mirror of
https://github.com/wassname/ray.git
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Improve backend debug logging, refactor scheduling queues (#3819)
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+112
-56
@@ -1,85 +1,141 @@
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Development Tips
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================
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If you are doing development on the Ray codebase, the following tips may be
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helpful.
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Compilation
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-----------
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1. **Speeding up compilation:** Be sure to install Ray with
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To speed up compilation, be sure to install Ray with
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.. code-block:: shell
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.. code-block:: shell
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cd ray/python
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pip install -e . --verbose
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cd ray/python
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pip install -e . --verbose
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The ``-e`` means "editable", so changes you make to files in the Ray
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directory will take effect without reinstalling the package. In contrast, if
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you do ``python setup.py install``, files will be copied from the Ray
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directory to a directory of Python packages (often something like
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``/home/ubuntu/anaconda3/lib/python3.6/site-packages/ray``). This means that
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changes you make to files in the Ray directory will not have any effect.
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The ``-e`` means "editable", so changes you make to files in the Ray
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directory will take effect without reinstalling the package. In contrast, if
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you do ``python setup.py install``, files will be copied from the Ray
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directory to a directory of Python packages (often something like
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``/home/ubuntu/anaconda3/lib/python3.6/site-packages/ray``). This means that
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changes you make to files in the Ray directory will not have any effect.
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If you run into **Permission Denied** errors when running ``pip install``,
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you can try adding ``--user``. You may also need to run something like ``sudo
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chown -R $USER /home/ubuntu/anaconda3`` (substituting in the appropriate
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path).
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If you run into **Permission Denied** errors when running ``pip install``,
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you can try adding ``--user``. You may also need to run something like ``sudo
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chown -R $USER /home/ubuntu/anaconda3`` (substituting in the appropriate
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path).
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If you make changes to the C++ files, you will need to recompile them.
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However, you do not need to rerun ``pip install -e .``. Instead, you can
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recompile much more quickly by doing
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If you make changes to the C++ files, you will need to recompile them.
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However, you do not need to rerun ``pip install -e .``. Instead, you can
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recompile much more quickly by doing
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.. code-block:: shell
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.. code-block:: shell
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cd ray/build
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make -j8
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cd ray/build
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make -j8
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2. **Starting processes in a debugger:** When processes are crashing, it is
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often useful to start them in a debugger (``gdb`` on Linux or ``lldb`` on
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MacOS). See the latest discussion about how to do this `here`_.
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Debugging
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---------
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3. **Running tests locally:** Suppose that one of the tests (e.g.,
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``runtest.py``) is failing. You can run that test locally by running
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``python test/runtest.py``. However, doing so will run all of the tests which
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can take a while. To run a specific test that is failing, you can do
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Starting processes in a debugger
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~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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When processes are crashing, it is often useful to start them in a debugger
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(``gdb`` on Linux or ``lldb`` on MacOS). See the latest discussion about how to
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do this `here`_.
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.. code-block:: shell
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You can also get a core dump of the ``raylet`` process, which is especially
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useful when filing `issues`_. The process to obtain a core dump is OS-specific,
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but usually involves running ``ulimit -c unlimited`` before starting Ray to
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allow core dump files to be written.
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cd ray
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python -m pytest -v test/runtest.py::test_keyword_args
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Inspecting Redis shards
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~~~~~~~~~~~~~~~~~~~~~~~
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To inspect Redis, you can use the ``ray.experimental.state.GlobalState`` Python
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API. The easiest way to do this is to start or connect to a Ray cluster with
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``ray.init()``, then query the API like so:
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When running tests, usually only the first test failure matters. A single
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test failure often triggers the failure of subsequent tests in the same
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script.
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.. code-block:: python
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4. **Running linter locally:** To run the Python linter on a specific file, run
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something like ``flake8 ray/python/ray/worker.py``. You may need to first run
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``pip install flake8``.
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ray.init()
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ray.worker.global_state.client_table()
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# Returns current information about the nodes in the cluster, such as:
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# [{'ClientID': '2a9d2b34ad24a37ed54e4fcd32bf19f915742f5b',
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# 'IsInsertion': True,
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# 'NodeManagerAddress': '1.2.3.4',
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# 'NodeManagerPort': 43280,
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# 'ObjectManagerPort': 38062,
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# 'ObjectStoreSocketName': '/tmp/ray/session_2019-01-21_16-28-05_4216/sockets/plasma_store',
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# 'RayletSocketName': '/tmp/ray/session_2019-01-21_16-28-05_4216/sockets/raylet',
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# 'Resources': {'CPU': 8.0, 'GPU': 1.0}}]
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5. **Autoformatting code**. We use ``yapf`` https://github.com/google/yapf for
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linting, and the config file is located at ``.style.yapf``. We recommend
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running ``scripts/yapf.sh`` prior to pushing to format changed files.
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Note that some projects such as dataframes and rllib are currently excluded.
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To inspect the primary Redis shard manually, you can also query with commands
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like the following.
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6. **Inspecting Redis shards by hand:** To inspect the primary Redis shard by
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hand, you can query it with commands like the following.
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.. code-block:: python
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.. code-block:: python
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r_primary = ray.worker.global_worker.redis_client
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r_primary.keys("*")
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r_primary = ray.worker.global_worker.redis_client
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r_primary.keys("*")
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To inspect other Redis shards, you will need to create a new Redis client.
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For example (assuming the relevant IP address is ``127.0.0.1`` and the
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relevant port is ``1234``), you can do this as follows.
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To inspect other Redis shards, you will need to create a new Redis client.
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For example (assuming the relevant IP address is ``127.0.0.1`` and the
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relevant port is ``1234``), you can do this as follows.
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.. code-block:: python
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.. code-block:: python
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import redis
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r = redis.StrictRedis(host='127.0.0.1', port=1234)
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import redis
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r = redis.StrictRedis(host='127.0.0.1', port=1234)
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You can find a list of the relevant IP addresses and ports by running
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You can find a list of the relevant IP addresses and ports by running
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.. code-block:: python
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.. code-block:: python
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r_primary.lrange('RedisShards', 0, -1)
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r_primary.lrange('RedisShards', 0, -1)
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.. _backend-logging:
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Backend logging
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~~~~~~~~~~~~~~~
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The ``raylet`` process logs detailed information about events like task
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execution and object transfers between nodes. To set the logging level at
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runtime, you can set the ``RAY_BACKEND_LOG_LEVEL`` environment variable before
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starting Ray. For example, you can do:
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.. code-block:: shell
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export RAY_BACKEND_LOG_LEVEL=debug
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ray start
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This will print any ``RAY_LOG(DEBUG)`` lines in the source code to the
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``raylet.err`` file, which you can find in the `Temporary Files`_.
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Testing locally
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---------------
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Suppose that one of the tests (e.g., ``runtest.py``) is failing. You can run
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that test locally by running ``python test/runtest.py``. However, doing so will
|
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run all of the tests which can take a while. To run a specific test that is
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failing, you can do
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.. code-block:: shell
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cd ray
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python -m pytest -v test/runtest.py::test_keyword_args
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When running tests, usually only the first test failure matters. A single
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test failure often triggers the failure of subsequent tests in the same
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script.
|
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|
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Linting
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-------
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|
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**Running linter locally:** To run the Python linter on a specific file, run
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something like ``flake8 ray/python/ray/worker.py``. You may need to first run
|
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``pip install flake8``.
|
||||
|
||||
**Autoformatting code**. We use ``yapf`` https://github.com/google/yapf for
|
||||
linting, and the config file is located at ``.style.yapf``. We recommend
|
||||
running ``scripts/yapf.sh`` prior to pushing to format changed files.
|
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Note that some projects such as dataframes and rllib are currently excluded.
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||||
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.. _`issues`: https://github.com/ray-project/ray/issues
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.. _`here`: https://github.com/ray-project/ray/issues/108
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.. _`Temporary Files`: http://ray.readthedocs.io/en/latest/tempfile.html
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