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Is there a way to subset cell_boundaries using an AnnData table? #898

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@Pancreas-Pratik

This is what I have done with cell_circles, I was wondering if I could do the same with cell_boundaries?

Initially, I more or less did this to create a subset AnnData:

#keep cells that have 10 counts or greater (remove cells that have less than 10 counts)
sc.pp.filter_cells(sdata.tables["table"], min_counts=10)
#keep genes that are in 5 cells or greater (remove genes that are expressed in less than 5 cells)
sc.pp.filter_genes(sdata.tables["table"], min_cells=5)

and then I did this to subset cell_circles within the sdata:

sdata_filtered=spatialdata.match_sdata_to_table(sdata=sdata, table_name='table', table=sdata.tables["table"], how='right')
sdata_filtered
SpatialData object
├── Shapes
│ └── 'cell_circles': GeoDataFrame shape: (154472, 2) (2D shapes)
└── Tables
└── 'table': AnnData (154472, 377)
with coordinate systems:
▸ 'global', with elements:
cell_circles (Shapes)
sdata.shapes['cell_circles']=sdata_filtered.shapes['cell_circles']

Now, I was wondering if I could do something similar to this type of subset that was done on cell_circles, but if I could do it on cell_boundaries also. I tried match_element_to_table(), however it did not work, I could post the error if needed, but I suspect that this is known and expected.

I believe this has to do with the dimensions of GeoDataFrame shape, and how cell_circles appears to have "something" that cell_boundaries does not have:

'cell_boundaries': GeoDataFrame shape: (162254, 1) (2D shapes)
'cell_circles': GeoDataFrame shape: (154472, 2) (2D shapes)

Thank you very much in advance.

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    Is there a way to subset cell_boundaries using an AnnData table? · Issue #898 · scverse/spatialdata · GitHub
    Skip to content

    Is there a way to subset cell_boundaries using an AnnData table? #898

    Description

    @Pancreas-Pratik

    This is what I have done with cell_circles, I was wondering if I could do the same with cell_boundaries?

    Initially, I more or less did this to create a subset AnnData:

    #keep cells that have 10 counts or greater (remove cells that have less than 10 counts)
    sc.pp.filter_cells(sdata.tables["table"], min_counts=10)
    #keep genes that are in 5 cells or greater (remove genes that are expressed in less than 5 cells)
    sc.pp.filter_genes(sdata.tables["table"], min_cells=5)
    

    and then I did this to subset cell_circles within the sdata:

    sdata_filtered=spatialdata.match_sdata_to_table(sdata=sdata, table_name='table', table=sdata.tables["table"], how='right')
    
    sdata_filtered
    SpatialData object
    ├── Shapes
    │ └── 'cell_circles': GeoDataFrame shape: (154472, 2) (2D shapes)
    └── Tables
    └── 'table': AnnData (154472, 377)
    with coordinate systems:
    ▸ 'global', with elements:
    cell_circles (Shapes)
    
    sdata.shapes['cell_circles']=sdata_filtered.shapes['cell_circles']
    

    Now, I was wondering if I could do something similar to this type of subset that was done on cell_circles, but if I could do it on cell_boundaries also. I tried match_element_to_table(), however it did not work, I could post the error if needed, but I suspect that this is known and expected.

    I believe this has to do with the dimensions of GeoDataFrame shape, and how cell_circles appears to have "something" that cell_boundaries does not have:

    'cell_boundaries': GeoDataFrame shape: (162254, 1) (2D shapes)
    'cell_circles': GeoDataFrame shape: (154472, 2) (2D shapes)
    

    Thank you very much in advance.

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      Skip to content

      Is there a way to subset cell_boundaries using an AnnData table? #898

      Description

      @Pancreas-Pratik

      This is what I have done with cell_circles, I was wondering if I could do the same with cell_boundaries?

      Initially, I more or less did this to create a subset AnnData:

      #keep cells that have 10 counts or greater (remove cells that have less than 10 counts)
      sc.pp.filter_cells(sdata.tables["table"], min_counts=10)
      #keep genes that are in 5 cells or greater (remove genes that are expressed in less than 5 cells)
      sc.pp.filter_genes(sdata.tables["table"], min_cells=5)
      

      and then I did this to subset cell_circles within the sdata:

      sdata_filtered=spatialdata.match_sdata_to_table(sdata=sdata, table_name='table', table=sdata.tables["table"], how='right')
      
      sdata_filtered
      SpatialData object
      ├── Shapes
      │ └── 'cell_circles': GeoDataFrame shape: (154472, 2) (2D shapes)
      └── Tables
      └── 'table': AnnData (154472, 377)
      with coordinate systems:
      ▸ 'global', with elements:
      cell_circles (Shapes)
      
      sdata.shapes['cell_circles']=sdata_filtered.shapes['cell_circles']
      

      Now, I was wondering if I could do something similar to this type of subset that was done on cell_circles, but if I could do it on cell_boundaries also. I tried match_element_to_table(), however it did not work, I could post the error if needed, but I suspect that this is known and expected.

      I believe this has to do with the dimensions of GeoDataFrame shape, and how cell_circles appears to have "something" that cell_boundaries does not have:

      'cell_boundaries': GeoDataFrame shape: (162254, 1) (2D shapes)
      'cell_circles': GeoDataFrame shape: (154472, 2) (2D shapes)
      

      Thank you very much in advance.

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        Skip to content

        Is there a way to subset cell_boundaries using an AnnData table? #898

        Description

        @Pancreas-Pratik

        This is what I have done with cell_circles, I was wondering if I could do the same with cell_boundaries?

        Initially, I more or less did this to create a subset AnnData:

        #keep cells that have 10 counts or greater (remove cells that have less than 10 counts)
        sc.pp.filter_cells(sdata.tables["table"], min_counts=10)
        #keep genes that are in 5 cells or greater (remove genes that are expressed in less than 5 cells)
        sc.pp.filter_genes(sdata.tables["table"], min_cells=5)
        

        and then I did this to subset cell_circles within the sdata:

        sdata_filtered=spatialdata.match_sdata_to_table(sdata=sdata, table_name='table', table=sdata.tables["table"], how='right')
        
        sdata_filtered
        SpatialData object
        ├── Shapes
        │ └── 'cell_circles': GeoDataFrame shape: (154472, 2) (2D shapes)
        └── Tables
        └── 'table': AnnData (154472, 377)
        with coordinate systems:
        ▸ 'global', with elements:
        cell_circles (Shapes)
        
        sdata.shapes['cell_circles']=sdata_filtered.shapes['cell_circles']
        

        Now, I was wondering if I could do something similar to this type of subset that was done on cell_circles, but if I could do it on cell_boundaries also. I tried match_element_to_table(), however it did not work, I could post the error if needed, but I suspect that this is known and expected.

        I believe this has to do with the dimensions of GeoDataFrame shape, and how cell_circles appears to have "something" that cell_boundaries does not have:

        'cell_boundaries': GeoDataFrame shape: (162254, 1) (2D shapes)
        'cell_circles': GeoDataFrame shape: (154472, 2) (2D shapes)
        

        Thank you very much in advance.

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          Skip to content

          Is there a way to subset cell_boundaries using an AnnData table? #898

          Description

          @Pancreas-Pratik

          This is what I have done with cell_circles, I was wondering if I could do the same with cell_boundaries?

          Initially, I more or less did this to create a subset AnnData:

          #keep cells that have 10 counts or greater (remove cells that have less than 10 counts)
          sc.pp.filter_cells(sdata.tables["table"], min_counts=10)
          #keep genes that are in 5 cells or greater (remove genes that are expressed in less than 5 cells)
          sc.pp.filter_genes(sdata.tables["table"], min_cells=5)
          

          and then I did this to subset cell_circles within the sdata:

          sdata_filtered=spatialdata.match_sdata_to_table(sdata=sdata, table_name='table', table=sdata.tables["table"], how='right')
          
          sdata_filtered
          SpatialData object
          ├── Shapes
          │ └── 'cell_circles': GeoDataFrame shape: (154472, 2) (2D shapes)
          └── Tables
          └── 'table': AnnData (154472, 377)
          with coordinate systems:
          ▸ 'global', with elements:
          cell_circles (Shapes)
          
          sdata.shapes['cell_circles']=sdata_filtered.shapes['cell_circles']
          

          Now, I was wondering if I could do something similar to this type of subset that was done on cell_circles, but if I could do it on cell_boundaries also. I tried match_element_to_table(), however it did not work, I could post the error if needed, but I suspect that this is known and expected.

          I believe this has to do with the dimensions of GeoDataFrame shape, and how cell_circles appears to have "something" that cell_boundaries does not have:

          'cell_boundaries': GeoDataFrame shape: (162254, 1) (2D shapes)
          'cell_circles': GeoDataFrame shape: (154472, 2) (2D shapes)
          

          Thank you very much in advance.

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            Skip to content

            Is there a way to subset cell_boundaries using an AnnData table? #898

            Description

            @Pancreas-Pratik

            This is what I have done with cell_circles, I was wondering if I could do the same with cell_boundaries?

            Initially, I more or less did this to create a subset AnnData:

            #keep cells that have 10 counts or greater (remove cells that have less than 10 counts)
            sc.pp.filter_cells(sdata.tables["table"], min_counts=10)
            #keep genes that are in 5 cells or greater (remove genes that are expressed in less than 5 cells)
            sc.pp.filter_genes(sdata.tables["table"], min_cells=5)
            

            and then I did this to subset cell_circles within the sdata:

            sdata_filtered=spatialdata.match_sdata_to_table(sdata=sdata, table_name='table', table=sdata.tables["table"], how='right')
            
            sdata_filtered
            SpatialData object
            ├── Shapes
            │ └── 'cell_circles': GeoDataFrame shape: (154472, 2) (2D shapes)
            └── Tables
            └── 'table': AnnData (154472, 377)
            with coordinate systems:
            ▸ 'global', with elements:
            cell_circles (Shapes)
            
            sdata.shapes['cell_circles']=sdata_filtered.shapes['cell_circles']
            

            Now, I was wondering if I could do something similar to this type of subset that was done on cell_circles, but if I could do it on cell_boundaries also. I tried match_element_to_table(), however it did not work, I could post the error if needed, but I suspect that this is known and expected.

            I believe this has to do with the dimensions of GeoDataFrame shape, and how cell_circles appears to have "something" that cell_boundaries does not have:

            'cell_boundaries': GeoDataFrame shape: (162254, 1) (2D shapes)
            'cell_circles': GeoDataFrame shape: (154472, 2) (2D shapes)
            

            Thank you very much in advance.

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              Skip to content

              Is there a way to subset cell_boundaries using an AnnData table? #898

              Description

              @Pancreas-Pratik

              This is what I have done with cell_circles, I was wondering if I could do the same with cell_boundaries?

              Initially, I more or less did this to create a subset AnnData:

              #keep cells that have 10 counts or greater (remove cells that have less than 10 counts)
              sc.pp.filter_cells(sdata.tables["table"], min_counts=10)
              #keep genes that are in 5 cells or greater (remove genes that are expressed in less than 5 cells)
              sc.pp.filter_genes(sdata.tables["table"], min_cells=5)
              

              and then I did this to subset cell_circles within the sdata:

              sdata_filtered=spatialdata.match_sdata_to_table(sdata=sdata, table_name='table', table=sdata.tables["table"], how='right')
              
              sdata_filtered
              SpatialData object
              ├── Shapes
              │ └── 'cell_circles': GeoDataFrame shape: (154472, 2) (2D shapes)
              └── Tables
              └── 'table': AnnData (154472, 377)
              with coordinate systems:
              ▸ 'global', with elements:
              cell_circles (Shapes)
              
              sdata.shapes['cell_circles']=sdata_filtered.shapes['cell_circles']
              

              Now, I was wondering if I could do something similar to this type of subset that was done on cell_circles, but if I could do it on cell_boundaries also. I tried match_element_to_table(), however it did not work, I could post the error if needed, but I suspect that this is known and expected.

              I believe this has to do with the dimensions of GeoDataFrame shape, and how cell_circles appears to have "something" that cell_boundaries does not have:

              'cell_boundaries': GeoDataFrame shape: (162254, 1) (2D shapes)
              'cell_circles': GeoDataFrame shape: (154472, 2) (2D shapes)
              

              Thank you very much in advance.

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