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| <section id="data-sources"> |
| <span id="user-guide-data-sources"></span><h1>Data Sources<a class="headerlink" href="#data-sources" title="Link to this heading">#</a></h1> |
| <p>DataFusion provides a wide variety of ways to get data into a DataFrame to perform operations.</p> |
| <section id="local-file"> |
| <h2>Local file<a class="headerlink" href="#local-file" title="Link to this heading">#</a></h2> |
| <p>DataFusion has the ability to read from a variety of popular file formats, such as <a class="reference internal" href="io/parquet.html#io-parquet"><span class="std std-ref">Parquet</span></a>, |
| <a class="reference internal" href="io/csv.html#io-csv"><span class="std std-ref">CSV</span></a>, <a class="reference internal" href="io/json.html#io-json"><span class="std std-ref">JSON</span></a>, and <a class="reference internal" href="io/avro.html#io-avro"><span class="std std-ref">AVRO</span></a>.</p> |
| <div class="cell docutils container"> |
| <div class="cell_input docutils container"> |
| <div class="highlight-ipython3 notranslate"><div class="highlight"><pre><span></span><span class="kn">from</span><span class="w"> </span><span class="nn">datafusion</span><span class="w"> </span><span class="kn">import</span> <span class="n">SessionContext</span> |
| <span class="n">ctx</span> <span class="o">=</span> <span class="n">SessionContext</span><span class="p">()</span> |
| <span class="n">df</span> <span class="o">=</span> <span class="n">ctx</span><span class="o">.</span><span class="n">read_csv</span><span class="p">(</span><span class="s2">"pokemon.csv"</span><span class="p">)</span> |
| <span class="n">df</span><span class="o">.</span><span class="n">show</span><span class="p">()</span> |
| </pre></div> |
| </div> |
| </div> |
| <div class="cell_output docutils container"> |
| <div class="output stream highlight-myst-ansi notranslate"><div class="highlight"><pre><span></span>DataFrame() |
| +----+---------------------------+--------+--------+-------+----+--------+---------+---------+---------+-------+------------+-----------+ |
| | # | Name | Type 1 | Type 2 | Total | HP | Attack | Defense | Sp. Atk | Sp. Def | Speed | Generation | Legendary | |
| +----+---------------------------+--------+--------+-------+----+--------+---------+---------+---------+-------+------------+-----------+ |
| | 1 | Bulbasaur | Grass | Poison | 318 | 45 | 49 | 49 | 65 | 65 | 45 | 1 | false | |
| | 2 | Ivysaur | Grass | Poison | 405 | 60 | 62 | 63 | 80 | 80 | 60 | 1 | false | |
| | 3 | Venusaur | Grass | Poison | 525 | 80 | 82 | 83 | 100 | 100 | 80 | 1 | false | |
| | 3 | VenusaurMega Venusaur | Grass | Poison | 625 | 80 | 100 | 123 | 122 | 120 | 80 | 1 | false | |
| | 4 | Charmander | Fire | | 309 | 39 | 52 | 43 | 60 | 50 | 65 | 1 | false | |
| | 5 | Charmeleon | Fire | | 405 | 58 | 64 | 58 | 80 | 65 | 80 | 1 | false | |
| | 6 | Charizard | Fire | Flying | 534 | 78 | 84 | 78 | 109 | 85 | 100 | 1 | false | |
| | 6 | CharizardMega Charizard X | Fire | Dragon | 634 | 78 | 130 | 111 | 130 | 85 | 100 | 1 | false | |
| | 6 | CharizardMega Charizard Y | Fire | Flying | 634 | 78 | 104 | 78 | 159 | 115 | 100 | 1 | false | |
| | 7 | Squirtle | Water | | 314 | 44 | 48 | 65 | 50 | 64 | 43 | 1 | false | |
| | 8 | Wartortle | Water | | 405 | 59 | 63 | 80 | 65 | 80 | 58 | 1 | false | |
| | 9 | Blastoise | Water | | 530 | 79 | 83 | 100 | 85 | 105 | 78 | 1 | false | |
| | 9 | BlastoiseMega Blastoise | Water | | 630 | 79 | 103 | 120 | 135 | 115 | 78 | 1 | false | |
| | 10 | Caterpie | Bug | | 195 | 45 | 30 | 35 | 20 | 20 | 45 | 1 | false | |
| | 11 | Metapod | Bug | | 205 | 50 | 20 | 55 | 25 | 25 | 30 | 1 | false | |
| | 12 | Butterfree | Bug | Flying | 395 | 60 | 45 | 50 | 90 | 80 | 70 | 1 | false | |
| | 13 | Weedle | Bug | Poison | 195 | 40 | 35 | 30 | 20 | 20 | 50 | 1 | false | |
| | 14 | Kakuna | Bug | Poison | 205 | 45 | 25 | 50 | 25 | 25 | 35 | 1 | false | |
| | 15 | Beedrill | Bug | Poison | 395 | 65 | 90 | 40 | 45 | 80 | 75 | 1 | false | |
| | 15 | BeedrillMega Beedrill | Bug | Poison | 495 | 65 | 150 | 40 | 15 | 80 | 145 | 1 | false | |
| +----+---------------------------+--------+--------+-------+----+--------+---------+---------+---------+-------+------------+-----------+ |
| </pre></div> |
| </div> |
| </div> |
| </div> |
| </section> |
| <section id="create-in-memory"> |
| <h2>Create in-memory<a class="headerlink" href="#create-in-memory" title="Link to this heading">#</a></h2> |
| <p>Sometimes it can be convenient to create a small DataFrame from a Python list or dictionary object. |
| To do this in DataFusion, you can use one of the three functions |
| <a class="reference internal" href="../autoapi/datafusion/context/index.html#datafusion.context.SessionContext.from_pydict" title="datafusion.context.SessionContext.from_pydict"><code class="xref py py-func docutils literal notranslate"><span class="pre">from_pydict()</span></code></a>, |
| <a class="reference internal" href="../autoapi/datafusion/context/index.html#datafusion.context.SessionContext.from_pylist" title="datafusion.context.SessionContext.from_pylist"><code class="xref py py-func docutils literal notranslate"><span class="pre">from_pylist()</span></code></a>, or |
| <a class="reference internal" href="../autoapi/datafusion/context/index.html#datafusion.context.SessionContext.create_dataframe" title="datafusion.context.SessionContext.create_dataframe"><code class="xref py py-func docutils literal notranslate"><span class="pre">create_dataframe()</span></code></a>.</p> |
| <p>As their names suggest, <code class="docutils literal notranslate"><span class="pre">from_pydict</span></code> and <code class="docutils literal notranslate"><span class="pre">from_pylist</span></code> will create DataFrames from Python |
| dictionary and list objects, respectively. <code class="docutils literal notranslate"><span class="pre">create_dataframe</span></code> assumes you will pass in a list |
| of list of <a class="reference external" href="https://arrow.apache.org/docs/python/generated/pyarrow.RecordBatch.html">PyArrow Record Batches</a>.</p> |
| <p>The following three examples all will create identical DataFrames:</p> |
| <div class="cell docutils container"> |
| <div class="cell_input docutils container"> |
| <div class="highlight-ipython3 notranslate"><div class="highlight"><pre><span></span><span class="kn">import</span><span class="w"> </span><span class="nn">pyarrow</span><span class="w"> </span><span class="k">as</span><span class="w"> </span><span class="nn">pa</span> |
| |
| <span class="n">ctx</span><span class="o">.</span><span class="n">from_pylist</span><span class="p">([</span> |
| <span class="p">{</span> <span class="s2">"a"</span><span class="p">:</span> <span class="mi">1</span><span class="p">,</span> <span class="s2">"b"</span><span class="p">:</span> <span class="mf">10.0</span><span class="p">,</span> <span class="s2">"c"</span><span class="p">:</span> <span class="s2">"alpha"</span> <span class="p">},</span> |
| <span class="p">{</span> <span class="s2">"a"</span><span class="p">:</span> <span class="mi">2</span><span class="p">,</span> <span class="s2">"b"</span><span class="p">:</span> <span class="mf">20.0</span><span class="p">,</span> <span class="s2">"c"</span><span class="p">:</span> <span class="s2">"beta"</span> <span class="p">},</span> |
| <span class="p">{</span> <span class="s2">"a"</span><span class="p">:</span> <span class="mi">3</span><span class="p">,</span> <span class="s2">"b"</span><span class="p">:</span> <span class="mf">30.0</span><span class="p">,</span> <span class="s2">"c"</span><span class="p">:</span> <span class="s2">"gamma"</span> <span class="p">},</span> |
| <span class="p">])</span><span class="o">.</span><span class="n">show</span><span class="p">()</span> |
| |
| <span class="n">ctx</span><span class="o">.</span><span class="n">from_pydict</span><span class="p">({</span> |
| <span class="s2">"a"</span><span class="p">:</span> <span class="p">[</span><span class="mi">1</span><span class="p">,</span> <span class="mi">2</span><span class="p">,</span> <span class="mi">3</span><span class="p">],</span> |
| <span class="s2">"b"</span><span class="p">:</span> <span class="p">[</span><span class="mf">10.0</span><span class="p">,</span> <span class="mf">20.0</span><span class="p">,</span> <span class="mf">30.0</span><span class="p">],</span> |
| <span class="s2">"c"</span><span class="p">:</span> <span class="p">[</span><span class="s2">"alpha"</span><span class="p">,</span> <span class="s2">"beta"</span><span class="p">,</span> <span class="s2">"gamma"</span><span class="p">],</span> |
| <span class="p">})</span><span class="o">.</span><span class="n">show</span><span class="p">()</span> |
| |
| <span class="n">batch</span> <span class="o">=</span> <span class="n">pa</span><span class="o">.</span><span class="n">RecordBatch</span><span class="o">.</span><span class="n">from_arrays</span><span class="p">(</span> |
| <span class="p">[</span> |
| <span class="n">pa</span><span class="o">.</span><span class="n">array</span><span class="p">([</span><span class="mi">1</span><span class="p">,</span> <span class="mi">2</span><span class="p">,</span> <span class="mi">3</span><span class="p">]),</span> |
| <span class="n">pa</span><span class="o">.</span><span class="n">array</span><span class="p">([</span><span class="mf">10.0</span><span class="p">,</span> <span class="mf">20.0</span><span class="p">,</span> <span class="mf">30.0</span><span class="p">]),</span> |
| <span class="n">pa</span><span class="o">.</span><span class="n">array</span><span class="p">([</span><span class="s2">"alpha"</span><span class="p">,</span> <span class="s2">"beta"</span><span class="p">,</span> <span class="s2">"gamma"</span><span class="p">]),</span> |
| <span class="p">],</span> |
| <span class="n">names</span><span class="o">=</span><span class="p">[</span><span class="s2">"a"</span><span class="p">,</span> <span class="s2">"b"</span><span class="p">,</span> <span class="s2">"c"</span><span class="p">],</span> |
| <span class="p">)</span> |
| |
| <span class="n">ctx</span><span class="o">.</span><span class="n">create_dataframe</span><span class="p">([[</span><span class="n">batch</span><span class="p">]])</span><span class="o">.</span><span class="n">show</span><span class="p">()</span> |
| </pre></div> |
| </div> |
| </div> |
| <div class="cell_output docutils container"> |
| <div class="output stream highlight-myst-ansi notranslate"><div class="highlight"><pre><span></span>DataFrame() |
| +---+------+-------+ |
| | a | b | c | |
| +---+------+-------+ |
| | 1 | 10.0 | alpha | |
| | 2 | 20.0 | beta | |
| | 3 | 30.0 | gamma | |
| +---+------+-------+ |
| DataFrame() |
| +---+------+-------+ |
| | a | b | c | |
| +---+------+-------+ |
| | 1 | 10.0 | alpha | |
| | 2 | 20.0 | beta | |
| | 3 | 30.0 | gamma | |
| +---+------+-------+ |
| DataFrame() |
| +---+------+-------+ |
| | a | b | c | |
| +---+------+-------+ |
| | 1 | 10.0 | alpha | |
| | 2 | 20.0 | beta | |
| | 3 | 30.0 | gamma | |
| +---+------+-------+ |
| </pre></div> |
| </div> |
| </div> |
| </div> |
| </section> |
| <section id="object-store"> |
| <h2>Object Store<a class="headerlink" href="#object-store" title="Link to this heading">#</a></h2> |
| <p>DataFusion has support for multiple storage options in addition to local files. |
| The example below requires an appropriate S3 account with access credentials.</p> |
| <p>Supported Object Stores are</p> |
| <ul class="simple"> |
| <li><p><a class="reference internal" href="../autoapi/datafusion/object_store/index.html#datafusion.object_store.AmazonS3" title="datafusion.object_store.AmazonS3"><code class="xref py py-class docutils literal notranslate"><span class="pre">AmazonS3</span></code></a></p></li> |
| <li><p><a class="reference internal" href="../autoapi/datafusion/object_store/index.html#datafusion.object_store.GoogleCloud" title="datafusion.object_store.GoogleCloud"><code class="xref py py-class docutils literal notranslate"><span class="pre">GoogleCloud</span></code></a></p></li> |
| <li><p><a class="reference internal" href="../autoapi/datafusion/object_store/index.html#datafusion.object_store.Http" title="datafusion.object_store.Http"><code class="xref py py-class docutils literal notranslate"><span class="pre">Http</span></code></a></p></li> |
| <li><p><a class="reference internal" href="../autoapi/datafusion/object_store/index.html#datafusion.object_store.LocalFileSystem" title="datafusion.object_store.LocalFileSystem"><code class="xref py py-class docutils literal notranslate"><span class="pre">LocalFileSystem</span></code></a></p></li> |
| <li><p><a class="reference internal" href="../autoapi/datafusion/object_store/index.html#datafusion.object_store.MicrosoftAzure" title="datafusion.object_store.MicrosoftAzure"><code class="xref py py-class docutils literal notranslate"><span class="pre">MicrosoftAzure</span></code></a></p></li> |
| </ul> |
| <div class="highlight-python notranslate"><div class="highlight"><pre><span></span><span class="kn">from</span><span class="w"> </span><span class="nn">datafusion.object_store</span><span class="w"> </span><span class="kn">import</span> <span class="n">AmazonS3</span> |
| |
| <span class="n">region</span> <span class="o">=</span> <span class="s2">"us-east-1"</span> |
| <span class="n">bucket_name</span> <span class="o">=</span> <span class="s2">"yellow-trips"</span> |
| |
| <span class="n">s3</span> <span class="o">=</span> <span class="n">AmazonS3</span><span class="p">(</span> |
| <span class="n">bucket_name</span><span class="o">=</span><span class="n">bucket_name</span><span class="p">,</span> |
| <span class="n">region</span><span class="o">=</span><span class="n">region</span><span class="p">,</span> |
| <span class="n">access_key_id</span><span class="o">=</span><span class="n">os</span><span class="o">.</span><span class="n">getenv</span><span class="p">(</span><span class="s2">"AWS_ACCESS_KEY_ID"</span><span class="p">),</span> |
| <span class="n">secret_access_key</span><span class="o">=</span><span class="n">os</span><span class="o">.</span><span class="n">getenv</span><span class="p">(</span><span class="s2">"AWS_SECRET_ACCESS_KEY"</span><span class="p">),</span> |
| <span class="p">)</span> |
| |
| <span class="n">path</span> <span class="o">=</span> <span class="sa">f</span><span class="s2">"s3://</span><span class="si">{</span><span class="n">bucket_name</span><span class="si">}</span><span class="s2">/"</span> |
| <span class="n">ctx</span><span class="o">.</span><span class="n">register_object_store</span><span class="p">(</span><span class="s2">"s3://"</span><span class="p">,</span> <span class="n">s3</span><span class="p">,</span> <span class="kc">None</span><span class="p">)</span> |
| |
| <span class="n">ctx</span><span class="o">.</span><span class="n">register_parquet</span><span class="p">(</span><span class="s2">"trips"</span><span class="p">,</span> <span class="n">path</span><span class="p">)</span> |
| |
| <span class="n">ctx</span><span class="o">.</span><span class="n">table</span><span class="p">(</span><span class="s2">"trips"</span><span class="p">)</span><span class="o">.</span><span class="n">show</span><span class="p">()</span> |
| </pre></div> |
| </div> |
| </section> |
| <section id="other-dataframe-libraries"> |
| <h2>Other DataFrame Libraries<a class="headerlink" href="#other-dataframe-libraries" title="Link to this heading">#</a></h2> |
| <p>DataFusion can import DataFrames directly from other libraries, such as |
| <a class="reference external" href="https://pola.rs/">Polars</a> and <a class="reference external" href="https://pandas.pydata.org/">Pandas</a>. |
| Since DataFusion version 42.0.0, any DataFrame library that supports the Arrow FFI PyCapsule |
| interface can be imported to DataFusion using the |
| <a class="reference internal" href="../autoapi/datafusion/context/index.html#datafusion.context.SessionContext.from_arrow" title="datafusion.context.SessionContext.from_arrow"><code class="xref py py-func docutils literal notranslate"><span class="pre">from_arrow()</span></code></a> function. Older versions of Polars may |
| not support the arrow interface. In those cases, you can still import via the |
| <a class="reference internal" href="../autoapi/datafusion/context/index.html#datafusion.context.SessionContext.from_polars" title="datafusion.context.SessionContext.from_polars"><code class="xref py py-func docutils literal notranslate"><span class="pre">from_polars()</span></code></a> function.</p> |
| <div class="highlight-python notranslate"><div class="highlight"><pre><span></span><span class="kn">import</span><span class="w"> </span><span class="nn">pandas</span><span class="w"> </span><span class="k">as</span><span class="w"> </span><span class="nn">pd</span> |
| |
| <span class="n">data</span> <span class="o">=</span> <span class="p">{</span> <span class="s2">"a"</span><span class="p">:</span> <span class="p">[</span><span class="mi">1</span><span class="p">,</span> <span class="mi">2</span><span class="p">,</span> <span class="mi">3</span><span class="p">],</span> <span class="s2">"b"</span><span class="p">:</span> <span class="p">[</span><span class="mf">10.0</span><span class="p">,</span> <span class="mf">20.0</span><span class="p">,</span> <span class="mf">30.0</span><span class="p">],</span> <span class="s2">"c"</span><span class="p">:</span> <span class="p">[</span><span class="s2">"alpha"</span><span class="p">,</span> <span class="s2">"beta"</span><span class="p">,</span> <span class="s2">"gamma"</span><span class="p">]</span> <span class="p">}</span> |
| <span class="n">pandas_df</span> <span class="o">=</span> <span class="n">pd</span><span class="o">.</span><span class="n">DataFrame</span><span class="p">(</span><span class="n">data</span><span class="p">)</span> |
| |
| <span class="n">datafusion_df</span> <span class="o">=</span> <span class="n">ctx</span><span class="o">.</span><span class="n">from_arrow</span><span class="p">(</span><span class="n">pandas_df</span><span class="p">)</span> |
| <span class="n">datafusion_df</span><span class="o">.</span><span class="n">show</span><span class="p">()</span> |
| </pre></div> |
| </div> |
| <div class="highlight-python notranslate"><div class="highlight"><pre><span></span><span class="kn">import</span><span class="w"> </span><span class="nn">polars</span><span class="w"> </span><span class="k">as</span><span class="w"> </span><span class="nn">pl</span> |
| <span class="n">polars_df</span> <span class="o">=</span> <span class="n">pl</span><span class="o">.</span><span class="n">DataFrame</span><span class="p">(</span><span class="n">data</span><span class="p">)</span> |
| |
| <span class="n">datafusion_df</span> <span class="o">=</span> <span class="n">ctx</span><span class="o">.</span><span class="n">from_arrow</span><span class="p">(</span><span class="n">polars_df</span><span class="p">)</span> |
| <span class="n">datafusion_df</span><span class="o">.</span><span class="n">show</span><span class="p">()</span> |
| </pre></div> |
| </div> |
| </section> |
| <section id="delta-lake"> |
| <h2>Delta Lake<a class="headerlink" href="#delta-lake" title="Link to this heading">#</a></h2> |
| <p>DataFusion 43.0.0 and later support the ability to register table providers from sources such |
| as Delta Lake. This will require a recent version of |
| <a class="reference external" href="https://delta-io.github.io/delta-rs/">deltalake</a> to provide the required interfaces.</p> |
| <div class="highlight-python notranslate"><div class="highlight"><pre><span></span><span class="kn">from</span><span class="w"> </span><span class="nn">deltalake</span><span class="w"> </span><span class="kn">import</span> <span class="n">DeltaTable</span> |
| |
| <span class="n">delta_table</span> <span class="o">=</span> <span class="n">DeltaTable</span><span class="p">(</span><span class="s2">"path_to_table"</span><span class="p">)</span> |
| <span class="n">ctx</span><span class="o">.</span><span class="n">register_table</span><span class="p">(</span><span class="s2">"my_delta_table"</span><span class="p">,</span> <span class="n">delta_table</span><span class="p">)</span> |
| <span class="n">df</span> <span class="o">=</span> <span class="n">ctx</span><span class="o">.</span><span class="n">table</span><span class="p">(</span><span class="s2">"my_delta_table"</span><span class="p">)</span> |
| <span class="n">df</span><span class="o">.</span><span class="n">show</span><span class="p">()</span> |
| </pre></div> |
| </div> |
| <p>On older versions of <code class="docutils literal notranslate"><span class="pre">deltalake</span></code> (prior to 0.22) you can use the |
| <a class="reference external" href="https://arrow.apache.org/docs/python/generated/pyarrow.dataset.Dataset.html">Arrow DataSet</a> |
| interface to import to DataFusion, but this does not support features such as filter push down |
| which can lead to a significant performance difference.</p> |
| <div class="highlight-python notranslate"><div class="highlight"><pre><span></span><span class="kn">from</span><span class="w"> </span><span class="nn">deltalake</span><span class="w"> </span><span class="kn">import</span> <span class="n">DeltaTable</span> |
| |
| <span class="n">delta_table</span> <span class="o">=</span> <span class="n">DeltaTable</span><span class="p">(</span><span class="s2">"path_to_table"</span><span class="p">)</span> |
| <span class="n">ctx</span><span class="o">.</span><span class="n">register_dataset</span><span class="p">(</span><span class="s2">"my_delta_table"</span><span class="p">,</span> <span class="n">delta_table</span><span class="o">.</span><span class="n">to_pyarrow_dataset</span><span class="p">())</span> |
| <span class="n">df</span> <span class="o">=</span> <span class="n">ctx</span><span class="o">.</span><span class="n">table</span><span class="p">(</span><span class="s2">"my_delta_table"</span><span class="p">)</span> |
| <span class="n">df</span><span class="o">.</span><span class="n">show</span><span class="p">()</span> |
| </pre></div> |
| </div> |
| </section> |
| <section id="apache-iceberg"> |
| <h2>Apache Iceberg<a class="headerlink" href="#apache-iceberg" title="Link to this heading">#</a></h2> |
| <p>DataFusion 45.0.0 and later support the ability to register Apache Iceberg tables as table providers through the Custom Table Provider interface.</p> |
| <p>This requires either the <a class="reference external" href="https://pypi.org/project/pyiceberg/">pyiceberg</a> library (>=0.10.0) or the <a class="reference external" href="https://pypi.org/project/pyiceberg-core/">pyiceberg-core</a> library (>=0.5.0).</p> |
| <ul class="simple"> |
| <li><p>The <code class="docutils literal notranslate"><span class="pre">pyiceberg-core</span></code> library exposes Iceberg Rust’s implementation of the Custom Table Provider interface as python bindings.</p></li> |
| <li><p>The <code class="docutils literal notranslate"><span class="pre">pyiceberg</span></code> library utilizes the <code class="docutils literal notranslate"><span class="pre">pyiceberg-core</span></code> python bindings under the hood and provides a native way for Python users to interact with the DataFusion.</p></li> |
| </ul> |
| <div class="highlight-python notranslate"><div class="highlight"><pre><span></span><span class="kn">from</span><span class="w"> </span><span class="nn">datafusion</span><span class="w"> </span><span class="kn">import</span> <span class="n">SessionContext</span> |
| <span class="kn">from</span><span class="w"> </span><span class="nn">pyiceberg.catalog</span><span class="w"> </span><span class="kn">import</span> <span class="n">load_catalog</span> |
| <span class="kn">import</span><span class="w"> </span><span class="nn">pyarrow</span><span class="w"> </span><span class="k">as</span><span class="w"> </span><span class="nn">pa</span> |
| |
| <span class="c1"># Load catalog and create/load a table</span> |
| <span class="n">catalog</span> <span class="o">=</span> <span class="n">load_catalog</span><span class="p">(</span><span class="s2">"catalog"</span><span class="p">,</span> <span class="nb">type</span><span class="o">=</span><span class="s2">"in-memory"</span><span class="p">)</span> |
| <span class="n">catalog</span><span class="o">.</span><span class="n">create_namespace_if_not_exists</span><span class="p">(</span><span class="s2">"default"</span><span class="p">)</span> |
| |
| <span class="c1"># Create some sample data</span> |
| <span class="n">data</span> <span class="o">=</span> <span class="n">pa</span><span class="o">.</span><span class="n">table</span><span class="p">({</span><span class="s2">"x"</span><span class="p">:</span> <span class="p">[</span><span class="mi">1</span><span class="p">,</span> <span class="mi">2</span><span class="p">,</span> <span class="mi">3</span><span class="p">],</span> <span class="s2">"y"</span><span class="p">:</span> <span class="p">[</span><span class="mi">4</span><span class="p">,</span> <span class="mi">5</span><span class="p">,</span> <span class="mi">6</span><span class="p">]})</span> |
| <span class="n">iceberg_table</span> <span class="o">=</span> <span class="n">catalog</span><span class="o">.</span><span class="n">create_table</span><span class="p">(</span><span class="s2">"default.test"</span><span class="p">,</span> <span class="n">schema</span><span class="o">=</span><span class="n">data</span><span class="o">.</span><span class="n">schema</span><span class="p">)</span> |
| <span class="n">iceberg_table</span><span class="o">.</span><span class="n">append</span><span class="p">(</span><span class="n">data</span><span class="p">)</span> |
| |
| <span class="c1"># Register the table with DataFusion</span> |
| <span class="n">ctx</span> <span class="o">=</span> <span class="n">SessionContext</span><span class="p">()</span> |
| <span class="n">ctx</span><span class="o">.</span><span class="n">register_table_provider</span><span class="p">(</span><span class="s2">"test"</span><span class="p">,</span> <span class="n">iceberg_table</span><span class="p">)</span> |
| |
| <span class="c1"># Query the table using DataFusion</span> |
| <span class="n">ctx</span><span class="o">.</span><span class="n">table</span><span class="p">(</span><span class="s2">"test"</span><span class="p">)</span><span class="o">.</span><span class="n">show</span><span class="p">()</span> |
| </pre></div> |
| </div> |
| <p>Note that the Datafusion integration rely on features from the <a class="reference external" href="https://github.com/apache/iceberg-rust/">Iceberg Rust</a> implementation instead of the <a class="reference external" href="https://github.com/apache/iceberg-python/">PyIceberg</a> implementation. |
| Features that are available in PyIceberg but not yet in Iceberg Rust will not be available when using DataFusion.</p> |
| </section> |
| <section id="custom-table-provider"> |
| <h2>Custom Table Provider<a class="headerlink" href="#custom-table-provider" title="Link to this heading">#</a></h2> |
| <p>You can implement a custom Data Provider in Rust and expose it to DataFusion through the |
| the interface as describe in the <a class="reference internal" href="io/table_provider.html#io-custom-table-provider"><span class="std std-ref">Custom Table Provider</span></a> |
| section. This is an advanced topic, but a |
| <a class="reference external" href="https://github.com/apache/datafusion-python/tree/main/examples/datafusion-ffi-example">user example</a> |
| is provided in the DataFusion repository.</p> |
| </section> |
| </section> |
| <section id="catalog"> |
| <h1>Catalog<a class="headerlink" href="#catalog" title="Link to this heading">#</a></h1> |
| <p>A common technique for organizing tables is using a three level hierarchical approach. DataFusion |
| supports this form of organizing using the <a class="reference internal" href="../autoapi/datafusion/catalog/index.html#datafusion.catalog.Catalog" title="datafusion.catalog.Catalog"><code class="xref py py-class docutils literal notranslate"><span class="pre">Catalog</span></code></a>, |
| <a class="reference internal" href="../autoapi/datafusion/catalog/index.html#datafusion.catalog.Schema" title="datafusion.catalog.Schema"><code class="xref py py-class docutils literal notranslate"><span class="pre">Schema</span></code></a>, and <a class="reference internal" href="../autoapi/datafusion/catalog/index.html#datafusion.catalog.Table" title="datafusion.catalog.Table"><code class="xref py py-class docutils literal notranslate"><span class="pre">Table</span></code></a>. By default, |
| a <a class="reference internal" href="../autoapi/datafusion/context/index.html#datafusion.context.SessionContext" title="datafusion.context.SessionContext"><code class="xref py py-class docutils literal notranslate"><span class="pre">SessionContext</span></code></a> comes with a single Catalog and a single Schema |
| with the names <code class="docutils literal notranslate"><span class="pre">datafusion</span></code> and <code class="docutils literal notranslate"><span class="pre">public</span></code>, respectively.</p> |
| <p>The default implementation uses an in-memory approach to the catalog and schema. We have support |
| for adding additional in-memory catalogs and schemas. You can access tables registered in a schema |
| either through the Dataframe API or via sql commands. This can be done like in the following |
| example:</p> |
| <div class="highlight-python notranslate"><div class="highlight"><pre><span></span><span class="kn">import</span><span class="w"> </span><span class="nn">pyarrow</span><span class="w"> </span><span class="k">as</span><span class="w"> </span><span class="nn">pa</span> |
| <span class="kn">from</span><span class="w"> </span><span class="nn">datafusion.catalog</span><span class="w"> </span><span class="kn">import</span> <span class="n">Catalog</span><span class="p">,</span> <span class="n">Schema</span> |
| <span class="kn">from</span><span class="w"> </span><span class="nn">datafusion</span><span class="w"> </span><span class="kn">import</span> <span class="n">SessionContext</span> |
| |
| <span class="n">ctx</span> <span class="o">=</span> <span class="n">SessionContext</span><span class="p">()</span> |
| |
| <span class="n">my_catalog</span> <span class="o">=</span> <span class="n">Catalog</span><span class="o">.</span><span class="n">memory_catalog</span><span class="p">()</span> |
| <span class="n">my_schema</span> <span class="o">=</span> <span class="n">Schema</span><span class="o">.</span><span class="n">memory_schema</span><span class="p">()</span> |
| <span class="n">my_catalog</span><span class="o">.</span><span class="n">register_schema</span><span class="p">(</span><span class="s1">'my_schema_name'</span><span class="p">,</span> <span class="n">my_schema</span><span class="p">)</span> |
| <span class="n">ctx</span><span class="o">.</span><span class="n">register_catalog_provider</span><span class="p">(</span><span class="s1">'my_catalog_name'</span><span class="p">,</span> <span class="n">my_catalog</span><span class="p">)</span> |
| |
| <span class="c1"># Create an in-memory table</span> |
| <span class="n">table</span> <span class="o">=</span> <span class="n">pa</span><span class="o">.</span><span class="n">table</span><span class="p">({</span> |
| <span class="s1">'name'</span><span class="p">:</span> <span class="p">[</span><span class="s1">'Bulbasaur'</span><span class="p">,</span> <span class="s1">'Charmander'</span><span class="p">,</span> <span class="s1">'Squirtle'</span><span class="p">],</span> |
| <span class="s1">'type'</span><span class="p">:</span> <span class="p">[</span><span class="s1">'Grass'</span><span class="p">,</span> <span class="s1">'Fire'</span><span class="p">,</span> <span class="s1">'Water'</span><span class="p">],</span> |
| <span class="s1">'hp'</span><span class="p">:</span> <span class="p">[</span><span class="mi">45</span><span class="p">,</span> <span class="mi">39</span><span class="p">,</span> <span class="mi">44</span><span class="p">],</span> |
| <span class="p">})</span> |
| <span class="n">df</span> <span class="o">=</span> <span class="n">ctx</span><span class="o">.</span><span class="n">create_dataframe</span><span class="p">([</span><span class="n">table</span><span class="o">.</span><span class="n">to_batches</span><span class="p">()],</span> <span class="n">name</span><span class="o">=</span><span class="s1">'pokemon'</span><span class="p">)</span> |
| |
| <span class="n">my_schema</span><span class="o">.</span><span class="n">register_table</span><span class="p">(</span><span class="s1">'pokemon'</span><span class="p">,</span> <span class="n">df</span><span class="p">)</span> |
| |
| <span class="n">ctx</span><span class="o">.</span><span class="n">sql</span><span class="p">(</span><span class="s1">'SELECT * FROM my_catalog_name.my_schema_name.pokemon'</span><span class="p">)</span><span class="o">.</span><span class="n">show</span><span class="p">()</span> |
| </pre></div> |
| </div> |
| <section id="user-defined-catalog-and-schema"> |
| <h2>User Defined Catalog and Schema<a class="headerlink" href="#user-defined-catalog-and-schema" title="Link to this heading">#</a></h2> |
| <p>If the in-memory catalogs are insufficient for your uses, there are two approaches you can take |
| to implementing a custom catalog and/or schema. In the below discussion, we describe how to |
| implement these for a Catalog, but the approach to implementing for a Schema is nearly |
| identical.</p> |
| <p>DataFusion supports Catalogs written in either Rust or Python. If you write a Catalog in Rust, |
| you will need to export it as a Python library via PyO3. There is a complete example of a |
| catalog implemented this way in the |
| <a class="reference external" href="https://github.com/apache/datafusion-python/tree/main/examples/">examples folder</a> |
| of our repository. Writing catalog providers in Rust provides typically can lead to significant |
| performance improvements over the Python based approach.</p> |
| <p>To implement a Catalog in Python, you will need to inherit from the abstract base class |
| <a class="reference internal" href="../autoapi/datafusion/catalog/index.html#datafusion.catalog.CatalogProvider" title="datafusion.catalog.CatalogProvider"><code class="xref py py-class docutils literal notranslate"><span class="pre">CatalogProvider</span></code></a>. There are examples in the |
| <a class="reference external" href="https://github.com/apache/datafusion-python/tree/main/python/tests">unit tests</a> of |
| implementing a basic Catalog in Python where we simply keep a dictionary of the |
| registered Schemas.</p> |
| <p>One important note for developers is that when we have a Catalog defined in Python, we have |
| two different ways of accessing this Catalog. First, we register the catalog with a Rust |
| wrapper. This allows for any rust based code to call the Python functions as necessary. |
| Second, if the user access the Catalog via the Python API, we identify this and return back |
| the original Python object that implements the Catalog. This is an important distinction |
| for developers because we do <em>not</em> return a Python wrapper around the Rust wrapper of the |
| original Python object.</p> |
| </section> |
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