RKB109/multimodal-document-retrieval-20260723-dataset
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This repository contains a small, transparent prototype model for Business documents contain meaning in text, tables, layout, and imagery that text-only retrieval can miss.
The model combines per-label token weights with IDF-weighted evidence retrieval. It was generated for reproducible architecture demonstrations and does not call a hosted LLM.
visual-document-retrievaldocument-question-answeringimage-to-textfeature-extractionThe starter dataset contains synthetic textual modality descriptors, not sensitive scanned documents.
The dataset is synthetic and small. Do not use this model for consequential decisions without representative data, expert review, and production-grade evaluation.
The linked GitHub repository includes train.py, the exact dataset split,
evaluation code, and the model JSON format.