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#161 Microsoft’s Christian Federmann on the Translation Quality of Large Language Models

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Custom Translator: A Neural Architecture for Quality Improvement

The generic approach is very simplistic in the sense that it's a neural architecture. So people or end users supply their own data which is supposed to be from their own specific domain of interest. Then what happens is custom apps uploads their data into our custom translator and we run a couple of epochs of fine-tuning on top, right? And then you get a model which on customer specific data improves in quality and maybe degrades on more general domain performance,. That's why we, a customer will always see quality gains on their own test sets if they supply them.

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