PyTorch code of paper "LiVLR: A Lightweight Visual-Linguistic Reasoning Framework for Video Question Answering"

Overview

LiVLR-VideoQA

We propose a Lightweight Visual-Linguistic Reasoning framework (LiVLR) for VideoQA. The overview of LiVLR:

Evaluation on MSRVTT-QA

Dataset

  • Download pre-extracted visual and linguistic features from here.

Results on MSRVTT-QA

  • Download pre-trained models from here.
Comparison with SoTA Trainable parameters

Running the code

Install dependencies

conda create -n livlr_qa python=3.6
conda activate livlr_qa
conda install -c conda-forge ffmpeg
conda install -c conda-forge scikit-video
pip install -r requirements.txt

Training

CUDA_VISIBLE_DEVICES=1,2 python train.py --exp_name Exp_DiVS/all 

Evaluation

Setting the correct file path and run the following code:

python test.py
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