
Transformer Memory as a Differentiable Search Index: memorizing thousands of random doc ids works!?
Neural Search Talks — Zeta Alpha
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The Semantic String Doc ID vs Atomic Doc ID
The semantic string doc ID seems to fail quite strongly, right? We're talking, for instance, a difference in performance from 26% to 57%. Do you have any intuitive thinking of why that could be? No, this was very unclear to me. I'm unsure what's changing here. It could be that the queries are actually helpful for understanding this mapping. Maybe the queries help discriminate documents because, you know, the document is relevant to one query. But I'm not, yeah, I'm unsure.
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