Last modified by flenners on 2026-02-04 17:25

From version 18.1
edited by flenners
on 2026-02-04 17:20
Change comment: Uploaded new attachment "image2021-4-27_13-55-52.png", version {1}
To version 6.1
edited by flenners
on 2022-09-25 10:51
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1 -== {{id name="03aReconstructionwithRecoGUI-Preperation:"/}}Preperation: ==
1 += {{id name="03aReconstructionwithRecoGUI-LoadingData"/}}Loading Data
2 +\\ =
2 2  
3 -
4 -Open the following link in a browser and log in with your DESY account (not door account!).
5 -
6 -[[https:~~/~~/max-display.desy.de:3389/auth/ssh>>url:https://max-display.desy.de:3443/auth/ssh]]
7 -
8 -Start a 
9 -
10 -
11 -
12 -Terminal:
13 -
14 -
15 -salloc ~-~-partition=psxcpu ~-~-nodes=1 ~-~-time=06:00:00
16 -\\(if you need gpu: ~-~-partition=psxgpu )
17 -
18 -//Answer~:// salloc: job [//number//] queued and waiting for resources
19 -
20 - salloc: job [number] has been allocated resources
21 -
22 - salloc: Granted job allocation [number]
23 -
24 - salloc: Waiting for resource configuration
25 -
26 - salloc: Nodes //max-wn035// are ready for job  (name of your node; code after “max-“ can vary, in this example wn035, if you do not get a specific node name, repeat salloc command)
27 -
28 -(% class="code" %)
29 -(((
30 -ssh max-wn035 (shell to your node)
31 -\\module load maxwell mamba
32 -)))
33 -
34 -(% class="code" %)
35 -(((
36 -. mamba-init (. is important! never do without, this can crash your FastX)
37 -\\mamba activate /asap3/petra3/gpfs/common/p05/nano/envs/mamba
38 -)))
39 -
40 -
41 -spyder &
42 -\\~-~-~-~-~-~-
43 -\\\\Spyder will open.
44 -
45 -On the right, choose "file explorer". Navigate to your beamtime folder and find processed/scripts/RecoGUI:
46 -
47 -[[image:attach:image2022-11-1_13-7-14.png||height="250"]]
48 -
49 -
50 -Important: you need to be in the right folder, else the script will not be able to find a file in the first cell of the script
51 -
52 -
53 -Open RecoGUI.py by double clicking the file and click "Run" (green arrow)
54 -
55 -
56 -
57 -= {{id name="03aReconstructionwithRecoGUI-LoadingData"/}}Loading Data =
58 -
59 -= =
60 -
61 61  **TXM DATA**
62 62  
63 63  Go to "Load' tab and select year, enter your beamtime ID (e.g. 11001234) and press "enter" on keyboard.
... ... @@ -72,27 +72,27 @@
72 72  
73 73  Continue with next step, "Preparation".
74 74  
18 +\\
75 75  
76 76  **HOLOTOMO DATA**
77 77  
78 -Hint: you have to perform the phase reconstruction of your projections first! This is usually done by beamline staff. Then you can continue:
22 +Hint: you have to perform the phase reconstruction of your projections first!
79 79  
80 -Go to "Load" tab, load processed data.
24 +Go to "Load" tab. Click on "Load normalized data" at the bottom of the page and select your phase reconstruced projections.
81 81  
82 -Check the subfolder path of the phase retievals. Standard path is holopipe/phase_retrieval
26 +The common path is: ///asap3/petra3/gpfs/p05/YEAR/data/BEAMTIMEID/processed/SCANNAME/reco_~#~#//
83 83  
84 -Click on "Load processed"
85 -
86 86  You do not need to load any additional dark images.
87 87  
88 -Skip "Normalize, Minus Log, Rotate" in the Preperation Tab. The optional steps, eg. padding are still optional. (see below)
30 +Skip "Normalize, Minus Log, Rotate" in the Preperation Tab. The optional steps are still optional. (see below)
89 89  
90 90  In principle, you can directly proceed to the third tab "Reconstruction". 
91 91  
34 +\\
92 92  
93 -= {{id name="03aReconstructionwithRecoGUI-Preparationofdataforreconstruction"/}}Preparation of data for reconstruction =
36 += {{id name="03aReconstructionwithRecoGUI-Preparationofdataforreconstruction"/}}Preparation of data for reconstruction =
94 94  
95 -(**Can be skipped for Holotomography**)
38 +(Can be skipped for Holotomography)
96 96  
97 97  Go to "Prep" tab.
98 98  
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104 104  
105 105  Click "Rotate" button.
106 106  
50 +\\
107 107  
108 108  The following steps are **optional:**
109 109  
110 -**Cropping:** If your samples are significantly (% style="color:#003366" %)__smaller__(%%) than the field of view, you can crop the data to reduce computation time and storage. Draw a rectangle around your sample by keeping the left mouse button pressed. Check that your sample stays inside that rectangle at all angles. If you are happy, press the "crop" button to crop your data.
54 +**Cropping:** If your samples are significantly (% style="color: rgb(0,51,102);" %)__smaller__(%%) than the field of view, you can crop the data to reduce computation time and storage. Draw a rectangle around your sample by keeping the left mouse button pressed. Check that your sample stays inside that rectangle at all angles. If you are happy, press the "crop" button to crop your data.
111 111  
112 112  **Binning:** You can bin your data before reconstruction. Since the detector has a point spread function of 2-3 pixels, it is save to bin by a factor of 2 without loosing spatial resolution. This reduces computation time and storage space needed.
113 113  
114 -**Padding:** **//RECOMENDED FOR ROI scans//**! If your samples are significantly __larger__ than the field of view, you can pad your data to prevent artifacts at the outer field of view. Example: 100
58 +**Padding:** If your samples are significantly __larger__ than the field of view, you can pad your data to prevent artifacts at the outer field of view. Example: 100
115 115  
116 116  **Filter Projections before reconstruction:** You can filter the data before reconstruction. This reduces the noise, but also can induce blurring in the data. Only recommended for very noisy data. Filtering after reconstruction is usually better.
117 117  
62 +\\
118 118  
119 119  **Linogram alignment:** Linogram alignment if sample moved. Ask your local contact if this is necessary.
120 120  
66 +\\
121 121  
122 122  **Save current stack.** Writes the normalized projections to your beamtime folder.
123 123  
70 +\\
124 124  
125 -= {{id name="03aReconstructionwithRecoGUI-Reconstruction"/}}Reconstruction =
72 += {{id name="03aReconstructionwithRecoGUI-Reconstruction"/}}Reconstruction =
126 126  
74 +\\
127 127  
128 128  **Finding the correct center of rotation. **
129 129  
130 -First, you have to find the correct center of rotation. For this, a single slice is reconstructed with different centers of rotation
78 +First, you have to find the correct center of rotation. For this, a single slice is reconstructed with different centers of rotation.
131 131  
132 -**~1. Rot center: **Defines the rotation center in pixel coordinates. For the start, enter half of your image size (1024 for unbinned data, 512 for data with binning 2.)
80 +**Rot center:** For the start, enter half of your image size (1024 for unbinned data, 512 for data with binning 2.)
133 133  
134 -**2. Delta: **Range of pixels around the in step 1 given rot center for which the test slice is reconstructed. Good starting value is 50. For fine rot center, choose 10. 
82 +**Delta:** Range which is reconstructed. Good starting value is 50. For fine rot center, choose 10. 
135 135  
136 -**3. Stepsize:** Stepsize beween the different rotation centers. Good start value is 5 and 1 for fine rot center. (for example [ ... , 507, 512, 517, ... ] for a stepsize of 5)
84 +**Stepsize:** Stepsize beween the different rotation centers. Good start value is 5 and 1 for fine rot center.
137 137  
138 -**4. Slice:** Defines the pixel row which is used to reconstruct the test slice. Tip: Choose a region where you expect to see distinctive structures. (You can also check different slices for checking the rotation center.)
86 +Slice: Slice which will be reconstructed. You can also check different slices for checking the rotation center.
139 139  
140 -**5. Check rotation center: **Click on the "Check rotation center" button.** **In the preview window move the slider around until you find the positions with the least artifacts. Remember the position number and check the Spyder Console to get the new rot center coordinates in pixel.
88 +\\
141 141  
142 -[[image:attach:image2022-11-14_14-4-49.png||thumbnail="true" height="250"]]
143 -
144 -in blue the coordinate of the center of rotation; in yellow the position number of the preview slider
145 -
146 -**6. Update and Repeat:** Replace the Rot Center (step 1) with the new found coordinate, lower the Delta (step 2) and Stepsize (step 3) and repeat the process until you are satisfied with the result.
147 -
148 -
149 -How does a good rotation center look like?
150 -
151 -(% class="relative-table wrapped" style="width:37.5112%" %)
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183 -The ghosting effect on the edges is due to sample movement during the scan.
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206 -[[image:attach:image2023-1-23_11-39-57.png||height="400"]]
207 -
208 -
209 -
210 210  **Reconstruction Parameters. **
211 211  
212 212  When you found the correct rotation center, you can continue with the reconstruction.
213 213  
214 -Enter the final roation center from the above step.
94 +Enter the final roation center from the above step.
215 215  
216 216  You can select different reconstruction algorithms and filters. Standard is gridrec and shepp.
217 217  
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221 221  
222 222  before the final reconstruction, you can reconstruct a test slice to check your reconstruction parameters. Enter the slice number you want to reconstruct and press " Reconstruct slice".
223 223  
104 +\\
224 224  
225 225  When you are happy with your result, press "Reconstruct full stack".
226 226  
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228 228  
229 229  When you are finished with one scan, please press the "clear all" button! This saves the log data you see on the right, so you can later check what you did. The data are also removed from the memory.
230 230  
112 +\\
231 231  
114 +\\
232 232  
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233 233  
234 -
118 +\\
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Id
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1 -236814957
1 +284691808
URL
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1 -https://confluence.desy.de/spaces/P5I/pages/236814957/03a Reconstruction with Reco GUI
1 +https://confluence.desy.de/spaces/P5I/pages/284691808/03a Reconstruction with Reco GUI