view macros.xml @ 0:69e2275406fd draft

planemo upload for repository https://github.com/galaxyproject/tools-iuc/tree/master/tools/anndata/ commit 2e16aca90c4fc6f13bd024eed43bc4adbf5967da
author iuc
date Wed, 10 Apr 2019 03:23:36 -0400
parents
children a61350ab6563
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<macros>
    <token name="@VERSION@">0.6.19</token>
    <token name="@GALAXY_VERSION@">galaxy0</token>
    <xml name="requirements">
        <requirements>
            <requirement type="package" version="@VERSION@">anndata</requirement>
            <requirement type="package" version="1.4">scanpy</requirement>
            <requirement type="package" version="2.0.17">loompy</requirement>
            <yield />
        </requirements>
    </xml>
    <xml name="citations">
        <citations>
            <citation type="doi">10.1186/s13059-017-1382-0</citation>
        </citations>
    </xml>
    <xml name="version_command">
        <version_command><![CDATA[python -c "import anndata as ad;print('anndata version: %s' % ad.__version__)"]]></version_command>
    </xml>
    <token name="@CMD@"><![CDATA[
cat '$script_file' &&
python '$script_file'
    ]]>
    </token>
    <token name="@CMD_imports@"><![CDATA[
import anndata as ad
    ]]>
    </token>
    <token name="@HELP@"><![CDATA[
**AnnData**

AnnData provides a scalable way of keeping track of data together with learned annotations. It is used within `Scanpy <https://github.com/theislab/scanpy>`__, for which it was initially developed.

AnnData stores a data matrix `X` together with annotations of observations `obs`, variables `var` and unstructured annotations `uns`.

.. image:: https://falexwolf.de/img/scanpy/anndata.svg 


AnnData stores observations (samples) of variables (features) in the rows of a matrix. This is the convention of the modern classics 
of statistics (`Hastie et al., 2009 <https://web.stanford.edu/~hastie/ElemStatLearn/>`__)  and machine learning (Murphy, 2012), the convention of dataframes both in R and Python and the established statistics 
and machine learning packages in Python (statsmodels, scikit-learn).

More details on the `AnnData documentation
<https://anndata.readthedocs.io/en/latest/anndata.AnnData.html>`__
    ]]>
    </token>
    <xml name="params_chunk_X">
        <conditional name="chunk">
            <param name="info" type="select" label="How to select the chunk?">
                <option value="random">Random chunk of defined size</option>
                <option value="specified">Specified indices</option>
            </param>
            <when value="random">
                <param name="size" type="integer" value="1000" label="Size of chunk to randomly select"/>
                <param name="replace" type="boolean" truevalue="True" falsevalue="False" checked="true" label="Random sampling of indices with replacement?"/>
            </when>
            <when value="specified">
                <param name="list" type="text" value="" label="List of comma-separated indices to return"/>
            </when>
        </conditional>
    </xml>
</macros>