Nine1Eight/vil-canonical-glyph-system
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VIL Encoder v1.2 is a glyphmatic vision encoder trained using
GVL-P (Glyphmatic Video-Language Pretraining) v1.2.
This model learns temporal execution structure from canonical glyph sequences derived from text, code, binaries, and other data.
⚠️ This model does not tokenize language.
All inputs are compiled into a canonical glyph IR (base-111).
Training is fully self-supervised:
No labels, captions, or annotations were used.
This is not a language model.
File: vil-encoder-v1.2.pt Checkpoint contains:
vision_encodertemporal_headembed_dimcanon_sizegvlp_version = 1.2Canonical dataset: https://huggingface.co/datasets/Nine1Eight/vil-canonical-glyph-system
Matthew Blake Ward (Nine1Eight)
Tulsa, Oklahoma, USA