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20212023
most citedHP-GNN: Generating High Throughput GNN Training Implementation on CPU-FPGA Heterogeneous Platform

40 citations · 43 across the 7 of their papers we have counts for

collaborators

7 papers

cs.DC20232 cited

Performance of Graph Neural Networks for Point Cloud Applications

Dhruv Parikh, Bingyi Zhang, Rajgopal Kannan +2

Graph Neural Networks (GNNs) have gained significant momentum recently due to their capability to learn on unstructured graph data. Dynamic GNNs (DGNNs) are the current state-of-th…

cs.AR2023

Exploiting On-chip Heterogeneity of Versal Architecture for GNN Inference Acceleration

Paul Chen, Pavan Manjunath, Sasindu Wijeratne +2

Graph Neural Networks (GNNs) have revolutionized many Machine Learning (ML) applications, such as social network analysis, bioinformatics, etc. GNN inference can be accelerated by…

cs.DC2023

Dynasparse: Accelerating GNN Inference through Dynamic Sparsity Exploitation

Bingyi Zhang, Viktor Prasanna

Graph Neural Network (GNN) inference is used in many real-world applications. Data sparsity in GNN inference, including sparsity in the input graph and the GNN model, offer opportu…

cs.DC2023

HitGNN: High-throughput GNN Training Framework on CPU+Multi-FPGA Heterogeneous Platform

Yi-Chien Lin, Bingyi Zhang, Viktor Prasanna

As the size of real-world graphs increases, training Graph Neural Networks (GNNs) has become time-consuming and requires acceleration. While previous works have demonstrated the po…

cs.DC20231 cited

GraphAGILE: An FPGA-based Overlay Accelerator for Low-latency GNN Inference

Bingyi Zhang, Hanqing Zeng, Viktor Prasanna

This paper presents GraphAGILE, a domain-specific FPGA-based overlay accelerator for graph neural network (GNN) inference. GraphAGILE consists of (1) \emph{a novel unified architec…

cs.DC2022

Performance Modeling Sparse MTTKRP Using Optical Static Random Access Memory on FPGA

Sasindu Wijeratne, Akhilesh Jaiswal, Ajey P. Jacob +2

Electrical static random memory (E-SRAM) is the current standard for internal static memory in Field Programmable Gate Array (FPGA). Despite the dramatic improvement in E-SRAM tech…