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    Home»Machine Learning & Research»Overcoming Vocabulary Constraints with Pixel-level Fallback
    Machine Learning & Research

    Overcoming Vocabulary Constraints with Pixel-level Fallback

    Oliver ChambersBy Oliver ChambersJuly 12, 2025No Comments2 Mins Read
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    Overcoming Vocabulary Constraints with Pixel-level Fallback
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    Subword tokenization requires balancing computational effectivity and vocabulary protection, which frequently results in suboptimal efficiency on languages and scripts not prioritized throughout coaching. We suggest to reinforce pretrained language fashions with a vocabulary-free encoder that generates enter embeddings from textual content rendered as pixels. By way of experiments on English-centric language fashions, we exhibit that our strategy considerably improves machine translation efficiency and facilitates efficient cross-lingual switch, outperforming tokenizer-based strategies. Moreover, we discover that pixel-based representations outperform byte-level approaches and commonplace vocabulary enlargement. Our strategy enhances the multilingual capabilities of monolingual language fashions with out in depth retraining and reduces decoding latency through enter compression.

    • † College of Copenhagen
    • ‡ Mohamed bin Zayed College of Synthetic Intelligence
    • ** Work accomplished whereas at Apple
    Determine 1: Illustration of our proposed NLP pipeline for Hindi-to-English machine translation. The decoder-only language mannequin is instructed, encodes the supply textual content utilizing the fallback community, and autoregressively generates an English translation.
    Illustration of fallback network: text segmented, rendered into bigram patches, and embedded for input into decoder-only LLM.
    Determine 2: Contained in the fallback community the textual content is segmented into an inventory of phrases, rendered into picture patches containing character bigrams, and projected into patch embeddings zi,j. The encoder outputs single-vector phrase representations yi, mapped as enter embeddings to the language mannequin.
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