; } FOR_EACH_EL_RF_RF_IF(el, frf, trf, _from._at[el][frf] && _delay[el][frf][trf]) { _to._relax_at(this, el, frf, el, trf, *_delay[el][frf][trf] + *_from._at[el][frf]); } } // Procedure: _bprop_rat void Arc::_bprop_rat() { if(_has_state(LOOP_BREAKER)) { return; } std::visit(Functors{ // Case 1: Net arc [this] (Net* net) { FOR_EACH_EL_RF_IF(el, rf, _to._rat[el][rf] && _delay[el][rf][rf]) { _from._relax_rat(this, el, rf, el, rf, *_to._rat[el][rf] - *_delay[el][rf][rf]); } }, // Case 2: Cell arc [this] (TimingView tv) { FOR_EACH_EL_RF_RF_IF(el, frf, trf, tv[el]) { // propagation arc if(!tv[el]->is_constraint()) { if(!_to._rat[el][trf] || !_delay[el][frf][trf]) { continue; } _from._relax_rat(this, el, frf, el, trf, *_to._rat[el][trf] - *_delay[el][frf][trf]); } // constraint arc else { if(!tv[el]->is_transition_defined(frf, trf)) { continue; } if(el == MIN) { auto at = _from._at[MAX][frf]; auto slack = _to.slack(MIN, trf); if(at && slack) { _from._relax_rat(this, MAX, frf, MIN, trf, *at + *slack); } } else { auto at = _from._at[MIN][frf]; auto slack = _to.slack(MAX, trf); if(at && slack) { _from._relax_rat(this, MIN, frf, MAX, trf, *at - *slack); } } } } } }, _handle); } // Procedure: _remove_state void Arc::_remove_state(int s) { if(s == 0) _state = 0; else { _state &= ~s; } } // Procedure: _insert_state void Arc::_insert_state(int s) { _state |= s; } // Function: _has_state bool Arc::_has_state(int s) const { return _state & s; } }; // end of namespace ot. -----------------------------------------------------------------------