Fine-grained evaluation of Quality Estimation for Machine translation based on a linguistically-motivated Test Suite
Abstract
A linguistically motivated test suite with categorized translation errors evaluates quality estimation systems by measuring their ability to distinguish correct from erroneous outputs.
We present an alternative method of evaluating Quality Estimation systems, which is based on a linguistically-motivated Test Suite. We create a test-set consisting of 14 linguistic error categories and we gather for each of them a set of samples with both correct and erroneous translations. Then, we measure the performance of 5 Quality Estimation systems by checking their ability to distinguish between the correct and the erroneous translations. The detailed results are much more informative about the ability of each system. The fact that different Quality Estimation systems perform differently at various phenomena confirms the usefulness of the Test Suite.
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