SOTAVerified

Knowledge Graph Completion

Knowledge graphs $G$ are represented as a collection of triples $\{(h, r, t)\}\subseteq E\times R\times E$, where $E$ and $R$ are the entity set and relation set. The task of Knowledge Graph Completion is to either predict unseen relations $r$ between two existing entities: $(h, ?, t)$ or predict the tail entity $t$ given the head entity and the query relation: $(h, r, ?)$.

Source: One-Shot Relational Learning for Knowledge Graphs

Papers

Showing 351375 of 482 papers

TitleStatusHype
Cycle Representation Learning for Inductive Relation PredictionCode0
Is There More Pattern in Knowledge Graph? Exploring Proximity Pattern for Knowledge Graph Embedding0
A Topological View of Rule Learning in Knowledge Graphs0
TaCE: Time-aware Convolutional Embedding Learning for Temporal Knowledge Graph Completion0
Explainable GNN-Based Models over Knowledge Graphs0
Inductive Relation Prediction Using Analogy Subgraph Embeddings0
Knowledge Graph Completion as Tensor Decomposition: A Genreal Form and Tensor N-rank Regularization0
On Event-Driven Knowledge Graph Completion in Digital Factories0
A Temporal Knowledge Graph Completion Method Based on Balanced Timestamp Distribution0
KGRefiner: Knowledge Graph Refinement for Improving Accuracy of Translational Link Prediction Methods0
Why a Naive Way to Combine Symbolic and Latent Knowledge Base Completion Works Surprisingly Well0
A Joint Training Framework for Open-World Knowledge Graph Embeddings0
Integrating Lexical Information into Entity Neighbourhood Representations for Relation PredictionCode0
Path-based knowledge reasoning with textual semantic information for medical knowledge graph completion0
QuatDE: Dynamic Quaternion Embedding for Knowledge Graph CompletionCode0
CAFE: Knowledge graph completion using neighborhood-aware featuresCode0
Is Knowledge Embedding Fully Exploited in Language Understanding? An Empirical Study0
An Adversarial Transfer Network for Knowledge Representation LearningCode0
Mixed-Curvature Multi-Relational Graph Neural Network for Knowledge Graph Completion0
Multilingual Knowledge Graph Completion with Joint Relation and Entity Alignment0
Membership Inference Attacks on Knowledge Graphs0
Improving Hyper-Relational Knowledge Graph CompletionCode0
Multiple Run Ensemble Learning with Low-Dimensional Knowledge Graph EmbeddingsCode0
Switch Spaces: Learning Product Spaces with Sparse Gating0
Representing Hierarchical Structure by Using Cone Embedding0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1KBGATHits@1062.6Unverified
2HAKEHits@1054.2Unverified
3PKGCHits@1048.7Unverified
4KBATHits@146Unverified
#ModelMetricClaimedVerifiedStatus
1JMACMRR44.6Unverified
2AlignKGCMRR41.3Unverified
3SS-AGAMRR32.1Unverified
#ModelMetricClaimedVerifiedStatus
1JMACMRR71.7Unverified
2AlignKGCMRR69.4Unverified
3SS-AGAMRR35.3Unverified
#ModelMetricClaimedVerifiedStatus
1JMACMRR64.5Unverified
2AlignKGCMRR59.5Unverified
3SS-AGAMRR36.6Unverified
#ModelMetricClaimedVerifiedStatus
1HAKEHits@30.52Unverified
2KBGATHits@30.48Unverified
#ModelMetricClaimedVerifiedStatus
1KTUP (soft)Hits@1060.75Unverified
#ModelMetricClaimedVerifiedStatus
1KTUP (soft)Hits@1048.9Unverified