Luca Strebel
LucStr
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The Sora Video Generation Aligned Words dataset contains a collection of word segments for text-to-video or other multimodal research. It is intended to help researchers and engineers explore fine-grained prompts, including those where certain words are not aligned with the video.
We hope this dataset will support your work in prompt understanding and advance progress in multimodal projects.
If you have specific questions, feel free to reach out.
https://huggingface.co/datasets/Rapidata/sora-video-generation-aligned-words
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Integrating human feedback is vital for evolving AI models. Boost quality, scalability, and cost-effectiveness with our crowdsourcing tool!
..Or run A/B tests and gather thousands of responses in minutes. Upload two images, ask a question, and watch the insights roll in!
Check it out here and let us know your feedback: https://app.rapidata.ai/compare
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This dataset was collected in roughly 4 hours using the Rapidata Python API, showcasing how quickly large-scale annotations can be performed with the right tooling!
All that at less than the cost of a single hour of a typical ML engineer in Zurich!
The new dataset of ~22,000 human annotations evaluating AI-generated videos based on different dimensions, such as Prompt-Video Alignment, Word for Word Prompt Alignment, Style, Speed of Time flow and Quality of Physics.
https://huggingface.co/datasets/Rapidata/text-2-video-Rich-Human-Feedback
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