activity
20182024
most citedFrom Zero to Hero: On the Limitations of Zero-Shot Cross-Lingual Transfer with Multilingual Transformers

34 citations · 38 across the 6 of their papers we have counts for

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Showing cs.CLShow all

10 papers · 1 filter

cs.CL2024

Word Order and World Knowledge

Qinghua Zhao, Vinit Ravishankar, Nicolas Garneau +1

Word order is an important concept in natural language, and in this work, we study how word order affects the induction of world knowledge from raw text using language models. We u…

cs.CL20243 cited

Multi-Task Contrastive Learning for 8192-Token Bilingual Text Embeddings

Isabelle Mohr, Markus Krimmel, Saba Sturua +16

We introduce a novel suite of state-of-the-art bilingual text embedding models that are designed to support English and another target language. These models are capable of process…

cs.CL20221 cited

Word Order Does Matter (And Shuffled Language Models Know It)

Vinit Ravishankar, Mostafa Abdou, Artur Kulmizev +1

Recent studies have shown that language models pretrained and/or fine-tuned on randomly permuted sentences exhibit competitive performance on GLUE, putting into question the import…

cs.CL2021

The Impact of Positional Encodings on Multilingual Compression

Vinit Ravishankar, Anders Søgaard

In order to preserve word-order information in a non-autoregressive setting, transformer architectures tend to include positional knowledge, by (for instance) adding positional enc…

cs.CL2021

Attention Can Reflect Syntactic Structure (If You Let It)

Vinit Ravishankar, Artur Kulmizev, Mostafa Abdou +2

Since the popularization of the Transformer as a general-purpose feature encoder for NLP, many studies have attempted to decode linguistic structure from its novel multi-head atten…

cs.CL2020

The Sensitivity of Language Models and Humans to Winograd Schema Perturbations

Mostafa Abdou, Vinit Ravishankar, Maria Barrett +3

Large-scale pretrained language models are the major driving force behind recent improvements in performance on the Winograd Schema Challenge, a widely employed test of common sens…