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Junjie Tang

4 accepted papers

2025

A Generic Family of Graphical Models: Diversity, Efficiency, and Heterogeneity

ICML 2025poster

Traditional network inference methods, such as Gaussian Graphical Models, which are built on continuity and homogeneity, face challenges when modeling discrete data and heterogeneous frameworks. Furthermore, under high-dimensionality, the parameter estimation of such models can be hindered by the no…

Cited by 0SourcePDFScholar
2024

Spatio-Temporal Data Mining with Information Integrity Protection: Graph Signal Based Air Quality Prediction

ICASSP 2024accepted

Due to industrial development, air pollution has become a persistent issue. Accurately predicting air quality is challenging due to complex spatiotemporal correlations within data. Previous researches utilize diverse modules to extract features separately from the temporal and spatial dimensions of…

Cited by 0SourceScholar
2022

Estimating graphical models for count data with applications to single-cell gene network

NeurIPS 2022accept

Graphical models such as Gaussian graphical models have been widely applied for direct interaction inference in many different areas. In many modern applications, such as single-cell RNA sequencing (scRNA-seq) studies, the observed data are counts and often contain many small counts. Traditional gr…

Cited by 3SourcePDFScholar
2021

LRC-BERT: Latent-representation Contrastive Knowledge Distillation for Natural Language Understanding

AAAI 2021technical

The pre-training models such as BERT have achieved great results in various natural language processing problems. However, a large number of parameters need significant amounts of memory and the consumption of inference time, which makes it difficult to deploy them on edge devices. In this work, we…

Cited by 61SourcePDFScholar