SOTAVerified

Multi-Task Learning

Multi-task learning aims to learn multiple different tasks simultaneously while maximizing performance on one or all of the tasks.

( Image credit: Cross-stitch Networks for Multi-task Learning )

Papers

Showing 28762900 of 3687 papers

TitleStatusHype
Domain-Agnostic Few-Shot Classification by Learning Disparate Modulators0
Semi-supervised Vector-valued Learning: Improved Bounds and AlgorithmsCode0
Deep Elastic Networks with Model Selection for Multi-Task Learning0
Differentiable Mask for Pruning Convolutional and Recurrent Networks0
Joint Learning of Saliency Detection and Weakly Supervised Semantic SegmentationCode0
Auxiliary Learning for Deep Multi-task Learning0
Specializing Unsupervised Pretraining Models for Word-Level Semantic SimilarityCode0
Different Absorption from the Same Sharing: Sifted Multi-task Learning for Fake News Detection0
Leveraging Non-Conversational Tasks for Low Resource Slot Filling: Does it help?0
Multi-Task Learning of System Dialogue Act Selection for Supervised Pretraining of Goal-Oriented Dialogue Policies0
Lexicon information in neural sentiment analysis: a multi-task learning approachCode0
Text-Based Joint Prediction of Numeric and Categorical Attributes of Entities in Knowledge Bases0
NCLS: Neural Cross-Lingual SummarizationCode0
Multi-Task Learning with Language Modeling for Question Generation0
DeepDistance: A Multi-task Deep Regression Model for Cell Detection in Inverted Microscopy Images0
Metric-based Regularization and Temporal Ensemble for Multi-task Learning using Heterogeneous Unsupervised Tasks0
Transfer Learning from Partial Annotations for Whole Brain Segmentation0
Investigating Meta-Learning Algorithms for Low-Resource Natural Language Understanding Tasks0
Improving Neural Story Generation by Targeted Common Sense GroundingCode0
Attentive History Selection for Conversational Question AnsweringCode0
Stochastic Filter Groups for Multi-Task CNNs: Learning Specialist and Generalist Convolution Kernels0
Multi-task Learning for Low-resource Second Language Acquisition ModelingCode0
Dedge-AGMNet:an effective stereo matching network optimized by depth edge auxiliary task0
Jointly Modeling Hierarchical and Horizontal Features for Relational Triple Extraction0
MTCNET: Multi-task Learning Paradigm for Crowd Count Estimation0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1PCGrad∆m%125.7Unverified
2CAGrad∆m%112.8Unverified
3IMTL-G∆m%77.2Unverified
4Nash-MTL∆m%62Unverified
5BayesAgg-MTL∆m%53.7Unverified
#ModelMetricClaimedVerifiedStatus
1SwinMTLmIoU76.41Unverified
2Nash-MTLmIoU75.41Unverified
3MultiObjectiveOptimizationmIoU66.63Unverified
#ModelMetricClaimedVerifiedStatus
1SwinMTLMean IoU58.14Unverified
2Nash-MTLMean IoU40.13Unverified
#ModelMetricClaimedVerifiedStatus
1Gumbel-Matrix RoutingAverage Accuracy93.52Unverified
2Mixture-of-ExpertsAverage Accuracy92.19Unverified
#ModelMetricClaimedVerifiedStatus
1MGDA-UBError8.25Unverified
#ModelMetricClaimedVerifiedStatus
1BayesAgg-MTLdelta_m-2.23Unverified
#ModelMetricClaimedVerifiedStatus
1LETRFH83.3Unverified