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Outliers Dimensions that Disrupt Transformers Are Driven by Frequency

  • Giovanni Puccetti
    ,
  • ,
  • Aleksandr Drozd
    ,
  • Felice Dell'Orletta
  • Italian Natural Language Processing Lab
    ,
  • RIKEN Center for Computational Science
    ,
  • Scuola Normale Superiore
Research Output:
Conference Article in Proceeding or Book/Report chapter
Article in proceedings
Peer-review

Publication Information

Output type

Research Output:
Conference Article in Proceeding or Book/Report chapter
Article in proceedings
Peer-review

Original language

English

Publication milestones

  • Published - 2022

Publication status

Published - 2022

Publisher

Association for Computational Linguistics, United States

Host publication title

Findings of EMNLP 2022

Abstract

Transformer-based language models are known to display anisotropic behavior: the token embeddings are not homogeneously spread in space, but rather accumulate along certain directions. A related recent finding is the outlier phenomenon: the parameters in the final element of Transformer layers that consistently have unusual magnitude in the same dimension across the model, and significantly degrade its performance if disabled. We replicate the evidence for the outlier phenomenon and we link it to the geometry of the embedding space. Our main finding is that in both BERT and RoBERTa the token frequency, known to contribute to anisotropicity, also contributes to the outlier phenomenon. In its turn, the outlier phenomenon contributes to the 'vertical' self-attention pattern that enables the model to focus on the special tokens. We also find that, surprisingly, the outlier effect on the model performance varies by layer, and that variance is also related to the correlation between outlier magnitude and encoded token frequency.

Related Event

Title

Conference on Empirical Methods in Natural Language Processing

Event type

Conference

Degree of recognition

International event

Date

07/12/2022 - 11/12/2022

Location

Abu DhabiUnited Arab Emirates