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📄 ResearchJuly 23, 2026

Bridging the Structural Gap: Adapting Autoregressive Generation for Recommendation

Generative Recommendation (GR) has emerged as a new paradigm for sequential recommendation, in which a representative line of work encodes items into hierarchical semantic IDs via residual quantization and predicts the IDs token by token. However, this generative formulation still exhibits structura...

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Source

http://arxiv.org/abs/2607.21028v1
Bridging the Structural Gap: Adapting Autoregressive Generation for Recommendation | The 500 Feed