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#include <ot/timer/net.hpp>
namespace ot {
// Constructor
RctNode::RctNode(const std::string& name) : _name {name} {
}
// Procedure: _scale_capacitance
void RctNode::_scale_capacitance(float s) {
FOR_EACH_EL_RF(el, rf) {
_ncap[el][rf] *= s;
}
}
// Function: load
float RctNode::load(Split el, Tran rf) const {
return _load[el][rf];
}
// Function: cap
float RctNode::cap(Split el, Tran rf) const {
return _pin ? _pin->cap(el, rf) + _ncap[el][rf] : _ncap[el][rf];
}
// Function: slew
float RctNode::slew(Split m, Tran t, float si) const {
return si < 0.0f ? -std::sqrt(si*si + _impulse[m][t]) : std::sqrt(si*si + _impulse[m][t]);
}
// Function: delay
float RctNode::delay(Split m, Tran t) const {
return _delay[m][t];
}
// ------------------------------------------------------------------------------------------------
// Constructor
RctEdge::RctEdge(RctNode& from, RctNode& to, float res) :
_from {from},
_to {to},
_res {res} {
}
// Procedure: _scale_resistance
void RctEdge::_scale_resistance(float s) {
_res *= s;
}
// ------------------------------------------------------------------------------------------------
// Function: _node
RctNode* Rct::_node(const std::string& name) {
if(auto itr = _nodes.find(name); itr != _nodes.end()) {
return &(itr->second);
}
else return nullptr;
}
// Function: node
const RctNode* Rct::node(const std::string& name) const {
if(const auto itr = _nodes.find(name); itr != _nodes.end()) {
return &(itr->second);
}
else return nullptr;
}
// Procedure: insert_node
void Rct::insert_node(const std::string& name, float cap) {
auto& node = _nodes[name];
node._name = name;
FOR_EACH_EL_RF(el, rf) {
node._ncap[el][rf] = cap;
}
}
// Procedure: insert_edge
void Rct::insert_edge(const std::string& from, const std::string& to, float res) {
auto& tail = _nodes[from];
auto& head = _nodes[to];
auto& edge = _edges.emplace_back(tail, head, res);
tail._fanout.push_back(&edge);
head._fanin.push_back(&edge);
}
// Function: insert_segment
void Rct::insert_segment(const std::string& name1, const std::string& name2, float res) {
insert_edge(name1, name2, res);
insert_edge(name2, name1, res);
}
// Procedure: update_rc_timing
void Rct::update_rc_timing() {
if(!_root) {
OT_THROW(Error::RCT, "rctree root not found");
}
for(auto& kvp : _nodes) {
FOR_EACH_EL_RF(el, rf) {
kvp.second._ures[el][rf] = 0.0f;
kvp.second._beta[el][rf] = 0.0f;
kvp.second._load[el][rf] = 0.0f;
kvp.second._delay[el][rf] = 0.0f;
kvp.second._ldelay[el][rf] = 0.0f;
kvp.second._impulse[el][rf] = 0.0f;
}
}
_update_load(nullptr, _root);
_update_delay(nullptr, _root);
_update_ldelay(nullptr, _root);
_update_response(nullptr, _root);
}
// Procedure: _update_load
// Compute the load capacitance of each rctree node along the downstream traversal of the rctree.
void Rct::_update_load(RctNode* parent, RctNode* from) {
// Add downstream capacitances.
for(auto e : from->_fanout) {
if(auto& to = e->_to; &to != parent) {
_update_load(from, &to);
FOR_EACH_EL_RF(el, rf) {
from->_load[el][rf] += to._load[el][rf];
}
}
}
FOR_EACH_EL_RF(el, rf) {
from->_load[el][rf] += from->cap(el, rf);
}
}
// Procedure: _update_delay
// Compute the delay of each rctree node using the Elmore delay model.
void Rct::_update_delay(RctNode* parent, RctNode* from) {
for(auto e : from->_fanout) {
if(auto& to = e->_to; &to != parent) {
FOR_EACH_EL_RF(el, rf) {
// Update the delay.
to._delay[el][rf] = from->_delay[el][rf] + e->_res * to._load[el][rf];
// Update the upstream resistance.
to._ures[el][rf] = from->_ures[el][rf] + e->_res;
}
_update_delay(from, &to);
}
}
}
// Procedure: _update_ldelay
// Compute the load delay of each rctree node along the downstream traversal of the rctree.
void Rct::_update_ldelay(RctNode* parent, RctNode* from) {
for(auto e : from->_fanout) {
if(auto& to = e->_to; &to != parent) {
_update_ldelay(from, &to);
FOR_EACH_EL_RF(el, rf) {
from->_ldelay[el][rf] += to._ldelay[el][rf];
}
}
}
FOR_EACH_EL_RF(el, rf) {
from->_ldelay[el][rf] += from->cap(el, rf) * from->_delay[el][rf];
}
}
// Procedure: _update_response
// Compute the impulse and second moment of the input response for each rctree node.
void Rct::_update_response(RctNode* parent, RctNode* from) {
for(auto e : from->_fanout) {
if(auto& to = e->_to; &to != parent) {
FOR_EACH_EL_RF(el, rf) {
to._beta[el][rf] = from->_beta[el][rf] + e->_res * to._ldelay[el][rf];
}
_update_response(from, &to);
}
}
FOR_EACH_EL_RF(el, rf) {
from->_impulse[el][rf] = 2.0f * from->_beta[el][rf] - std::pow(from->_delay[el][rf], 2);
}
}
// Procedure: _scale_capacitance
void Rct::_scale_capacitance(float s) {
for(auto& kvp : _nodes) {
kvp.second._scale_capacitance(s);
}
}
// Procedure: _scale_resistance
void Rct::_scale_resistance(float s) {
for(auto& edge : _edges) {
edge._scale_resistance(s);
}
}
// Function: slew
float Rct::slew(const std::string& name, Split m, Tran t, float si) const {
auto itr = _nodes.find(name);
if(itr == _nodes.end()) {
OT_THROW(Error::RCT, "failed to get slew (rct-node ", name, " not found)");
}
return itr->second.slew(m, t, si);
}
// Function: delay
float Rct::delay(const std::string& name, Split m, Tran t) const {
auto itr = _nodes.find(name);
if(itr == _nodes.end()) {
OT_THROW(Error::RCT, "failed to get delay (rct-node ", name, " not found)");
}
return itr->second.delay(m, t);
}
// Function: total_ncap
float Rct::total_ncap() const {
return std::accumulate(_nodes.begin(), _nodes.end(), 0.0f,
[] (float v, const auto& pair) {
return v + pair.second._ncap[MIN][RISE];
}
);
}
// ------------------------------------------------------------------------------------------------
// Constructor
Net::Net(const std::string& name) :
_name {name} {
}
// Procedure: _attach
void Net::_attach(spef::Net&& spef_net) {
assert(spef_net.name == _name && _root);
_spef_net = std::move(spef_net);
_rc_timing_updated = false;
}
// Procedure: _make_rct
void Net::_make_rct() {
if(!_spef_net) return;
// Step 1: create a new rctree object
auto& rct = _rct.emplace<Rct>();
// Step 2: insert the node and capacitance (*CAP section).
for(const auto& [node1, node2, cap] : _spef_net->caps) {
// ground capacitance
if(node2.empty()) {
rct.insert_node(node1, cap);
}
// TODO: coupling capacitance
}
// Step 3: insert the segment (*RES section).
for(const auto& [node1, node2, res] : _spef_net->ress) {
rct.insert_segment(node1, node2, res);
}
_spef_net.reset();
_rc_timing_updated = false;
}
// Procedure: _scale_capacitance
void Net::_scale_capacitance(float s) {
std::visit(Functors{
// Leave this to the next update timing
[&] (EmptyRct& rct) {
},
[&] (Rct& rct) {
rct._scale_capacitance(s);
}
}, _rct);
_rc_timing_updated = false;
}
// Procedure: _scale_resistance
void Net::_scale_resistance(float s) {
std::visit(Functors{
// Leave this to the next update timing
[&] (EmptyRct& rct) {
},
[&] (Rct& rct) {
rct._scale_resistance(s);
}
}, _rct);
_rc_timing_updated = false;
}
// Procedure: _update_rc_timing
void Net::_update_rc_timing() {
if(_rc_timing_updated) {
return;
}
// Apply the spefnet if any
_make_rct();
// update the corresponding handle
std::visit(Functors{
[&] (EmptyRct& rct) {
FOR_EACH_EL_RF(el, rf) {
rct.load[el][rf] = std::accumulate(_pins.begin(), _pins.end(), 0.0f,
[this, el=el, rf=rf] (float v, Pin* pin) {
return pin == _root ? v : v + pin->cap(el, rf);
}
);
}
},
[&] (Rct& rct) {
for(auto pin : _pins) {
if(auto node = rct._node(pin->name()); node == nullptr) {
OT_LOGE("pin ", pin->name(), " not found in rctree ", _name);
}
else {
if(pin == _root) {
rct._root = node;
}
else {
node->_pin = pin;
}
}
}
rct.update_rc_timing();
}
}, _rct);
_rc_timing_updated = true;
}
// Procedure: _remove_pin
// Remove a pin pointer from the net.
void Net::_remove_pin(Pin& pin) {
assert(pin._net == this);
// Reset the root pin
if(_root == &pin) {
_root = nullptr;
}
// Remove the pin from the pins
_pins.erase(*(pin._net_satellite));
pin._net_satellite.reset();
pin._net = nullptr;
// Enable the timing update.
_rc_timing_updated = false;
}
// Procedure: _insert_pin
// Insert a pin pointer into the net.
void Net::_insert_pin(Pin& pin) {
if(pin._net == this) {
return;
}
assert(pin._net == nullptr && !pin._net_satellite);
pin._net_satellite = _pins.insert(_pins.end(), &pin);
pin._net = this;
// NEW
if(pin.is_rct_root()) {
_root = &pin;
}
// Enable the timing update
_rc_timing_updated = false;
}
// Function: _load
// The total capacitive load is defined as the sum of the input capacitance
// of all the other devices sharing the trace.
// Note that the capacitance of the device driving the trace is not included.
float Net::_load(Split m, Tran t) const {
// TODO: outdated?
assert(_rc_timing_updated);
return std::visit(Functors{
[&] (const EmptyRct& rct) {
return rct.load[m][t];
},
[&] (const Rct& rct) {
return rct._root->_load[m][t];
}
}, _rct);
}
// Function: _slew
// Query the slew at the give pin through this net
std::optional<float> Net::_slew(Split m, Tran t, float si, Pin& to) const {
assert(_rc_timing_updated && to._net == this);
return std::visit(Functors{
[&] (const EmptyRct&) -> std::optional<float> {
return si;
},
[&] (const Rct& rct) -> std::optional<float> {
if(auto node = rct.node(to._name); node) {
return node->slew(m, t, si);
}
else return std::nullopt;
}
}, _rct);
}
// Function: _delay
// Query the slew at the given pin through this net.
std::optional<float> Net::_delay(Split m, Tran t, Pin& to) const {
assert(_rc_timing_updated && to._net == this);
return std::visit(Functors{
[&] (const EmptyRct&) -> std::optional<float> {
return 0.0f;
},
[&] (const Rct& rct) -> std::optional<float> {
if(auto node = rct.node(to._name); node) {
return node->delay(m, t);
}
else return std::nullopt;
}
}, _rct);
}
}; // end of namespace ot. -----------------------------------------------------------------------