This model is part of the GrammarCorrector tool.
"FlanT5 from scratch for the grammar correction tool" article about how this models was trained:
FlanT5 was trained using JFLEG dataset. The primary objective of the experiment was to develop a highly effective tool using relatively small models, minimal datasets, and constrained computational resources.
To accomplish this goal, we implemented two key strategies:
- Perplexity-Based Data Pruning With Small Reference Models.
- A simple sampling and voting method for multiple LLM agents. model was trained.
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Model tree for akhmat-s/t5-large-quant-grammar-corrector
Base model
google/flan-t5-large