libdpf/test/tests/eval_interval_test.cpp
Ryan Henry e4e666f459 Initial import of libdpf.
Co-authored-by: Cursor <cursoragent@cursor.com>
2026-09-24 14:08:32 -06:00

275 lines
10 KiB
C++

#include <gtest/gtest.h>
#include <utility>
#include <type_traits>
#include "dpf.hpp"
#include "helpers/eval_common_data.hpp"
namespace
{
template <typename A, typename B>
auto recon(const A & a, const B & b)
{
if constexpr (dpf::is_secret_share_v<std::decay_t<A>>
&& dpf::is_secret_share_v<std::decay_t<B>>)
return dpf::reconstruct(a, b);
else
return a - b;
}
} // namespace
template <typename T>
struct EvalIntervalTest : public testing::Test
{
public:
using input_type = typename std::tuple_element_t<0, T>;
using output_type = typename std::tuple_element_t<1, T>;
using integral_type = dpf::utils::integral_type_from_bitlength_t<dpf::utils::bitlength_of_v<input_type>>;
using dpf_type = dpf::utils::dpf_type_t<dpf::prg::aes128, dpf::prg::aes128, input_type, output_type>;
protected:
EvalIntervalTest()
: params{std::get<std::vector<T>>(allParams)},
range{(std::size_t(1) << std::min(dpf::utils::bitlength_of_v<input_type>, std::size_t(10))-1)-1},
zero_output{from_integral_type_output(0)},
max_from_to{get_max_from_to()}
{ }
void SetUp() override
{ }
void TearDown() override
{ }
std::pair<input_type, input_type> get_from_to(const input_type & x)
{
integral_type x_int = to_integral_type(x),
min_int = to_integral_type(std::numeric_limits<input_type>::min()),
max_int = to_integral_type(std::numeric_limits<input_type>::max()),
from_int, to_int;
// set [from_int, to_int] to be centered around x_int if possible
// use [min_int, min_int+2*range] or [max_int-2*range, max_int] as needed otherwise
// range is selected to be at most 1 less than half the maximum range for input_type
// this ensures there are no overflow issues
// for signed integral types, since the MSB is internally flipped,
// needed additional check that x_int was in the correct range for the given
// conditionals (note that these added checks are always try for unsigned types)
if (x_int < min_int + range && x_int >= min_int)
{
from_int = min_int;
to_int = min_int + (range << 1);
}
else if (x_int > max_int - range && x_int <= max_int)
{
from_int = max_int - (range << 1);
to_int = max_int;
}
else
{
from_int = x_int - range;
to_int = x_int + range;
}
return std::make_pair(from_integral_type(from_int), from_integral_type(to_int));
}
template <typename IterableT0, typename IterableT1>
void assert_wrapper(const input_type & x, const output_type & y,
input_type cur, const IterableT0 & iter0, const IterableT1 & iter1)
{
auto it0 = std::begin(iter0);
auto it1 = std::begin(iter1);
for (std::size_t i = 0; i <= range<<1; ++i, cur = next_domain_point(cur), ++it0, ++it1)
{
if (cur == x)
{
ASSERT_EQ(recon(*it0, *it1), y);
}
else
{
ASSERT_EQ(recon(*it0, *it1), zero_output);
}
}
ASSERT_EQ(it0, std::end(iter0));
ASSERT_EQ(it1, std::end(iter1));
}
// calculate maximum node difference between from and to
// this allows the memoizers to be created with the correct size in advance
std::pair<input_type, input_type> get_max_from_to()
{
input_type max_from, max_to;
std::size_t max_range = 0;
for (auto [x, y] : this->params)
{
auto [from, to] = this->get_from_to(x);
std::size_t cur_range = dpf::utils::get_nodes_in_interval<dpf_type>(from, to);
if (cur_range > max_range)
{
max_range = cur_range;
max_from = from;
max_to = to;
}
}
return std::make_pair(max_from, max_to);
}
static constexpr auto to_integral_type = dpf::utils::to_integral_type<input_type>{};
static constexpr auto from_integral_type = dpf::utils::make_from_integral_value<input_type>{};
static constexpr auto from_integral_type_output = dpf::utils::make_from_integral_value<output_type>{};
std::vector<T> params;
std::size_t range;
output_type zero_output;
std::pair<input_type, input_type> max_from_to;
};
TYPED_TEST_SUITE_P(EvalIntervalTest);
TYPED_TEST_P(EvalIntervalTest, Basic)
{
for (auto [x, y] : this->params)
{
auto [dpf0, dpf1] = dpf::make_dpf(x, y);
auto [from, to] = this->get_from_to(x);
auto [buf0, iter0] = dpf::eval_interval(dpf0, from, to);
auto [buf1, iter1] = dpf::eval_interval(dpf1, from, to);
this->assert_wrapper(x, y, from, iter0, iter1);
}
}
TYPED_TEST_P(EvalIntervalTest, Outbuf)
{
for (auto [x, y] : this->params)
{
auto [dpf0, dpf1] = dpf::make_dpf(x, y);
auto buf0 = dpf::make_output_buffer_for_interval(dpf0, this->max_from_to.first, this->max_from_to.second),
buf1 = dpf::make_output_buffer_for_interval(dpf1, this->max_from_to.first, this->max_from_to.second);
auto [from, to] = this->get_from_to(x);
auto iter0 = dpf::eval_interval(dpf0, from, to, buf0),
iter1 = dpf::eval_interval(dpf1, from, to, buf1);
this->assert_wrapper(x, y, from, iter0, iter1);
}
}
TYPED_TEST_P(EvalIntervalTest, BasicIntervalMemoizer)
{
using dpf_type = typename TestFixture::dpf_type;
auto memo0 = dpf::make_basic_interval_memoizer<dpf_type>(this->max_from_to.first, this->max_from_to.second),
memo1 = dpf::make_basic_interval_memoizer<dpf_type>(this->max_from_to.first, this->max_from_to.second);
for (auto [x, y] : this->params)
{
auto [dpf0, dpf1] = dpf::make_dpf(x, y);
auto [from, to] = this->get_from_to(x);
auto [buf0, iter0] = dpf::eval_interval(dpf0, from, to, memo0);
auto [buf1, iter1] = dpf::eval_interval(dpf1, from, to, memo1);
this->assert_wrapper(x, y, from, iter0, iter1);
}
}
TYPED_TEST_P(EvalIntervalTest, FullTreeIntervalMemoizer)
{
using dpf_type = typename TestFixture::dpf_type;
auto memo0 = dpf::make_full_tree_interval_memoizer<dpf_type>(this->max_from_to.first, this->max_from_to.second),
memo1 = dpf::make_full_tree_interval_memoizer<dpf_type>(this->max_from_to.first, this->max_from_to.second);
for (auto [x, y] : this->params)
{
auto [dpf0, dpf1] = dpf::make_dpf(x, y);
auto [from, to] = this->get_from_to(x);
auto [buf0, iter0] = dpf::eval_interval(dpf0, from, to, memo0);
auto [buf1, iter1] = dpf::eval_interval(dpf1, from, to, memo1);
this->assert_wrapper(x, y, from, iter0, iter1);
}
}
TYPED_TEST_P(EvalIntervalTest, BasicIntervalMemoizerOutbuf)
{
using dpf_type = typename TestFixture::dpf_type;
auto memo0 = dpf::make_basic_interval_memoizer<dpf_type>(this->max_from_to.first, this->max_from_to.second),
memo1 = dpf::make_basic_interval_memoizer<dpf_type>(this->max_from_to.first, this->max_from_to.second);
for (auto [x, y] : this->params)
{
auto [dpf0, dpf1] = dpf::make_dpf(x, y);
auto buf0 = dpf::make_output_buffer_for_interval(dpf0, this->max_from_to.first, this->max_from_to.second),
buf1 = dpf::make_output_buffer_for_interval(dpf1, this->max_from_to.first, this->max_from_to.second);
auto [from, to] = this->get_from_to(x);
auto iter0 = dpf::eval_interval(dpf0, from, to, buf0, memo0),
iter1 = dpf::eval_interval(dpf1, from, to, buf1, memo1);
this->assert_wrapper(x, y, from, iter0, iter1);
}
}
TYPED_TEST_P(EvalIntervalTest, FullTreeIntervalMemoizerOutbuf)
{
using dpf_type = typename TestFixture::dpf_type;
auto memo0 = dpf::make_full_tree_interval_memoizer<dpf_type>(this->max_from_to.first, this->max_from_to.second),
memo1 = dpf::make_full_tree_interval_memoizer<dpf_type>(this->max_from_to.first, this->max_from_to.second);
for (auto [x, y] : this->params)
{
auto [dpf0, dpf1] = dpf::make_dpf(x, y);
auto buf0 = dpf::make_output_buffer_for_interval(dpf0, this->max_from_to.first, this->max_from_to.second),
buf1 = dpf::make_output_buffer_for_interval(dpf1, this->max_from_to.first, this->max_from_to.second);
auto [from, to] = this->get_from_to(x);
auto iter0 = dpf::eval_interval(dpf0, from, to, buf0, memo0),
iter1 = dpf::eval_interval(dpf1, from, to, buf1, memo1);
this->assert_wrapper(x, y, from, iter0, iter1);
}
}
REGISTER_TYPED_TEST_SUITE_P(EvalIntervalTest,
Basic,
Outbuf,
BasicIntervalMemoizer,
FullTreeIntervalMemoizer,
BasicIntervalMemoizerOutbuf,
FullTreeIntervalMemoizerOutbuf);
using Types = testing::Types
<
// base test
test_type<uint16_t, uint64_t>,
// test input types
test_type<int16_t, uint64_t>,
test_type<uint8_t, uint64_t>,
test_type<uint64_t, uint64_t>,
test_type<simde_int128, uint64_t>,
test_type<simde_uint128, uint64_t>,
test_type<dpf::bitstring<10>, uint64_t>,
test_type<dpf::keyword<3, dpf::alphabets::hex>, uint64_t>,
test_type<dpf::modint<10>, uint64_t>,
test_type<dpf::xor_wrapper<int16_t>, uint64_t>,
test_type<dpf::xor_wrapper<uint16_t>, uint64_t>,
// test output types
test_type<uint16_t, int64_t>,
test_type<uint16_t, uint8_t>,
test_type<uint16_t, simde_int128>,
test_type<uint16_t, simde_uint128>,
test_type<uint16_t, dpf::bit>,
test_type<uint16_t, dpf::bitstring<20, uint8_t>>,
test_type<uint16_t, dpf::bitstring<150>>,
test_type<uint16_t, dpf::xor_wrapper<int64_t>>,
test_type<uint16_t, dpf::xor_wrapper<uint64_t>>,
// custom types
test_type<custom_input_type, uint64_t>,
test_type<uint16_t, custom_output_type_small>,
test_type<uint16_t, custom_output_type_large_plus_minus>,
test_type<uint16_t, custom_output_type_large_xor>
>;
INSTANTIATE_TYPED_TEST_SUITE_P(EvalIntervalTestInstantiation, EvalIntervalTest, Types);