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IndicQE-APE Benchmark Consolidates Quality Estimation and Post-Editing for Indic Languages
Researchers have assembled IndicQE-APE, a single benchmark that brings together scattered Indic-language resources for quality estimation and automatic post-editing. The dataset draws on WMT shared task data from 2020 through 2024, allowing models to be trained and evaluated across multiple tasks and language pairs under consistent conditions. The goal is to remove the fragmentation that previously made cross-task and cross-language comparison difficult.