SOTAVerified

Knowledge Distillation

Knowledge distillation is the process of transferring knowledge from a large model to a smaller one. While large models (such as very deep neural networks or ensembles of many models) have higher knowledge capacity than small models, this capacity might not be fully utilized.

Papers

Showing 22012225 of 4240 papers

TitleStatusHype
Enhancing Adversarial Training with Prior Knowledge Distillation for Robust Image Compression0
Enhancing Chinese Multi-Label Text Classification Performance with Response-based Knowledge Distillation0
Enhancing Content Representation for AR Image Quality Assessment Using Knowledge Distillation0
Enhancing CTC-Based Visual Speech Recognition0
Enhancing Data-Free Adversarial Distillation with Activation Regularization and Virtual Interpolation0
Enhancing Few-shot Keyword Spotting Performance through Pre-Trained Self-supervised Speech Models0
Enhancing Generalization in Chain of Thought Reasoning for Smaller Models0
Enhancing Mapless Trajectory Prediction through Knowledge Distillation0
Enhancing Modality-Agnostic Representations via Meta-Learning for Brain Tumor Segmentation0
Enhancing Once-For-All: A Study on Parallel Blocks, Skip Connections and Early Exits0
Enhancing Review Comprehension with Domain-Specific Commonsense0
Enhancing Romanian Offensive Language Detection through Knowledge Distillation, Multi-Task Learning, and Data Augmentation0
Enhancing Scalability in Recommender Systems through Lottery Ticket Hypothesis and Knowledge Distillation-based Neural Network Pruning0
Enhancing Semi-supervised Learning with Zero-shot Pseudolabels0
Enhancing Single-Slice Segmentation with 3D-to-2D Unpaired Scan Distillation0
Enhancing SLM via ChatGPT and Dataset Augmentation0
Enhancing Systematic Decompositional Natural Language Inference Using Informal Logic0
Ensemble Knowledge Distillation for CTR Prediction0
Ensemble Distillation for Neural Machine Translation0
Ensemble Knowledge Distillation for Machine Learning Interatomic Potentials0
Ensemble knowledge distillation of self-supervised speech models0
Ensembling of Distilled Models from Multi-task Teachers for Constrained Resource Language Pairs0
EnSiam: Self-Supervised Learning With Ensemble Representations0
Entire-Space Variational Information Exploitation for Post-Click Conversion Rate Prediction0
EPIK: Eliminating multi-model Pipelines with Knowledge-distillation0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1ScaleKD (T:BEiT-L S:ViT-B/14)Top-1 accuracy %86.43Unverified
2ScaleKD (T:Swin-L S:ViT-B/16)Top-1 accuracy %85.53Unverified
3ScaleKD (T:Swin-L S:ViT-S/16)Top-1 accuracy %83.93Unverified
4ScaleKD (T:Swin-L S:Swin-T)Top-1 accuracy %83.8Unverified
5KD++(T: regnety-16GF S:ViT-B)Top-1 accuracy %83.6Unverified
6VkD (T:RegNety 160 S:DeiT-S)Top-1 accuracy %82.9Unverified
7SpectralKD (T:Swin-S S:Swin-T)Top-1 accuracy %82.7Unverified
8ScaleKD (T:Swin-L S:ResNet-50)Top-1 accuracy %82.55Unverified
9DiffKD (T:Swin-L S: Swin-T)Top-1 accuracy %82.5Unverified
10DIST (T: Swin-L S: Swin-T)Top-1 accuracy %82.3Unverified
#ModelMetricClaimedVerifiedStatus
1SRD (T:resnet-32x4, S:shufflenet-v2)Top-1 Accuracy (%)79.86Unverified
2shufflenet-v2(T:resnet-32x4, S:shufflenet-v2)Top-1 Accuracy (%)78.76Unverified
3MV-MR (T: CLIP/ViT-B-16 S: resnet50)Top-1 Accuracy (%)78.6Unverified
4resnet8x4 (T: resnet32x4 S: resnet8x4)Top-1 Accuracy (%)78.28Unverified
5resnet8x4 (T: resnet32x4 S: resnet8x4 [modified])Top-1 Accuracy (%)78.08Unverified
6ReviewKD++(T:resnet-32x4, S:shufflenet-v2)Top-1 Accuracy (%)77.93Unverified
7ReviewKD++(T:resnet-32x4, S:shufflenet-v1)Top-1 Accuracy (%)77.68Unverified
8resnet8x4 (T: resnet32x4 S: resnet8x4)Top-1 Accuracy (%)77.5Unverified
9resnet8x4 (T: resnet32x4 S: resnet8x4)Top-1 Accuracy (%)76.68Unverified
10resnet8x4 (T: resnet32x4 S: resnet8x4)Top-1 Accuracy (%)76.31Unverified
#ModelMetricClaimedVerifiedStatus
1LSHFM (T: ResNet101 S: ResNet50)mAP93.17Unverified
2LSHFM (T: ResNet101 S: MobileNetV2)mAP90.14Unverified
#ModelMetricClaimedVerifiedStatus
1TIE-KD (T: Adabins S: MobileNetV2)RMSE2.43Unverified