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 76100 of 482 papers

TitleStatusHype
Assessing LLMs Suitability for Knowledge Graph CompletionCode0
Multiple Heads are Better than One: Mixture of Modality Knowledge Experts for Entity Representation LearningCode1
Empowering Small-Scale Knowledge Graphs: A Strategy of Leveraging General-Purpose Knowledge Graphs for Enriched Embeddings0
Harmonizing Human Insights and AI Precision: Hand in Hand for Advancing Knowledge Graph Task0
Multi-level Shared Knowledge Guided Learning for Knowledge Graph Completion0
Relations Prediction for Knowledge Graph Completion using Large Language Models0
One Subgraph for All: Efficient Reasoning on Opening Subgraphs for Inductive Knowledge Graph Completion0
Knowledge Graph Completion using Structural and Textual EmbeddingsCode0
CausalLP: Learning causal relations with weighted knowledge graph link predictionCode0
Tokenization, Fusion, and Augmentation: Towards Fine-grained Multi-modal Entity RepresentationCode3
Progressive Knowledge Graph CompletionCode0
HyperMono: A Monotonicity-aware Approach to Hyper-Relational Knowledge RepresentationCode0
A Foundation Model for Zero-shot Logical Query ReasoningCode4
Zero-Shot Relational Learning for Multimodal Knowledge GraphsCode0
KGExplainer: Towards Exploring Connected Subgraph Explanations for Knowledge Graph Completion0
Harnessing the Power of Large Language Model for Uncertainty Aware Graph ProcessingCode0
IME: Integrating Multi-curvature Shared and Specific Embedding for Temporal Knowledge Graph Completion0
KC-GenRe: A Knowledge-constrained Generative Re-ranking Method Based on Large Language Models for Knowledge Graph CompletionCode0
Hyper-CL: Conditioning Sentence Representations with HypernetworksCode1
Counterfactual Reasoning with Knowledge Graph EmbeddingsCode0
Noise-powered Multi-modal Knowledge Graph Representation FrameworkCode1
HDReason: Algorithm-Hardware Codesign for Hyperdimensional Knowledge Graph Reasoning0
Uncertainty-Aware Relational Graph Neural Network for Few-Shot Knowledge Graph Completion0
Multi-perspective Improvement of Knowledge Graph Completion with Large Language ModelsCode2
Temporal Knowledge Graph Completion with Time-sensitive Relations in Hypercomplex Space0
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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