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Research wants to replace the production LambdaMART rer...
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See plansConcede the offline gain, then name the invariant it breaks. Multivariate scoring makes a document’s score a function of which competitors share its list, so per-shard reranking followed by a merge no longer reproduces the global order, and requesting page two can reorder page one - neither is true of LambdaMART. Attack the gain with two measurements: the spread of NDCG@10 across candidate-order shuffles to ensure the gain isn’t noise, and an ablation that removes the attention blocks. If the gain survives the ablation, it came from the model class; if not, the gain is an artifact of set scoring that breaks the system’s sharding logic.