SOTAVerified

Transfer Learning

Transfer Learning is a machine learning technique where a model trained on one task is re-purposed and fine-tuned for a related, but different task. The idea behind transfer learning is to leverage the knowledge learned from a pre-trained model to solve a new, but related problem. This can be useful in situations where there is limited data available to train a new model from scratch, or when the new task is similar enough to the original task that the pre-trained model can be adapted to the new problem with only minor modifications.

( Image credit: Subodh Malgonde )

Papers

Showing 45114520 of 10307 papers

TitleStatusHype
Knowledge Management for Automobile Failure Analysis Using Graph RAG0
A Siamese Neural Network with Modified Distance Loss For Transfer Learning in Speech Emotion Recognition0
Knowledge-Reuse Transfer Learning Methods in Molecular and Material Science0
Knowledge Squeezed Adversarial Network Compression0
Knowledge Transfer Across Modalities with Natural Language Supervision0
Knowledge Transfer across Multiple Principal Component Analysis Studies0
Knowledge Transfer Between Artificial Intelligence Systems0
Knowledge transfer between bridges for drive-by monitoring using adversarial and multi-task learning0
Knowledge Transfer between Buildings for Seismic Damage Diagnosis through Adversarial Learning0
Knowledge Transfer between Datasets for Learning-based Tissue Microstructure Estimation0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1APCLIPAccuracy84.2Unverified
2DFA-ENTAccuracy69.2Unverified
3DFA-SAFNAccuracy69.1Unverified
4EasyTLAccuracy63.3Unverified
5MEDAAccuracy60.3Unverified
#ModelMetricClaimedVerifiedStatus
1CNN10-20% Mask PSNR3.23Unverified
#ModelMetricClaimedVerifiedStatus
1Chatterjee, Dutta et al.[1]Accuracy96.12Unverified
#ModelMetricClaimedVerifiedStatus
1Co-TuningAccuracy85.65Unverified
#ModelMetricClaimedVerifiedStatus
1Physical AccessEER5.74Unverified
#ModelMetricClaimedVerifiedStatus
1riadd.aucmediAUROC0.95Unverified