Dropbox added some new AI features. In the past couple of days these have attracted a firestorm of criticism. Benj Edwards rounds it up in Dropbox spooks users with new …
Learn full-stack web development with Kent C. Dodds and the Epic Web instructors. Learn TypeScript, React, Node.js, and more through hands-on workshops.
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Researchers from Stanford and OpenAI Introduce 'Meta-Prompting': An Effective Scaffolding Technique Designed to Enhance the Functionality of Language Models in a Task-Agnostic Manner - MarkTechPost
Language models (LMs), such as GPT-4, are at the forefront of natural language processing, offering capabilities that range from crafting complex prose to solving intricate computational problems. Despite their advanced functionalities, these models need fixing, sometimes yielding inaccurate or conflicting outputs. The challenge lies in enhancing their precision and versatility, particularly in complex, multi-faceted tasks. A key issue with current language models is their occasional inaccuracy and limitation in handling diverse and complex tasks. While these models excel in many areas, their efficacy could improve when confronted with tasks that demand nuanced understanding or specialized knowledge beyond their general capabilities.
Nomic AI Releases the First Fully Open-Source Long Context Text Embedding Model that Surpasses OpenAI Ada-002 Performance on Various Benchmarks - MarkTechPost
In the evolving landscape of natural language processing (NLP), the ability to grasp and process extensive textual contexts is paramount. Recent advancements, as highlighted by Lewis et al. (2021), Izacard et al. (2022), and Ram et al. (2023), have significantly propelled the capabilities of language models, particularly through the development of text embeddings. These embeddings serve as the backbone for a plethora of applications, including retrieval-augmented generation for large language models (LLMs) and semantic search. They transform sentences or documents into low-dimensional vectors, capturing the essence of semantic information, which in turn facilitates tasks like clustering, classification, and information retrieval.
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Meshy is a 3D AI toolkit that enables users to effortlessly transform text or 2D images into 3D assets. Unleash your creativity with Meshy - the future of 3D content creation.
The Gemini family of models are the most general and capable AI models we've ever built. They’re built from the ground up for multimodality — reasoning seamlessly across text, code, images, audio...