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Using Priming to Uncover the Organization of Syntactic Representations
  in Neural Language Models

Using Priming to Uncover the Organization of Syntactic Representations in Neural Language Models

23 September 2019
Grusha Prasad
Marten van Schijndel
Tal Linzen
ArXivPDFHTML

Papers citing "Using Priming to Uncover the Organization of Syntactic Representations in Neural Language Models"

9 / 9 papers shown
Title
Filtered Corpus Training (FiCT) Shows that Language Models can
  Generalize from Indirect Evidence
Filtered Corpus Training (FiCT) Shows that Language Models can Generalize from Indirect Evidence
Abhinav Patil
Jaap Jumelet
Yu Ying Chiu
Andy Lapastora
Peter Shen
Lexie Wang
Clevis Willrich
Shane Steinert-Threlkeld
32
13
0
24 May 2024
SPAWNing Structural Priming Predictions from a Cognitively Motivated
  Parser
SPAWNing Structural Priming Predictions from a Cognitively Motivated Parser
Grusha Prasad
Tal Linzen
19
4
0
11 Mar 2024
Structural Priming Demonstrates Abstract Grammatical Representations in
  Multilingual Language Models
Structural Priming Demonstrates Abstract Grammatical Representations in Multilingual Language Models
J. Michaelov
Catherine Arnett
Tyler A. Chang
Benjamin Bergen
36
12
0
15 Nov 2023
Language model acceptability judgements are not always robust to context
Language model acceptability judgements are not always robust to context
Koustuv Sinha
Jon Gauthier
Aaron Mueller
Kanishka Misra
Keren Fuentes
R. Levy
Adina Williams
21
17
0
18 Dec 2022
Collateral facilitation in humans and language models
Collateral facilitation in humans and language models
J. Michaelov
Benjamin Bergen
17
11
0
09 Nov 2022
Neural reality of argument structure constructions
Neural reality of argument structure constructions
Bai Li
Zining Zhu
Guillaume Thomas
Frank Rudzicz
Yang Xu
40
26
0
24 Feb 2022
Probing the phonetic and phonological knowledge of tones in Mandarin TTS
  models
Probing the phonetic and phonological knowledge of tones in Mandarin TTS models
Jian Zhu
16
8
0
23 Dec 2019
The Fine Line between Linguistic Generalization and Failure in
  Seq2Seq-Attention Models
The Fine Line between Linguistic Generalization and Failure in Seq2Seq-Attention Models
Noah Weber
L. Shekhar
Niranjan Balasubramanian
98
30
0
03 May 2018
What you can cram into a single vector: Probing sentence embeddings for
  linguistic properties
What you can cram into a single vector: Probing sentence embeddings for linguistic properties
Alexis Conneau
Germán Kruszewski
Guillaume Lample
Loïc Barrault
Marco Baroni
201
882
0
03 May 2018
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