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Few-shot learning almost reaches traditional machine translation

Xavier Garcia @whybansal @ColinCherry George Foster, Maxim Krikun @fengfangxiaoyu @melvinjohnsonp @orf_bnw
arxiv.org/abs/2302.01398
#enough2skim #NLProc #neuralEmpty Image
The setting is quite simple:
Take a smaller (8B vs 100-500B in some baselines)
bilingual LM in two languages (one might be low resource see fig)
Show it a few translation examples in the prompt
Say abra kadabra 🪄
and you got a very good translation system Image
They reproduce known results and detail how to do it (especially for low resource)
e.g., continue previous training for speed\stability have many epochs on the monolingual training (fig)
etc. Image
Read 5 tweets
Model combination\ensembling:
Average ensembling is practical - but naive.
Combine considering each network's strengths, much better!
Moreover, let's make the networks diverse so they will have different strengths.

Wenjuan Han & Hwee Tou Ng (no twitters?)
#enough2skim #NLProc
The basic idea is quite simple:
Given some models, why would we want the average? We want to rely on each one(or group) when it is more likely to be the correct one.
This was actually introduced in our previous work (as admitted by the authors) in
aclanthology.org/W19-4414.pdf
The paper's addition:
1. Given a set of black-box models we may train at least one of them to be different from the rest with RL.
2. we can use more sophisticated NNs to combine the outputs
3. we can ignore domain knowledge for the combination (I am not sure this is a bonus)
Read 10 tweets

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