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#include <ot/timer/sfxt.hpp>
#include <ot/timer/timer.hpp>
namespace ot {
// Constructor
SfxtCache::SfxtCache(Split el, size_t S, size_t T) :
_el {el},
_S {S},
_T {T},
_pins {std::move(__pins)} {
resize_to_fit(std::max(S, T) + 1, __tree, __link, __dist, __spfa);
// debug
//for(const auto& i : __tree) assert(!i);
//for(const auto& i : __dist) assert(!i);
//for(const auto& i : __spfa) assert(!i);
}
// Move constructor
SfxtCache::SfxtCache(SfxtCache&& rhs) :
_el {rhs._el},
_S {rhs._S},
_T {rhs._T},
_pins {std::move(rhs._pins)},
_srcs {std::move(rhs._srcs)} {
}
// Destructor
SfxtCache::~SfxtCache() {
__dist[_S].reset();
__tree[_S].reset();
__link[_S].reset();
__spfa[_S].reset();
for(const auto& p : _pins) {
__dist[p].reset();
__tree[p].reset();
__link[p].reset();
__spfa[p].reset();
}
_pins.clear();
__pins = std::move(_pins);
}
// ----------------------------------------------------------------------------
// Procedure: _topologize
void Timer::_topologize(SfxtCache& sfxt, size_t v) const {
sfxt.__spfa[v] = true;
auto [pin, vrf] = _decode_pin(v);
// Stop at the data source
if(!pin->is_datapath_source()) {
for(auto arc : pin->_fanin) {
FOR_EACH_RF_IF(urf, arc->_delay[sfxt._el][urf][vrf]) {
auto u = _encode_pin(arc->_from, urf);
if(!sfxt.__spfa[u]) {
_topologize(sfxt, u);
}
}
}
}
sfxt._pins.push_back(v);
}
// Procedure: _spdp
void Timer::_spdp(SfxtCache& sfxt) const {
assert(sfxt._pins.empty());
_topologize(sfxt, sfxt._T);
assert(!sfxt._pins.empty());
auto el = sfxt._el;
for(auto itr = sfxt._pins.rbegin(); itr != sfxt._pins.rend(); ++itr) {
auto v = *itr;
auto [pin, vrf] = _decode_pin(v);
assert(sfxt.__dist[v]);
// Stop at the data source
if(pin->is_datapath_source()) {
sfxt._srcs.try_emplace(v, std::nullopt);
continue;
}
// Relax on fanin
for(auto arc : pin->_fanin) {
FOR_EACH_RF_IF(urf, arc->_delay[el][urf][vrf]) {
auto u = _encode_pin(arc->_from, urf);
auto d = (el == MIN) ? *arc->_delay[el][urf][vrf] : -(*arc->_delay[el][urf][vrf]);
sfxt._relax(u, v, _encode_arc(*arc, urf, vrf), d);
}
}
}
}
// Procedure: _spfa
// Perform shortest path fast algorithm (SPFA) to build up the suffix tree.
void Timer::_spfa(SfxtCache& sfxt) const {
auto el = sfxt._el;
std::queue<size_t> queue;
queue.push(sfxt._T);
sfxt.__spfa[sfxt._T] = true;
while(!queue.empty()) {
auto v = queue.front();
queue.pop();
sfxt.__spfa[v] = false;
sfxt._pins.push_back(v);
auto [pin, vrf] = _decode_pin(v);
// Stop at the data source
if(pin->is_datapath_source()) {
sfxt._srcs.try_emplace(v, std::nullopt);
continue;
}
// Relax on fanin
for(auto arc : pin->_fanin) {
FOR_EACH_RF_IF(urf, arc->_delay[el][urf][vrf]) {
auto u = _encode_pin(arc->_from, urf);
auto d = (el == MIN) ? *arc->_delay[el][urf][vrf] : -(*arc->_delay[el][urf][vrf]);
if(sfxt._relax(u, v, _encode_arc(*arc, urf, vrf), d)) {
if(!sfxt.__spfa[u] || *sfxt.__spfa[u] == false) {
queue.push(u);
sfxt.__spfa[u] = true;
}
}
}
}
}
}
// Function: _sfxt_cache
// Find the suffix tree rooted at the primary output po.
SfxtCache Timer::_sfxt_cache(const PrimaryOutput& po, Split el, Tran rf) const {
assert(po._rat[el][rf]);
// create a cache
auto S = _idx2pin.size() << 1;
auto v = _encode_pin(po._pin, rf);
SfxtCache sfxt(el, S, v);
// start at the root
assert(!sfxt.__dist[v]);
sfxt.__dist[v] = (el == MIN) ? -(*po._rat[el][rf]) : *po._rat[el][rf];
// shortest path dynamic programming
_spdp(sfxt);
// shortest path fast algorithm
//_spfa(sfxt);
// relax sources
for(auto& [s, v] : sfxt._srcs) {
if(v = _sfxt_offset(sfxt, s); v) {
sfxt._relax(S, s, std::nullopt, *v);
}
}
return sfxt;
}
// Function: _sfxt_cache
// Find the suffix tree rooted at the test
SfxtCache Timer::_sfxt_cache(const Test& test, Split el, Tran rf) const {
assert(test._rat[el][rf]);
// create a cache
auto S = _idx2pin.size() << 1;
auto v = _encode_pin(test._arc._to, rf);
SfxtCache sfxt(el, S, v);
// Start at the D pin and perform SPFA all the way to the sources of data paths.
assert(!sfxt.__dist[v]);
sfxt.__dist[v] = (el == MIN) ? -(*test._rat[el][rf]) : *test._rat[el][rf];
// shortest path dynamic programming
_spdp(sfxt);
// shortest path fast algorithm
//_spfa(sfxt);
// relaxation from the sources
if(_cppr_analysis) {
auto cppr = _cppr_cache(test, el, rf);
for(auto& [s, v] : sfxt._srcs) {
auto [pin, srf] = _decode_pin(s);
if(v = _cppr_offset(cppr, *pin, el, srf); v) {
sfxt._relax(S, s, std::nullopt, *v);
}
}
}
else {
for(auto& [s, v] : sfxt._srcs) {
if(v = _sfxt_offset(sfxt, s); v) {
sfxt._relax(S, s, std::nullopt, *v);
}
}
}
return sfxt;
}
// Function: _sfxt_cache
SfxtCache Timer::_sfxt_cache(const Endpoint& ept) const {
return std::visit([this, &ept] (auto&& handle) {
return _sfxt_cache(*handle, ept._el, ept._rf);
}, ept._handle);
}
// Function: _sfxt_offset
std::optional<float> Timer::_sfxt_offset(const SfxtCache& sfxt, size_t v) const {
auto [pin, rf] = _decode_pin(v);
if(auto at = pin->_at[sfxt._el][rf]; at) {
return sfxt._el == MIN ? *at : -*at;
}
else {
return std::nullopt;
}
}
}; // end of namespace ot. -----------------------------------------------------------------------