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Top 7 Apps on Hugging Face Spaces

From language models to deployment tools, these apps play a crucial role in shaping AI development.

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Illustration by Raghavendra Rao

Hugging Face has become a central hub in artificial intelligence and machine learning. It offers a range of models, libraries, and tools for developers and researchers. As the Hugging Face community grows, so does the number of applications built on its resources, especially the Hugging Face Spaces, which provide an opportunity to create and upload projects and models. 

From language models to deployment tools, these apps play a crucial role in shaping AI development. Whether you are new to AI or an experienced practitioner, this platform provides opportunities to explore and engage with new models and projects. 

Here is a list of the top 7 apps uploaded on Hugging Face Space. 

TriplaneGaussian 

This model employs a distinctive hybrid methodology to craft mesmerising abstract shapes. The project seamlessly integrates three key components: a Triplane Representation, which deconstructs 3D objects into thin slices for efficient processing; Gaussian Splatting, involving the strategic placement of 3D Gaussians on these triplanes to construct smooth and intricate shapes; and a Transformer-based Network that orchestrates the placement and attributes of these Gaussians, facilitating flexible and intricate pattern generation. 

Noteworthy features include an interactive interface for real-time parameter control, resulting in a diverse range of visually stunning shapes. The ability to animate and download these creations, coupled with accessibility to the research paper and GitHub repository, enriches the exploration of this unique intersection between mathematics, artificial intelligence, and creativity. 

Check out the Hugging Face link

AnimeGANv2

AnimeGANv2 stands out as an impressive open-source project, enhancing the capabilities of its predecessor to transform landscape photos and videos into captivating anime-style imagery. Noteworthy improvements include reducing high-frequency artefacts and making the results smoother and more visually appealing. 

What sets AnimeGANv2 apart is its user-friendly design, ensuring ease of training even for those with limited machine learning expertise. The model’s lightweight nature, with a significantly reduced number of parameters, makes it efficient for deployment on resource-constrained devices.

Check out the Hugging Face link.

IP-Adapter-FaceID

This tool adapts and unlocks the power of FaceID technology for custom scenarios, offering innovative applications in facial recognition.  The model ensures consistent and accurate face generation by utilising a face recognition model to extract a unique face ID embedding from a provided portrait photo, even when textual prompts may not explicitly reference facial features. 

This process involves combining the extracted face ID with a text prompt and feeding it into a text-to-image diffusion model, allowing for the gradual creation of images that match the given description while maintaining alignment with the provided face ID.

Notable features include face consistency across multiple generated images, versatility in working with different text-to-image diffusion models, and creative control over fine-tuning facial features and expressions.

 Check out the Hugging Face link.

Int float/e5-mistral-7b-instruct

This impressive model excels at following your instructions and completing creative writing tasks like composing poems, code, scripts, musical pieces, emails, and letters. This text-based generative model is renowned for its instruction-following capabilities. Built upon the Mistral-7B-v0.1 model with an impressive 7 billion parameters, it undergoes fine-tuning on a mixture of multilingual datasets, making it versatile for various text-based tasks. 

While primarily supporting English, its fine-tuning imbues it with some multilingual capabilities, though users predominantly focused on multilingual applications are recommended to explore “multilingual-e5-large”.

With 32 layers and a substantial embedding size 4096, the model operates on the PyTorch framework and incorporates features like Safetensors, Feature Extraction, and Inference Endpoints. Its proficiency extends to text generation, question answering, summarisation, translation, and more, making it a valuable resource for diverse natural language processing tasks. 

Check out the Hugging Face link.

AI Comic Factory 

This space generates comic book panels based on your text prompts. It’s a fun way to tell stories or create your own comics. AI Comic Factory emerges as a groundbreaking web-based platform, breaking down barriers to comic book creation and transforming storytelling into a visually engaging experience. 

Its key features, including effortless comic generation without the need for drawing skills, diverse style options, varied layouts, and customisation capabilities, make it accessible to creators of all levels. The platform’s collaborative nature encourages sharing and feedback, fostering a vibrant community of comic enthusiasts. 

Check out the Hugging Face link.

Pharma-CLIP Interrogator 

This space uses CLIP models to help you investigate chemical compounds and their properties. It’s a valuable tool for drug discovery and research. The Pharma-CLIP Interrogator stands at the forefront of innovation, leveraging the capabilities of CLIP and BLIP AI models to unravel the information concealed within scientific images for pharmaceutical researchers. 

This tool streamlines the analysis process by transforming images into descriptive words, optimising prompts for text-to-image models, and bridging the gap between image and text, saving researchers valuable time and effort.

Its ability to generate new hypotheses and enhance communication within research teams showcases its potential to accelerate discoveries and contribute to groundbreaking advancements in healthcare. 

Check out the Hugging Face link.

OpenVoice

Developed by MyShell.ai, this model is a cutting-edge text-to-speech (TTS) engine with exceptional capabilities. Its realistic and expressive voices transcend conventional TTS systems by incorporating emotional variations, intonation, and rhythm, delivering a natural and engaging audio experience.

With a diverse array of pre-trained voices in multiple languages and accents, users can also craft custom voices using just a 10-second audio sample. 

The granular control options, including emotion, accent, rhythm, pacing, pauses, and intonation, empower users to fine-tune speech for specific effects. OpenVoice finds applications in audiobooks, podcasts, e-learning, virtual assistants, accessibility tools, and game development, offering increased engagement, accessibility, efficiency, and customisation. 

Check out the Hugging Face link.

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Sandhra Jayan

Sandhra Jayan is an enthusiastic tech journalist with a flair for uncovering the latest trends in the AI landscape. Known for her compelling storytelling and insightful analysis, she transforms complex tech narratives into captivating, accessible content. Reach out to her at sandhra.jayan@analyticsindiamag.com
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