Changes for page The FLASH HDF5 structure
Last modified by sndueste on 2025/02/06 10:55
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- BAM-basics and outlook-2018_DESY-template_16-9Format.pdf
- FLASH1__DaqChannel2HdfNamePbd.xlsx
- HDF5_structure.jpg
- HDF5_structure_desc.jpg
- binder_badge.png
- image2019-10-21_17-2-50.png
- image2019-10-22_10-52-27.png
- image2020-11-16_15-26-28.png
- image2020-11-16_15-31-45.png
- image2020-11-16_16-26-3.png
- image2021-2-9_10-51-6.png
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... ... @@ -1,0 +1,1 @@ 1 +favourite|data|hdf5|analysis|offline - Content
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... ... @@ -1,3 +1,6 @@ 1 +{{layout}} 2 +{{layout-section ac:type="single"}} 3 +{{layout-cell}} 1 1 == Contents == 2 2 3 3 ... ... @@ -16,14 +16,18 @@ 16 16 {{code language="none"}}> module load xray{{/code}} 17 17 {{code language="none"}}> hdfview{{/code}} 18 18 19 - [[Contents>>doc:||anchor="Contents"]]22 +or you can use 20 20 21 - == The new(starting2021) HDF5 format ==24 +{{code language="none"}}> silx view{{/code}} 22 22 23 23 \\ 24 24 25 - FLASH provides a conversion of its data acquisition (DAQ) to the commonly used[[HDF5>>url:https://www.hdfgroup.org/solutions/hdf5/||shape="rect"]] format.Correlated data are mapped by a primary index called **train ID**. Every data set has anindividual index oftrain IDsto identify the data even when data are missingor deviate in update rate.If the data set ofchoice contains gaps, users have to decidehow to treat missing values. DAQ channels are spread across various files with one file name patternfor each DAQ. This means users haveto assemble data from different files if necessary.28 +[[Contents>>doc:||anchor="Contents"]] 26 26 30 +== The FLASH HDF5 format == 31 + 32 +FLASH provides a conversion of its data acquisition (DAQ) to the commonly used [[HDF5>>url:https://www.hdfgroup.org/solutions/hdf5/||shape="rect"]] format. Correlated data are mapped by a primary index called **train ID**. Every data set has an individual index of train IDs to identify the data even when data are missing or deviate in update rate. If the data set of choice contains gaps, users have to decide how to treat missing values. DAQ channels are spread across various files with one file name pattern for each DAQ. This means users have to assemble data from different files if necessary. 33 + 27 27 The hierarchy is realized using a human readable named HDF tree with each DAQ channel containing the data sets "//value//" and "//index//". Additionally, the HDF group //zraw// contains a tree of the original DAQ channel names. 28 28 29 29 Reference implementation, which follows the concept of Python libraries like Pandas, Xarray, or Dask, is given below. ... ... @@ -31,7 +31,7 @@ 31 31 \\ 32 32 33 33 {{expand title="Discontinued HDF formats"}} 34 -== Comparison to FLASH's deprecated HDF formats == 41 +=== Comparison to FLASH's deprecated HDF formats === 35 35 36 36 Before 2021, FLASH provided two different HDF formats formally known as //near-online// and //offline// HDF files. 37 37 ... ... @@ -40,75 +40,84 @@ 40 40 While the near-online HDF files were converted live during the beamtime, the offline HDF files were manually compiled weeks/months later. Near-online HDF files were used by a provided API [[BeamtimeDaqAccess>>url:https://confluence.desy.de/display/FLASHUSER/Near-Online+data+analysis#Near-Onlinedataanalysis-BriefUserGuidetoBeamtimeDAQAccess||shape="rect"]], which also searches for DAQ channels in files. With assembled files "by run", all DAQ channels were existing in the same HDF file. While shorter runs usually fitted into one file, longer runs still had to be aggregated over several files. The creation of the assembled type of files still involves the use of fairly unstable DAQ Mex-functions As the environment required for using the Mex-functions is already deprecated, its continued existence is uncertain. 41 41 42 42 The HDF hierarchy is almost identical in all formats. While in the the recent format each DAQ channel contains the data sets "value" and "index", the deprecated format had one data set for each DAQ channel. The deprecated formats supplies no time axis parameters for spectra data types. 43 -{{/expand}} 44 44 45 -== HDF excerpt: == 46 - 47 47 \\ 48 48 49 - ADCdata asexample for**fast****data** (10 Hz):53 +**HDF5 example files (old format)** 50 50 55 +Here we have a few HDF5 samples (User data combined with Photon diagnostics data) from a few beamtimes showing the different kind options. 56 + 57 +[[image:attach:image2019-10-21_17-2-50.png||thumbnail="true" width="300"]] [[download HDF5 (Images @ FL2)>>url:https://desycloud.desy.de/index.php/s/nyEgeCWJFC4gao2||shape="rect"]] 58 + 51 51 \\ 52 52 53 -[[image:attach:image20 20-11-16_15-26-28.png||height="250"]]61 +[[~[~[image:attach:image2019-10-22_10-52-27.png~|~|thumbnail="true" width="300"~]~]download HDF5 (GHz ADC and OPIS @ FL2)>>url:https://desycloud.desy.de/index.php/s/AeA2kPNNnZgX95A||shape="rect"]] 54 54 55 55 \\ 56 56 57 - {{info title="Sample scripts in python"}}58 - == Reference implementation(Python) ==65 +\\ 66 +{{/expand}} 59 59 60 -[[~[~[image:attach:binder_badge.png~|~|thumbnail="true" width="120"~]~]>>url:https://mybinder.org/v2/git/https%3A%2F%2Fgitlab.desy.de%2Fchristopher.passow%2Fflash-daq-hdf/master||shape="rect"]] 68 +=== HDF examples: === 69 +{{/layout-cell}} 70 +{{/layout-section}} 61 61 62 -(% class="Object" %)[[https:~~/~~/gitlab.desy.de/christopher.passow/flash-daq-hdf>>url:https://gitlab.desy.de/christopher.passow/flash-daq-hdf||shape="rect"]] 63 -{{/info}} 72 +{{layout-section ac:type="three_equal"}} 73 +{{layout-cell}} 74 +* ADC data as example for **fast** **data** (10 Hz): 64 64 65 65 \\ 66 66 67 -\\ 78 +[[image:attach:image2020-11-16_15-26-28.png||height="250"]] 79 +{{/layout-cell}} 68 68 69 -== The discontinued (till 2021) FLASH HDF5 structure == 81 +{{layout-cell}} 82 +* The //average// FEL pulse energy as example for the **slow** **data**. Here the data is not saved with 10 Hz - thus not for every FEL pulse train. The data is typically saved with 1 Hz if the values are changing (like the FEL energy) and every about 20 sec if there is no change for longer time ( e.g. motor set values). Thus to use the data together with the "fast" one, one has to interpolate the data as explained in the examples in the repos below show (e.g. {{code language="none"}}df['GMD_T_average'] = df['GMD_T_average'].interpolate(method='linear'){{/code}}) 70 70 71 - Thephotondiagnostic,electrondiagnosticandbeamlineinformationaswellastheinformationabout thepump-probe laserandtheinfrastructure offered for users (GHz/MHz ADCs) can beincludedin one HDF5file which isorganizedaccordingto train IDs. The general structureis:84 + ( as example only every 10th train ID is listed in the HDF group "index") 72 72 73 -* Electron Diagnostic 74 -* Photon Diagnostics 75 -* Beamlines 76 -* Experiment 77 -* Timing 78 -[[image:attach:HDF5_structure.jpg||height="400"]] 86 +[[image:attach:image2020-11-16_15-31-45.png||height="250"]] 87 +{{/layout-cell}} 79 79 80 -A detailed description of (most) channels can be found in the lower part of the hdf5 viewer: 81 -[[image:attach:HDF5_structure_desc.jpg||thumbnail="true" height="250"]] 89 +{{layout-cell}} 90 +* ((( 91 +//zraw// group contains the **original DAQ (DOOCS) names** 92 +))) 82 82 83 - [[Contents>>doc:||anchor="Contents"]]94 + of the properties saved in the DESY internal raw format. (For experts) 84 84 85 85 \\ 86 86 87 -=== HDF5 example files === 98 +[[image:attach:image2020-11-16_16-26-3.png||height="400"]] 99 +{{/layout-cell}} 100 +{{/layout-section}} 88 88 89 -Here we have a few HDF5 samples (User data combined with Photon diagnostics data) from a few beamtimes showing the different kind options. 102 +{{layout-section ac:type="single"}} 103 +{{layout-cell}} 104 +{{info}} 105 +=== There are different options that help you to work with the FLASH HDF5 data in Python === 90 90 91 -[[image:attach:image2019-10-21_17-2-50.png||thumbnail="true" width="300"]] [[download HDF5 (Images @ FL2)>>url:https://desycloud.desy.de/index.php/s/nyEgeCWJFC4gao2||shape="rect"]] 107 +* The currently developed option for large data sets: [[the FAB package>>url:https://hasfcpkg.desy.de/fab/fab.html||shape="rect"]] ... see below 108 +* and for smaller projects: (% class="Object" %)[[https:~~/~~/gitlab.desy.de/christopher.passow/flash-daq-hdf>>url:https://gitlab.desy.de/christopher.passow/flash-daq-hdf||shape="rect"]] 92 92 93 -\\ 110 +(% class="Object" %)See also the collection of Demo data and sample scripts : [[doc:FLASHUSER.Data Acquisition and controls.Data Access at FLASH (DAQ, gpfs,\.\.\.).Offline data analysis (DAQ).Collection of HDF5 sample data from different beamlines.WebHome]] and [[doc:FLASHUSER.Data Acquisition and controls.Data Access at FLASH (DAQ, gpfs,\.\.\.).Offline data analysis (DAQ).DEMO - Working with FLASH data.WebHome]] 111 +{{/info}} 112 +{{/layout-cell}} 113 +{{/layout-section}} 94 94 95 -[[~[~[image:attach:image2019-10-22_10-52-27.png~|~|thumbnail="true" width="300"~]~]download HDF5 (GHz ADC and OPIS @ FL2)>>url:https://desycloud.desy.de/index.php/s/AeA2kPNNnZgX95A||shape="rect"]] 115 +{{layout-section ac:type="single"}} 116 +{{layout-cell}} 117 + 96 96 97 - \\119 +== Complete list of recordable parameters == 98 98 121 +The complete list for the relation between DOOCS names and HDF5 names for the recordable parameters can be found in [[DESY's Repository~[~[image:url:http://hasfweb.desy.de/pub/TWiki/TWikiDocGraphics/external-link.gif~|~|width="13" height="12"~]~]>>url:https://stash.desy.de/projects/CS/repos/pah/browse/src/camp/data/channel2HdfName.dat||shape="rect"]]. 99 99 \\ 100 100 101 -[[Contents>>doc:||anchor="Contents"]] 102 - 103 -\\ 104 - 105 105 == Most popular FLASH parameters and their names in HDF5, DOOCS and (raw) DAQ == 106 106 107 107 {{id name="DOOCSparameters"/}} 108 108 109 -The complete list for the relation between DOOCS names and HDF5 names for the recordable parameters can be found in [[DESY's Repository~[~[image:url:http://hasfweb.desy.de/pub/TWiki/TWikiDocGraphics/external-link.gif~|~|width="13" height="12"~]~]>>url:https://stash.desy.de/projects/CS/repos/pah/browse/src/camp/data/channel2HdfName.dat||shape="rect"]]. 110 -The most common and often used ones are summarized below: 111 - 112 112 Note, the HDF group and data set names apply to our HDF tree version since vers. 0.3.0. 113 113 114 114 \\ ... ... @@ -115,8 +115,6 @@ 115 115 116 116 === FLASH1 === 117 117 118 -\\ 119 - 120 120 ==== Beamline info (FLASH1) ==== 121 121 122 122 {{code language="none"}}/FL1/Beamlines/Attenuator/pressure{{/code}} ... ... @@ -193,8 +193,7 @@ 193 193 194 194 ==== Photon Diagnostics SASE ([[GMD>>url:http://photon-science.desy.de/facilities/flash/photon_diagnostics/gmd_intensity_and_position/index_eng.html||shape="rect"]]) ==== 195 195 196 -\\ 197 - 210 +{{expand title="Discontinued GMD format (used until 2021)"}} 198 198 (% style="color: rgb(0,0,0);" %)**Discontinued GMD data recording / evaluation (VME + PhotonFlux ML server)** 199 199 200 200 {{code language="none"}}/FL1/Photon Diagnostic/GMD/Average energy/energy tunnel{{/code}} ... ... @@ -242,10 +242,11 @@ 242 242 DAQ channel: {{code language="none"}}PBD.PHFLUX/BDA.ENERGYPULSE.FF{{/code}} 243 243 desc :Energy per pulse BDA (from e-) - uncorrected values. There are also values saved if there was no beam ... just background noise 244 244 units : a.u. (more or less µJ but need to be calibrated with the "Average energy" for good precision)** [[see here for help>>doc:FLASHUSER.jddd-linked help pages.Calibrating the pulse resolved (electron) data from GMD.WebHome]]** 258 +{{/expand}} 245 245 246 246 \\ 247 247 248 -(% style="color: rgb(0,0,0) ;" %)**NEW (2021) GMD data recording / evaluation (MTCA,analogto FLASH2 and XFEL)**262 +(% style="letter-spacing: 0px; color: rgb(0, 0, 0)" %)**NEW (since 2021) GMD data recording / evaluation (same format as FLASH2 and XFEL)** 249 249 250 250 {{code language="none"}}/FL1/Photon Diagnostic/GMD/Average energy/energy tunnel{{/code}} 251 251 //always saved (PBD)// ... ... @@ -403,8 +403,27 @@ 403 403 units: nC 404 404 405 405 ===== 406 -arrival time ===== 420 +arrival time (BAM) ===== 407 407 422 +{{info title="BAM information: updates 2022"}} 423 +* see: [[Info collection about the BAMs and how to use the BAM data>>url:https://confluence.desy.de/display/FLASHUSER/Info+collection+for+the+BAM||shape="rect"]] 424 +* The data format of the BAM has been completely altered in the 2022 shutdown 425 +* before 2022 BAMs were always saving the arrival time information for each 1µs bucked regardless if there were electrons in the accelerator or not. IN addition the arrival times for FL1 and FL2 were saved in the same parameter ... 426 +* THIS is now different. There are new parameters saving only the arrival times for pulses that go to FL1 and to FL2 (in detail: first time slot of the accelerator and second) 427 +* There has been also a renaming (and relocation) of the BAMs. 428 +** acc: 4DBC3 → FL0.DBC2 429 +** FL1: 1SFELC → FL1.SFELC 430 +** FL2: FL2XTDS → (% style="color: rgb(23,43,77);" %)FL2.SEED5 431 +* for more Info: [[LINK to detailed infos from MSK>>url:https://confluence.desy.de/display/SDiagPublic/BAM+Data+Structure||shape="rect"]] 432 +* [[Link a collection of papers related to the BAM and the analysis of pump-probe experiments>>doc:FLASHUSER.Additional helpful things.FLASH beamlines and instruments references.WebHome]] 433 +* a recent [[talk about the working principle of the BAM>>attach:BAM-basics and outlook-2018_DESY-template_16-9Format.pdf]] 434 +{{/info}} 435 + 436 +\\ 437 + 438 +{{expand title="Discontinued BAM format (used until end 2021)"}} 439 +(% style="color: rgb(0,0,0);" %)**Discontinued BAM data recording ** 440 + 408 408 {{code language="none"}}/FL1/Electron Diagnostic/BAM/4DBC3/electron bunch arrival time (low charge){{/code}} 409 409 //always saved (PBD)// 410 410 DOOCS prop : {{code language="none"}}FLASH.SDIAG/BAM/4DBC3/LOW_CHARGE_ARRIVAL_TIME{{/code}} ... ... @@ -412,22 +412,94 @@ 412 412 desc: Electron bunch arrival time measured with the BAM inside the accelerator - however shows a very good correlation to the arrivaltime of the XUV pulses in the experiment (pulse resolved data). 413 413 units: ps (bigger numbers indicate later arrivaltime of the electrons) 414 414 448 +\\ 449 + 415 415 {{code language="none"}}/FL1/Electron Diagnostic/BAM/1SFELC/electron bunch arrival time (low charge){{/code}} 416 416 //always saved (PBD)// 417 417 DOOCS prop : {{code language="none"}}FLASH.SDIAG/BAM/1SFELC/LOW_CHARGE_ARRIVAL_TIME{{/code}} 418 418 DAQ channel: {{code language="none"}}FLASH.SDIAG/BAM.DAQ/1SFELC.LOW_CHARGE_ARRIVAL_TIME{{/code}} 419 419 desc: Electron bunch arrival time measured with the BAM before the undulator (pulse resolved data). This one was newly installed in 2020. 420 -units: ps (bigger numbers indicate later arrivaltime of the electrons) 455 +units: ps (bigger numbers indicate later arrival time of the electrons) 456 +{{/expand}} 421 421 422 -{{info title="BAM hints"}} 423 -* besides the arrivaltime from FLASH1 there is also the FLASH2/3 electron arrival time saved.In case of doubt ask your local contact 424 -* [[Link a collection of papers related to the BAM and the analysis of pump-probe experiments >>doc:FLASHUSER.Additional helpful things.FLASH beamlines and instruments references.WebHome]] 425 -* [[LINK to detailed infos from MSK (may only work inside DESY network~[~[image:url:http://hasfweb.desy.de/pub/TWiki/TWikiDocGraphics/external-link.gif~|~|width="13" height="12"~]~]>>url:http://www.desy.de/~~mbock/pages/BAM_daq_channel_descriptions.html||shape="rect"]] 426 -* a recent [[talk about the working principle of the BAM>>attach:BAM-basics and outlook-2018_DESY-template_16-9Format.pdf]] 427 -{{/info}} 458 +====== **BAM FL0.DBC2**{{code language="none"}}{{/code}} ====== 428 428 460 +(% style="color: rgb(255,102,0);" %)**DBC2**/electron bunch arrival time (HDF5 name not yet implemented - see zraw)(%%) 461 +//always saved (PBD)// 462 +{{code language="none"}}/FL1/Electron Diagnostic/BAM/ {{/code}}DOOCS prop : FLASH.SDIAG/BAM/**FL0.DBC2**/ARRIVAL_TIME.ABSOLUTE.SA1.COMP 463 +DAQ (% style="color: rgb(0,0,0);" %)channel: FLASH.SDIAG/BAM/**FL0.DBC2**/ARRIVAL_TIME.ABSOLUTE.SA1.COMP (%%) 464 +desc: Electron bunch arrival time measured with the BAM inside the accelerator (after bunch compressor 2). The property contains only the arrival time of the bunches sent to FL1 (e.g. if there are 30 bunches in FL1 the first 30 values are the arrival time the remaining numbers still may have arbitrary numbers looking like a signal which they are not ). These are the same values as the "raw" data below - just "cleaned". The values show a very good correlation to the arrival time of the XUV pulses in the experiment (see help). 465 + 466 +units: fs (bigger numbers (typically) indicate later arrival times of the electrons). 467 + 429 429 \\ 430 430 470 +(% style="color: rgb(255,102,0);" %)DBC2/electron bunch arrival time (raw) (HDF5 name not yet implemented - see zraw){{code language="none"}}/FL1/Electron Diagnostic/BAM/{{/code}}(%%) 471 +//always saved (PBD)// 472 +DOOCS prop : FLASH.SDIAG/BAM/FL0.DBC2/ARRIVAL_TIME.ABSOLUTE 473 +DAQ channel: (% style="color: rgb(0,0,0);" %)FLASH.SDIAG/BAM/FL0.DBC2/ARRIVAL_TIME.ABSOLUTE (%%) 474 +desc: Electron bunch arrival time measured with the BAM inside the accelerator (after bunch compressor 2). Here the complete bunch train from the FEL is recorded (FLASH1 and FLASH2 pulses). Thus there are values from FLASH 1 in the first part. they may be separated by several "0" values if the reprate is different from 1 MHz ... - It shows a very good correlation to the arrival time of the XUV pulses in the experiment (see help). 475 +units: fs (bigger numbers (typically) indicate later arrival times of the electrons). 476 + 477 +\\ 478 + 479 +(% style="color: rgb(255,102,0);" %)DBC2/error (HDF5 name not yet implemented - see zraw){{code language="none"}}/FL1/Electron Diagnostic/BAM/{{/code}}(%%) 480 +//always saved (PBD)// 481 +DOOCS prop : FLASH.SDIAG/BAM/FL0.DBC2/ARRIVAL_TIM(% style="color: rgb(0,0,0);" %)E.bamError(%%) 482 +DAQ channel: (% style="color: rgb(0,0,0);" %)FLASH.SDIAG/BAM/FL0.DBC2/ARRIVAL_TIME.BAMERROR(%%) 483 +desc: If the value is 0 , the BAM is working well. If it is non-zero there is a problem !! 484 + 485 +\\ 486 + 487 +(% style="color: rgb(255,102,0);" %)DBC2/status (HDF5 name not yet implemented - see zraw){{code language="none"}}/FL1/Electron Diagnostic/BAM/{{/code}}(%%) 488 +//always saved (PBD)// 489 +DOOCS prop : FLASH.SDIAG/BAM/FL0.DBC2/ARRIVAL_TIM(% style="color: rgb(0,0,0);" %)E..bamStatus.//1//(%%) 490 +DAQ channel(% style="color: rgb(0,0,0);" %): FLASH.SDIAG/BAM/FL0.DBC2/ARRIVAL_TIME.BAMSTATUS.1(%%) 491 +desc: (% style="letter-spacing: 0.0px;" %) status bit: 0 - data is valid; 1 - beam present; 2 - calibration ongoing; 3 - feedback enabled; 4 - feedback acting; mostly check for bit 0 == 1 is sufficient 492 + 493 +\\ 494 + 495 +====== **BAM FL1.SFELC**{{code language="none"}}{{/code}} ====== 496 + 497 +(% style="font-family: SFMono-Medium , ~"SF Mono~" , ~"Segoe UI Mono~" , ~"Roboto Mono~" , ~"Ubuntu Mono~" , Menlo , Courier , monospace;letter-spacing: 0.0px;" %)/FL1/Electron Diagnostic/BAM/**SFELC**(% style="color: rgb(255,102,0);" %)/electron bunch arrival time (HDF5 name not yet implemented - see zraw) 498 + 499 +//always saved (PBD)// 500 +(% style="color: rgb(23,43,77);" %)**FL1.SFELC**(%%) 501 +(% style="color: rgb(0,0,0);" %)channel: FLASH.SDIAG/BAM/(% style="color: rgb(0, 0, 0); color: rgb(23, 43, 77)" %)FL1.SFELC(% style="color: rgb(0,0,0);" %)/ARRIVAL_TIME.ABSOLUTE.SA1.COMP 502 +{{code language="none"}} DOOCS prop : FLASH.SDIAG/BAM//ARRIVAL_TIME.ABSOLUTE.SA1.COMPDAQ {{/code}}(% style="letter-spacing: 0.0px;" %)desc: Electron bunch arrival time measured with the BAM before the undulator (pulse resolved data). This one was newly installed in 2020.. The property contains only the arrival time of the bunches sent to FL1 (e.g. if there are 30 bunches in FL1 the first 30 values are the arrival time the remaining numbers still may have arbitrary numbers looking like a signal which they are not). These are the same values as the "raw" data below - just "cleaned". The values show a very good correlation to the arrival time of the XUV pulses in the experiment (see help). 503 +units: fs (bigger numbers (typically) indicate later arrival times of the electrons). 504 + 505 +\\ 506 + 507 +\\ 508 + 509 +(% style="color: rgb(23,43,77);" %)SFELC(% style="color: rgb(255,102,0);" %)/electron bunch arrival time (raw) (HDF5 name not yet implemented - see zraw){{code language="none"}}/FL1/Electron Diagnostic/BAM/{{/code}}(%%) 510 +//always saved (PBD)// 511 +DOOCS prop : FLASH.SDIAG/BAM/(% style="color: rgb(23,43,77);" %)FL1.SFELC(%%)/ARRIVAL_TIME.ABSOLUTE 512 +DAQ channel:** **(% style="color: rgb(0,0,0);" %)FLASH.SDIAG/BAM/FL1.SFELC/ARRIVAL_TIME.ABSOLUTE (%%) 513 +desc: Electron bunch arrival time measured with the BAM before the undulator (pulse resolved data). This one was newly installed in 2020. Here the complete bunch train from the FEL is recorded (FLASH1 and FLASH2 pulses). Thus there are values from FLASH 1 in the first part. they may be separated by several "0" values if the reprate is different from 1 MHz ... - It shows a very good correlation to the arrival time of the XUV pulses in the experiment (see help). 514 +units: fs (bigger numbers (typically) indicate later arrival times of the electrons). 515 + 516 +\\ 517 + 518 +(% style="color: rgb(23,43,77);" %)SFELC(% style="color: rgb(255,102,0);" %)/error (HDF5 name not yet implemented - see zraw){{code language="none"}}/FL1/Electron Diagnostic/BAM/{{/code}}(%%) 519 +//always saved (PBD)// 520 +DOOCS prop : FLASH.SDIAG/BAM/(% style="color: rgb(23,43,77);" %)FL1.SFELC(%%)/ARRIVAL_TIM(% style="color: rgb(0,0,0);" %)E.bamError(%%) 521 +DAQ channel(% style="color: rgb(0,0,0);" %): FLASH.SDIAG/BAM/FL1.SFELC/ARRIVAL_TIME.BAMERROR(%%) 522 +desc: If the value is 0 , the BAM is working well. If it is non-zero there is a problem !! 523 + 524 +\\ 525 + 526 +(% style="color: rgb(23,43,77);" %)SFELC(% style="color: rgb(255,102,0);" %)/status (HDF5 name not yet implemented - see zraw){{code language="none"}}/FL1/Electron Diagnostic/BAM/{{/code}}(%%) 527 +//always saved (PBD)// 528 +DOOCS prop : FLASH.SDIAG/BAM/(% style="color: rgb(23,43,77);" %)FL1.SFELC(%%)/ARRIVAL_TIM(% style="color: rgb(0,0,0);" %)E..bamStatus.//1//(%%) 529 +DAQ chann(% style="color: rgb(0,0,0);" %)el: FLASH.SDIAG/BAM/FL1.SFELC/ARRIVAL_TIME.BAMSTATUS.1(%%) 530 +desc: status bit: 0 - data is valid; 1 - beam present; 2 - calibration ongoing; 3 - feedback enabled; 4 - feedback acting; mostly check for bit 0 == 1 is sufficient 531 + 532 +\\ 533 + 534 +\\ 535 + 431 431 ===== electron beam profile ===== 432 432 433 433 {{code language="none"}}/FL1/Electron Diagnostic/Electron bunch profile/TDS profile{{/code}} ... ... @@ -498,11 +498,11 @@ 498 498 499 499 ===== set number of pulses ===== 500 500 501 -{{code language="none"}}/FL1/Timing/set number of bunches{{/code}} 606 +(% style="color: rgb(255, 0, 0); color: rgb(255, 102, 0)" %)(HDF5 name not yet implemented - see zraw)(% style="color: rgb(255,0,0);" %){{code language="none"}}/FL1/Timing/set number of bunches {{/code}}(%%) 502 502 //always saved (PBD)// 503 -DOOCS prop : {{code language="none"}}FLASH.DIAG/T OROID.ML/3GUN/NUMBEROFBUNCHES.FLASH1{{/code}}504 -DAQ channel: {{code language="none"}} TTF2.UTIL/LASER.CONTROL/GUN/PULSE_NUM{{/code}}505 -desc: Number of pulses set at thegun (FLASH1)608 +DOOCS prop : {{code language="none"}}FLASH.DIAG/TIMINGINFO/TIME1.BUNCH_FIRST_INDEX.1 [4th number]{{/code}} 609 +DAQ channel: {{code language="none"}}FLASH.DIAG/TIMINGINFO/TIME1.BUNCH_FIRST_INDEX.1 [4th number]{{/code}} 610 +desc: Number of bunches set in the control (timing) system. The property contains 4 numbers. the last one is the number of pulses (see also [[doc:FLASH.Timing properties]] (internal link)). If pulses are used for diagnostic of the protection system of the accelerator limits the number of bunches to be accelerated and thus the actual number of pulses may be smaller than the set one 506 506 units: 507 507 508 508 ===== actual number of pulses ===== ... ... @@ -521,7 +521,7 @@ 521 521 //always saved (PBD)// 522 522 DOOCS prop : {{code language="none"}}TTF2.DIAG/PBD.TOROID.ML/12EXP/CHARGE.TD{{/code}} 523 523 DAQ channel: {{code language="none"}}TTF2.DIAG/PBD.TOROID.ML/12EXP{{/code}} 524 -desc: The bunch pattern as function of time in a burst recorded by toroid ediagnostic BEHIND the undulator. (FLASH1)629 +desc: The bunch pattern as function of time in a burst recorded by toroid diagnostic BEHIND the undulator. (FLASH1) 525 525 units: 526 526 \\ 527 527 ... ... @@ -554,6 +554,43 @@ 554 554 555 555 ==== Pump Probe Laser (FLASH1) ==== 556 556 662 +**PIGLET (PG laser)** 663 + 664 +**{{code language="none"}}/FL1/Experiment/Pump probe laser{{/code}}** 665 + 666 +FLASH.LASER/FLACPUPGLASER1.PULSEENERGY/DIAG1out/PULSEENERGY.MEAN 667 +FLASH.LASER/FLACPUPGLASER1.PULSEENERGY/PG1_incoupl/PULSEENERGY.MEAN 668 +FLASH.LASER/FLACPUPGLASER1.PULSEENERGY/PG2_incoupl/PULSEENERGY.MEAN 669 +FLASH.SYNC/LASER.LOCK.EXP/FLASH1.MOD1.PG.OSC/FMC0.MD22.1.ENCODER_POSITION.RD 670 +FLASH.SYNC/LASER.LOCK.EXP/FLASH1.MOD1.PG.OSC/FMC0.MD22.1.ENCODER_POSITION_RAW.RD 671 +FLASH.SYNC/LASER.LOCK.EXP/FLASH1.MOD1.PG.OSC/FMC0.MD22.1.POSITION.RD 672 + 673 +**BL - Hidra laser ** 674 + 675 +Property,Units,Description 676 +FLASH.LASER/MODBL.CAM/BL1.13.AC/DAQ_CHANNEL,'AU','FL1HIDRAPP1 Autocorrelation (IR) ROI readout' 677 +FLASH.LASER/MODBL.CAM/BL1.14.VF/DAQ_CHANNEL,'AU','FL1HIDRAPP1 Virtual Focus Camera (IR) ROI readout' 678 +FLASH.LASER/MODBL.SENSORBOARD/PDTRIG_CAMP/DAQ_CHANNEL,'au','FL1PPL Energy channels' 679 +FLASH.LASER/MODBL.SPECT/CAMP_IR/DAQ_CHANNEL,'au','FL1PPL BL Table Spectrum' 680 +FLASH.LASER/HIDRAPP1.SPECTRUM_ANALYSIS/CAMP_IR/DAQ_CHANNEL,'au','FL1PPL Spectrum Analysis' 681 +FLASH.SYNC/LASER.LOCK.EXP/F1.PPL.OSC/FMC0.MD22.1.POSITION.RD,'ps','FL1PPL Optical Delay Line (act)' 682 +FLASH.SYNC/LASER.LOCK.EXP/F1.PPL.OSC/FMC0.MD22.1.POSITION_SET.WR,'ps','FL1PPL Optical Delay Line (set)' 683 +FLASH.SYNC/LASER.LOCK.EXP/F1.PPL.OSC/FMC0.MD22.1.ENCODER_POSITION.RD,'ps','FL1PPL Optical Delay Line (Encoder Readback)' 684 +FLASH.FEL/FLAPPBEAMLINES.MOTOR/CAMP_Delayline/FPOS,'ps','FL1PPL NIR delay BL1 table (act)' 685 +FLASH.FEL/FLAPPBEAMLINES.MOTOR/CAMP_Delayline/FPOS.SET,'ps','FL1PPL NIR delay BL1 table (set)' 686 +FLASH.FEL/FLAPPBEAMLINES.MOTOR/CAMP.ATT/FPOS,'degree','FL1PPL Transmission degree (act)' 687 +FLASH.FEL/FLAPPBEAMLINES.MOTOR/CAMP.ATT/FPOS.SET,'degree','FL1PPL Transmission degree (set)' 688 +FLASH.FEL/FLAPPBEAMLINES.MOTOR/Camp_Focus_Lens/FPOS,'mm','FL1PPL Focus Mirror Stage Position (act)' 689 +FLASH.FEL/FLAPPBEAMLINES.MOTOR/Camp_Focus_Lens/FPOS.SET,'mm','FL1PPL Focus Mirror Stage Position (set)' 690 +FLASH.LASER/MODBL.FEEDFWD/BL1_Att/INPUT.Y,'%','FL1PPL Transmission rate' 691 +FLASH.SYNC/LASER.LOCK.EXP/F1.PPL.OSC/CURRENT_INPUT_JITTER.RD,'fs','FL1PPL Sync. Jitter' 692 +FLASH.SYNC/LASER.LOCK.EXP/F1.PPL.OSC/LOCK_STATUS.VALUE.RD,'au','FL1PPL Sync. Status' 693 + 694 +\\ 695 + 696 +\\ 697 + 698 +{{expand title="Parameters used until 2021"}} 557 557 {{code language="none"}}/FL1/Experiment/Pump probe laser/laser attenuation{{/code}} 558 558 559 559 //always saved (PBD)// ... ... @@ -594,7 +594,8 @@ 594 594 //always saved (PBD)// 595 595 DOOCS prop : {{code language="none"}}TTF2.FEL/TDOLFEL/TDOLFEL/STREAK.CAM.TIME{{/code}} 596 596 DOOCS prop : {{code language="none"}}TTF2.FEL/TDOLFEL/TDOLFEL/STREAK.CAM.TIME{{/code}} 597 -desc: delaytime between the optical laser and the FEL units: ps 739 +desc: delay time between the optical laser and the FEL units: ps 740 +{{/expand}} 598 598 599 599 \\ 600 600 ... ... @@ -604,7 +604,7 @@ 604 604 605 605 ==== User Data (FLASH1) ==== 606 606 607 -The data saved specifically for detectors at an experiment will show up in /Experiment/ there is a large number of options for cameras or monitoring pslow properties (motor positons etc) for user experiments. For details please ask your local contact.750 +The data saved specifically for detectors at an experiment will show up in /Experiment/ there is a large number of options for cameras or monitoring of slow properties (motor positions etc) for user experiments. For details please ask your local contact. 608 608 609 609 NOTE: If parameters for an experiment are included on short notice the correct naming in the HDF5 may not be in time and the data will show up in /uncategorized/ with the DOOCS names 610 610 ... ... @@ -632,13 +632,13 @@ 632 632 {{code language="none"}}/FL1/Experiment/BL3/ADQ412 GHz ADC/CH03/TD{{/code}} 633 633 634 634 DOOCS prop : {{code language="none"}}FLASH.FEL/ADC.ADQ.PG/EXP1.CH00/CH00.TD or CH00.DAQ.TD{{/code}} 635 -here the {{code language="none"}}CH00.TD{{/code}} is the full ADC trace as it is sampled ( typically several 100.000 samples per pulse train) while the {{code language="none"}}CH00.DAQ.TD{{/code}} trace only has the number of samples which are sent to the DAQ OR if //grouping// is activated the {{code language="none"}}CH00.DAQ.TD{{/code}} con atins only the grouped spectra. To read the ADC trace with an online analysis program the {{code language="none"}}CH00.DAQ.TD{{/code}} is used preferablly.778 +here the {{code language="none"}}CH00.TD{{/code}} is the full ADC trace as it is sampled ( typically several 100.000 samples per pulse train) while the {{code language="none"}}CH00.DAQ.TD{{/code}} trace only has the number of samples which are sent to the DAQ OR if //grouping// is activated the {{code language="none"}}CH00.DAQ.TD{{/code}} contains only the grouped spectra. To read the ADC trace with an online analysis program the {{code language="none"}}CH00.DAQ.TD{{/code}} is used preferably. 636 636 DAQ channel: {{code language="none"}}FLASH.FEL/ADC.ADQ.PG/EXP1.CH00{{/code}} 637 637 638 638 In addition there are also additional parameters saved like: 639 639 640 640 * {{code language="none"}}sample frequency{{/code}}: it shows the sample frequency in MHz (number of samples per µs). NOTE: the clock of the ADC is NOT synchronized to the FLASH timing system. Thus the number of samples between bunches in the bunch train may be not integer numbers which will be show up for long bunch trains. 641 -* {{code language="none"}}number of samples{{/code}}: total number of sam oles recorded for each 10 Hz trigger784 +* {{code language="none"}}number of samples{{/code}}: total number of samples recorded for each 10 Hz trigger 642 642 * {{code language="none"}}error (ADC):{{/code}} 0 indicates that there was no error 643 643 644 644 ===== MHz ADCs ===== ... ... @@ -651,7 +651,7 @@ 651 651 In addition there are also additional parameters saved like: 652 652 653 653 * {{code language="none"}}sample frequency{{/code}}: it shows the sample frequency in MHz (number of samples per µs). NOTE: the clock of the ADC is NOT synchronized to the FLASH timing system. Thus the number of samples between bunches in the bunch train may be not integer numbers which will be show up for long bunch trains. 654 -* {{code language="none"}}number of samples{{/code}}: total number of sam oles recorded for each 10 Hz trigger797 +* {{code language="none"}}number of samples{{/code}}: total number of samples recorded for each 10 Hz trigger 655 655 656 656 [[Contents>>doc:||anchor="Contents"]] 657 657 ... ... @@ -812,7 +812,7 @@ 812 812 // saved opon request (PBD2)// 813 813 DOOCS prop : {{code language="none"}}FLASH.UTIL/STORE/FL2.TUNNEL.OPIS/VAL040{{/code}} 814 814 DAQ channel:{{code language="none"}} FLASH.UTIL/STORE/FL2.TUNNEL.OPIS/VAL040{{/code}} 815 -desc : meanwavelength ( ~~ 1 sec averaging time ) measured in the TUNNEL for a specific bunch out of the bunch train (via photoelectron spectroscopy) 958 +desc : mean wavelength ( ~~ 1 sec averaging time ) measured in the TUNNEL for a specific bunch out of the bunch train (via photoelectron spectroscopy) 816 816 units : nm 817 817 818 818 \\ ... ... @@ -826,11 +826,11 @@ 826 826 827 827 \\ 828 828 829 -If Opis is running typically on the the averaged data is saved. For several experiments it may make sense to save the information for each single bunch. This is up to now done by savng the comple ate ADC trace of the TOF setup. This is a huge amount of data and needs processing. This has to be performed after the beamtime in close contact to [[Markus Braune>>mailto:markus.braune@desy.de||shape="rect"]] ( respobsible for [[OPIS>>url:http://photon-science.desy.de/facilities/flash/photon_diagnostics/opis_spectrometer/index_eng.html||shape="rect"]])972 +If Opis is running typically on the the averaged data is saved. For several experiments it may make sense to save the information for each single bunch. This is up to now done by saving the complete ADC trace of the TOF setup. This is a huge amount of data and needs processing. This has to be performed after the beamtime in close contact to [[Markus Braune>>mailto:markus.braune@desy.de||shape="rect"]] ( responsible for [[OPIS>>url:http://photon-science.desy.de/facilities/flash/photon_diagnostics/opis_spectrometer/index_eng.html||shape="rect"]]) 830 830 831 831 \\ 832 832 833 -In case OPIS was not operating there is still informaton about the **set wavelength** for the undulators (see below) which may differ by up to 5 % from the actual wavelength due to different settings in the FEL ... 976 +In case OPIS was not operating there is still information about the **set wavelength** for the undulators (see below) which may differ by up to 5 % from the actual wavelength due to different settings in the FEL ... 834 834 835 835 \\ 836 836 ... ... @@ -849,8 +849,21 @@ 849 849 850 850 \\ 851 851 852 -===== undulatorsettings=====995 +===== electron bunch energy ===== 853 853 997 +{{code language="none"}}/FL2/Electron Diagnostic/Electron energy/energy of first bunch/behind undulators{{/code}} 998 +//always saved (PBD2)// 999 +DOOCS prop : {{code language="none"}}FLASH.DIAG/BEAM_ENERGY_MEASUREMENT/FL2XTDS/ENERGY.FLASH2{{/code}} 1000 +DAQ channel: (% style="color: rgb(94,108,132);" %)TTF2.DAQ/PBD2.BEAM.ENERGY.MEAS.ML.COPY/FL2XTDS.ENERGY.FLASH2{{code language="none"}}{{/code}}(%%) 1001 +desc: electron bunch energy measured behind the undulator. Data is saved with 10 Hz - BUT (for computation reasons) only the energy of the FIRST bunch is recorded. The data is also available for (% style="color: rgb(94,108,132);" %)extraction and septum in the beginning of FLASH2 1002 + 1003 +(% style="letter-spacing: 0.0px;" %)units: (% class="twikiNewLink" %)MeV 1004 + 1005 +\\ 1006 + 1007 +(% style="color: rgb(94,108,132);font-weight: 600;letter-spacing: 0.0px;" %) 1008 +undulator settings 1009 + 854 854 {{code language="none"}}/FL2/Electron Diagnostic/Undulator setting/set wavelength{{/code}} 855 855 //always saved (PBD2)// 856 856 DOOCS prop : {{code language="none"}}TTF2.FEEDBACK/FL2.WAVELENGTHCONTROL/FLASH2/WAVELENGTH{{/code}} ... ... @@ -868,8 +868,27 @@ 868 868 The gap values are saved for all 12 undulators (Nr 3 to 14). Undulator 14 is the one closest to the experimental hall. 869 869 870 870 ===== 871 -arrival time ===== 1027 +arrival time (BAM) ===== 872 872 1029 +{{info title="BAM information: updates 2022"}} 1030 +* see: [[Info collection about the BAMs and how to use the BAM data>>url:https://confluence.desy.de/display/FLASHUSER/Info+collection+for+the+BAM||shape="rect"]] 1031 +* The data format of the BAM has been completely altered in the 2022 shutdown 1032 +* before 2022 BAMs were always saving the arrival time information for each 1µs bucked regardless if there were electrons in the accelerator or not. I addition the arrival times for FL1 and FL2 were saved in the same parameter ... 1033 +* THIS is now different. There are new parameters saving only the arrival times for pulses that go to FL1 and to FL2 (in detail: first time slot of the accelerator and second) 1034 +* There has been also a renaming (and relocation) of the BAMs. 1035 +** acc: 4DBC3 → FL0.DBC2 1036 +** FL1: 1SFELC → FL1.SFELC 1037 +** FL2: 8FL2XTDS → (% style="color: rgb(23,43,77);" %)FL2.SEED5 1038 +* for more Info: [[LINK to detailed infos from MSK>>url:https://confluence.desy.de/display/SDiagPublic/BAM+Data+Structure||shape="rect"]] 1039 +* [[Link a collection of papers related to the BAM and the analysis of pump-probe experiments>>doc:FLASHUSER.Additional helpful things.FLASH beamlines and instruments references.WebHome]] 1040 +* a recent [[talk about the working principle of the BAM>>attach:BAM-basics and outlook-2018_DESY-template_16-9Format.pdf]] 1041 +{{/info}} 1042 + 1043 +\\ 1044 + 1045 +{{expand title="Discontinued BAM format (used until end 2021)"}} 1046 +(% style="color: rgb(0,0,0);" %)**Discontinued BAM data recording ** 1047 + 873 873 {{code language="none"}}/FL2/Electron Diagnostic/BAM/8FL2XTDS/electron bunch arrival time (low charge){{/code}} 874 874 //always saved (PBD2)// 875 875 DOOCS prop : {{code language="none"}}FLASH.SDIAG/BAM/8FL2XTDS/LOW_CHARGE_ARRIVAL_TIME{{/code}} ... ... @@ -894,8 +894,94 @@ 894 894 * [[LINK to detailed infos from MSK (may only work inside DESY network~[~[image:url:http://hasfweb.desy.de/pub/TWiki/TWikiDocGraphics/external-link.gif~|~|width="13" height="12"~]~]>>url:http://www.desy.de/~~mbock/pages/BAM_daq_channel_descriptions.html||shape="rect"]] 895 895 * a recent [[talk about the working principle of the BAM>>attach:BAM-basics and outlook-2018_DESY-template_16-9Format.pdf]] 896 896 {{/info}} 1072 +{{/expand}} 897 897 1074 +\\ 898 898 1076 +====== **BAM FL0.DBC2**{{code language="none"}}{{/code}} ====== 1077 + 1078 +(% style="color: rgb(255,102,0);" %)**DBC2**/electron bunch arrival time (HDF5 name not yet implemented - see zraw){{code language="none"}}/FL2/Electron Diagnostic/BAM/{{/code}} 1079 + 1080 +{{code language="none"}}/zraw/FLASH.SDIAG/BAM.DAQ/FL0.DBC2.ARRIVAL_TIME.ABSOLUTE.SA2.COMP/dGroup/{{/code}} 1081 + 1082 +//always saved (PBD)// 1083 +**FL0.DBC2** 1084 +(% style="color: rgb(0,0,0);" %)channel: FLASH.SDIAG/BAM/**FL0.DBC2**/ARRIVAL_TIME.ABSOLUTE.SA2.COMP 1085 +{{code language="none"}} DOOCS prop : FLASH.SDIAG/BAM//ARRIVAL_TIME.ABSOLUTE.SA2.COMPDAQ {{/code}}(% style="letter-spacing: 0.0px;" %)desc: Electron bunch arrival time measured with the BAM inside the accelerator (after bunch compressor 2). The property contains only the arrival time of the bunches sent to FL2 (e.g. if there are 30 bunches in FL2 the first 30 values are the arrival time the remaining numbers still may have arbitrary numbers looking like a signal which they are not0). These are the same values as the "raw" data below - just "cleaned". The values show a very good correlation to the arrival time of the XUV pulses in the experiment (see help). 1086 +units: fs (bigger numbers (typically) indicate later arrival times of the electrons). 1087 + 1088 +\\ 1089 + 1090 +(% style="color: rgb(255,102,0);" %)DBC2/electron bunch arrival time (raw) (HDF5 name not yet implemented - see zraw){{code language="none"}}/FL2/Electron Diagnostic/BAM/{{/code}} 1091 + 1092 +{{code language="none"}}/zraw/FLASH.SDIAG/BAM.DAQ/FL0.DBC2.ARRIVAL_TIME.ABSOLUTE.SA2/dGroup/{{/code}} 1093 +//always saved (PBD)// 1094 +{{code language="none"}}DOOCS prop : FLASH.SDIAG/BAM/FL0.DBC2/ARRIVAL_TIME.ABSOLUTE{{/code}} 1095 +(% style="color: rgb(0,0,0);" %)FLASH.SDIAG/BAM/FL0.DBC2/ARRIVAL_TIME.ABSOLUTE {{code language="none"}}DAQ channel: {{/code}}(%%) 1096 +desc: Electron bunch arrival time measured with the BAM inside the accelerator (after bunch compressor 2). Here the complete bunch train from the FEL is recorded (FLASH1 and FLASH2 pulses). Thus there are values from FLASH 2 in the second part. they may be separated by several "0" values if the reprate is different from 1 MHz ... - It shows a very good correlation to the arrival time of the XUV pulses in the experiment (see help). 1097 +units: fs (bigger numbers (typically) indicate later arrival times of the electrons). 1098 + 1099 +\\ 1100 + 1101 +(% style="color: rgb(255,102,0);" %)DBC2/error (HDF5 name not yet implemented - see zraw){{code language="none"}}/FL2/Electron Diagnostic/BAM/{{/code}}(%%) 1102 +//always saved (PBD)// 1103 +(% style="color: rgb(0,0,0);" %)E.bamError{{code language="none"}}DOOCS prop : FLASH.SDIAG/BAM/FL0.DBC2/ARRIVAL_TIM{{/code}}(%%) 1104 +(% style="color: rgb(0,0,0);" %)FLASH.SDIAG/BAM/FL0.DBC2/ARRIVAL_TIME.BAMERROR{{code language="none"}}DAQ channel: {{/code}}(%%) 1105 +desc: If the value is 0 , the BAM is working well. If it is non-zero there is a problem !! 1106 + 1107 +\\ 1108 + 1109 +(% style="color: rgb(255,102,0);" %)DBC2/status (HDF5 name not yet implemented - see zraw){{code language="none"}}/FL2/Electron Diagnostic/BAM/{{/code}}(%%) 1110 +//always saved (PBD)// 1111 +(% style="color: rgb(0,0,0);" %)E..bamStatus.//2//{{code language="none"}}DOOCS prop : FLASH.SDIAG/BAM/FL0.DBC2/ARRIVAL_TIM{{/code}}(%%) 1112 +(% style="color: rgb(0,0,0);" %): FLASH.SDIAG/BAM/FL0.DBC2/ARRIVAL_TIME.BAMSTATUS.2{{code language="none"}}DAQ channel{{/code}}(%%) 1113 +desc: status bit: 0 - data is valid; 1 - beam present; 2 - calibration ongoing; 3 - feedback enabled; 4 - feedback acting; mostly check for bit 0 == 1 is sufficient 1114 + 1115 +\\ 1116 + 1117 +====== **BAM FL2.SEED5**{{code language="none"}}{{/code}} ====== 1118 + 1119 +/FL2/Electron Diagnostic/BAM/**SEED5**(% style="color: rgb(255,102,0);" %)/electron bunch arrival time (HDF5 name not yet implemented - see zraw) 1120 + 1121 +(% style="color: rgb(0,0,0);" %){{code language="none"}}/zraw/FLASH.SDIAG/BAM.DAQ/FL0.SEED5.ARRIVAL_TIME.ABSOLUTE.SA2.COMP/dGroup/{{/code}} 1122 + 1123 +//always saved (PBD)// 1124 +(% style="color: rgb(23,43,77);" %)**FL2.SEED5**(%%) 1125 +(% style="color: rgb(0,0,0);" %)channel: FLASH.SDIAG/BAM/(% style="color: rgb(0, 0, 0); color: rgb(23, 43, 77)" %)**FL2.SEED5**(% style="color: rgb(0,0,0);" %)/ARRIVAL_TIME.ABSOLUTE.SA1.COMP 1126 +{{code language="none"}} DOOCS prop : FLASH.SDIAG/BAM//ARRIVAL_TIME.ABSOLUTE.SA1.COMPDAQ {{/code}}(%%)desc: Electron bunch arrival time measured with the BAM before the undulator (pulse resolved data). This one was newly installed in 2020.. The property contains only the arrival time of the bunches sent to FL2 (e.g. if there are 30 bunches in FL2 the first 30 values are the arrival time the remaining numbers still may have arbitrary numbers looking like a signal which they are not). These are the same values as the "raw" data below - just "cleaned". The values show a very good correlation to the arrival time of the XUV pulses in the experiment (see help). 1127 +units: fs (bigger numbers (typically) indicate later arrival times of the electrons). 1128 + 1129 +\\ 1130 + 1131 +\\ 1132 + 1133 +(% style="color: rgb(23,43,77);" %)SEED5(% style="color: rgb(255,102,0);" %)/electron bunch arrival time (raw) (HDF5 name not yet implemented - see zraw){{code language="none"}}/FL2/Electron Diagnostic/BAM/{{/code}} 1134 + 1135 +(% style="color: rgb(0,0,0);" %){{code language="none"}}/zraw/FLASH.SDIAG/BAM.DAQ/FL0.SEED5.ARRIVAL_TIME.ABSOLUTE.SA2/dGroup/{{/code}}(%%) 1136 +//always saved (PBD)// 1137 +(% style="color: rgb(23,43,77);" %)**FL2.SEED5**{{code language="none"}}DOOCS prop : FLASH.SDIAG/BAM//ARRIVAL_TIME.ABSOLUTE{{/code}}(%%) 1138 +**~ **(% style="color: rgb(0,0,0);" %)FLASH.SDIAG/BAM/(% style="color: rgb(0, 0, 0); color: rgb(23, 43, 77)" %)**FL2.SEED5**(% style="color: rgb(0,0,0);" %)/ARRIVAL_TIME.ABSOLUTE {{code language="none"}}DAQ channel:{{/code}}(%%) 1139 +desc: Electron bunch arrival time measured with the BAM before the undulator (pulse resolved data). This one was newly installed in 2020. Here the complete bunch train from the FEL is recorded (FLASH1 and FLASH2 pulses). Thus there are values from FLASH 2 in the second part. they may be separated by several "0" values if the reprate is different from 1 MHz ... - It shows a very good correlation to the arrival time of the XUV pulses in the experiment (see help). 1140 +units: fs (bigger numbers (typically) indicate later arrival times of the electrons). 1141 + 1142 +\\ 1143 + 1144 +(% style="color: rgb(23,43,77);" %)SEED5(% style="color: rgb(255,102,0);" %)/error (HDF5 name not yet implemented - see zraw){{code language="none"}}/FL2/Electron Diagnostic/BAM/{{/code}}(%%) 1145 +//always saved (PBD)// 1146 +(% style="color: rgb(23,43,77);" %)**FL2.SEED5**(% style="color: rgb(0,0,0);" %)E.bamError{{code language="none"}}DOOCS prop : FLASH.SDIAG/BAM//ARRIVAL_TIM{{/code}}(%%) 1147 +(% style="color: rgb(0,0,0);" %): FLASH.SDIAG/BAM/(% style="color: rgb(0, 0, 0); color: rgb(23, 43, 77)" %)**FL2.SEED5**(% style="color: rgb(0,0,0);" %)/ARRIVAL_TIME.BAMERROR{{code language="none"}}DAQ channel{{/code}}(%%) 1148 +desc: If the value is 0 , the BAM is working well. If it is non-zero there is a problem !! 1149 + 1150 +\\ 1151 + 1152 +(% style="color: rgb(23,43,77);" %)SEED5(% style="color: rgb(255,102,0);" %)/status (HDF5 name not yet implemented - see zraw){{code language="none"}}/FL2/Electron Diagnostic/BAM/{{/code}}(%%) 1153 +//always saved (PBD)// 1154 +(% style="color: rgb(23,43,77);" %)**FL2.SEED5**(% style="color: rgb(0,0,0);" %)E.bamStatus.//2//{{code language="none"}}DOOCS prop : FLASH.SDIAG/BAM//ARRIVAL_TIM{{/code}}(%%) 1155 +(% style="color: rgb(0,0,0);" %)el: FLASH.SDIAG/BAM/(% style="color: rgb(0, 0, 0); color: rgb(23, 43, 77)" %)**FL2.SEED5**(% style="color: rgb(0,0,0);" %)/ARRIVAL_TIME.BAMSTATUS.2{{code language="none"}}DAQ chann{{/code}}(%%) 1156 +desc: status bit: 0 - data is valid; 1 - beam present; 2 - calibration ongoing; 3 - feedback enabled; 4 - feedback acting; mostly check for bit 0 == 1 is sufficient 1157 + 1158 +\\ 1159 + 899 899 [[Contents>>doc:||anchor="Contents"]] 900 900 901 901 \\ ... ... @@ -920,6 +920,17 @@ 920 920 desc: repetition rate of the bunches / pulses within the burst (FLASH2) 921 921 units: kHz 922 922 1184 +\\ 1185 + 1186 +===== set number of pulses ===== 1187 + 1188 +(% style="color: rgb(255, 0, 0); color: rgb(255, 102, 0)" %)(HDF5 name not yet implemented - see zraw)(% style="color: rgb(255,0,0);" %){{code language="none"}}/FL2/Timing/set number of bunches {{/code}}(%%) 1189 +//always saved (PBD2)// 1190 +DOOCS prop : {{code language="none"}}FLASH.DIAG/TIMINGINFO/TIME1.BUNCH_FIRST_INDEX.2 [4th number]{{/code}} 1191 +DAQ channel: {{code language="none"}}FLASH.DIAG/TIMINGINFO/TIME1.BUNCH_FIRST_INDEX.2 [4th number]{{/code}} 1192 +desc: Number of bunches set in the control (timing) system. The property contains 4 numbers. the last one is the number of pulses (see also [[doc:FLASH.Timing properties]] (internal link)). If pulses are used for diagnostic of the protection system of the accelerator limits the number of bunches to be accelerated and thus the actual number of pulses may be smaller than the set one 1193 +units: 1194 + 923 923 ===== actual number of pulses ===== 924 924 925 925 {{code language="none"}}/FL1/Timing/actual number of bunches{{/code}} ... ... @@ -1018,11 +1018,129 @@ 1018 1018 1019 1019 \\ 1020 1020 1021 -==== Pump Probe Laser (FLASH2) ==== 1293 +==== FL 24 Pump Probe Laser (FLASH2) ==== 1022 1022 1023 -The remay bemoreinformation availablefromthe"Laser DAQ".laese contact your Laser LocalContact.1295 +These are the parameters that can be saved in the FL2 User DAQ for the FL2 PP laser//** FOR BEAMLINE FL24**// 1024 1024 1297 +\\ 1025 1025 1299 +**User delay** 1300 + 1301 +Delay (set value): 1302 + 1303 +{{code language="none"}}FLASH.SYNC/LASER.LOCK.EXP/F2.PPL.OSC/FMC0.MD22.0.POSITION_SET.WR{{/code}} 1304 + 1305 +Delay (readback): 1306 + 1307 +{{code language="none"}}FLASH.SYNC/LASER.LOCK.EXP/F2.PPL.OSC/FMC0.MD22.0.POSITION.RD{{/code}} 1308 + 1309 +(% style="letter-spacing: 0.0px;" %)Delay (encoder readback): 1310 + 1311 +{{code language="none"}}FLASH.SYNC/LASER.LOCK.EXP/F2.PPL.OSC/FMC0.MD22.0.ENCODER_POSITION.RD{{/code}} 1312 + 1313 +OXC. jitter: 1314 + 1315 +{{code language="none"}}FLASH.SYNC/LASER.LOCK.EXP/F2.PPL.OSC/CURRENT_INPUT_JITTER.RD{{/code}} 1316 + 1317 +\\ 1318 + 1319 +\\ 1320 + 1321 +**FL24 Pulse resolved energy:** 1322 + 1323 +OPCPA output (photodiode signal raw ADC trace 16000 samples): 1324 + 1325 +{{code language="none"}}/zraw/FLASH.LASER/FLASH2CPUULGAN1.ADCSCOPE/CH23.TD/dGroup{{/code}} 1326 + 1327 +(% style="letter-spacing: 0.0px;" %)Upper breadboard Photodiode (THG) burst (photodiode signal raw ADC trace 16000 samples):: 1328 + 1329 +{{code language="none"}}/zraw/FLASH.LASER/FLASH2CPUULGAN1.ADCSCOPE/CH26.TD/dGroup{{/code}} 1330 + 1331 +Upper breadboard Photodiode (THG) energy (analyzed signal. integration over pulses in the ADC trace. contains for each laser pulse the pulse energy in a.u.) 1332 + 1333 +{{code language="none"}}/zraw/FLASH.LASER/MOD24.PES/FL24_userPD/dGroup{{/code}} 1334 + 1335 +\\ 1336 + 1337 +**FL24 LAM (Laser Arrivaltime Monitor) pulse resolved data:** 1338 + 1339 +Signal of Photodiode1 - for experts only... (analyzed signal. integration over pulses in the ADC trace. ) 1340 + 1341 +{{code language="none"}}/zraw/FLASH.LASER/MOD24.PES/LAM.PD1/dGroup{{/code}} 1342 + 1343 +Signal of Photodiode2 - for experts only... (analyzed signal. integration over pulses in the ADC trace.) 1344 + 1345 +{{code language="none"}}/zraw/FLASH.LASER/MOD24.PES/LAM.PD2/dGroup{{/code}} 1346 + 1347 +"Actual" LAM Signal - to be calibrated ...... (analyzed signal. integration over pulses in the ADC trace.) 1348 + 1349 +{{code language="none"}}/zraw/FLASH.LASER/MOD24.PES/LAM.PDBAL/dGroup{{/code}} 1350 + 1351 +The delay feedback(% style="letter-spacing: 0.0px;" %) 1352 + 1353 +{{code language="none"}}FLASH.LASER/ULGAN1.DYNPROP/TCFIBER.DOUBLES/DOUBLE26 {{/code}} 1354 + 1355 +The LAM delay feedback(% style="letter-spacing: 0.0px;" %) (the pulse energy signal, which is saved in the above but maybe it’s good to have this also as slow, in the case these two numbers are not the same the sysdc was active instead of the LAM): 1356 + 1357 +{{code language="none"}}FLASH.LASER/MOD24.PES/LAM.PDBAL/PULSEENERGY.MEAN{{/code}} 1358 + 1359 +LAM Delay line act: 1360 + 1361 +{{code language="none"}}FLASH.SYNC/LAM.EXP.ODL/F2.MOD.AMC12/FMC0.MD22.1.POSITION.RD{{/code}} 1362 +LAM Delay line set: 1363 + 1364 +{{code language="none"}}FLASH.SYNC/LAM.EXP.ODL/F2.MOD.AMC12/FMC0.MD22.1.POSITION_SET.WR{{/code}} 1365 + 1366 +LAM Delay line encoder: 1367 + 1368 +{{code language="none"}}FLASH.SYNC/LAM.EXP.ODL/F2.MOD.AMC12/FMC0.MD22.1.ENCODER_POSITION.RD{{/code}} 1369 + 1370 +Temperature feedback: 1371 + 1372 +{{code language="none"}}FLASH.LASER/ULGAN1.DYNPROP/TCFIBER.DOUBLES/DOUBLE24{{/code}} 1373 + 1374 +**Feedback mode** (if this is not =1 the delay FB is not active, then it’s either temp feedback controlled or failsave, maybe it’s good to have): 1375 + 1376 +{{code language="none"}}FLASH.LASER/ULGAN1.DYNPROP/TCFIBER.INTS/INTEGER30{{/code}} 1377 + 1378 +\\ 1379 + 1380 +**FL24 Attenuator angle:** 1381 + 1382 +{{code language="none"}}FLASH.FEL/FLAPP2BEAMLINES/MOTOR1.FL24/FPOS{{/code}} 1383 + 1384 +**FL24 Polarization control:** 1385 + 1386 +{{code language="none"}}FLASH.FEL/FLAPP2BEAMLINES/MOTOR14.FL24/FPOS{{/code}} 1387 + 1388 +**SysDC delay error:** 1389 + 1390 +{{code language="none"}}FLASH.LASER/ULGAN1.DYNPROP/TCFIBER.DOUBLES/DOUBLE26{{/code}} 1391 + 1392 +\\ 1393 + 1394 +**Timing error: (these two need to be observed and both=0 means no error)** 1395 + 1396 +{{code language="none"}}FLASH/CPUULGAN1.TIMING/ULGAN1/dT_alarm{{/code}} 1397 + 1398 +{{code language="none"}}FLASH/CPUULGAN1.TIMING/ULGAN1/dMPN{{/code}} 1399 + 1400 +**Laser error status:** 1401 + 1402 +\\ 1403 + 1404 +**FL24 Virtual camera X and Y history, beam size: (use slow data)** 1405 + 1406 +{{code language="none"}}FLASH.LASER/MOD24.BEAMPOS/UV.VF_BP/CENTER.X{{/code}} 1407 + 1408 +{{code language="none"}}FLASH.LASER/MOD24.BEAMPOS/UV.VF_BP/CENTER.Y{{/code}} 1409 + 1410 +{{code language="none"}}FLASH.LASER/MOD24.CAM/UV.14.VF/ROI_SPECTRUM.X.SIG{{/code}} 1411 + 1412 +\\ 1413 + 1414 +{{expand title="Parameters used until 2021"}} 1415 + 1026 1026 {{code language="none"}}/FL2/Experiment/Pump probe laser/FL24/attenuator position{{/code}}//always saved (PBD2)// 1027 1027 DOOCS prop : {{code language="none"}}FLASH.FEL/FLAPP2BEAMLINES/MOTOR1.FL24/FPOS{{/code}} 1028 1028 DAQ channel: {{code language="none"}}FLASH.FEL/FLAPP2BEAMLINES/MOTOR1.FL24/FPOS{{/code}} ... ... @@ -1055,7 +1055,172 @@ 1055 1055 DAQ channel: {{code language="none"}}FLASH.SYNC/LASER.LOCK.EXP/FLASH2.PPL1.OSC1/CURRENT_INPUT_JITTER.RD{{/code}} 1056 1056 desc: rms jitter of the fs-Oscillator 1057 1057 units: fs 1448 +{{/expand}} 1058 1058 1450 +\\ 1451 + 1452 +==== FL 26 Pump Probe Laser (FLASH2) ==== 1453 + 1454 +These are the parameters that can be saved in the FL2 User DAQ for the FL2 PP laser//** FOR BEAMLINE FL26**// 1455 + 1456 +\\ 1457 + 1458 +**User delay** 1459 + 1460 +Delay (set value): 1461 + 1462 +{{code language="none"}}FLASH.SYNC/LASER.LOCK.EXP/F2.PPL.OSC/FMC0.MD22.0.POSITION_SET.WR{{/code}} 1463 + 1464 +Delay (readback): 1465 + 1466 +{{code language="none"}}FLASH.SYNC/LASER.LOCK.EXP/F2.PPL.OSC/FMC0.MD22.0.POSITION.RD{{/code}} 1467 + 1468 +Delay (encoder readback): 1469 + 1470 +{{code language="none"}}FLASH.SYNC/LASER.LOCK.EXP/F2.PPL.OSC/FMC0.MD22.0.ENCODER_POSITION.RD{{/code}} 1471 + 1472 +OXC. jitter: 1473 + 1474 +{{code language="none"}}FLASH.SYNC/LASER.LOCK.EXP/F2.PPL.OSC/CURRENT_INPUT_JITTER.RD{{/code}} 1475 + 1476 +\\ 1477 + 1478 +**Parameters for FL26** 1479 + 1480 +(% class="wrapped" %) 1481 +|((( 1482 +FL2PPL FL26 REMI Attenuation: HWP motor current position 1483 +)))|((( 1484 +FLASH.FEL/FLAPP2BEAMLINES/MOTOR11.FL26B/FPOS 1485 +))) 1486 +|((( 1487 +FL2PPL FL26 REMI Polarization: linear polarization angle 1488 +)))|((( 1489 +FLASH.FEL/FLAPP2BEAMLINES/MOTOR12.FL26B/FPOS 1490 +))) 1491 +|((( 1492 +FL2PPL FL26 REMI Diagnostics: NIR spectrum 1493 +)))|((( 1494 +FLASH.LASER/MOD26.SPECT/REMI/DAQ_CHANNEL 1495 +))) 1496 +|((( 1497 +FL2PPL FL26 REMI Diagnostics: photo diode input MOD2.6 - pulse energy mean 1498 +)))|((( 1499 +FLASH.LASER/MOD26.PES/RE_OUT/PULSEENERGY.MEAN 1500 +))) 1501 +|((( 1502 +FL2PPL FL26 REMI Diagnostics: photo diode input MOD2.6 - intra burst pulse energy 1503 +)))|((( 1504 +FLASH.LASER/MOD26.PES/RE_OUT/DAQ_CHANNEL 1505 +))) 1506 +|((( 1507 +FL2PPL FL26 REMI Diagnostics: photo diode input MOD2.6 - raw adc 1508 +)))|((( 1509 +FLASH.LASER/TAMC532DMA/ULGAN1_S5/CH04.TD 1510 +))) 1511 +|((( 1512 +FL2PPL FL26 REMI Diagnostics: photo diode input REMI - pulse energy mean 1513 +)))|((( 1514 +FLASH.LASER/MOD26.PES/INC_BOX/PULSEENERGY.MEAN 1515 +))) 1516 +|((( 1517 +FL2PPL FL26 REMI Diagnostics: photo diode input REMI - intra burst pulse energy 1518 +)))|((( 1519 +FLASH.LASER/MOD26.PES/INC_BOX/DAQ_CHANNEL 1520 +))) 1521 +|((( 1522 +FL2PPL FL26 REMI Diagnostics: photo diode input REMI - raw adc 1523 +)))|((( 1524 +FLASH.LASER/TAMC532DMA/ULGAN1_S5/CH05.TD 1525 +))) 1526 +|((( 1527 +FL2PPL FL26 REMI In coupling: filter wheel 1 position 1528 +)))|((( 1529 +FLASH/MOD26.FW1/FLASH2MOD26/pos 1530 +))) 1531 +|((( 1532 +FL2PPL FL26 REMI In coupling: filter wheel 2 position 1533 +)))|((( 1534 +FLASH/MOD26.FW2/FLASH2MOD26/pos 1535 +))) 1536 +|((( 1537 +FL2PPL FL26 REMI: Energy meter REMI incoupling breadboard 1538 +)))|((( 1539 +FLASH.LASER/MOD26.OPHIRE/REINC.54/DAQ_CHANNEL 1540 +))) 1541 +|((( 1542 +FL2PPL FL26 REMI Incoupling: focusing lens position 1543 +)))|((( 1544 +FLASH.FEL/FLAPP2BEAMLINES/MOTOR3.FL26B/FPOS 1545 +))) 1546 +|((( 1547 +FL2PPL FL26 REMI Incoupling: nearfield 1548 +)))|((( 1549 +FLASH.LASER/MOD26.CAM/REINC.21.NF/DAQ_CHANNEL 1550 +))) 1551 +|((( 1552 +FL2PPL FL26 REMI Incoupling: focus 1553 +)))|((( 1554 +FLASH.LASER/MOD26.CAM/REINC.22.FF/DAQ_CHANNEL 1555 +))) 1556 +|((( 1557 +FL2PPL FL26 REMI Drift: relative arrival time intra burst LAM balanced - calb. in the PES 1558 +)))|((( 1559 +FLASH.LASER/MOD26.PES/LAM_DIFF/DAQ_CHANNEL 1560 +))) 1561 +|((( 1562 +FL2PPL FL26 REMI Drift: forward signal (PD1) raw 1563 +)))|((( 1564 +FLASH.LASER/TAMC532DMA/ULGAN1_S5/CH00.TD 1565 +))) 1566 +|((( 1567 +FL2PPL FL26 REMI Drift: backward signal (PD2) raw 1568 +)))|((( 1569 +FLASH.LASER/TAMC532DMA/ULGAN1_S5/CH01.TD 1570 +))) 1571 +|((( 1572 +FL2PPL FL26 REMI Drift: mean relative burst arrival time - avarage of the calib value 1573 +)))|((( 1574 +FLASH.LASER/MOD26.PES/LAM_DIFF/PULSEENERGY.MEAN 1575 +))) 1576 +|((( 1577 +FL2PPL FL26 REMI Drift: delay line position (ODL of the LAM REMI) 1578 +)))|((( 1579 +FLASH.FEL/FLAPP2BEAMLINES/MOTOR14.FL26B/FPOS 1580 +))) 1581 +|((( 1582 +FL2PPL FL26 Laser Hutch: delay line position (ODL of the osc. Sync / user delay) 1583 +)))|((( 1584 +FLASH.SYNC/LASER.LOCK.EXP/F2.PPL.OSC/FMC0.MD22.0.POSITION.RD 1585 +))) 1586 +|((( 1587 +FL2PPL FL26 REMI Drift: delay line encoder position (ODL REMI raw value) 1588 +)))|((( 1589 +FLASH.SYNC/LAM.EXP.ODL/F2.MOD.AMC12/FMC0.MD22.0.ENCODER_POSITION.RD 1590 +))) 1591 +|((( 1592 +Jiiter between oscillator and MLO (inloop jitter osc. Sync) 1593 +)))|((( 1594 +FLASH.SYNC/LASER.LOCK.EXP/F2.PPL.OSC/CURRENT_INPUT_JITTER.RD 1595 +))) 1596 +|((( 1597 +Temperature controlled fiber (PWM signal to the temperature controlled fiber delay sysdc) 1598 +)))|((( 1599 +FLASH.LASER/ULGAN1.DYNPROP/TCFIBER.DOUBLES/DOUBLE23 1600 +))) 1601 +|((( 1602 +Temperature controlled fiber (Temp of the fiber delay sysdc) 1603 +)))|((( 1604 +FLASH.LASER/ULGAN1.DYNPROP/TCFIBER.DOUBLES/DOUBLE24 1605 +))) 1606 +|((( 1607 +Sydc feedback data if LAM is not activated (sysdc delay) 1608 +)))|((( 1609 +FLASH.LASER/ULGAN1.DYNPROP/TCFIBER.DOUBLES/DOUBLE26 1610 +))) 1611 + 1612 +\\ 1613 + 1059 1059 [[Contents>>doc:||anchor="Contents"]] 1060 1060 1061 1061 \\ ... ... @@ -1180,13 +1180,6 @@ 1180 1180 [[Contents>>doc:||anchor="Contents"]] 1181 1181 1182 1182 \\ 1183 - 1184 -== Example code showing how to access HDF5 files == 1185 - 1186 -\\ 1187 - 1188 -== HDF5 and DOOCS == 1189 - 1190 -Here is an outdated [[list with the available properties that are always saved (PBD) for FLASH1 as>>attach:FLASH1__DaqChannel2HdfNamePbd.xlsx]] HDF5 names and the corresponding DOOCS names 1191 - 1192 -[[Contents>>doc:||anchor="Contents"]] 1738 +{{/layout-cell}} 1739 +{{/layout-section}} 1740 +{{/layout}}
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