x01dcandClaude Sonnet 5 afc13df24d
CI for csaxs_bec / test (push) Failing after 5s
feat(omny): add third progress ring, idle-time tracking, timing summary
Mirko: "the flomni progress bar has three rings. here i am seing only
two... at the end of a tomogram in flomni a summary of the measurement
time and time lost is displayed. omny seems not to have that, maybe not
even measuring the time."

Both traced back to the same root gap left by the Phase-1 tomo-queue port:
nothing computed estimated_remaining_time/estimated_finish_time, and
nothing refreshed progress["heartbeat"] *during* a running scan (only
cleared it to None on completion) -- so accumulated_idle_time stayed 0.0
forever and there was no ETA data to show or summarize.

- _tomo_scan_at_angle() now refreshes the heartbeat every angle and
  attributes any gap beyond a normal-cadence heuristic to
  accumulated_idle_time (mirrors flomni's identical formula, minus its
  frames_per_trigger factor which OMNY has no property for).
- _print_progress() computes/stores/prints estimated_remaining_time and
  estimated_finish_time once the scan rate has stabilized.
- tomo_scan() prints an end-of-scan "Total measurement time"/"...excluding
  detected gaps"/"...lost to detected gaps" summary and sends it to scilog,
  direct port of flomni's block (minus its measured_log call, which OMNY
  has no equivalent of).
- gui_tools.py: omnygui_show_progress() adds flomni's third, scan-linked
  auto-updating ring; _omnygui_update_progress()'s center label now shows
  start time / ETA / estimated finish / active hook, matching flomni's
  _flomnigui_update_progress().

_describe_active_hook()/_active_hook_source() needed no porting -- already
provided by TomoQueueMixin since Phase 1. Not ported: flomni's separate
persistent timing-statistics-log subsystem (_log_tomogram_timing()) --
out of scope for what was actually asked (the printed summary + ring
count).

9 new tests (test_omny_tomo_scan.py, test_omny_gui_tools.py). Full suite:
731 passed.

Co-Authored-By: Claude Sonnet 5 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01QLrD7sVYGLAzsQjLVJpCgt
2026-09-03 02:45:59 +02:00
2025-05-24 11:37:51 +02:00

cSAXS BEC

cSAXS specific plugins and configs for BEC This document guides you through the procedure to spin up BEC at the beamline for a new experiment (e-account). You might want to run cSAXS copy scripts before in case you want to have the former data structure to be preserved.

Overview

  • Clone cSAXS BEC repository into e-account (e.g. into ~/Data10/software/.)
  • Start Epics iocs
  • Start BEC, BEC server and load/modify the device config with relevant hardware
  • BEC commands

Clone cSAXS BEC repository

Clone the current cSAXS BEC repository from GIT into the new e-account. Create directory

mkdir ~/Data10/software
cd ~/Data10/software

Clone repository

git clone https://gitlab.psi.ch/bec/csaxs_bec.git

Start epics iocs

You can start up the iocs while the ./setup_bec.sh script is running. Be aware though that the scripts requires you to interact with it.

DelayGenerator

Open a new tab in a terminal in comp1/comp2 or cons1 and follow the commands below:

ssh gac-x12sa@localhost
cd ~/delaygen
iocsh -7.0.6 startup.script

Be aware -7.0.6 is referring to the current epics version and might change in future (SLS 2.0). To start the epics panel (only if needed), run in a new shell

caqtdm -noMsg -macro P=delaygen:,R=DG1: srsDG645.ui

More notes on usages and cabelling of DDGs. Currently 3 generators are used:

  • DDG1 for detectors (EXT Enable from SGalil stages, T0 to DDG2, AB for eiger, CD for Falcon, EF for Pilatus_2)
  • DDG2 for mcs card (ext. enable from DDG1, AB to mcs card)
  • DDG3 for fast shutter and mcs enable (AB short pulse to enable MCS (needed!!), CD to keep FSH open )

Eiger

Open a new tab in a terminal in comp1/comp2 or cons1 and follow the commands below:

ssh gac-x12sa@localhost
cd ~/Software/Eiger/
./launch_ioc

A live view of status and images for std_daq can be found here xbl-daq-29:5000.

Pilatus_2

First, start the cam server. Connect to the computer and follow the instructions printed after connecting:

ssh det@x12sa-pd-2 (Pilatus2)

The cam server will open, wait until you see **. Nex step, open a new tab in a terminal in comp1/comp2 or cons1 and follow the commands below:

ssh gac-x12sa@localhost
cd ~/Software/Pilatus300K/
./launch_epics

FalconX1

Open a new tab in a terminal in comp1/comp2 or cons1 (logged in as the current e-account) and follow the commands:

ssh x12sa-cons-01
cd /ioc/X12SA-PC-FALCONX1/
iocsh -7.0.6 startup.script

Be aware -7.0.6 is referring to the current epics version and might change in future (SLS 2.0)

Start BEC, BEC server and load device config

Step 1 needs to have finished for continuing with these steps. What remains now is to start the bec server. Connect to pc15543 and open a new terminal to run:

cd ~/Data10/software
source bec_venv/bin/activate
bec-server start
tmux attach -t bec

Open another teminal on pc15543 and start BEC:

cd ~/Data10/software
source bec_venv/bin/activate
bec

Note: In case there is a warning after starting BEC that it was not able to import scilog, you will have to pip install scilog in the bec_venv to be able to send printouts to scilog from the command line. Within a new terminal:

cd ~/Data10/software
source bec_venv/bin/activate
pip install scilog

Device config from csaxs-bec plugins

bec.config.update_session_with_file('/sls/X12SA/data/e20639/Data10/software/csaxs-bec/bec_plugins/configs/bec_device_config_sastt.yaml')
bec.config.save_current_session('~/Data10/software/current_config.yaml')

The second command is helpful if you adjust limits of motors, which will then be stored in the config and loaded if a reload of the configuration is needed.

BEC commands

A number of commands that are useful:

To move devices that are added in the config:

umv(dev.samx, 0) #absolute
umvr(dev.samx, 0) #relative
dev.samx.wm #print motor position and limits
dev.samx.limits = [low_limit, high_limit] # To set limits, note, same lower and higher limit, e.g. [0, 0] means no limits!!

Scans:

scans.acquire(exp_time = 0.5, frames_per_trigger=10, readout_time=3e-3) # equivalent to a loopscan 30 0.5
scans.line_scan(dev.samx, -1, 1, steps=20, exp_time=0.5, readout_time=3e-3, relative=True) # optional, add frames_per_trigger =10 for burst acquisition at each step
#Scan 2 motors in a step scan at the same time
scans.line_scan(dev.samx, -1, 1, dev.samy, -1, 1, steps=20, exp_time=0.5, readout_time =3e-3, relative=True) # step scan with 20 steps, again frames_per_trigger can be added for burst at each point
scans.sgalil_grid(start_y = , end_y = , interval_y = , start_x=, end_x=, interval_x =, exp_time=0.5, readout_time=3e-3, relative=True)
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