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#include <ot/timer/cppr.hpp>
#include <ot/timer/timer.hpp>
namespace ot {
// Constructor
CpprCache::CpprCache(size_t N) {
resize_to_fit(N, __capp);
// debug
//for(const auto& i : __capp) assert(!i);
}
// Move constructor
CpprCache::CpprCache(CpprCache&& rhs) :
_capb {rhs._capb},
_cape {rhs._cape},
_pins {std::move(rhs._pins)} {
}
// Destructor
CpprCache::~CpprCache() {
for(auto p : _pins) {
__capp[p].reset();
}
}
// ------------------------------------------------------------------------------------------------
// Function: _cppr_cache
// Obtain a CPPR cache for a given test.
CpprCache Timer::_cppr_cache(const Test& test, Split el, Tran rf) const {
// Create a cppr handle.
auto cppr = CpprCache(_idx2pin.size() << 1);
// Find the timing
auto tv = test._arc.timing_view();
assert(tv[el]);
// Find the capture path
auto v = &(test._arc._from);
auto vel = (el == MIN) ? MAX : MIN;
auto vrf = tv[el]->is_rising_edge_triggered() ? RISE : FALL;
cppr._cape = _encode_pin(*v, vrf);
while(v && v->_at[vel][vrf]) {
auto vid = _encode_pin(*v, vrf);
cppr._pins.insert(vid);
if(auto arc = v->_at[vel][vrf]->pi_arc; arc) {
// Cacth the data to local to avoid messing up swap.
auto u = &(arc->_from);
auto uel = v->_at[vel][vrf]->pi_el;
auto urf = v->_at[vel][vrf]->pi_rf;
// Record the path parent.
cppr.__capp[vid] = _encode_pin(*u, urf);
// Move the pointer
vel = uel;
vrf = urf;
v = u;
}
else {
cppr._capb = vid;
cppr.__capp[vid] = vid;
break;
}
}
return cppr;
}
// Function: _cppr_credit
std::optional<float> Timer::_cppr_credit(const Test& test, Split el, Tran rf) const {
assert(_cppr_analysis);
// Create a suffix tree
auto sfxt = _sfxt_cache(test, el, rf);
// compute the cppr credit
if(sfxt.slack()) {
auto tat = *test._arc._to._at[el][rf];
auto rat = (el == MIN) ? tat - *sfxt.slack() : *sfxt.slack() + tat;
return rat - *test._rat[el][rf];
}
else {
return std::nullopt;
}
}
// Procedure: _cppr_credit
std::optional<float> Timer::_cppr_credit(const CpprCache& cppr, Pin& pin, Split el, Tran rf) const {
assert(_cppr_analysis);
// back-trace to find the common point.
auto v = &pin;
auto vel = el;
auto vrf = rf;
while(v && v->_at[vel][vrf]) {
auto vid = _encode_pin(*v, vrf);
// Find a converging point.
if(cppr.__capp[vid]) {
assert(vel == el);
auto dv = v->_delta_at(MAX, vrf, MIN, vrf);
// Return the credit for the early (hold) test.
if(el == MIN) {
return dv;
}
// Return the credit for the late (setup) test.
else {
auto [r, rrf] = _decode_pin(cppr._capb);
auto dr = r->_delta_at(MAX, rrf, MIN, rrf);
if(dv && dr) {
return *dv - *dr;
}
else {
return std::nullopt;
}
}
}
// Go up to the parent.
if(auto arc = v->_at[vel][vrf]->pi_arc; arc) {
// Cacahe the local data to avoid swap error.
auto u = &(arc->_from);
auto uel = v->_at[vel][vrf]->pi_el;
auto urf = v->_at[vel][vrf]->pi_rf;
// Move the pointer
vel = uel;
vrf = urf;
v = u;
}
else break;
}
return std::nullopt;
}
// Function: _cppr_offset
std::optional<float> Timer::_cppr_offset(const CpprCache& cppr, Pin& pin, Split el, Tran rf) const {
assert(_cppr_analysis);
if(auto at = pin._at[el][rf]; !at) {
return std::nullopt;
}
else {
if(auto credit = _cppr_credit(cppr, pin, el, rf); credit) {
return (el == MIN) ? *at + *credit : -(*at) + *credit;
}
else {
return (el == MIN) ? *at : -(*at);
}
}
}
}; // end of namespace ot. -----------------------------------------------------------------------