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Reprocess 10 plates because 36 features are missing #88
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We are having this discussion in Slack @EchteRobert will report back here with our conclusion here, once we are set |
You can find the main conclusion of this issue below. Beth (she/her)
Supporting discussion (for the full discussion see the Slack thread) shantanu
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In the future, we might want to reprocess these 10 plates and include the missing features |
This should make it possible if we need to - https://hub.docker.com/layers/cellprofiler/cellprofiler/2.3.1/images/sha256-d790b21623654e351390e283e3243860a7595120f7ba1e5f1df36b1277ea0cf1?context=explore |
Pointing here #3 (comment) as these plates seemed to have posed difficulties in the past. |
@EchteRobert reported this:
Q about the LINCS dataset:
I have run into plates which contain slightly fewer measured features than the bulk of the plates, i.e., 1745 instead of 1781. Is this a known issue? All of the plates that have 1745 features use platemap “C-7161-01-LM6-001”.
See the thread for missing features. Note that these numbers are after preprocessing so especially some Image features may not be included in these 1781/1745
@bethac07 said:
I don't think it's a known issue but based on the error messages I see how it happened. Was likely a pilot batch and/or a batch that was rerun later would be my guess
If you search Slack for the barcode names there might be a message about them (not certain but non zero)
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