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Description
Imagen 3 represents the latest advancement in Google's innovative text-to-image AI technology. It builds upon the strengths of earlier versions and brings notable improvements in image quality, resolution, and alignment with user instructions. Utilizing advanced diffusion models alongside enhanced natural language comprehension, it generates highly realistic, high-resolution visuals characterized by detailed textures, vibrant colors, and accurate interactions between objects. In addition, Imagen 3 showcases improved capabilities in interpreting complex prompts, which encompass abstract ideas and scenes with multiple objects, all while minimizing unwanted artifacts and enhancing overall coherence. This powerful tool is set to transform various creative sectors, including advertising, design, gaming, and entertainment, offering artists, developers, and creators a seamless means to visualize their ideas and narratives. The impact of Imagen 3 on the creative process could redefine how visual content is produced and conceptualized across industries.
Description
Recent advancements in text-based 3D object generation have yielded encouraging outcomes; however, leading methods generally need several GPU hours to create a single sample, which is a stark contrast to the latest generative image models capable of producing samples within seconds or minutes. In this study, we present a different approach to generating 3D objects that enables the creation of models in just 1-2 minutes using a single GPU. Our technique initiates by generating a synthetic view through a text-to-image diffusion model, followed by the development of a 3D point cloud using a second diffusion model that relies on the generated image for conditioning. Although our approach does not yet match the top-tier quality of existing methods, it offers a significantly faster sampling process, making it a valuable alternative for specific applications. Furthermore, we provide access to our pre-trained point cloud diffusion models, along with the evaluation code and additional models, available at this https URL. This contribution aims to facilitate further exploration and development in the realm of efficient 3D object generation.
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Vendor Details
Company Name
Founded
1998
Country
United States
Website
deepmind.google/technologies/imagen-3/
Vendor Details
Company Name
OpenAI
Founded
2015
Country
United States
Website
openai.com/research/point-e