Files
Jungfraujoch/tests/HotPixelFinderTest.cpp
leonarski_fandClaude Opus 5.5 1bb6d59bf7 HotPixelFinder: mask dead pixels, and run on CCD sweeps too
A pixel that reads at most half of its own sector's level on average, by more
than the bound a hot pixel's excess has to clear, is now masked as dead - the
mirror of the hot rule. Nothing but a defect keeps a pixel dark frame after
frame, and every reflection whose disk covers it is integrated short.

The finder now also runs on CCD sweeps (no sensor depth): a dead CCD pixel
reads its offset, far below any ring with background, and the hot rule's
ten-fold ratio does not depend on Poisson counts either.

Found on 5jk4 (ADSC Q4, 2304x2304): the last row and the first two columns
read the offset (~20 ADU against ~60-100 around them) and were unmasked.
Reflections touching them merged to large negative intensities, and one
observation at y=2298 with sigma 10334 swamped the outer shell's half-set
CC1/2 (3.9 %) and the overall CC1/2 (0.786; 0.998 at rc.174). With the
6630 dead pixels masked the fall-off is clean: CC1/2 0.998, cut 0.96 A
(fit 1.01 A), at --prepass-fraction 0.5 and 1 alike. Counting-detector
sets with low background are untouched (myoglobin X06DA: 0 dead).

Co-Authored-By: Claude Opus 5.5 (1M context) <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01SVmAWnzCmRKAXVUCdc4iNi
2026-10-08 06:53:40 +02:00

165 lines
8.2 KiB
C++

// SPDX-FileCopyrightText: 2026 Filip Leonarski, Paul Scherrer Institute <filip.leonarski@psi.ch>
// SPDX-License-Identifier: GPL-3.0-only
#include <catch2/catch_all.hpp>
#include <cmath>
#include <random>
#include <vector>
#include "../common/CUDAWrapper.h"
#include "../common/DetectorSetup.h"
#include "../common/DiffractionExperiment.h"
#include "../common/PixelMask.h"
#include "../image_analysis/hot_pixels/HotPixels.h"
namespace {
constexpr int W = 257, H = 257, C = 128;
constexpr int NFRAMES = 60;
constexpr double OSC_DEG = 0.1, SPACING_DEG = 6.0; // 60 frames spread over a full turn
constexpr size_t I(int x, int y) { return static_cast<size_t>(y) * W + x; }
}
// A Poisson background with a powder ring, and on it four kinds of pixel: one that reads 60 counts
// high on every frame, one only 20 high - persistent, but too weak to make an outlier - one that holds
// the error value on every frame, and one crossed by a genuine reflection. The last sits close to the rotation axis, where one reflection stays on a pixel for a
// long stretch of rotation - here nine consecutive sampled frames, more than the chance bound allows
// but fewer than the one-reflection bound at that zeta. Only the first and the third are masked - and
// a 3x3 patch reading high on every frame, which is stationary in the lab and so no reflection either.
// Three dark pixels besides: one dead on the powder ring, which is masked, one on the ring reading 70%
// of it, and one dead on the 5-count background, whose deficit is too small to make an outlier.
TEST_CASE("HotPixelFinder_PersistentPixelNotBragg", "[HotPixelFinder]") {
DiffractionExperiment x(DetDECTRIS(W, H, "Test detector", ""));
x.IncidentEnergy_keV(WVL_1A_IN_KEV).DetectorDistance_mm(10.0f);
x.BeamX_pxl(static_cast<float>(C)).BeamY_pxl(static_cast<float>(C));
x.Goniometer(GoniometerAxis("omega", 0.0f, static_cast<float>(OSC_DEG), Coord(1, 0, 0), std::nullopt));
const PixelMask pixel_mask(x);
HotPixelFinder finder(x, pixel_mask, 4);
constexpr int HOT_X = 200, HOT_Y = 200, WARM_X = 190, WARM_Y = 60, ERR_X = 60, ERR_Y = 190;
constexpr int BRAGG_X = 40, BRAGG_Y = 115;
constexpr int PATCH_X = 150, PATCH_Y = 225;
constexpr int DEAD_X = C + 82, DEAD_Y = C, DIM_X = C, DIM_Y = C + 82, DEAD_BKG_X = 20, DEAD_BKG_Y = 20;
std::mt19937 rng(1);
// The powder ring is a smooth radial profile, as a real one is: 45 counts over the background at
// 82 px, 4 px sigma.
std::vector<int32_t> frame(static_cast<size_t>(W) * H), scratch;
for (int f = 0; f < NFRAMES; f++) {
for (int y = 0; y < H; y++)
for (int x_ = 0; x_ < W; x_++) {
const double r = std::hypot(x_ - C, y - C);
const double mean = 5.0 + 45.0 * std::exp(-0.5 * (r - 82.0) * (r - 82.0) / 16.0);
frame[I(x_, y)] = std::poisson_distribution<int>(mean)(rng);
}
frame[I(HOT_X, HOT_Y)] += 60;
frame[I(WARM_X, WARM_Y)] += 20;
frame[I(ERR_X, ERR_Y)] = INT32_MIN;
for (int dy = -1; dy <= 1; dy++)
for (int dx = -1; dx <= 1; dx++)
frame[I(PATCH_X + dx, PATCH_Y + dy)] += 60;
if (f >= 20 && f < 29)
frame[I(BRAGG_X, BRAGG_Y)] += 500;
frame[I(DEAD_X, DEAD_Y)] = 0;
frame[I(DIM_X, DIM_Y)] = static_cast<int32_t>(0.7 * frame[I(DIM_X, DIM_Y)]);
frame[I(DEAD_BKG_X, DEAD_BKG_Y)] = 0;
finder.AddImage(frame.data(), scratch);
}
const auto result = finder.GetMask(OSC_DEG, SPACING_DEG, 4);
CHECK(result.frames == NFRAMES);
CHECK(result.mask[I(HOT_X, HOT_Y)] == 1); // 1 = hot, 2 = error value, 3 = dead
CHECK(result.mask[I(ERR_X, ERR_Y)] == 2);
CHECK(result.mask[I(WARM_X, WARM_Y)] == 0);
CHECK(result.mask[I(BRAGG_X, BRAGG_Y)] == 0);
for (int dy = -1; dy <= 1; dy++)
for (int dx = -1; dx <= 1; dx++)
CHECK(result.mask[I(PATCH_X + dx, PATCH_Y + dy)] == 1);
CHECK(result.mask[I(DEAD_X, DEAD_Y)] == 3);
CHECK(result.mask[I(DIM_X, DIM_Y)] == 0);
CHECK(result.mask[I(DEAD_BKG_X, DEAD_BKG_Y)] == 0);
CHECK(result.hot == 10);
CHECK(result.error == 1);
CHECK(result.dead == 1);
}
#ifdef JFJOCH_USE_CUDA
// The device path against the host one, on frames that take every branch of both: a background bright
// enough on one annulus that the host reads its rings' statistics off the exact selection rather than
// its histogram, negative counts, saturated and error pixels scattered at random, masked pixels, and a
// few hundred planted pixels whose excess and persistence straddle every threshold, and as many read at
// fractions of their counts that straddle the dead rule's, so that a level or a threshold one count off
// would move some of them across. The masks must be identical.
TEST_CASE("HotPixelFinder_DeviceMatchesHost", "[HotPixelFinder]") {
if (get_gpu_count() == 0) {
WARN("No CUDA GPU present. Skipping HotPixelFinder_DeviceMatchesHost");
return;
}
DiffractionExperiment x(DetDECTRIS(W, H, "Test detector", ""));
x.IncidentEnergy_keV(WVL_1A_IN_KEV).DetectorDistance_mm(10.0f);
x.BeamX_pxl(static_cast<float>(C) + 0.3f).BeamY_pxl(static_cast<float>(C) - 0.6f);
x.Goniometer(GoniometerAxis("omega", 0.0f, static_cast<float>(OSC_DEG), Coord(1, 0, 0), std::nullopt));
PixelMask pixel_mask(x);
std::vector<uint32_t> masked(static_cast<size_t>(W) * H, 0);
for (int y = 100; y < 110; y++)
masked[I(30, y)] = 1;
pixel_mask.LoadUserMask(x, masked);
HotPixelFinder host(x, pixel_mask, 4), device(x, pixel_mask, 4);
HotPixelFinderGPU::Frame frame(std::make_shared<CudaStream>());
CudaDevicePtr<int32_t> device_image(static_cast<size_t>(W) * H);
std::mt19937 rng(7);
std::uniform_int_distribution<int> coord(0, W - 1);
struct Planted { size_t i; int excess; double rate; };
std::vector<Planted> planted;
for (int p = 0; p < 300; p++)
planted.push_back({I(coord(rng), coord(rng)), 5 + p / 3, 0.2 + 0.8 * (p % 7) / 6.0});
std::vector<std::pair<size_t, double>> dark;
for (int p = 0; p < 300; p++)
dark.push_back({I(coord(rng), coord(rng)), 0.3 + 0.3 * (p % 13) / 12.0});
std::vector<int32_t> image(static_cast<size_t>(W) * H), scratch;
std::uniform_real_distribution<double> u(0.0, 1.0);
for (int f = 0; f < NFRAMES; f++) {
for (int y = 0; y < H; y++)
for (int x_ = 0; x_ < W; x_++) {
const double r = std::hypot(x_ - C, y - C);
const double mean = 5.0 + 45.0 * std::exp(-0.5 * (r - 82.0) * (r - 82.0) / 16.0)
+ (r > 40.0 && r < 50.0 ? 3000.0 : 0.0);
int32_t v = std::poisson_distribution<int>(mean)(rng) - (r > 110.0 ? 3 : 0);
const double d = u(rng);
if (d < 0.002) v = INT32_MIN;
else if (d < 0.003) v = INT32_MAX;
image[I(x_, y)] = v;
}
for (const auto &p : planted)
if (u(rng) < p.rate && image[p.i] != INT32_MIN && image[p.i] != INT32_MAX)
image[p.i] += p.excess;
for (const auto &[i, fraction] : dark)
if (image[i] != INT32_MIN && image[i] != INT32_MAX)
image[i] = static_cast<int32_t>(fraction * image[i]);
for (size_t i = 0; i < image.size(); i++)
if (pixel_mask.GetMask()[i] != 0)
image[i] = INT32_MIN; // as the preprocessor leaves a masked pixel
host.AddImage(image.data(), scratch);
REQUIRE(cudaMemcpy(device_image, image.data(), image.size() * sizeof(int32_t), cudaMemcpyHostToDevice)
== cudaSuccess);
device.AddDeviceImage(device_image, frame);
// The frame is queued, not processed: the next copy must not overwrite it before its kernels ran.
REQUIRE(cudaStreamSynchronize(*frame.stream) == cudaSuccess);
}
const auto expected = host.GetMask(OSC_DEG, SPACING_DEG, 4);
const auto result = device.GetMask(OSC_DEG, SPACING_DEG, 4);
CHECK(expected.hot > 10);
CHECK(expected.dead > 3);
CHECK(result.dead == expected.dead);
CHECK(result.frames == expected.frames);
CHECK(result.hot == expected.hot);
CHECK(result.error == expected.error);
CHECK(result.mask == expected.mask);
}
#endif