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XKD: Cross-modal Knowledge Distillation with Domain Alignment for Video Representation Learning
Pritam Sarkar; Ali Etemad

Abstract
We present XKD, a novel self-supervised framework to learn meaningful representations from unlabelled videos. XKD is trained with two pseudo objectives. First, masked data reconstruction is performed to learn modality-specific representations from audio and visual streams. Next, self-supervised cross-modal knowledge distillation is performed between the two modalities through a teacher-student setup to learn complementary information. We introduce a novel domain alignment strategy to tackle domain discrepancy between audio and visual modalities enabling effective cross-modal knowledge distillation. Additionally, to develop a general-purpose network capable of handling both audio and visual streams, modality-agnostic variants of XKD are introduced, which use the same pretrained backbone for different audio and visual tasks. Our proposed cross-modal knowledge distillation improves video action classification by $8\%$ to $14\%$ on UCF101, HMDB51, and Kinetics400. Additionally, XKD improves multimodal action classification by $5.5\%$ on Kinetics-Sound. XKD shows state-of-the-art performance in sound classification on ESC50, achieving top-1 accuracy of $96.5\%$.
Code Repositories
Benchmarks
| Benchmark | Methodology | Metrics |
|---|---|---|
| self-supervised-action-recognition-on-1 | XKD (ViT-B/112/16) | Top-1 accuracy %: 77.6 Top-5 Accuracy %: 92.9 |
| self-supervised-action-recognition-on-hmdb51 | XKD-Modality-Agnostic (ViT-B/112/16) | Top-1 Accuracy: 65.9 |
| self-supervised-action-recognition-on-hmdb51 | XKD (ViT-B/112/16) | Top-1 Accuracy: 69 |
| self-supervised-action-recognition-on-ucf101 | XKD-Modality-Agnostic (ViT-B/112/16) | 3-fold Accuracy: 93.4 |
| self-supervised-action-recognition-on-ucf101 | XKD (ViT-B/112/16) | 3-fold Accuracy: 94.1 Pre-Training Dataset: Kinetics400 |
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