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Papers/LAVIB: A Large-scale Video Interpolation Benchmark

LAVIB: A Large-scale Video Interpolation Benchmark

Alexandros Stergiou

2024-06-14Video Frame Interpolation
PaperPDFCode(official)

Abstract

This paper introduces a LArge-scale Video Interpolation Benchmark (LAVIB) for the low-level video task of Video Frame Interpolation (VFI). LAVIB comprises a large collection of high-resolution videos sourced from the web through an automated pipeline with minimal requirements for human verification. Metrics are computed for each video's motion magnitudes, luminance conditions, frame sharpness, and contrast. The collection of videos and the creation of quantitative challenges based on these metrics are under-explored by current low-level video task datasets. In total, LAVIB includes 283K clips from 17K ultra-HD videos, covering 77.6 hours. Benchmark train, val, and test sets maintain similar video metric distributions. Further splits are also created for out-of-distribution (OOD) challenges, with train and test splits including videos of dissimilar attributes.

Results

TaskDatasetMetricValueModel
VideoLAVIBLPIPS0.02934FLAVR
VideoLAVIBPSNR33.44FLAVR
VideoLAVIBSSIM0.981FLAVR
VideoLAVIBLPIPS0.03105EMA-VFI
VideoLAVIBPSNR33.14EMA-VFI
VideoLAVIBSSIM0.978EMA-VFI
VideoLAVIBLPIPS0.1416RIFE
VideoLAVIBPSNR27.88RIFE
VideoLAVIBSSIM0.871RIFE
Video Frame InterpolationLAVIBLPIPS0.02934FLAVR
Video Frame InterpolationLAVIBPSNR33.44FLAVR
Video Frame InterpolationLAVIBSSIM0.981FLAVR
Video Frame InterpolationLAVIBLPIPS0.03105EMA-VFI
Video Frame InterpolationLAVIBPSNR33.14EMA-VFI
Video Frame InterpolationLAVIBSSIM0.978EMA-VFI
Video Frame InterpolationLAVIBLPIPS0.1416RIFE
Video Frame InterpolationLAVIBPSNR27.88RIFE
Video Frame InterpolationLAVIBSSIM0.871RIFE

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