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Mujoco_WASM/test/user/user_util_test.cc
T
Yuval Tassa cedaa47d61 Migrate tests to use MockWarningHandler for warning interception.
PiperOrigin-RevId: 933656759
Change-Id: Ia21514c302799034bf598445933dd90427284737
2026-06-17 05:06:57 -07:00

324 lines
8.9 KiB
C++

// Copyright 2024 DeepMind Technologies Limited
//
// Licensed under the Apache License, Version 2.0 (the "License");
// you may not use this file except in compliance with the License.
// You may obtain a copy of the License at
//
// http://www.apache.org/licenses/LICENSE-2.0
//
// Unless required by applicable law or agreed to in writing, software
// distributed under the License is distributed on an "AS IS" BASIS,
// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
// See the License for the specific language governing permissions and
// limitations under the License.
// Tests for user/user_util.cc
#include "src/user/user_util.h"
#include <cerrno>
#include <cmath>
#include <random>
#include <string>
#include <vector>
#include <gtest/gtest.h>
#include <gmock/gmock.h>
#include "test/fixture.h"
namespace mujoco {
namespace {
using user::FilePath;
using user::StringToVector;
using user::VectorToString;
using ::testing::ElementsAre;
using ::testing::IsNan;
using UserUtilTest = MujocoTest;
TEST_F(UserUtilTest, PathReduce) {
FilePath path = FilePath("/hello/.././world/");
EXPECT_EQ(path.Str(), "/world/");
}
TEST_F(UserUtilTest, PathReduce2) {
FilePath path = FilePath("../hello/./world/");
EXPECT_EQ(path.Str(), "../hello/world/");
}
TEST_F(UserUtilTest, PathReduce3) {
FilePath path = FilePath("../../hello/world.txt");
EXPECT_EQ(path.Str(), "../../hello/world.txt");
}
TEST_F(UserUtilTest, PathReduceWin) {
FilePath path = FilePath("C:\\hello\\..\\world");
EXPECT_EQ(path.Str(), "C:\\world");
}
TEST_F(UserUtilTest, IsAbs) {
EXPECT_TRUE(FilePath("/hello").IsAbs());
EXPECT_TRUE(FilePath("C:\\hello").IsAbs());
EXPECT_FALSE(FilePath("hello").IsAbs());
}
TEST_F(UserUtilTest, Combine) {
FilePath path1 = FilePath("/hello");
FilePath path2 = FilePath("world");
EXPECT_EQ((path1 + path2).Str(), "/hello/world");
}
TEST_F(UserUtilTest, Combine2) {
FilePath path1 = FilePath("hello/");
FilePath path2 = FilePath("world");
EXPECT_EQ((path1 + path2).Str(), "hello/world");
}
TEST_F(UserUtilTest, Combine3) {
FilePath path1 = FilePath("/hello");
FilePath path2 = FilePath("../world");
EXPECT_EQ((path1 + path2).Str(), "/world");
}
TEST_F(UserUtilTest, CombineAbs) {
FilePath path1 = FilePath("/hello");
FilePath path2 = FilePath("/world");
EXPECT_EQ((path1 + path2).Str(), "/world");
}
TEST_F(UserUtilTest, Ext) {
FilePath path = FilePath("/hello/world.txt");
EXPECT_EQ(path.Ext(), ".txt");
}
TEST_F(UserUtilTest, ExtEmpty) {
FilePath path = FilePath("/hello/world");
EXPECT_EQ(path.Ext(), "");
}
TEST_F(UserUtilTest, StripExt) {
FilePath path = FilePath("/hello/world.txt");
EXPECT_EQ(path.StripExt().Str(), "/hello/world");
}
TEST_F(UserUtilTest, StripPath) {
FilePath path = FilePath("/hello/world.txt");
EXPECT_EQ(path.StripPath().Str(), "world.txt");
}
TEST_F(UserUtilTest, StripPathEmpty) {
FilePath path = FilePath("world.txt");
EXPECT_EQ(path.StripPath().Str(), "world.txt");
}
TEST_F(UserUtilTest, StripPathWin) {
FilePath path = FilePath("\\world.txt");
EXPECT_EQ(path.StripPath().Str(), "world.txt");
}
TEST_F(UserUtilTest, StrLower) {
FilePath path = FilePath("/HELLO/worlD.txt");
EXPECT_EQ(path.StrLower(), "/hello/world.txt");
}
TEST_F(UserUtilTest, StringToVectorFloat) {
std::vector<float> v = StringToVector<float>(" 1.2 3.2 5.3 6 ");
EXPECT_THAT(v, ElementsAre(1.2, 3.2, 5.3, 6));
EXPECT_EQ(errno, 0);
}
TEST_F(UserUtilTest, StringToVectorEmpty) {
std::vector<float> v = StringToVector<float>(" ");
EXPECT_THAT(v, ElementsAre());
EXPECT_EQ(errno, 0);
}
TEST_F(UserUtilTest, StringToVectorError) {
std::vector<float> v = StringToVector<float>("2.1 3ABCD. /123/122/113");
EXPECT_THAT(v, ElementsAre(2.1));
EXPECT_EQ(errno, EINVAL);
}
TEST_F(UserUtilTest, StringToVectorInt) {
std::vector<int> v = StringToVector<int>(" -1 3 5 6 ");
EXPECT_THAT(v, ElementsAre(-1, 3, 5, 6));
EXPECT_EQ(errno, 0);
}
TEST_F(UserUtilTest, StringToVectorString) {
auto v = StringToVector<std::string>(" abc def ");
EXPECT_THAT(v, ElementsAre("abc", "def"));
}
TEST_F(UserUtilTest, StringToVectorInvalidNumber) {
auto v = StringToVector<double>("1 0.1.2.3");
EXPECT_THAT(v, ElementsAre(1));
EXPECT_EQ(errno, EINVAL);
}
TEST_F(UserUtilTest, StringToVectorNan) {
MockWarningHandler warning_handler;
warning_handler.ExpectWarnings();
auto v = StringToVector<double>("1 2 nan 3.21");
EXPECT_THAT(v[2], IsNan());
EXPECT_EQ(v[3], 3.21);
EXPECT_EQ(errno, EDOM);
}
TEST_F(UserUtilTest, StringToVectorRange) {
auto v = StringToVector<unsigned char>("-10");
EXPECT_EQ(errno, ERANGE);
}
TEST_F(UserUtilTest, VectorToString) {
std::vector<double> v = {1.2, 3.2, 5.3, 6};
EXPECT_EQ(VectorToString(v), "1.2 3.2 5.3 6");
}
TEST_F(UserUtilTest, VectorToStringEmpty) {
std::vector<double> v;
EXPECT_EQ(VectorToString(v), "");
}
// utility: modified Gram-Schmidt to orthogonalize columns of Q (n x n)
static void gramSchmidt(double* Q, int n) {
for (int j = 0; j < n; j++) {
// subtract projections onto previous columns
for (int k = 0; k < j; k++) {
double dot = 0;
for (int i = 0; i < n; i++) {
dot += Q[i * n + j] * Q[i * n + k];
}
for (int i = 0; i < n; i++) {
Q[i * n + j] -= dot * Q[i * n + k];
}
}
// normalize
double norm = 0;
for (int i = 0; i < n; i++) {
norm += Q[i * n + j] * Q[i * n + j];
}
norm = std::sqrt(norm);
for (int i = 0; i < n; i++) {
Q[i * n + j] /= norm;
}
}
}
// utility: compose SPD matrix A = Q * diag(eigvals) * Q^T
static void composeMatrix(double* A, const double* Q,
const double* eigvals, int n) {
for (int i = 0; i < n; i++) {
for (int j = 0; j <= i; j++) {
double sum = 0;
for (int k = 0; k < n; k++) {
sum += Q[i * n + k] * eigvals[k] * Q[j * n + k];
}
A[i * n + j] = sum;
A[j * n + i] = sum;
}
}
}
TEST_F(UserUtilTest, EigendecomposeConvergence) {
// seeded RNG for reproducibility
std::mt19937_64 rng;
rng.seed(42);
std::normal_distribution<double> dist(0, 1);
// sweep over matrix sizes used by flex stiffness
// order=1: 8 nodes * 3 dof = 24
// order=2: 27 nodes * 3 dof = 81
for (int n : {24, 81}) {
int total_sweeps = 0;
int max_sweeps = 0;
int count = 0;
// generate random orthogonal matrix Q via Gram-Schmidt
std::vector<double> Q(n * n);
for (int i = 0; i < n * n; i++) {
Q[i] = dist(rng);
}
gramSchmidt(Q.data(), n);
// sweep eigenvalue spectra of varying difficulty
// well-separated, clustered, wide condition number
for (double condition : {1e1, 1e3, 1e6}) {
for (double cluster : {0.0, 0.5, 0.9}) {
// construct eigenvalues
std::vector<double> eigvals(n);
for (int i = 0; i < n; i++) {
// base: logarithmically spaced from 1 to condition
double t = (double)i / (n - 1);
double base = std::exp(t * std::log(condition));
// cluster: push eigenvalues toward geometric mean
double mean = std::sqrt(condition);
eigvals[i] = (1 - cluster) * base + cluster * mean;
}
// compose A = Q * diag(eigvals) * Q^T
std::vector<double> A(n * n);
composeMatrix(A.data(), Q.data(), eigvals.data(), n);
// save copy for verification
std::vector<double> A_copy(A);
// decompose
std::vector<double> found_eigval(n);
std::vector<double> found_eigvec(n * n);
int sweeps = mjuu_eigendecompose(
A.data(), found_eigval.data(),
found_eigvec.data(), n);
total_sweeps += sweeps;
if (sweeps > max_sweeps) max_sweeps = sweeps;
count++;
// verify convergence
EXPECT_LT(sweeps, 200)
<< "n=" << n
<< " condition=" << condition
<< " cluster=" << cluster;
// verify A*v = lambda*v for each eigenpair
for (int i = 0; i < n; i++) {
for (int r = 0; r < n; r++) {
double Av = 0;
for (int c = 0; c < n; c++) {
Av += A_copy[r * n + c] * found_eigvec[c * n + i];
}
double lv = found_eigval[i] * found_eigvec[r * n + i];
EXPECT_NEAR(Av, lv,
1e-6 * std::abs(found_eigval[i]))
<< "n=" << n << " condition=" << condition
<< " cluster=" << cluster
<< " eigpair=" << i << " row=" << r;
}
}
// verify all eigenvalues are positive
for (int i = 0; i < n; i++) {
EXPECT_GT(found_eigval[i], 0)
<< "n=" << n << " eigenvalue " << i;
}
}
}
double mean_sweeps = (double)total_sweeps / count;
// assert reasonable average convergence
EXPECT_LE(mean_sweeps, 20.0)
<< "n=" << n << ": mean sweeps too high";
// assert max sweeps within budget
EXPECT_LT(max_sweeps, 200)
<< "n=" << n << ": max sweeps exceeded 200";
}
}
} // namespace
} // namespace mujoco