clearml-docs/docs/guides/frameworks/autokeras/integration_autokeras.md

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---
title: AutoKeras Integration
---
Integrate **ClearML** into code that uses [autokeras](https://github.com/keras-team/autokeras). Initialize a **ClearML**
Task in a code, and **ClearML** automatically logs scalars, plots, and images reported to TensorBoard, Matplotlib, Plotly,
and Seaborn, and all other automatic logging, and explicit reporting added to the code (see [Logging](../../../fundamentals/logger.md)).
**ClearML** allows to:
* Visualize experiment results in the **ClearML Web UI**.
* Track and upload models.
* Track model performance and create tracking leaderboards.
* Rerun experiments, reproduce experiments on any target machine, and tune experiments.
* Compare experiments.
See the [AutoKeras](autokeras_imdb_example.md) example, which shows **ClearML** automatically logging:
* Scalars
* Hyperparameters
* The console log
* Models.
Once these are logged, they can be visualized in the **ClearML Web UI**.
:::note
If you are not already using **ClearML**, see [Getting Started](/getting_started/ds/best_practices.md).
:::
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## Adding ClearML to Code
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Add two lines of code:
```python
from clearml import Task
task = Task.init(project_name="myProject", task_name="myExperiment")
```
When the code runs, it initializes a Task in **ClearML Server**. A hyperlink to the experiment's log is output to the console.
CLEARML Task: created new task id=c1f1dc6cf2ee4ec88cd1f6184344ca4e
CLEARML results page: https://app.clearml-master.hosted.allegro.ai/projects/1c7a45633c554b8294fa6dcc3b1f2d4d/experiments/c1f1dc6cf2ee4ec88cd1f6184344ca4e/output/log
Later in the code, define callbacks using TensorBoard, and **ClearML** logs TensorBoard scalars, histograms, and images.