SOTAVerified

Relational Reasoning

The goal of Relational Reasoning is to figure out the relationships among different entities, such as image pixels, words or sentences, human skeletons or interactive moving agents.

Source: Social-WaGDAT: Interaction-aware Trajectory Prediction via Wasserstein Graph Double-Attention Network

Papers

Showing 351–400 of 483 papers

TitleStatusHype
Metric-guided Distillation: Distilling Knowledge from the Metric to Ranker and Retriever for Generative Commonsense Reasoning—0
MGRR-Net: Multi-level Graph Relational Reasoning Network for Facial Action Units Detection—0
Mix and Reason: Reasoning over Semantic Topology with Data Mixing for Domain Generalization—0
Mixture-of-Graphs: Zero-shot Relational Learning for Knowledge Graph by Fusing Ontology and Textual Experts—0
MLAD: A Unified Model for Multi-system Log Anomaly Detection—0
Modelling Compositionality and Structure Dependence in Natural Language—0
Modular Graph Attention Network for Complex Visual Relational Reasoning—0
Modularity Matters: Learning Invariant Relational Reasoning Tasks—0
ModuLM: Enabling Modular and Multimodal Molecular Relational Learning with Large Language Models—0
MoReL: Multi-omics Relational Learning—0
Multi-Agent Dynamic Relational Reasoning for Social Robot Navigation—0
Multi-choice Relational Reasoning for Machine Reading Comprehension—0
Multi-Label Network Classification via Weighted Personalized Factorizations—0
Multi-layer Relation Networks—0
Multiple protein feature prediction with statistical relational learning—0
Multi-Relational Learning at Scale with ADMM—0
Multi-relational Learning Using Weighted Tensor Decomposition with Modular Loss—0
Multi-Scale Progressive Attention Network for Video Question Answering—0
Multitask Learning on Graph Neural Networks: Learning Multiple Graph Centrality Measures with a Unified Network—0
Multi-task Neural Network for Non-discrete Attribute Prediction in Knowledge Graphs—0
Neural Markov Logic Networks—0
Neural-Symbolic Argumentation Mining: an Argument in Favor of Deep Learning and Reasoning—0
Neural-Symbolic Relational Reasoning on Graph Models: Effective Link Inference and Computation from Knowledge Bases—0
Numeric Input Relations for Relational Learning with Applications to Community Structure Analysis—0
Object-Centric Representation Learning for Video Question Answering—0
Object-Oriented Model Learning through Multi-Level Abstraction—0
On Lifting the Gibbs Sampling Algorithm—0
Online learnability of Statistical Relational Learning in anomaly detection—0
On the Semantic Relationship between Probabilistic Soft Logic and Markov Logic—0
Path-of-Thoughts: Extracting and Following Paths for Robust Relational Reasoning with Large Language Models—0
Position: Topological Deep Learning is the New Frontier for Relational Learning—0
Post-Hoc Robustness Enhancement in Graph Neural Networks with Conditional Random Fields—0
Post-Proceedings of the First International Workshop on Learning and Nonmonotonic Reasoning—0
Pre and Post Counting for Scalable Statistical-Relational Model Discovery—0
Propagating Over Phrase Relations for One-Stage Visual Grounding—0
Quantifying and Attributing the Hallucination of Large Language Models via Association Analysis—0
Randomly Weighted, Untrained Neural Tensor Networks Achieve Greater Relational Expressiveness—0
Leveraging Relational Information for Learning Weakly Disentangled RepresentationsCode0
Lifted Inference beyond First-Order LogicCode0
Graph-Based Global Reasoning NetworksCode0
ReGraP-LLaVA: Reasoning enabled Graph-based Personalized Large Language and Vision AssistantCode0
Anticipating Technical Expertise and Capability Evolution in Research Communities using Dynamic Graph TransformersCode0
LightPath: Lightweight and Scalable Path Representation LearningCode0
SeCG: Semantic-Enhanced 3D Visual Grounding via Cross-modal Graph AttentionCode0
GMNN: Graph Markov Neural NetworksCode0
Relational Deep Reinforcement LearningCode0
Column Networks for Collective ClassificationCode0
Learning the meanings of function words from grounded language using a visual question answering modelCode0
Logic Tensor Networks for Semantic Image InterpretationCode0
FlexMol: A Flexible Toolkit for Benchmarking Molecular Relational LearningCode0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1CTP A4 Hops0.99—Unverified