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@ -169,7 +169,7 @@ clearml-session --upload-files /mnt/data/stuff
You can upload your files in conjunction with the `--store-workspace` option to easily move workloads between local You can upload your files in conjunction with the `--store-workspace` option to easily move workloads between local
development machines and remote machines with persistent workspace synchronization. See [Storing and Synchronizing Workspace](#storing-and-synchronizing-workspace). development machines and remote machines with persistent workspace synchronization. See [Storing and Synchronizing Workspace](#storing-and-synchronizing-workspace).
### Starting a Debugging Session ### Starting a Debugging Session
You can debug previously executed tasks registered in the ClearML system on a remote interactive session. You can debug previously executed tasks registered in the ClearML system on a remote interactive session.
Input into `clearml-session` the ID of a Task to debug, then `clearml-session` clones the task's git repository and Input into `clearml-session` the ID of a Task to debug, then `clearml-session` clones the task's git repository and
replicates the environment on a remote machine. Then the code can be interactively executed and debugged on JupyterLab / VS Code. replicates the environment on a remote machine. Then the code can be interactively executed and debugged on JupyterLab / VS Code.

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@ -11,10 +11,11 @@ In Machine Learning, you are very likely dealing with a gargantuan amount of dat
which you then need to be able to share, reproduce, and track. which you then need to be able to share, reproduce, and track.
ClearML Data Management solves two important challenges: ClearML Data Management solves two important challenges:
- Accessibility - Making data easily accessible from every machine, - Accessibility - Making data easily accessible from every machine
- Versioning - Linking data and tasks for better **traceability**. - Versioning - Linking data and tasks for better **traceability**.
![Dataset lineage and preview](../img/webapp_dataset_lineage_preview.png) ![Dataset preview](../img/webapp_dataset_preview.png#light-mode-only)
![Dataset preview](../img/webapp_dataset_preview_dark.png#dark-mode-only)
**We believe Data is not code**. It should not be stored in a git tree, because progress on datasets is not always linear. **We believe Data is not code**. It should not be stored in a git tree, because progress on datasets is not always linear.
Moreover, it can be difficult and inefficient to find on a git tree the commit associated with a certain version of a dataset. Moreover, it can be difficult and inefficient to find on a git tree the commit associated with a certain version of a dataset.

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@ -253,7 +253,8 @@ task's status. If a task failed or was aborted, you can view how much progress i
<div class="max-w-50"> <div class="max-w-50">
![Task table progress indication](../img/fundamentals_task_progress.png) ![Task table progress indication](../img/fundamentals_task_progress.png#light-mode-only)
![Task table progress indication](../img/fundamentals_task_progress_dark.png#dark-mode-only)
</div> </div>

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@ -3,7 +3,7 @@ title: Executable Task Containers
--- ---
This tutorial demonstrates using [`clearml-agent`](../../clearml_agent.md)'s [`build`](../../clearml_agent/clearml_agent_ref.md#build) This tutorial demonstrates using [`clearml-agent`](../../clearml_agent.md)'s [`build`](../../clearml_agent/clearml_agent_ref.md#build)
command to package a task into an executable container. In this example, you will build a Container image that, when command to package a task into an executable container. In this example, you will build a container image that, when
run, will automatically execute the [keras_tensorboard.py](https://github.com/allegroai/clearml/blob/master/examples/frameworks/keras/keras_tensorboard.py) run, will automatically execute the [keras_tensorboard.py](https://github.com/allegroai/clearml/blob/master/examples/frameworks/keras/keras_tensorboard.py)
script. script.

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@ -67,9 +67,13 @@ On the pipeline run panel, view the **RUN INFO** which shows:
* Produced Artifacts * Produced Artifacts
* Output Models * Output Models
<div class="max-w-25">
![Run info](../../img/webapp_pipeline_run_info.png#light-mode-only) ![Run info](../../img/webapp_pipeline_run_info.png#light-mode-only)
![Run info](../../img/webapp_pipeline_run_info_dark.png#dark-mode-only) ![Run info](../../img/webapp_pipeline_run_info_dark.png#dark-mode-only)
</div>
To view a run's complete information, click **Full details**, which will open the pipeline's controller [task page](../webapp_exp_track_visual.md). To view a run's complete information, click **Full details**, which will open the pipeline's controller [task page](../webapp_exp_track_visual.md).
View each list's complete details in the pipeline task's corresponding tabs: View each list's complete details in the pipeline task's corresponding tabs:
* **PARAMETERS** list > **CONFIGURATION** tab * **PARAMETERS** list > **CONFIGURATION** tab

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@ -44,7 +44,7 @@ The model table contains the following columns:
| *Metadata* | User defined metadata key column. Available options depend upon the models in the table. | String | | *Metadata* | User defined metadata key column. Available options depend upon the models in the table. | String |
## Customizing the Model table ## Customizing the Model Table
The model table is customizable. Changes are persistent (cached in the browser) and represented in the URL, so customized settings The model table is customizable. Changes are persistent (cached in the browser) and represented in the URL, so customized settings
can be saved in a browser bookmark and shared with other ClearML users to collaborate. can be saved in a browser bookmark and shared with other ClearML users to collaborate.