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Hugging Face

Hugging Face

Overview

What is Hugging Face?

Hugging Face is an open-source provider of natural language processing (NLP) technologies.

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Recent Reviews
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Pricing

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Pro Account

$9

Cloud
per month

Enterprise Hub

$20

Cloud
per month per user

Entry-level set up fee?

  • No setup fee
For the latest information on pricing, visithttps://huggingface.co/pricing

Offerings

  • Free Trial
  • Free/Freemium Version
  • Premium Consulting/Integration Services

Starting price (does not include set up fee)

  • $9 per month
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Product Demos

YouTube Video Transcript Summarizer | Hugging Face Speech-to-Text ASR | Video Summarizer Project

YouTube

Webinar: Special NLP Session with Hugging Face

YouTube

FourthBrain and Hugging Face demo on Building NLP Applications with Transformers

YouTube

TrOCR Transformer-based Optical Character Recognition Microsoft Hugging Face TrOCR Demo

YouTube

GPT-3 Alternative - OPT-175B Hugging Face Language Model Tutorial

YouTube

Easy Custom NLP T5 Model Training Tutorial - Abstractive Summarization Demo with SimpleT5

YouTube
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Product Details

What is Hugging Face?

Hugging Face is an open-source provider of natural language processing (NLP) technologies. The company develops a chatbot applications used to offer a personalized AI-powered communication platform. Its platform analyzes the user's tone and word usage to decide what current affairs it may chat about or what GIFs to send that enable users to chat based on emotions and entertainment.


Hugging Face Screenshots

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Product Presentation

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Hugging Face Technical Details

Deployment TypesSoftware as a Service (SaaS), Cloud, or Web-Based
Operating SystemsUnspecified
Mobile ApplicationNo

Frequently Asked Questions

Hugging Face is an open-source provider of natural language processing (NLP) technologies.

Hugging Face starts at $9.

Kofax TotalAgility are common alternatives for Hugging Face.

The most common users of Hugging Face are from Mid-sized Companies (51-1,000 employees).
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Comparisons

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Reviews and Ratings

(10)

Reviews

(1-6 of 6)
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Score 10 out of 10
Vetted Review
Verified User
Incentivized
We use Hugging Face models and datasets to design, test a compare multiple approaches for ML projects and, and in general, for research purposes. Thanks to Hugging Face, we do not need extensive training, and our NLP models' fine-tuning is simpler and more cost efficient.
Vijay Irlapati | TrustRadius Reviewer
Score 10 out of 10
Vetted Review
Verified User
Incentivized
For most of the ML problems, we use hugging face prediction models as these models give better performance than any other models. It helps in addressing the technological advancements in an organisation. Any organisation that wants to adopt to latest technologies should consider Hugging face. Hugging face has many open-source transformer models hosted. The scope of this product is to give better performance on NLP problems.
Score 10 out of 10
Vetted Review
Verified User
Incentivized
We use Hugging Face APIs to import the models in our code (mostly language models with weights). This is very important use case as it makes the building part of model very easy. We don't have to spend much time refering to repositories, reading complex ReadMe's. Other than that, we deploy demo apps on the Hugging Face spaces using the gradio tool they provide. This helps in testing out the product very easily by not spending much time on making the UI and also not caring about the compute management.
Ivan Cui | TrustRadius Reviewer
Score 9 out of 10
Vetted Review
Verified User
Incentivized
I have use Hugging Face to develop Natural Language Processing applications for other amazon web services customers. Some of the common applications are intelligent document processing, call center support, machine translation, sentiment analysis and so on. These Hugging Face solutions are implemented on the cloud for easier manage and maintain as well.
Score 9 out of 10
Vetted Review
Verified User
Incentivized
In our organization, Hugging Face is used for a lot of text-processing and natural language processing tasks. Hugging face addresses our business problem of finding good NLP algorithms for running classification analysis by using open source API to keep our costs low. The website provides world's best systems for doing NLP and using this model, we are able to do advance NLP analyses and classification using text data.
Score 8 out of 10
Vetted Review
Verified User
Incentivized
Hugging Face keeps handy when you work with machine learning projects specially neuronal networks. Neuronal networks are complex and becomes cumbersome when you perform transformation on it. We are resolving this issue with Hugging Face. It has huge amount of libraries with pre-trained models which are optimised too. Hugging Face plays a vital role in machine learning models.
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