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 20512075 of 4240 papers

TitleStatusHype
On-Policy Distillation of Language Models: Learning from Self-Generated Mistakes0
GhostNetV3: Exploring the Training Strategies for Compact Models0
GHOST: Grounded Human Motion Generation with Open Vocabulary Scene-and-Text Contexts0
Data-Free Federated Class Incremental Learning with Diffusion-Based Generative Memory0
GeoMask3D: Geometrically Informed Mask Selection for Self-Supervised Point Cloud Learning in 3D0
GenURL: A General Framework for Unsupervised Representation Learning0
Data-free Distillation with Degradation-prompt Diffusion for Multi-weather Image Restoration0
Alleviating LLM-based Generative Retrieval Hallucination in Alipay Search0
Data-Free Distillation of Language Model by Text-to-Text Transfer0
Generative Negative Text Replay for Continual Vision-Language Pretraining0
Dense Depth Distillation with Out-of-Distribution Simulated Images0
Generative Dataset Distillation Based on Self-knowledge Distillation0
Data-Free Adversarial Knowledge Distillation for Graph Neural Networks0
Alleviating Catastrophic Forgetting of Incremental Object Detection via Within-Class and Between-Class Knowledge Distillation0
Adaptive Knowledge Distillation between Text and Speech Pre-trained Models0
A Classifier-Free Incremental Learning Framework for Scalable Medical Image Segmentation0
Advancing Multiple Instance Learning with Continual Learning for Whole Slide Imaging0
Generative Adversarial Simulator0
Generation-Distillation for Efficient Natural Language Understanding in Low-Data Settings0
Generation and Consolidation of Recollections for Efficient Deep Lifelong Learning0
Generating Synthetic Fair Syntax-agnostic Data by Learning and Distilling Fair Representation0
Generating Long Financial Report using Conditional Variational Autoencoders with Knowledge Distillation0
Generate, Annotate, and Learn: Generative Models Advance Self-Training and Knowledge Distillation0
General Purpose Text Embeddings from Pre-trained Language Models for Scalable Inference0
Data-Efficient Ranking Distillation for Image Retrieval0
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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