SOTAVerified

Transductive Learning

In this setting, both a labeled training sample and an (unlabeled) test sample are provided at training time. The goal is to predict only the labels of the given test instances as accurately as possible.

Papers

Showing 5160 of 135 papers

TitleStatusHype
Fast Online Node Labeling for Very Large GraphsCode0
Estimating class separability of text embeddings with persistent homology0
Inductive Graph Neural Networks for Moving Object Segmentation0
Towards Understanding the Generalization of Graph Neural Networks0
MED-VT++: Unifying Multimodal Learning with a Multiscale Encoder-Decoder Video Transformer0
Smoothed Analysis of Sequential Probability Assignment0
Situating Recommender Systems in Practice: Towards Inductive Learning and Incremental Updates0
A Simple Hypergraph Kernel Convolution based on Discounted Markov Diffusion Process0
Distributed representations of graphs for drug pair scoringCode0
Latent Heterogeneous Graph Network for Incomplete Multi-View Learning0
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