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MatLM: a Matrix Formulation for Probabilistic Language Models
October 03, 2016 ยท Declared Dead ยท ๐ arXiv.org
Authors
Yanshan Wang, Hongfang Liu
arXiv ID
1610.00735
Category
cs.IR: Information Retrieval
Citations
0
Venue
arXiv.org
Repository
https://github.com/yanshanwang/JGibbLDA-v.1.0-MatLM
Last Checked
2 months ago
Abstract
Probabilistic language models are widely used in Information Retrieval (IR) to rank documents by the probability that they generate the query. However, the implementation of the probabilistic representations with programming languages that favor matrix calculations is challenging. In this paper, we utilize matrix representations to reformulate the probabilistic language models. The matrix representation is a superstructure for the probabilistic language models to organize the calculated probabilities and a potential formalism for standardization of language models and for further mathematical analysis. It facilitates implementations by matrix friendly programming languages. In this paper, we consider the matrix formulation of conventional language model with Dirichlet smoothing, and two language models based on Latent Dirichlet Allocation (LDA), i.e., LBDM and LDI. We release a Java software package--MatLM--implementing the proposed models. Code is available at: https://github.com/yanshanwang/JGibbLDA-v.1.0-MatLM.
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