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read_excelread_csvread_fwf
read_tableread_pickle	to_pickleHDFStoreread_hdfread_sqlread_sql_queryread_sql_tableread_clipboardread_parquetread_orcread_featherread_gbq	read_htmlread_xml	read_json
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pandas - a powerful data analysis and manipulation library for Python
=====================================================================

**pandas** is a Python package providing fast, flexible, and expressive data
structures designed to make working with "relational" or "labeled" data both
easy and intuitive. It aims to be the fundamental high-level building block for
doing practical, **real world** data analysis in Python. Additionally, it has
the broader goal of becoming **the most powerful and flexible open source data
analysis / manipulation tool available in any language**. It is already well on
its way toward this goal.

Main Features
-------------
Here are just a few of the things that pandas does well:

  - Easy handling of missing data in floating point as well as non-floating
    point data.
  - Size mutability: columns can be inserted and deleted from DataFrame and
    higher dimensional objects
  - Automatic and explicit data alignment: objects can be explicitly aligned
    to a set of labels, or the user can simply ignore the labels and let
    `Series`, `DataFrame`, etc. automatically align the data for you in
    computations.
  - Powerful, flexible group by functionality to perform split-apply-combine
    operations on data sets, for both aggregating and transforming data.
  - Make it easy to convert ragged, differently-indexed data in other Python
    and NumPy data structures into DataFrame objects.
  - Intelligent label-based slicing, fancy indexing, and subsetting of large
    data sets.
  - Intuitive merging and joining data sets.
  - Flexible reshaping and pivoting of data sets.
  - Hierarchical labeling of axes (possible to have multiple labels per tick).
  - Robust IO tools for loading data from flat files (CSV and delimited),
    Excel files, databases, and saving/loading data from the ultrafast HDF5
    format.
  - Time series-specific functionality: date range generation and frequency
    conversion, moving window statistics, date shifting and lagging.
)rr   r   rC   r   r&   rF   r8   r+   r   ra   rb   r<   r   r   r=   ri   r%   r-   r   r   r   r   r6   r   r)   r(   r    r.   rA   r/   r   r,   r'   rE   rG   r   r1   r*   r3   r   r   r   r   rY   rB   rZ   r5   rK   rR   rW   r4   r   r[   rJ   r>   rU   rV   r	   rH   r7   r\   r!   r"   ry   rL   rM   rO   rP   rQ   r#   r$   rI   r   r   r0   rS   rT   r]   rX   rn   rd   rc   rq   re   rr   rj   rs   ru   rp   ro   rg   rw   rx   rk   rl   rm   rv   rf   rt   r   rD   r
   r`   rz   r_   r2   r:   r9   rh   r;   r^   r?   r@   rN   )
__future__r   oswarnings__docformat___hard_dependencies_missing_dependencies_dependency
__import__ImportError_eappendjoinpandas.compatr   _is_numpy_dev_errname_modulepandas._configr	   r
   r   r   r   r   pandas.core.config_initpandaspandas.core.apir   r   r   r   r   r   r   r   r   r   r   r   r   r   r   r   r   r    r!   r"   r#   r$   r%   r&   r'   r(   r)   r*   r+   r,   r-   r.   r/   r0   r1   r2   r3   r4   r5   r6   r7   r8   r9   r:   r;   r<   r=   r>   r?   r@   rA   rB   rC   rD   rE   rF   pandas.core.dtypes.dtypesrG   pandas.tseries.apirH   pandas.tseriesrI   pandas.core.computation.apirJ   pandas.core.reshape.apirK   rL   rM   rN   rO   rP   rQ   rR   rS   rT   rU   rV   rW   rX   rY   rZ   r[   r\   r]   r^   r_   pandas.util._print_versionsr`   pandas.io.apira   rb   rc   rd   re   rf   rg   rh   ri   rj   rk   rl   rm   rn   ro   rp   rq   rr   rs   rt   ru   rv   rw   rx   pandas.io.json._normalizery   pandas.util._testerrz   _built_with_mesonpandas._version_mesonr{   r|   pandas._versionr}   vgetenvironwarnFutureWarning__doc____all__ r   r   t/var/www/static.ux5.de/https/Moving-Object-Detection-with-OpenCV/env/lib/python3.10/site-packages/pandas/__init__.py<module>   s~     
 
A@ h!
	+