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Videomaev2 Giant

Developed by OpenGVLab
VideoMAEv2-giant is an ultra-large-scale video classification model based on self-supervised learning, employing a dual masking strategy for pretraining.
Downloads 1,071
Release Time : 1/14/2025

Model Overview

This model is pretrained in a self-supervised manner on the UnlabeldHybrid-1M dataset, primarily for video feature extraction and video classification tasks.

Model Features

Dual Masking Pretraining Strategy
Utilizes an innovative dual masking strategy for self-supervised learning, enhancing the model's feature extraction capabilities.
Ultra-large-scale Pretraining
Pretrained for 1200 epochs on the UnlabeldHybrid-1M dataset, learning rich video representations.
Efficient Video Feature Extraction
Capable of extracting high-quality feature representations from videos, suitable for downstream video analysis tasks.

Model Capabilities

Video Feature Extraction
Video Classification
Video Content Understanding

Use Cases

Video Analysis
Video Content Classification
Classify and recognize video content.
Video Feature Extraction
Extract high-level feature representations from videos for downstream tasks.
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