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Takeru Matsuda

6 accepted papers

2024

Exploring Intra and Inter-language Consistency in Embeddings with ICA

EMNLP 2024main

Word embeddings represent words as multidimensional real vectors, facilitating data analysis and processing, but are often challenging to interpret. Independent Component Analysis (ICA) creates clearer semantic axes by identifying independent key features. Previous research has shown ICA’s potential…

2020

A Unified Statistically Efficient Estimation Framework for Unnormalized Models

AISTATS 2020poster

The parameter estimation of unnormalized models is a challenging problem. The maximum likelihood estimation (MLE) is computationally infeasible for these models since normalizing constants are not explicitly calculated. Although some consistent estimators have been proposed earlier, the problem of s…

Cited by 18SourcePDFScholar
2020

Imputation estimators for unnormalized models with missing data

AISTATS 2020poster

Several statistical models are given in the form of unnormalized densities and calculation of the normalization constant is intractable. We propose estimation methods for such unnormalized models with missing data. The key concept is to combine imputation techniques with estimators for unnormalized…

Cited by 8SourcePDFScholar