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Dawit Mureja Argaw

8 accepted papers

2025

High-Quality Joint Image and Video Tokenization with Causal VAE

ICLR 2025poster

Generative modeling has seen significant advancements in image and video synthesis. However, the curse of dimensionality remains a significant obstacle, especially for video generation, given its inherently complex and high-dimensional nature. Many existing works rely on low-dimensional latent space…

Cited by 1SourcePDFScholar
2024

Scaling Up Video Summarization Pretraining with Large Language Models

CVPR 2024poster

Long-form video content constitutes a significant portion of internet traffic making automated video summarization an essential research problem. However existing video summarization datasets are notably limited in their size constraining the effectiveness of state-of-the-art methods for generalizat…

Cited by 13SourcePDFScholar
2024

Towards Automated Movie Trailer Generation

CVPR 2024poster

Movie trailers are an essential tool for promoting films and attracting audiences. However the process of creating trailers can be time-consuming and expensive. To streamline this process we propose an automatic trailer generation framework that generates plausible trailers from a full movie by auto…

Cited by 3SourcePDFScholar
2023

Long-range Multimodal Pretraining for Movie Understanding

ICCV 2023poster

Learning computer vision models from (and for) movies has a long-standing history. While great progress has been attained, there is still a need for a pretrained multimodal model that can perform well in the ever-growing set of movie understanding tasks the community has been establishing. In this w…

Cited by 16PDFScholar
2022

The Anatomy of Video Editing: A Dataset and Benchmark Suite for AI-Assisted Video Editing

ECCV 2022poster

"Machine learning is transforming the video editing industry. Recent advances in computer vision have leveled-up video editing tasks such as intelligent reframing, rotoscoping, color grading, or applying digital makeups. However, most of the solutions have focused on video manipulation and VFX. This…

2021

Motion-blurred Video Interpolation and Extrapolation

AAAI 2021technical

Abrupt motion of camera or objects in a scene result in a blurry video, and therefore recovering high quality video requires two types of enhancements: visual enhancement and temporal upsampling. A broad range of research attempted to recover clean frames from blurred image sequences or temporally u…

Cited by 20SourcePDFScholar
2021

Optical Flow Estimation from a Single Motion-blurred Image

AAAI 2021technical

In most of computer vision applications, motion blur is regarded as an undesirable artifact. However, it has been shown that motion blur in an image may have practical interests in fundamental computer vision problems. In this work, we propose a novel framework to estimate optical flow from a single…

Cited by 19SourcePDFScholar