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Recognizer comparison versus system comparison

Two different questions must not be mixed.

1. Which recognizer reads a line more accurately?

Answer this only with the protocol-matched CER/WER tables in README.md and BENCHMARKS.md. A model trained on another split cannot be declared worse from a published number measured under another protocol.

2. Which workflow provides more research support?

muharaf_rec_best.mlmodel and exp9 are recognizer weight files. Athar is an application architecture around exp9.

Capability Standalone recognizer model Athar system with exp9
One visual transcription Yes Yes
Preserve raw visual reading Depends on caller Yes
Up to eight visual alternatives Not exposed by a plain model call Yes
Local domain-aware LM reranking No Yes
Optional external-LLM suggestion No Yes, advisory only
Source-library retrieval No Yes
Unique versus ambiguous attribution No Yes
Review queue with reasons No Yes
Auditable human accept/edit/reject No Yes
PAGE-XML and TEI export No Yes
Human-only training-package default No Yes
Cache/model/source provenance hashes No Yes

This table proves a capability difference, not a numerical accuracy advantage. Numerical recognition claims must come from the benchmark tables.