The changelog section had grown to 22 entries written from the commits
rather than for a user. Collapsed to 13, each saying what is gained
before what changed, with related work merged - the six anisotropy
entries into one, five space-group entries into two, five
integration-radius entries into one - and four things added that had no
entry at all: the packaging split, the statically linked cuFFT, the Ceres
back-end drop and REPORT_VERSION reaching 3.
CPU_DATA_ANALYSIS gains 9.5, the adaptive integration radius: the r80
measurement, the clamp, the constant-ring-area r3, the convergence test,
why it applies to the final pass only and the density fallback. Three
passages there had gone stale against the code: 13.1 still described the
I/sigma quantile fallback that b90fcfb98 deleted, and 13.5 said the gate
tests delta_B when it tests delta_B_linear and that the high-symmetry
caution fires wherever the Laue class leaves one free direction, which
0da593b32 narrowed.
RUGNUX gains an Installation section - there was no page anywhere saying
where rugnux comes from - a synopsis, a worked first run naming the files
that actually appear and the report keys to grep, and sections on the
unmerged export and on diffraction anisotropy. Its report section list
was one section behind: anisotropy is 9, warnings is 10.
The packaging change reached further than the changelog implied, so the
pages describing what a release ships were corrected too: the viewer
tarball no longer carries rugnux or the two developer utilities, the
Linux archives link cuFFT statically rather than shipping it beside the
binary under an $ORIGIN rpath, the aarch64 archive has a higher glibc
floor than the RHEL 8 ones and is untested on hardware, the archives
unpack with no top-level directory, and the notices live per package
under share/doc/jfjoch_<component>. The RHEL 9.5 vm_flags workaround in
FPGA_PCIE_DRIVER is obsolete and now says so.
10 KiB
jfjoch_viewer
jfjoch_viewer is the interactive desktop application of Jungfraujoch. It opens diffraction
datasets, displays each image together with the analysis overlay (spots, predictions, azimuthal
integration, per-image statistics), and can follow a live data collection by syncing with a
running jfjoch_broker over its HTTP interface.
It is a standalone Qt 6 application, distributed pre-built for Linux and Windows on the Gitea release page and in the Jungfraujoch RPM/APT repositories — see Release contents for what each package contains and what it requires, and Deployment for how to install it.
Where it fits among the three analysis tools
| Tool | Mode | Driven by | Output |
|---|---|---|---|
jfjoch_broker |
Online, real-time streaming analysis on FPGA + GPU | HTTP/REST + ZeroMQ | Live results and statistics, images streamed to jfjoch_writer |
jfjoch_viewer |
Interactive, on-screen exploration | Qt desktop application | On screen; a processing job can write the same files as rugnux |
rugnux |
Offline batch processing of a stored dataset | Command-line interface | _process.h5, and .mtz/.cif/.hkl when merging |
Functionality
- Opens HDF5 files written by
jfjoch_writer(*_master.h5) and the*_process.h5files produced byrugnux. It also opens NXmx files written by DECTRIS detectors, though that path has had only limited testing. - Runs an embedded data-processing pipeline — the same analysis code as the rest of Jungfraujoch — performing spot finding, indexing and integration on the displayed image, with the result drawn over it. This interactive analysis is not written anywhere.
- Runs full processing jobs on the open dataset with Analyze dataset, on the same
rugnuxengine and off the GUI thread. The settings panel's MX / AzInt / Calib toggle decides what a run does — full analysis, azimuthal integration only, or a detector calibration — over a chosen image range, optionally writing_process.h5and the merged.mtz/.cif. A finished run becomes a selectable view of the dataset, so several processing runs can be compared against each other, and its merging statistics (or, for a calibration, its fitted geometry) open in their own window; the Processing panel lists the runs and reopens those results. The equivalentrugnuxcommand line can also be copied out to run the same job on a cluster instead. - Detector calibration against a powder standard, on the Calib page: pick the calibrant
(
LaB6,AgBh,CeO2,Si,ice, or the open dataset's own unit cell) and fit either the image on screen (Guess / Refine detector calibration) or the whole dataset (Analyze dataset, which writes a pyFAI<output prefix>.poni). The whole-dataset fit measures the rings either from the azimuthally-binned profile summed over the run (Rings, the default) or from the pooled spot lists (Spots), and reports PONI x/y, the two tilts and the distance against the header values. Judge it by the radial rms, not the beam-centre sigma: the sigma shrinks with the number of ring points, so a fit that sits a couple of pixels off every ring can still report a small one. Rings needs the run to be integrated in azimuthal sectors — with the AzInt page's Azimuthal bins below 4 the calibration run raises it to 32, asrugnux --mode calibrationdoes, and says so. - Settings panel for the geometry, unit cell, spot finding, indexing, azimuthal integration, Bragg integration, scaling, powder calibration and a reference dataset — the same settings the CLI takes.
- Auxiliary windows: image list, dataset metadata, spot list, reflection list, reciprocal-space viewer, 2D azimuthal-integration image, calibration-image viewer and a magnifier; plus the Inspector (per-image statistics, image features, resolution rings, ROI statistics), the Image strip thumbnail feed and dataset-info charts.
- User-mask editing: build a user mask interactively, load one from TIFF (replacing or adding to the current one), save it as TIFF, clear it, or upload it to a connected server.
- Layout presets (View ▸ Image layout / Processing layout / Reset layout) rearrange the docks for looking at images or at processing results.
Hardware
As with the rest of Jungfraujoch, serious performance requires an NVIDIA GPU. On systems with a
GPU, use the CUDA build (a separate package variant everywhere: RPM/APT repository, .tgz and
Windows installer) for the embedded indexing and integration; the non-CUDA build runs the same
pipeline on the CPU at much lower throughput. The CUDA build also runs on a machine without a GPU —
see Release contents ▸ CUDA and non-CUDA builds.
The CUDA build needs an NVIDIA driver on the host but no CUDA toolkit — 525.60.13 or newer for
the CUDA 12 artefacts (RHEL 8 packages, portable Linux .tgz), 580.65.06 or newer on Linux and an
R580 driver on Windows for the CUDA 13 ones (RHEL 9, Ubuntu, Windows installer). The Windows
installer and the .tgz are CUDA 13 and CUDA 12 respectively, which also decides the oldest GPU
they run on — a V100 needs the CUDA 12 .tgz. See
Release contents ▸ GPU generations and the NVIDIA driver.
Opening data
- File ▸ Open (
Ctrl+O) — open a local HDF5 file. - File ▸ Open HTTP (
Ctrl+H) — connect to ajfjoch_brokerHTTP endpoint to follow a live collection. The dialog defaults to hostlocalhostand port8080; these defaults can be overridden with the environment variablesJUNGFRAUJOCH_HTTP_HOSTandJUNGFRAUJOCH_HTTP_PORT. - Command line —
jfjoch_viewer <file.h5>opens a file (or anhttp://host:portURL) on start-up.--dbus <true|false>(-d) enables or disables the D-Bus interface (default: enabled);--helpand--versionbehave as usual.
D-Bus interface
When enabled, the viewer registers the D-Bus interface ch.psi.jfjoch_viewer, so other processes
can drive it:
LoadFile(filename, image_number=0, summation=1)— open a file (or anhttp://host:portURL) and display the given image.LoadImage(image_number, summation=1)— navigate to an image in the already-open dataset.
summation sums that many consecutive images before display.
Building from source on Windows
jfjoch_viewer is the one Jungfraujoch component that is cross-platform: it builds on Windows 11
with MSVC and the full CUDA GPU path. (The rest of Jungfraujoch — broker, receiver, FPGA host — is
Linux-only.) A pre-built installer is published with every release, so building from source is only
needed to develop or to change the build options. On Windows the build is automatically restricted
to the viewer and the libraries it needs (JFJOCH_VIEWER_ONLY is forced on), and the remaining
dependencies are fetched and built automatically (the first configure needs network access).
Verified toolchain — the same one the released installer is built with:
- Windows 11
- Visual Studio 2026 with the C++ (MSVC) toolset — required; CUDA on Windows builds through MSVC
- CUDA Toolkit 13.3 (12.8 or newer is required) — for the GPU indexing/integration path
- Qt 6.11 for MSVC (
msvc2022_64), including the Qt Charts module — e.g.C:\Qt\6.11.1\msvc2022_64 - CMake plus Ninja. The CMake that ships with Visual Studio is the simplest choice and works out of
the box — it comes with the C++ workload, so there is nothing extra to install. Any recent
standalone CMake (from cmake.org, or the one bundled with Qt in
C:\Qt\Tools\CMake_64) works too. - zlib and Eigen — the two libraries not auto-fetched on Windows. Build/install both into one prefix
(here
C:\deps) and point CMake at it::: static zlib git clone --branch v1.3.1 https://github.com/madler/zlib cmake -G Ninja -S zlib -B zlib-build -DCMAKE_INSTALL_PREFIX=C:/deps cmake --build zlib-build --target install :: Eigen 3.4 (header-only) -- install just the headers with `cmake --install`; the BLAS/LAPACK/test :: targets are disabled since they are not needed (and fail to build under MSVC). Use the 3.4 series: :: the project requests find_package(Eigen3 3.4), which Eigen's same-major rule rejects for 5.x. git clone --branch 3.4.0 https://gitlab.com/libeigen/eigen.git cmake -G Ninja -S eigen -B eigen-build -DCMAKE_INSTALL_PREFIX=C:/deps ^ -DEIGEN_BUILD_BLAS=OFF -DEIGEN_BUILD_LAPACK=OFF -DEIGEN_BUILD_DOC=OFF -DBUILD_TESTING=OFF cmake --install eigen-build - Optional: NSIS to build the
.exeinstaller.
Configure and build from an x64 Native Tools Command Prompt for VS 2026 (so cl, nvcc and
ninja are on PATH):
cmake -G Ninja -B build-win -DCMAKE_BUILD_TYPE=Release ^
-DCMAKE_PREFIX_PATH="C:/deps;C:/Qt/6.11.1/msvc2022_64"
cmake --build build-win --target jfjoch_viewer
Notes:
CMAKE_PREFIX_PATH(theC:/depsprefix plus Qt) is the only required flag — CMake finds zlib and Eigen from the prefix, so no separate-DZLIB_ROOTis needed.- The CUDA toolchain is located automatically from the
CUDA_PATHenvironment variable that the CUDA installer sets (or fromnvcconPATH). Pass-DCMAKE_CUDA_COMPILER=".../bin/nvcc.exe"only ifnvccis installed in a nonstandard location and is not found. - For a machine without an NVIDIA GPU, add
-DJFJOCH_USE_CUDA=OFF: the viewer then runs the same pipeline on the CPU (FFTW indexer) at lower throughput.
To produce a self-contained installer (bundles the Qt runtime via windeployqt and — on the CUDA
build — the cuFFT runtime DLL, so the target host needs neither Qt nor a CUDA toolkit), with NSIS
installed:
cd build-win
cpack
The NSIS generator is selected automatically on Windows (no -G needed). What comes out, and how
the CUDA and CPU variants are named and told apart, is described in
Release contents ▸ Windows installer.