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MetricX-24: The Google Submission to the WMT 2024 Metrics Shared Task

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arxiv 2410.03983 v1 pith:4CRQR54W submitted 2024-10-04 cs.CL

MetricX-24: The Google Submission to the WMT 2024 Metrics Shared Task

classification cs.CL
keywords metricratingsmetricsmetricx-24previoussharedsubmissionsynthetic
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In this paper, we present the MetricX-24 submissions to the WMT24 Metrics Shared Task and provide details on the improvements we made over the previous version of MetricX. Our primary submission is a hybrid reference-based/-free metric, which can score a translation irrespective of whether it is given the source segment, the reference, or both. The metric is trained on previous WMT data in a two-stage fashion, first on the DA ratings only, then on a mixture of MQM and DA ratings. The training set in both stages is augmented with synthetic examples that we created to make the metric more robust to several common failure modes, such as fluent but unrelated translation, or undertranslation. We demonstrate the benefits of the individual modifications via an ablation study, and show a significant performance increase over MetricX-23 on the WMT23 MQM ratings, as well as our new synthetic challenge set.

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