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graph partitioning

Graph Partitioning is generally the first step of distributed graph computing tasks. The targets are load-balance and minimizing the communication volume.

Papers

Showing 125 of 208 papers

TitleStatusHype
Deep Spectral Methods: A Surprisingly Strong Baseline for Unsupervised Semantic Segmentation and LocalizationCode2
DistMLIP: A Distributed Inference Platform for Machine Learning Interatomic PotentialsCode2
Graph Partitioning and Sparse Matrix Ordering using Reinforcement Learning and Graph Neural NetworksCode1
Task-specific Scene Structure RepresentationsCode1
Accurate and versatile 3D segmentation of plant tissues at cellular resolutionCode1
Learnable Graph Matching: Incorporating Graph Partitioning with Deep Feature Learning for Multiple Object TrackingCode1
Graph Ladling: Shockingly Simple Parallel GNN Training without Intermediate CommunicationCode1
CuVLER: Enhanced Unsupervised Object Discoveries through Exhaustive Self-Supervised TransformersCode1
Learning to Solve Combinatorial Graph Partitioning Problems via Efficient ExplorationCode1
Self-supervised Few-shot Learning for Semantic Segmentation: An Annotation-free ApproachCode1
Upsampling DINOv2 features for unsupervised vision tasks and weakly supervised materials segmentationCode1
A Structure-Aware Framework for Learning Device Placements on Computation GraphsCode1
Reformulating DOVER-Lap Label Mapping as a Graph Partitioning ProblemCode1
RAMA: A Rapid Multicut Algorithm on GPUCode1
Graph Neural Network Based Coarse-Grained Mapping PredictionCode1
Unleashing Graph Partitioning for Large-Scale Nearest Neighbor SearchCode1
Fast Multi-view Clustering via Ensembles: Towards Scalability, Superiority, and SimplicityCode1
Generalized Spectral Clustering via Gromov-Wasserstein LearningCode1
A Clustering Method with Graph Maximum Decoding Information0
Algorithms for metric learning via contrastive embeddings0
A Bayesian Approach To Graph Partitioning0
A Graph-Partitioning Based Continuous Optimization Approach to Semi-supervised Clustering Problems0
AGO: Boosting Mobile AI Inference Performance by Removing Constraints on Graph Optimization0
The Mutex Watershed and its Objective: Efficient, Parameter-Free Graph Partitioning0
Associating Inter-Image Salient Instances for Weakly Supervised Semantic Segmentation0
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