e6452e2c88
PiperOrigin-RevId: 945698744 Change-Id: Ida6d5ab24c88441fb05c778e8507d6369eb74f1c
621 lines
24 KiB
C++
621 lines
24 KiB
C++
// Copyright 2021 DeepMind Technologies Limited
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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#include <algorithm>
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#include <cctype>
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#include <charconv>
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#include <chrono>
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#include <cinttypes>
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#include <cstdio>
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#include <cstdlib>
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#include <cstring>
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#include <ratio>
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#include <string>
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#include <string_view>
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#include <system_error>
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#include <thread>
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#include <vector>
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#include <mujoco/mujoco.h>
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// maximum number of threads
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const int maxthread = 512;
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// rollout runner state
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struct RolloutRunner {
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mjModel* m = nullptr;
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mjData* d[maxthread] = {nullptr};
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// per-thread statistics
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int contacts[maxthread] = {0};
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int constraints[maxthread] = {0};
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mjtNum iterations[maxthread] = {0.0};
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mjtNum simtime[maxthread] = {0.0};
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};
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static RolloutRunner runner;
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// timer (microseconds)
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mjtNum gettm(void) {
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using Clock = std::chrono::steady_clock;
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using Microseconds = std::chrono::duration<mjtNum, std::micro>;
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static const Clock::time_point tm_start = Clock::now();
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return Microseconds(Clock::now() - tm_start).count();
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}
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// deallocate and print message
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int finish(const char* msg = NULL, mjModel* m = NULL) {
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// deallocate model
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if (m) {
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mj_deleteModel(m);
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}
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// print message
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if (msg) {
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std::printf("%s\n", msg);
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}
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return EXIT_SUCCESS;
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}
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std::vector<mjtNum> CtrlNoise(const mjModel* m, int nsteps, mjtNum noise_std, mjtNum noise_rate,
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int key) {
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std::vector<mjtNum> ctrl;
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ctrl.reserve(nsteps * m->nu);
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// convert rate and scale to discrete time (Ornstein–Uhlenbeck)
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mjtNum rate = mju_exp(-m->opt.timestep / noise_rate);
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mjtNum scale = noise_std * mju_sqrt(1 - rate * rate);
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for (int step = 0; step < nsteps; step++) {
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for (int i = 0; i < m->nu; i++) {
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mjtNum midpoint = 0.0;
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mjtNum halfrange = 1.0;
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mjtNum* range = m->actuator_ctrlrange + 2 * i;
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if (m->actuator_ctrllimited[i]) {
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midpoint = 0.5 * (range[1] + range[0]);
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halfrange = 0.5 * (range[1] - range[0]);
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}
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// overwrite midpoint with keyframe, if given
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if (key >= 0) {
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midpoint = m->key_ctrl[key * m->nu + i];
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}
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// exponential convergence to midpoint at ctrl_noise_rate
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mjtNum ctrl_ =
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step > 0 ? rate * ctrl[(step - 1) * m->nu + i] + (1 - rate) * midpoint : midpoint;
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// add noise
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ctrl_ += scale * halfrange * (2 * mju_Halton(step, i + 2) - 1);
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// clip to range if limited
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if (m->actuator_ctrllimited[i]) {
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ctrl_ = mju_clip(ctrl_, range[0], range[1]);
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}
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ctrl.push_back(ctrl_);
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}
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}
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return ctrl;
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}
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// thread function
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void simulate(int id, int nstep, mjtNum* ctrl) {
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// clear statistics
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runner.contacts[id] = 0;
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runner.constraints[id] = 0;
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runner.iterations[id] = 0;
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// run and time
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mjtNum start = gettm();
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for (int i = 0; i < nstep; i++) {
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// inject pseudo-random control noise
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mju_copy(runner.d[id]->ctrl, ctrl + i * runner.m->nu, runner.m->nu);
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// advance simulation
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mj_step(runner.m, runner.d[id]);
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// accumulate statistics
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runner.contacts[id] += runner.d[id]->ncon;
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runner.constraints[id] += runner.d[id]->nefc;
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int nisland = mjMAX(1, mjMIN(runner.d[id]->nisland, mjNISLAND));
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if (nisland == 1 || nisland == 0) {
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runner.iterations[id] += runner.d[id]->solver_niter[0];
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} else {
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mjtNum niter = 0;
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for (int j = 0; j < nisland; j++) {
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niter += runner.d[id]->solver_niter[j];
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}
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runner.iterations[id] += niter / nisland;
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}
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}
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runner.simtime[id] = 1e-6 * (gettm() - start);
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}
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// print non-default options
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static void PrintOptions(const mjModel* m) {
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mjOption optd;
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mj_defaultOption(&optd);
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bool header_printed = false;
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auto print_header = [&]() {
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if (!header_printed) {
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std::printf("\nPhysics options (non-default):\n");
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header_printed = true;
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}
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};
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#define X(type, name, size) \
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if (std::strcmp(#name, "disableflags") != 0 && std::strcmp(#name, "enableflags") != 0 && \
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std::strcmp(#name, "disableactuator") != 0) { \
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if (m->opt.name != optd.name) { \
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print_header(); \
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std::printf(" %-18s: ", #name); \
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if (std::strcmp(#name, "integrator") == 0) { \
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const char* names[] = {"Euler", "RK4", "Implicit", "ImplicitFast"}; \
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int val = (int)m->opt.name; \
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if (val >= 0 && val < 4) { \
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std::printf("%s", names[val]); \
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} else { \
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std::printf("%d", val); \
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} \
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} else if (std::strcmp(#name, "cone") == 0) { \
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const char* names[] = {"Pyramidal", "Elliptic"}; \
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int val = (int)m->opt.name; \
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if (val >= 0 && val < 2) { \
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std::printf("%s", names[val]); \
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} else { \
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std::printf("%d", val); \
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} \
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} else if (std::strcmp(#name, "jacobian") == 0) { \
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const char* names[] = {"Dense", "Sparse", "Auto"}; \
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int val = (int)m->opt.name; \
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if (val >= 0 && val < 3) { \
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std::printf("%s", names[val]); \
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} else { \
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std::printf("%d", val); \
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} \
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} else if (std::strcmp(#name, "solver") == 0) { \
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const char* names[] = {"PGS", "CG", "Newton"}; \
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int val = (int)m->opt.name; \
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if (val >= 0 && val < 3) { \
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std::printf("%s", names[val]); \
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} else { \
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std::printf("%d", val); \
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} \
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} else { \
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if (std::strcmp(#type, "int") == 0) { \
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std::printf("%d", (int)m->opt.name); \
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} else { \
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std::printf("%g", (double)m->opt.name); \
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} \
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} \
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std::printf("\n"); \
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} \
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}
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#define XVEC(type, name, size) \
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{ \
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bool diff = false; \
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for (int i = 0; i < size; ++i) { \
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if (m->opt.name[i] != optd.name[i]) { \
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diff = true; \
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break; \
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} \
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} \
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if (diff) { \
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print_header(); \
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std::printf(" %-18s:", #name); \
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for (int i = 0; i < size; ++i) { \
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std::printf(" %g", (double)m->opt.name[i]); \
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} \
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std::printf("\n"); \
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} \
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}
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// option fields
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#include <mujoco/mjxmacro.h> // NOLINT(build/include)
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MJOPTION_FIELDS
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#undef X
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#undef XVEC
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// disableflags
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for (int i = 0; i < mjNDISABLE; ++i) {
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bool current = (m->opt.disableflags & (1 << i)) != 0;
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bool def = (optd.disableflags & (1 << i)) != 0;
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if (current != def) {
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print_header();
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std::printf(" %-18s: %s\n", mjDISABLESTRING[i], current ? "Disabled" : "Enabled");
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}
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}
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// enableflags
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for (int i = 0; i < mjNENABLE; ++i) {
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bool current = (m->opt.enableflags & (1 << i)) != 0;
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bool def = (optd.enableflags & (1 << i)) != 0;
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if (current != def) {
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print_header();
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std::printf(" %-18s: %s\n", mjENABLESTRING[i], current ? "Enabled" : "Disabled");
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}
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}
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// disableactuator
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if (m->opt.disableactuator != optd.disableactuator) {
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print_header();
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std::printf(" disableactuator :");
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bool first = true;
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for (int i = 0; i < 32; ++i) {
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if (m->opt.disableactuator & (1 << i)) {
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if (!first) std::printf(",");
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std::printf(" %d", i);
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first = false;
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}
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}
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if (first) {
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std::printf(" none");
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}
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std::printf("\n");
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}
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}
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// helper enum parser: returns the matched enum index from the names vector (case-insensitive)
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// or the parsed integer value if it represents a valid number. Returns -1 on failure.
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static int ParseEnum(std::string_view val, const std::vector<std::string>& names) {
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int int_val;
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auto [ptr, ec] = std::from_chars(val.data(), val.data() + val.size(), int_val);
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if (ec == std::errc()) {
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return int_val;
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}
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for (size_t i = 0; i < names.size(); ++i) {
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if (val.size() == names[i].size() &&
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std::equal(val.begin(), val.end(), names[i].begin(), [](unsigned char a, unsigned char b) {
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return std::tolower(a) == std::tolower(b);
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})) {
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return i;
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}
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}
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return -1;
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}
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// main function
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int main(int argc, char** argv) {
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static const char* help_msg =
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"\n"
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"Usage: testspeed [options] model\n"
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"\n"
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" option default semantic\n"
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" ------ ------- --------\n"
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" model path to model (required, positional)\n"
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" --nstep=N 10000 number of steps per rollout\n"
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" --nthread=N 1 number of threads running parallel rollouts\n"
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" --noisestd=X 0.01 scale of pseudo-random noise injected into actuators\n"
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" --noiserate=X 0.1 rate of convergence to ctrl keyframe/midpoint\n"
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" --nenginethread=N 0 number of threads in engine-internal threadpool\n"
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" --solver=S Newton PGS, CG, Newton\n"
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" --cone=C Pyramidal Pyramidal, Elliptic\n"
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" --jacobian=J Auto Dense, Sparse, Auto\n"
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" --integrator=I Euler Euler, RK4, Implicit, ImplicitFast\n"
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" --iterations=N 100 solver iterations limit\n"
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" --tolerance=X 1e-8 solver tolerance\n"
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" --sleep_tolerance=X 1e-3 sleep tolerance\n"
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" --noslip_iterations=N 0 noslip solver iterations limit\n"
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" --help (or no arguments) print this help message\n"
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"\n"
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"Note: If the model has a keyframe named \"test\", it will be loaded prior to simulation\n";
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// default values
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int nstep = 10000, nthread = 0, nenginethread = 0;
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// inject small noise by default, to avoid fixed contact state
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double noisestd = 0.01;
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double noiserate = 0.1;
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// option override settings
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bool set_solver = false, set_cone = false, set_jacobian = false, set_integrator = false;
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bool set_iterations = false, set_tolerance = false, set_sleep_tolerance = false;
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bool set_noslip_iterations = false;
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int opt_solver = -1, opt_cone = -1, opt_jacobian = -1, opt_integrator = -1;
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int opt_iterations = -1, opt_noslip_iterations = -1;
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double opt_tolerance = -1.0, opt_sleep_tolerance = -1.0;
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const char* model = nullptr;
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for (int i = 1; i < argc; i++) {
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// helper: given "--key=value" or "--key value", extract the value string
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auto getarg = [&](const char* key) -> const char* {
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std::string prefix = std::string("--") + key + "=";
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if (std::strncmp(argv[i], prefix.c_str(), prefix.size()) == 0) {
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return argv[i] + prefix.size();
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}
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if (std::strcmp(argv[i], (std::string("--") + key).c_str()) == 0) {
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if (i + 1 < argc) {
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return argv[++i];
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}
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}
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return nullptr;
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};
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if (std::strcmp(argv[i], "--help") == 0 || std::strcmp(argv[i], "-h") == 0) {
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return finish(help_msg);
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}
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const char* val;
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if ((val = getarg("nstep"))) {
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if (std::sscanf(val, "%d", &nstep) != 1 || nstep <= 0) {
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return finish("Invalid --nstep argument");
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}
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} else if ((val = getarg("nthread"))) {
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if (std::sscanf(val, "%d", &nthread) != 1) {
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return finish("Invalid --nthread argument");
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}
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} else if ((val = getarg("noisestd"))) {
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if (std::sscanf(val, "%lf", &noisestd) != 1) {
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return finish("Invalid --noisestd argument");
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}
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} else if ((val = getarg("noiserate"))) {
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if (std::sscanf(val, "%lf", &noiserate) != 1) {
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return finish("Invalid --noiserate argument");
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}
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} else if ((val = getarg("nenginethread"))) {
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if (std::sscanf(val, "%d", &nenginethread) != 1) {
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return finish("Invalid --nenginethread argument");
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}
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} else if ((val = getarg("solver"))) {
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int parsed = ParseEnum(val, {"PGS", "CG", "Newton"});
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if (parsed < 0 || parsed > 2) {
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return finish("Invalid --solver argument");
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}
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opt_solver = parsed;
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set_solver = true;
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} else if ((val = getarg("cone"))) {
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int parsed = ParseEnum(val, {"Pyramidal", "Elliptic"});
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if (parsed < 0 || parsed > 1) {
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return finish("Invalid --cone argument");
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}
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opt_cone = parsed;
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set_cone = true;
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} else if ((val = getarg("jacobian"))) {
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int parsed = ParseEnum(val, {"Dense", "Sparse", "Auto"});
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if (parsed < 0 || parsed > 2) {
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return finish("Invalid --jacobian argument");
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}
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opt_jacobian = parsed;
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set_jacobian = true;
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} else if ((val = getarg("integrator"))) {
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int parsed = ParseEnum(val, {"Euler", "RK4", "Implicit", "ImplicitFast"});
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if (parsed < 0 || parsed > 3) {
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return finish("Invalid --integrator argument");
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}
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opt_integrator = parsed;
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set_integrator = true;
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} else if ((val = getarg("iterations"))) {
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if (std::sscanf(val, "%d", &opt_iterations) != 1 || opt_iterations <= 0) {
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return finish("Invalid --iterations argument");
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}
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set_iterations = true;
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} else if ((val = getarg("tolerance"))) {
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if (std::sscanf(val, "%lf", &opt_tolerance) != 1 || opt_tolerance < 0) {
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return finish("Invalid --tolerance argument");
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}
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set_tolerance = true;
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} else if ((val = getarg("sleep_tolerance"))) {
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if (std::sscanf(val, "%lf", &opt_sleep_tolerance) != 1 || opt_sleep_tolerance < 0) {
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return finish("Invalid --sleep_tolerance argument");
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}
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set_sleep_tolerance = true;
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} else if ((val = getarg("noslip_iterations"))) {
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if (std::sscanf(val, "%d", &opt_noslip_iterations) != 1 || opt_noslip_iterations < 0) {
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return finish("Invalid --noslip_iterations argument");
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}
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set_noslip_iterations = true;
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} else if (argv[i][0] != '-') {
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// positional argument: model file
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model = argv[i];
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} else {
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std::printf("Unknown option: %s\n", argv[i]);
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return finish(help_msg);
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}
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}
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// model file is required
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if (!model) {
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return finish(help_msg);
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}
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// clamp noisestd to [0.0, 1.0]
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noisestd = mju_clip(noisestd, 0.0, 1.0);
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// clamp noiserate to [0.0, 1.0]
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noiserate = mju_clip(noiserate, 0.0, 1.0);
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// clamp nthread to [1, maxthread]
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nthread = mjMAX(1, mjMIN(maxthread, nthread));
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nenginethread = mjMAX(1, mjMIN(maxthread, nenginethread));
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// get filename, determine file type
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std::string filename(model);
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bool binary = (filename.find(".mjb") != std::string::npos); // NOLINT
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// load model
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char error[1000] = "Could not load binary model";
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if (binary) {
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runner.m = mj_loadModel(model, 0);
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} else {
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runner.m = mj_loadXML(model, 0, error, 1000);
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}
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if (!runner.m) {
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return finish(error);
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}
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// apply command-line option overrides
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if (set_solver) runner.m->opt.solver = opt_solver;
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if (set_cone) runner.m->opt.cone = opt_cone;
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if (set_jacobian) runner.m->opt.jacobian = opt_jacobian;
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if (set_integrator) runner.m->opt.integrator = opt_integrator;
|
||
if (set_iterations) runner.m->opt.iterations = opt_iterations;
|
||
if (set_tolerance) runner.m->opt.tolerance = opt_tolerance;
|
||
if (set_sleep_tolerance) runner.m->opt.sleep_tolerance = opt_sleep_tolerance;
|
||
if (set_noslip_iterations) runner.m->opt.noslip_iterations = opt_noslip_iterations;
|
||
|
||
// make per-thread data
|
||
int testkey = mj_name2id(runner.m, mjOBJ_KEY, "test");
|
||
for (int id = 0; id < nthread; id++) {
|
||
// make mjData(s)
|
||
runner.d[id] = mj_makeData(runner.m);
|
||
if (!runner.d[id]) {
|
||
return finish("Could not allocate mjData", runner.m);
|
||
}
|
||
|
||
// reset to keyframe
|
||
if (testkey >= 0) {
|
||
mj_resetDataKeyframe(runner.m, runner.d[id], testkey);
|
||
}
|
||
|
||
// make and bind threadpool
|
||
if (nenginethread > 1) {
|
||
mju_threadpool(runner.d[id], nenginethread);
|
||
}
|
||
}
|
||
|
||
// install timer callback for profiling
|
||
mjcb_time = gettm;
|
||
|
||
// print physics options if not default
|
||
PrintOptions(runner.m);
|
||
|
||
// print start
|
||
std::printf("\nRolling out %d steps%s at dt = %g", nstep, nthread > 1 ? " per thread" : "",
|
||
runner.m->opt.timestep);
|
||
|
||
// print precision
|
||
if (sizeof(mjtNum) == 4) {
|
||
std::printf(", using single precision");
|
||
} else {
|
||
std::printf(", using double precision");
|
||
}
|
||
|
||
// print thread pool size
|
||
if (nenginethread > 1) {
|
||
std::printf(", using %d threads", nenginethread);
|
||
}
|
||
std::printf("...\n");
|
||
|
||
// create pseudo-random control sequence
|
||
std::vector<mjtNum> ctrl = CtrlNoise(runner.m, nstep, noisestd, noiserate, testkey);
|
||
|
||
// run simulation, record total time
|
||
std::thread th[maxthread];
|
||
double starttime = gettm();
|
||
for (int id = 0; id < nthread; id++) {
|
||
th[id] = std::thread(simulate, id, nstep, ctrl.data());
|
||
}
|
||
for (int id = 0; id < nthread; id++) {
|
||
th[id].join();
|
||
}
|
||
double tottime = 1e-6 * (gettm() - starttime); // total time, in seconds
|
||
|
||
// all-thread summary
|
||
constexpr char mu_str[3] = "\u00B5"; // unicode mu character
|
||
if (nthread > 1) {
|
||
std::printf("Summary for all %d threads\n\n", nthread);
|
||
std::printf(" Total simulation time : %.2f s\n", tottime);
|
||
std::printf(" Total steps per second : %.0f\n", nthread * nstep / tottime);
|
||
std::printf(" Total realtime factor : %.2f x\n",
|
||
nthread * nstep * runner.m->opt.timestep / tottime);
|
||
std::printf(" Total time per step : %.1f %ss\n\n", 1e6 * tottime / (nthread * nstep),
|
||
mu_str);
|
||
|
||
std::printf("Details for thread 0\n\n");
|
||
}
|
||
|
||
// solver names indexed by mjtSolver
|
||
const char* solver_names[] = {"PGS", "CG", "Newton"};
|
||
const char* solto6[] = {" ", " ", ""}; // complete to 6 characters
|
||
|
||
// details for thread 0
|
||
std::printf(" Simulation time : %.2f s\n", runner.simtime[0]);
|
||
std::printf(" Steps per second : %.0f\n", nstep / runner.simtime[0]);
|
||
std::printf(" Realtime factor : %.2f x\n",
|
||
nstep * runner.m->opt.timestep / runner.simtime[0]);
|
||
std::printf(" Time per step : %.1f %ss\n\n", 1e6 * runner.simtime[0] / nstep, mu_str);
|
||
std::printf(" %s iters / step %s: %.2f\n", solver_names[runner.m->opt.solver],
|
||
solto6[runner.m->opt.solver], runner.iterations[0] / nstep);
|
||
std::printf(" Contacts / step : %.2f\n", static_cast<float>(runner.contacts[0]) / nstep);
|
||
std::printf(" Constraints / step : %.2f\n", static_cast<float>(runner.constraints[0]) / nstep);
|
||
std::printf(" Degrees of freedom : %" PRId64 "\n", runner.m->nv);
|
||
std::printf(" Dynamic memory usage : %.1f%% of %s\n\n",
|
||
100 * runner.d[0]->maxuse_arena / (double)(runner.d[0]->narena),
|
||
mju_writeNumBytes(runner.d[0]->narena));
|
||
|
||
// profiler, top-level
|
||
printf(" Internal profiler%s, %ss per step\n", nthread > 1 ? " for thread 0" : "", mu_str);
|
||
int number = runner.d[0]->timer[mjTIMER_STEP].number;
|
||
mjtNum tstep = number ? runner.d[0]->timer[mjTIMER_STEP].duration / number : 0.0;
|
||
mjtNum components = 0, total = 0;
|
||
for (int i = 0; i <= mjTIMER_ADVANCE; i++) {
|
||
if (runner.d[0]->timer[i].number > 0) {
|
||
int number = runner.d[0]->timer[i].number;
|
||
mjtNum istep = number ? runner.d[0]->timer[i].duration / number : 0.0;
|
||
mjtNum percent = number ? 100 * istep / tstep : 0.0;
|
||
std::printf(" %17s : %6.1f (%6.2f %%)\n", mjTIMERSTRING[i], istep, percent);
|
||
|
||
// save step time, add up timing of components
|
||
if (i == 0) total = istep;
|
||
if (i >= mjTIMER_POSITION) {
|
||
components += istep;
|
||
}
|
||
}
|
||
}
|
||
|
||
// "other" (computation not covered by timers)
|
||
if (tstep > 0) {
|
||
mjtNum other = total - components;
|
||
std::printf(" %17s : %6.1f (%6.2f %%)\n", "other", other, 100 * other / tstep);
|
||
}
|
||
|
||
std::printf("\n");
|
||
|
||
// mjTIMER_POSITION and its components
|
||
for (int i : {mjTIMER_POSITION, mjTIMER_POS_KINEMATICS, mjTIMER_POS_INERTIA,
|
||
mjTIMER_POS_COLLISION, mjTIMER_POS_MAKE, mjTIMER_POS_PROJECT}) {
|
||
if (runner.d[0]->timer[i].number > 0) {
|
||
mjtNum istep = runner.d[0]->timer[i].duration / runner.d[0]->timer[i].number;
|
||
if (i == mjTIMER_POSITION) {
|
||
std::printf(" position total : %6.1f (%6.2f %%)\n", istep, 100 * istep / tstep);
|
||
} else {
|
||
std::printf(" %-10s : %6.1f (%6.2f %%)\n", mjTIMERSTRING[i] + 4, istep,
|
||
100 * istep / tstep);
|
||
}
|
||
}
|
||
|
||
// components of mjTIMER_POS_COLLISION
|
||
if (i == mjTIMER_POS_COLLISION) {
|
||
for (int j : {mjTIMER_COL_BROAD, mjTIMER_COL_NARROW}) {
|
||
int number = runner.d[0]->timer[j].number;
|
||
mjtNum jstep = number ? runner.d[0]->timer[j].duration / number : 0.0;
|
||
mjtNum percent = number ? 100 * jstep / tstep : 0.0;
|
||
std::printf(" %-11s : %6.1f (%6.2f %%)\n", mjTIMERSTRING[j] + 4, jstep, percent);
|
||
}
|
||
}
|
||
}
|
||
|
||
// free per-thread data
|
||
for (int id = 0; id < nthread; id++) {
|
||
mj_deleteData(runner.d[id]);
|
||
}
|
||
|
||
// finalize
|
||
return finish();
|
||
}
|