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相关论文: PCFGs Can Do Better: Inducing Probabilistic Contex…

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Neural lexicalized PCFGs (L-PCFGs) have been shown effective in grammar induction. However, to reduce computational complexity, they make a strong independence assumption on the generation of the child word and thus bilexical dependencies…

计算与语言 · 计算机科学 2021-06-01 Songlin Yang , Yanpeng Zhao , Kewei Tu

In this paper we demonstrate that $\textit{context free grammar (CFG) based methods for grammar induction benefit from modeling lexical dependencies}$. This contrasts to the most popular current methods for grammar induction, which focus on…

计算与语言 · 计算机科学 2020-07-31 Hao Zhu , Yonatan Bisk , Graham Neubig

Compound probabilistic context-free grammars (C-PCFGs) have recently established a new state of the art for unsupervised phrase-structure grammar induction. However, due to the high space and time complexities of chart-based representation…

计算与语言 · 计算机科学 2023-10-24 Yanpeng Zhao , Ivan Titov

Probabilistic context-free grammars (PCFGs), which are commonly used to generate trees randomly, have been well analyzed theoretically, leading to applications in various domains. Despite their utility, the distributions that the grammar…

无序系统与神经网络 · 物理学 2024-08-30 Kai Nakaishi , Koji Hukushima

In this paper, we propose a globally normalized model for context-free grammar (CFG)-based semantic parsing. Instead of predicting a probability, our model predicts a real-valued score at each step and does not suffer from the label bias…

计算与语言 · 计算机科学 2021-06-08 Chenyang Huang , Wei Yang , Yanshuai Cao , Osmar Zaïane , Lili Mou

We study grammar induction with mildly context-sensitive grammars for unsupervised discontinuous parsing. Using the probabilistic linear context-free rewriting system (LCFRS) formalism, our approach fixes the rule structure in advance and…

计算与语言 · 计算机科学 2023-06-12 Songlin Yang , Roger P. Levy , Yoon Kim

Scaling dense PCFGs to thousands of nonterminals via a low-rank parameterization of the rule probability tensor has been shown to be beneficial for unsupervised parsing. However, PCFGs scaled this way still perform poorly as a language…

计算与语言 · 计算机科学 2023-10-24 Wei Liu , Songlin Yang , Yoon Kim , Kewei Tu

Understanding how the structure of language can be learned from sentences alone is a central question in both cognitive science and machine learning. Studies of the internal representations of Large Language Models (LLMs) support their…

机器学习 · 统计学 2026-02-10 Jack T. Parley , Francesco Cagnetta , Matthieu Wyart

There has been recent interest in applying cognitively or empirically motivated bounds on recursion depth to limit the search space of grammar induction models (Ponvert et al., 2011; Noji and Johnson, 2016; Shain et al., 2016). This work…

计算与语言 · 计算机科学 2018-02-27 Lifeng Jin , Finale Doshi-Velez , Timothy Miller , William Schuler , Lane Schwartz

The problem of identifying a probabilistic context free grammar has two aspects: the first is determining the grammar's topology (the rules of the grammar) and the second is estimating probabilistic weights for each rule. Given the hardness…

形式语言与自动机理论 · 计算机科学 2021-03-10 Dolav Nitay , Dana Fisman , Michal Ziv-Ukelson

Traditional Linear Genetic Programming (LGP) algorithms are based only on the selection mechanism to guide the search. Genetic operators combine or mutate random portions of the individuals, without knowing if the result will lead to a…

神经与进化计算 · 计算机科学 2017-04-05 Léo Françoso Dal Piccol Sotto , Vinícius Veloso de Melo

We investigate models for learning the class of context-free and context-sensitive languages (CFLs and CSLs). We begin with a brief discussion of some early hardness results which show that unrestricted language learning is impossible, and…

形式语言与自动机理论 · 计算机科学 2012-07-09 Jacob Andreas

We present an empirical study of the applicability of Probabilistic Lexicalized Tree Insertion Grammars (PLTIG), a lexicalized counterpart to Probabilistic Context-Free Grammars (PCFG), to problems in stochastic natural-language processing.…

cmp-lg · 计算机科学 2007-05-23 Rebecca Hwa

The problem of identifying a probabilistic context free grammar has two aspects: the first is determining the grammar's topology (the rules of the grammar) and the second is estimating probabilistic weights for each rule. Given the hardness…

计算机科学中的逻辑 · 计算机科学 2023-06-22 Dana Fisman , Dolav Nitay , Michal Ziv-Ukelson

We propose a method to improve traditional character-based PPM text compression algorithms. Consider a text file as a sequence of alternating words and non-words, the basic idea of our algorithm is to encode non-words and prefixes of words…

信息论 · 计算机科学 2015-03-17 Yichuan Hu , Jianzhong , Zhang , Farooq Khan , Ying Li

We present a formal framework for the development of a family of discriminative learning algorithms for Probabilistic Context-Free Grammars (PCFGs) based on a generalization of criterion-H. First of all, we propose the H-criterion as the…

计算与语言 · 计算机科学 2021-03-17 Mauricio Maca , José Miguel Benedí , Joan Andreu Sánchez

Are multimodal inputs necessary for grammar induction? Recent work has shown that multimodal training inputs can improve grammar induction. However, these improvements are based on comparisons to weak text-only baselines that were trained…

We describe an extension of Earley's parser for stochastic context-free grammars that computes the following quantities given a stochastic context-free grammar and an input string: a) probabilities of successive prefixes being generated by…

cmp-lg · 计算机科学 2008-02-03 Andreas Stolcke

Probabilistic context-free grammars (PCFGs) are used to define distributions over strings, and are powerful modelling tools in a number of areas, including natural language processing, software engineering, model checking, bio-informatics,…

形式语言与自动机理论 · 计算机科学 2014-07-08 Colin de la Higuera , James Scicluna , Mark-Jan Nederhof

Quantum computing is a relatively new field of computing, which utilises the fundamental concepts of quantum mechanics to process data. The seminal paper of Moore et al. [2000] introduced quantum grammars wherein a set of amplitudes was…

形式语言与自动机理论 · 计算机科学 2025-05-21 Merina Aruja , Lisa Mathew , Jayakrishna Vijayakumar
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