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NAACL2022 (NAACL 2022)
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Join organization by clicking here\n

Hugging Face Gradio NAACL 2022 event\n

\n

\nNAACL organization is accepting Gradio demo submissions for NAACL 2022 papers from anyone for a chance to win prizes from Hugging Face, see prizes section and the leaderboard below. The deadline to submit demos is July 31st, 2022 (AOE Time Zone). For all participants, feel free to submit Gradio demos for any NAACL paper for a chance to win prizes, you can submit demos for multiple papers. Find tutorial on getting started with Gradio on Hugging Face here and to get started with the new Gradio Blocks API here

\n\n

Hugging Face Models NAACL 2022 event\n

\n

\nNAACL organization is accepting models submissions for NAACL 2022 papers from anyone for a chance to win prizes from Hugging Face, see prizes section and the leaderboard below. The deadline to submit demos is July 31st, 2022 (AOE Time Zone). For all partipants, feel free to submit models for any NAACL paper for a chance to win prizes, you can submit models for multiple papers. Find tutorial on getting started with repos on Hugging Face here and to get started with adding models here

\n\n

Hugging Face Datasets NAACL 2022 event\n

\n

\nNAACL organization is accepting dataset submissions for NAACL 2022 papers from anyone for a chance to win prizes from Hugging Face, see prizes section and the leaderboard below. The deadline to submit demos is July 31st, 2022 (AOE Time Zone). For all partipants, feel free to submit datasets for any NAACL paper for a chance to win prizes, you can submit datasets for multiple papers. Find tutorial on getting started with repos on Hugging Face here and to get started with adding datasets here

\n\n

Hugging Face Prizes

\n
    \n
  • Top 5 spaces/models/datasets based on likes\n\n
  • \n
\n\n

LeaderBoard for Most Popular NAACL Spaces

\n

See the NAACL Spaces Leaderboard

\n

LeaderBoard for Most Popular NAACL Models

\n

See the NAACL Models Leaderboard

\n

LeaderBoard for Most Popular NAACL Datasets

\n

See the NAACL Datasets Leaderboard

\n
\n

Hugging Face Spaces & Gradio for Showcasing your NAACL ‘22 Demo \n

\n

\n In this tutorial, we will demonstrate how to showcase your demo with an easy to use web interface using the Gradio Python library and host it on Hugging Face Spaces so that conference attendees can easily find and try out your demos. Also, see https://gradio.app/introduction_to_blocks/, for a more flexible way to build Gradio Demos\n

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🚀 Create a Gradio Demo from your Model\n

\n

\nThe first step is to create a web demo from your model. As an example, we will be creating a demo from an image classification model (called model) which we will be uploading to Spaces. The full code for steps 1-4 can be found in this colab notebook.\n


\n\n

1. Install the gradio library\n

\n

\nAll you need to do is to run this in the terminal: pip install gradio\n

\n
\n

2. Define a function in your Python code that performs inference with your model on a data point and returns the prediction\n

\n

\nHere’s we define our image classification model prediction function in PyTorch (any framework, like TensorFlow, scikit-learn, JAX, or a plain Python will work as well):\n

\n\ndef predict(inp):\n  inp = Image.fromarray(inp.astype('uint8'), 'RGB')\n  \n  inp = transforms.ToTensor()(inp).unsqueeze(0)\n  \n  with torch.no_grad():\n  \n    prediction = torch.nn.functional.softmax(model(inp)[0], dim=0)\n  \n  return {labels[i]: float(prediction[i]) for i in range(1000)}\n\n
\n

\n\n

3. Then create a Gradio Interface using the function and the appropriate input and output types\n

\n

\nFor the image classification model from Step 2, it would like like this:\n

\n
\n\ninputs = gr.inputs.Image()\n\noutputs = gr.outputs.Label(num_top_classes=3)\n\nio = gr.Interface(fn=predict, inputs=inputs, outputs=outputs)\n\n
\n

\nIf you need help creating a Gradio Interface for your model, check out the Gradio Getting Started guide.\n

\n\n

4. Then launch() you Interface to confirm that it runs correctly locally (or wherever you are running Python)\n

\n
\n\nio.launch() \n\n
\n

\nYou should see a web interface like the following where you can drag and drop your data points and see the predictions:\n

\n\"Gradio\n
\n
\n\n\n","html":"
\n

This organization invites participants to add gradio demos/models/datasets for conference papers on Hugging Face (Note: This is not a official NAACL sponsored event)

\n

Join organization by clicking here

\n

Hugging Face Gradio NAACL 2022 event\n

\n

\nNAACL organization is accepting Gradio demo submissions for NAACL 2022 papers from anyone for a chance to win prizes from Hugging Face, see prizes section and the leaderboard below. The deadline to submit demos is July 31st, 2022 (AOE Time Zone). For all participants, feel free to submit Gradio demos for any NAACL paper for a chance to win prizes, you can submit demos for multiple papers. Find tutorial on getting started with Gradio on Hugging Face here and to get started with the new Gradio Blocks API here

\n\n

Hugging Face Models NAACL 2022 event\n

\n

\nNAACL organization is accepting models submissions for NAACL 2022 papers from anyone for a chance to win prizes from Hugging Face, see prizes section and the leaderboard below. The deadline to submit demos is July 31st, 2022 (AOE Time Zone). For all partipants, feel free to submit models for any NAACL paper for a chance to win prizes, you can submit models for multiple papers. Find tutorial on getting started with repos on Hugging Face here and to get started with adding models here

\n\n

Hugging Face Datasets NAACL 2022 event\n

\n

\nNAACL organization is accepting dataset submissions for NAACL 2022 papers from anyone for a chance to win prizes from Hugging Face, see prizes section and the leaderboard below. The deadline to submit demos is July 31st, 2022 (AOE Time Zone). For all partipants, feel free to submit datasets for any NAACL paper for a chance to win prizes, you can submit datasets for multiple papers. Find tutorial on getting started with repos on Hugging Face here and to get started with adding datasets here

\n\n

Hugging Face Prizes

\n
    \n
  • Top 5 spaces/models/datasets based on likes\n\n
  • \n
\n\n

LeaderBoard for Most Popular NAACL Spaces

\n

See the NAACL Spaces Leaderboard

\n

LeaderBoard for Most Popular NAACL Models

\n

See the NAACL Models Leaderboard

\n

LeaderBoard for Most Popular NAACL Datasets

\n

See the NAACL Datasets Leaderboard

\n
\n

Hugging Face Spaces & Gradio for Showcasing your NAACL ‘22 Demo \n

\n

\n In this tutorial, we will demonstrate how to showcase your demo with an easy to use web interface using the Gradio Python library and host it on Hugging Face Spaces so that conference attendees can easily find and try out your demos. Also, see https://gradio.app/introduction_to_blocks/, for a more flexible way to build Gradio Demos\n

\n

🚀 Create a Gradio Demo from your Model\n

\n

\nThe first step is to create a web demo from your model. As an example, we will be creating a demo from an image classification model (called model) which we will be uploading to Spaces. The full code for steps 1-4 can be found in this colab notebook.\n


\n\n

1. Install the gradio library\n

\n

\nAll you need to do is to run this in the terminal: pip install gradio\n

\n
\n

2. Define a function in your Python code that performs inference with your model on a data point and returns the prediction\n

\n

\nHere’s we define our image classification model prediction function in PyTorch (any framework, like TensorFlow, scikit-learn, JAX, or a plain Python will work as well):\n

\ndef predict(inp):\n  inp = Image.fromarray(inp.astype('uint8'), 'RGB')\n  \n

inp = transforms.ToTensor()(inp).unsqueeze(0)

\n

with torch.no_grad():

\n
prediction = torch.nn.functional.softmax(model(inp)[0], dim=0)\n
\n

return {labels[i]: float(prediction[i]) for i in range(1000)}\n\n

\n

\n\n

3. Then create a Gradio Interface using the function and the appropriate input and output types\n

\n

\nFor the image classification model from Step 2, it would like like this:\n

\n
\ninputs = gr.inputs.Image()\n\n

outputs = gr.outputs.Label(num_top_classes=3)

\n

io = gr.Interface(fn=predict, inputs=inputs, outputs=outputs)\n\n

\n

\nIf you need help creating a Gradio Interface for your model, check out the Gradio Getting Started guide.\n

\n\n

4. Then launch() you Interface to confirm that it runs correctly locally (or wherever you are running Python)\n

\n
\nio.launch() \n\n
\n

\nYou should see a web interface like the following where you can drag and drop your data points and see the predictions:\n

\n\"Gradio\n
\n
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This organization invites participants to add gradio demos/models/datasets for conference papers on Hugging Face (Note: This is not a official NAACL sponsored event)

Join organization by clicking here

Hugging Face Gradio NAACL 2022 event

NAACL organization is accepting Gradio demo submissions for NAACL 2022 papers from anyone for a chance to win prizes from Hugging Face, see prizes section and the leaderboard below. The deadline to submit demos is July 31st, 2022 (AOE Time Zone). For all participants, feel free to submit Gradio demos for any NAACL paper for a chance to win prizes, you can submit demos for multiple papers. Find tutorial on getting started with Gradio on Hugging Face here and to get started with the new Gradio Blocks API here

Hugging Face Models NAACL 2022 event

NAACL organization is accepting models submissions for NAACL 2022 papers from anyone for a chance to win prizes from Hugging Face, see prizes section and the leaderboard below. The deadline to submit demos is July 31st, 2022 (AOE Time Zone). For all partipants, feel free to submit models for any NAACL paper for a chance to win prizes, you can submit models for multiple papers. Find tutorial on getting started with repos on Hugging Face here and to get started with adding models here

Hugging Face Datasets NAACL 2022 event

NAACL organization is accepting dataset submissions for NAACL 2022 papers from anyone for a chance to win prizes from Hugging Face, see prizes section and the leaderboard below. The deadline to submit demos is July 31st, 2022 (AOE Time Zone). For all partipants, feel free to submit datasets for any NAACL paper for a chance to win prizes, you can submit datasets for multiple papers. Find tutorial on getting started with repos on Hugging Face here and to get started with adding datasets here

Hugging Face Prizes

  • Top 5 spaces/models/datasets based on likes

LeaderBoard for Most Popular NAACL Spaces

See the NAACL Spaces Leaderboard

LeaderBoard for Most Popular NAACL Models

See the NAACL Models Leaderboard

LeaderBoard for Most Popular NAACL Datasets

See the NAACL Datasets Leaderboard

Hugging Face Spaces & Gradio for Showcasing your NAACL ‘22 Demo

In this tutorial, we will demonstrate how to showcase your demo with an easy to use web interface using the Gradio Python library and host it on Hugging Face Spaces so that conference attendees can easily find and try out your demos. Also, see https://gradio.app/introduction_to_blocks/, for a more flexible way to build Gradio Demos

🚀 Create a Gradio Demo from your Model

The first step is to create a web demo from your model. As an example, we will be creating a demo from an image classification model (called model) which we will be uploading to Spaces. The full code for steps 1-4 can be found in this colab notebook.


1. Install the gradio library

All you need to do is to run this in the terminal: pip install gradio


2. Define a function in your Python code that performs inference with your model on a data point and returns the prediction

Here’s we define our image classification model prediction function in PyTorch (any framework, like TensorFlow, scikit-learn, JAX, or a plain Python will work as well):


def predict(inp):
  inp = Image.fromarray(inp.astype('uint8'), 'RGB')
  

inp = transforms.ToTensor()(inp).unsqueeze(0)

with torch.no_grad():

prediction = torch.nn.functional.softmax(model(inp)[0], dim=0)

return {labels[i]: float(prediction[i]) for i in range(1000)}

3. Then create a Gradio Interface using the function and the appropriate input and output types

For the image classification model from Step 2, it would like like this:


inputs = gr.inputs.Image()

outputs = gr.outputs.Label(num_top_classes=3)

io = gr.Interface(fn=predict, inputs=inputs, outputs=outputs)

If you need help creating a Gradio Interface for your model, check out the Gradio Getting Started guide.

4. Then launch() you Interface to confirm that it runs correctly locally (or wherever you are running Python)


io.launch() 

You should see a web interface like the following where you can drag and drop your data points and see the predictions:

Gradio Interface

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