Change-Id: I6c6219732029d5a9db1d317c130086cf2d16a272 Reviewed-on: https://gem5-review.googlesource.com/c/public/gem5/+/25410 Reviewed-by: Bobby R. Bruce <bbruce@ucdavis.edu> Reviewed-by: Daniel Carvalho <odanrc@yahoo.com.br> Maintainer: Bobby R. Bruce <bbruce@ucdavis.edu> Tested-by: kokoro <noreply+kokoro@google.com>
455 lines
10 KiB
C++
455 lines
10 KiB
C++
/*
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* Copyright 2018 Google, Inc.
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*
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* Redistribution and use in source and binary forms, with or without
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* modification, are permitted provided that the following conditions are
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* met: redistributions of source code must retain the above copyright
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* notice, this list of conditions and the following disclaimer;
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* redistributions in binary form must reproduce the above copyright
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* notice, this list of conditions and the following disclaimer in the
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* documentation and/or other materials provided with the distribution;
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* neither the name of the copyright holders nor the names of its
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* contributors may be used to endorse or promote products derived from
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* this software without specific prior written permission.
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*
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* THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
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* "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
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* LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
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* A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
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* OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
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* SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
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* LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
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* DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
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* THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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* (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
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* OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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*/
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#include <cmath>
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#include <cstring>
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#include <sstream>
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#include <vector>
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#include "base/types.hh"
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#include "sim/core.hh"
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#include "systemc/core/time.hh"
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#include "systemc/ext/core/messages.hh"
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#include "systemc/ext/core/sc_main.hh"
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#include "systemc/ext/core/sc_time.hh"
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#include "systemc/ext/utils/sc_report_handler.hh"
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namespace sc_core
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{
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namespace
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{
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void
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set(::sc_core::sc_time *time, double d, ::sc_core::sc_time_unit tu)
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{
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if (d != 0)
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fixClockFrequency();
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double scale = sc_gem5::TimeUnitScale[tu] * SimClock::Float::s;
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// Accellera claims there is a linux bug, and that these next two
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// lines work around them.
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volatile double tmp = d * scale + 0.5;
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*time = sc_time::from_value(static_cast<uint64_t>(tmp));
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}
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double defaultUnit = 1.0e-9;
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} // anonymous namespace
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sc_time::sc_time() : val(0) {}
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sc_time::sc_time(double d, sc_time_unit tu)
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{
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val = 0;
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set(this, d, tu);
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}
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sc_time::sc_time(const sc_time &t)
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{
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val = t.val;
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}
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sc_time::sc_time(double d, const char *unit)
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{
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sc_time_unit tu;
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for (tu = SC_FS; tu <= SC_SEC; tu = (sc_time_unit)(tu + 1)) {
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if (strcmp(unit, sc_gem5::TimeUnitNames[tu]) == 0 ||
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strcmp(unit, sc_gem5::TimeUnitConstantNames[tu]) == 0) {
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break;
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}
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}
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if (tu > SC_SEC) {
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SC_REPORT_ERROR(SC_ID_TIME_CONVERSION_FAILED_,"invalid unit given");
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val = 0;
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return;
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}
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set(this, d, tu);
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}
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sc_time::sc_time(double d, bool scale)
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{
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double scaler = scale ? defaultUnit : SimClock::Float::Hz;
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set(this, d * scaler, SC_SEC);
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}
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sc_time::sc_time(sc_dt::uint64 v, bool scale)
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{
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double scaler = scale ? defaultUnit : SimClock::Float::Hz;
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set(this, static_cast<double>(v) * scaler, SC_SEC);
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}
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sc_time &
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sc_time::operator = (const sc_time &t)
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{
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val = t.val;
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return *this;
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}
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sc_dt::uint64
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sc_time::value() const
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{
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return val;
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}
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double
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sc_time::to_double() const
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{
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return static_cast<double>(val);
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}
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double
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sc_time::to_seconds() const
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{
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return to_double() * SimClock::Float::Hz;
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}
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const std::string
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sc_time::to_string() const
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{
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std::ostringstream ss;
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print(ss);
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return ss.str();
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}
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bool
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sc_time::operator == (const sc_time &t) const
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{
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return val == t.val;
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}
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bool
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sc_time::operator != (const sc_time &t) const
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{
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return val != t.val;
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}
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bool
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sc_time::operator < (const sc_time &t) const
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{
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return val < t.val;
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}
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bool
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sc_time::operator <= (const sc_time &t) const
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{
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return val <= t.val;
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}
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bool
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sc_time::operator > (const sc_time &t) const
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{
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return val > t.val;
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}
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bool
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sc_time::operator >= (const sc_time &t) const
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{
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return val >= t.val;
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}
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sc_time &
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sc_time::operator += (const sc_time &t)
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{
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val += t.val;
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return *this;
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}
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sc_time &
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sc_time::operator -= (const sc_time &t)
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{
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val -= t.val;
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return *this;
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}
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sc_time &
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sc_time::operator *= (double d)
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{
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val = static_cast<int64_t>(static_cast<double>(val) * d + 0.5);
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return *this;
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}
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sc_time &
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sc_time::operator /= (double d)
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{
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val = static_cast<int64_t>(static_cast<double>(val) / d + 0.5);
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return *this;
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}
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void
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sc_time::print(std::ostream &os) const
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{
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os << sc_time_tuple(*this).to_string();
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}
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sc_time
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sc_time::from_value(sc_dt::uint64 u)
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{
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if (u)
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fixClockFrequency();
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sc_time t;
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t.val = u;
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return t;
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}
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sc_time
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sc_time::from_seconds(double d)
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{
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sc_time t;
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set(&t, d, SC_SEC);
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return t;
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}
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sc_time
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sc_time::from_string(const char *str)
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{
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char *end = nullptr;
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double d = str ? std::strtod(str, &end) : 0.0;
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if (str == end || d < 0.0) {
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SC_REPORT_ERROR(SC_ID_TIME_CONVERSION_FAILED_, "invalid value given");
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return SC_ZERO_TIME;
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}
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while (*end && std::isspace(*end))
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end++;
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return sc_time(d, end);
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}
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const sc_time
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operator + (const sc_time &a, const sc_time &b)
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{
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return sc_time::from_value(a.value() + b.value());
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}
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const sc_time
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operator - (const sc_time &a, const sc_time &b)
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{
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return sc_time::from_value(a.value() - b.value());
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}
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const sc_time
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operator * (const sc_time &t, double d)
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{
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volatile double tmp = static_cast<double>(t.value()) * d + 0.5;
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return sc_time::from_value(static_cast<int64_t>(tmp));
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}
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const sc_time
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operator * (double d, const sc_time &t)
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{
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volatile double tmp = d * static_cast<double>(t.value()) + 0.5;
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return sc_time::from_value(static_cast<int64_t>(tmp));
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}
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const sc_time
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operator / (const sc_time &t, double d)
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{
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volatile double tmp = static_cast<double>(t.value()) / d + 0.5;
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return sc_time::from_value(static_cast<int64_t>(tmp));
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}
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double
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operator / (const sc_time &t1, const sc_time &t2)
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{
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return t1.to_double() / t2.to_double();
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}
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std::ostream &
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operator << (std::ostream &os, const sc_time &t)
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{
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t.print(os);
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return os;
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}
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const sc_time SC_ZERO_TIME;
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void
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sc_set_time_resolution(double d, sc_time_unit tu)
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{
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if (d <= 0.0)
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SC_REPORT_ERROR(SC_ID_SET_TIME_RESOLUTION_, "value not positive");
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double dummy;
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if (modf(log10(d), &dummy) != 0.0) {
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SC_REPORT_ERROR(SC_ID_SET_TIME_RESOLUTION_,
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"value not a power of ten");
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}
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if (sc_is_running())
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SC_REPORT_ERROR(SC_ID_SET_TIME_RESOLUTION_, "simulation running");
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static bool specified = false;
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if (specified)
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SC_REPORT_ERROR(SC_ID_SET_TIME_RESOLUTION_, "already specified");
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// This won't detect the timescale being fixed outside of systemc, but
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// it's at least some protection.
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if (clockFrequencyFixed()) {
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SC_REPORT_ERROR(SC_ID_SET_TIME_RESOLUTION_,
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"sc_time object(s) constructed");
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}
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double seconds = d * sc_gem5::TimeUnitScale[tu];
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if (seconds < sc_gem5::TimeUnitScale[SC_FS])
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SC_REPORT_ERROR(SC_ID_SET_TIME_RESOLUTION_, "value smaller than 1 fs");
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if (seconds > defaultUnit) {
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SC_REPORT_WARNING(SC_ID_DEFAULT_TIME_UNIT_CHANGED_, "");
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defaultUnit = seconds;
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}
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// Get rid of fractional parts of d.
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while (d < 1.0 && tu > SC_FS) {
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d *= 1000;
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tu = (sc_time_unit)(tu - 1);
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}
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Tick ticks_per_second =
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sc_gem5::TimeUnitFrequency[tu] / static_cast<Tick>(d);
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setClockFrequency(ticks_per_second);
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specified = true;
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}
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sc_time
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sc_get_time_resolution()
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{
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return sc_time::from_value(1);
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}
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const sc_time &
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sc_max_time()
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{
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static const sc_time MaxScTime = sc_time::from_value(MaxTick);
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return MaxScTime;
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}
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void
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sc_set_default_time_unit(double d, sc_time_unit tu)
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{
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if (d < 0.0)
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SC_REPORT_ERROR(SC_ID_SET_DEFAULT_TIME_UNIT_, "value not positive");
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double dummy;
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if (modf(log10(d), &dummy) != 0.0) {
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SC_REPORT_ERROR(SC_ID_SET_DEFAULT_TIME_UNIT_,
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"value not a power of ten");
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}
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if (sc_is_running())
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SC_REPORT_ERROR(SC_ID_SET_DEFAULT_TIME_UNIT_, "simulation running");
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static bool specified = false;
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if (specified) {
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SC_REPORT_ERROR(SC_ID_SET_DEFAULT_TIME_UNIT_, "already specified");
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}
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// This won't detect the timescale being fixed outside of systemc, but
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// it's at least some protection.
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if (clockFrequencyFixed()) {
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SC_REPORT_ERROR(SC_ID_SET_DEFAULT_TIME_UNIT_,
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"sc_time object(s) constructed");
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}
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// Normalize d to seconds.
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defaultUnit = d * sc_gem5::TimeUnitScale[tu];
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specified = true;
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double resolution = SimClock::Float::Hz;
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if (resolution == 0.0)
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resolution = sc_gem5::TimeUnitScale[SC_PS];
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if (defaultUnit < resolution) {
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SC_REPORT_ERROR(SC_ID_SET_DEFAULT_TIME_UNIT_,
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"value smaller than time resolution");
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}
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}
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sc_time
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sc_get_default_time_unit()
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{
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return sc_time(defaultUnit, SC_SEC);
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}
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sc_time_tuple::sc_time_tuple(const sc_time &t) :
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_value(), _unit(SC_SEC), _set(true)
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{
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if (!t.value())
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return;
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Tick frequency = SimClock::Frequency;
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// Shrink the frequency by scaling down the time period, ie converting
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// it from cycles per second to cycles per millisecond, etc.
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while (_unit > 1 && (frequency % 1000 == 0)) {
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_unit = (sc_time_unit)((int)_unit - 1);
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frequency /= 1000;
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}
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// Convert the frequency into a period.
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Tick period;
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if (frequency > 1) {
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_unit = (sc_time_unit)((int)_unit - 1);
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period = 1000 / frequency;
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} else {
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period = frequency;
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}
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// Scale our integer value by the period.
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_value = t.value() * period;
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// Shrink the scaled time value by increasing the size of the units
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// it's measured by, avoiding fractional parts.
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while (_unit < SC_SEC && (_value % 1000) == 0) {
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_unit = (sc_time_unit)((int)_unit + 1);
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_value /= 1000;
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}
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}
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bool
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sc_time_tuple::has_value() const
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{
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return _set;
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}
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sc_dt::uint64 sc_time_tuple::value() const { return _value; }
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const char *
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sc_time_tuple::unit_symbol() const
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{
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return sc_gem5::TimeUnitNames[_unit];
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}
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double sc_time_tuple::to_double() const { return static_cast<double>(_value); }
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std::string
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sc_time_tuple::to_string() const
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{
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std::ostringstream ss;
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ss << _value << ' ' << unit_symbol();
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return ss.str();
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}
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} // namespace sc_core
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