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#include <ot/spef/spef.hpp>
/*namespace ot::spef {
// Function: is_keyword
bool is_keyword(const std::string& str) {
return keywords.find(str) != keywords.end();
}
// Function: to_string
std::string to_string(ConnectionType t) {
switch(t) {
case ConnectionType::INTERNAL:
return "*I";
break;
case ConnectionType::EXTERNAL:
return "*P";
break;
default:
assert(false);
break;
}
}
// Function: to_string
std::string to_string(ConnectionDirection d) {
switch(d) {
case ConnectionDirection::INPUT:
return "I";
break;
case ConnectionDirection::OUTPUT:
return "O";
break;
case ConnectionDirection::INOUT:
return "B";
break;
default:
assert(false);
break;
}
}
// Function: unmap
// TODO
void unmap(const std::unordered_map<std::string, std::string>& map, std::string& name) {
if(map.empty()) {
return;
}
}
// ------------------------------------------------------------------------------------------------
// Constructor
Connection::Connection(const std::string& n, ConnectionType t, ConnectionDirection d) :
name {n},
type {t},
direction {d} {
}
// ------------------------------------------------------------------------------------------------
// Procedure: scale_capacitance
void Net::scale_capacitance(float s) {
lcap *= s;
for(auto& c : caps) {
std::get<1>(c) *= s;
}
}
// Procedure: scale_resistance
void Net::scale_resistance(float s) {
for(auto& r : ress) {
std::get<2>(r) *= s;
}
}
// Operator <<
std::ostream& operator << (std::ostream& os, const Net& net) {
os << "*D_NET " << net.name << ' ' << net.lcap << '\n';
os << "*CONN\n";
for(const auto& c : net.connections) {
os << to_string(c.type) << ' '
<< c.name << ' '
<< to_string(c.direction) << '\n';
}
auto cap_counter {0};
os << "*CAP\n";
for(const auto& [key, cap] : net.caps) {
os << ++cap_counter << ' ' << key << ' ' << cap << '\n';
}
auto res_counter {0};
os << "*RES\n";
for(const auto& [n1, n2, res] : net.ress) {
os << ++res_counter << ' ' << n1 << ' ' << n2 << ' ' << res << '\n';
}
os << "*END\n";
return os;
}
// ------------------------------------------------------------------------------------------------
// Operator <<
std::ostream& operator << (std::ostream& os, const Spef& spef) {
// header
// Name map section
if(!spef.name_map.empty()) {
os << "*NAME_MAP\n";
for(const auto& [k, v] : spef.name_map) {
os << k << ' ' << v << '\n';
}
os << '\n';
}
// Internal section
for(size_t i=0; i<spef.nets.size(); ++i) {
if(i) os << '\n';
os << spef.nets[i];
}
return os;
}
// Procedure: read_spef
// *T_UNIT 1 PS
// *C_UNIT 1 FF
// *R_UNIT 1 KOHM
// *L_UNIT 1 UH
void Spef::read(const std::filesystem::path& path) {
OT_LOGE_RIF(
path.empty() || !std::filesystem::exists(path),
"spef ", path, " doesn't exist"
);
OT_LOGI("loading spef ", path, " ...");
auto tokens = tokenize(path);
for(size_t i=0; i<tokens.size(); ++i) {
// divider
if(tokens[i] == "*DIVIDER") {
if(i+1 >= tokens.size() || tokens[i+1].size() != 1) {
OT_LOGF("syntax error in *DIVIDER section");
}
divider = tokens[i+1][0];
i += 1;
}
// delimiter
else if(tokens[i] == "*DELIMITER") {
if(i+1 >= tokens.size() || tokens[i+1].size() != 1) {
OT_LOGF("syntax error in *DELIMITER section");
}
delimiter = tokens[i+1][0];
i += 1;
}
// time unit section
else if(tokens[i] == "*T_UNIT") {
if(i+2 >= tokens.size()) {
OT_LOGF("syntax error in *T_UNIT section");
}
time_unit = make_time_unit(tokens[i+1] + to_lower(tokens[i+2]));
i += 2;
}
// capacitance unit
else if(tokens[i] == "*C_UNIT") {
if(i+2 >= tokens.size()) {
OT_LOGF("syntax error in *C_UNIT section");
}
capacitance_unit = make_capacitance_unit(tokens[i+1] + to_lower(tokens[i+2]));
}
// resistance unit
else if(tokens[i] == "*R_UNIT") {
if(i+2 >= tokens.size()) {
OT_LOGF("syntax error in *R_UNIT section");
}
resistance_unit = make_resistance_unit(tokens[i+1] + to_lower(tokens[i+2]));
}
// name mapping section
else if(tokens[i] == "*NAME_MAP") {
while(i+2 < tokens.size()) {
if(is_keyword(tokens[i+1]) || is_keyword(tokens[i+2])) {
break;
}
name_map.try_emplace(std::move(tokens[i+1]), std::move(tokens[i+2]));
i += 2;
}
}
// Net section
else if(tokens[i] == "*D_NET") {
if(i+2 >= tokens.size()) {
OT_LOGF("syntax error in *D_NET section");
}
Net net {std::move(tokens[i+1]), std::stof(tokens[i+2])};
i += 2;
while(++i < tokens.size()) {
// *CONN section
// *P external_connection direction {conn_attr} |
// *I internal_connection direction {conn_attr}
if(tokens[i] == "*CONN") {
auto j = i;
while(++i < tokens.size()) {
if(tokens[i] != "*P" && tokens[i] != "*I") {
i = j;
break;
}
if(i+2 >= tokens.size()) {
OT_LOGF("syntax error in *CONN section");
}
auto t = (tokens[i] == "*P") ? ConnectionType::EXTERNAL :
ConnectionType::INTERNAL ;
if(auto& k = tokens[i+2]; k != "I" && k != "O" && k != "B") {
OT_LOGF("syntax error in parsing direction ", k);
}
auto d = (tokens[i+2] == "I") ? ConnectionDirection::INPUT :
((tokens[i+2] == "O") ? ConnectionDirection::OUTPUT :
ConnectionDirection::INOUT);
net.connections.emplace_back(tokens[i+1], t, d);
i += 2;
// tyr to read attribute if any
if(i+1 < tokens.size()) {
while(tokens[i+1] == "*C" || tokens[i+1] == "*L" || tokens[i+1] == "*D") {
// coordinate
if(tokens[i+1] == "*C") {
if(i+3 >= tokens.size()) {
OT_LOGF("syntax error in parsing attribute *C");
}
// TODO
i += 3;
}
// load capacitance
else if(tokens[i+1] == "*L") {
if(i+2 >= tokens.size()) {
OT_LOGF("syntax error in parsing attribute *L");
}
// TODO
i += 2;
}
// driving cell
else {
if(i+2 >= tokens.size()) {
OT_LOGF("syntax error in parsing attribute *D");
}
// TODO
i += 2;
}
}
}
j = i;
}
}
// *CAP section.
else if(tokens[i] == "*CAP") {
auto j = i;
while(++i < tokens.size()) {
if(!::isdigit(tokens[i][0])) {
i = j;
break;
}
if(i+2 >= tokens.size()) {
OT_LOGF("syntax error in *CAP section");
}
net.caps.emplace_back(std::forward_as_tuple(
std::move(tokens[i+1]),
std::stof(tokens[i+2])
));
i += 2;
j = i;
}
}
// *RES section.
else if(tokens[i] == "*RES") {
auto j = i;
while(++i < tokens.size()) {
if(!::isdigit(tokens[i][0])) {
i = j;
break;
}
if(i+3 >= tokens.size()) {
OT_LOGF("syntax error in *RES section");
}
net.ress.emplace_back(std::forward_as_tuple(
std::move(tokens[i+1]),
std::move(tokens[i+2]),
std::stof(tokens[i+3])
));
i += 3;
j = i;
}
}
// *END section.
else if(tokens[i] == "*END") {
nets.push_back(std::move(net));
break;
}
else {
OT_LOGF("unexpected token ", tokens[i], " in *D_NET section");
}
}
}
else {
//OT_LOGW("unexpected token ", tokens[i]);
}
}
}
// Procedure: to_capacitance_unit
void Spef::to_capacitance_unit(const CapacitanceUnit& unit) {
float s = (capacitance_unit) ? divide_capacitance_unit(*capacitance_unit, unit) : 1.0f;
if(capacitance_unit = unit; std::fabs(s - 1.0f) < 1e-6) {
return;
}
for(auto& n : nets) {
n.scale_capacitance(s);
}
}
// Procedure: to_resistance_unit
void Spef::to_resistance_unit(const ResistanceUnit& unit) {
float s = (resistance_unit) ? divide_resistance_unit(*resistance_unit, unit) : 1.0f;
if(resistance_unit = unit; std::fabs(s - 1.0f) < 1e-6) {
return;
}
for(auto& n : nets) {
n.scale_resistance(s);
}
}
}; // end of namespace ot. ----------------------------------------------------------------------- */