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metadata
license: apache-2.0
language:
  - grc
library_name: transformers
tags:
  - ancient-greek
  - classical-philology
  - character-level
  - masked-diffusion
  - macronization
pipeline_tag: token-classification

Stoicheia -- macronization

Stoicheia is a 405M-parameter character-level masked-diffusion encoder for Ancient Greek (d_model 1024, depth 32, banded attention: three of every four blocks attend within a 256-character window, the fourth globally). Its input is factored into five aligned planes -- letters, word/sentence boundaries, diacritics, capitalization, punctuation -- each of which can be masked independently to an explicit unknown state at inference. That is what lets one model read an edited text, scriptio continua, and a lacuna of unknown length without changing anything but its input.

Anonymous release accompanying a paper under review.

Vowel length alone: long versus short at every ambiguous bare α, ι or υ. Trained on a silver corpus of ~130,000 verse lines built by exact constraint propagation -- a solver accepts a line only when exactly one metrical grammar scans it, and fixes a dichronon only when every accepting parse agrees -- plus converted syllable-weight markup, all checked against the evaluation benchmark to prevent leakage.

Usage

import torch
from transformers import AutoModel
from huggingface_hub import hf_hub_download

REPO = "Ericu950/Stoicheia-macronizer"
model = AutoModel.from_pretrained(REPO, trust_remote_code=True).eval()

hf_hub_download(repo_id=REPO, filename="processing_char_bert_meter.py", local_dir=".")
from processing_char_bert_meter import CharBertMeterProcessor

proc = CharBertMeterProcessor()
batch = proc("ἄνδρα μοι ἔννεπε, μοῦσα, πολύτροπον, ὃς μάλα πολλὰ")
with torch.no_grad():
    out = model(**{k: v for k, v in batch.items() if not k.startswith("_")})
print(proc.decode_macronization(out, batch))   # ἄ^νδρα^ μοι ἔννεπε, μοῦσα^, ...