openjev
is Qwen3.5 turned into a
jev
model: a single cross-encoder that reads a premise and a hypothesis and
answers with entailment, contradiction or neutral. That one primitive is enough to rerank answers, grade them against a
reference, guard content, and play games in real time: hand it the game state and a few statements about it, and the
argmax entailment is the move. Doom above is played zero-shot, first from the text state and then straight from the
pixels through the Qwen3.5 vision tower. Nothing is trained per task.
What's inside
qwen3.5-4b-nli/
— the 4B jev checkpoint (
Qwen3_5ForSequenceClassification
, 3 labels:
contradiction
,
entailment
,
neutral
, last-token pooling, trained with plain cross-entropy over the three classes).
code/
— everything used here: the trainer, the multiple-choice harness, Flappy Bird and Doom (text and pixels), the radar.
videos/
— Flappy Bird and Doom replays;
results/
— raw JSON for every run and the full report.
Use it
from modeling_openjev import OpenJevCrossEncoder
jev = OpenJevCrossEncoder("AlexWortega/openjev", subfolder="qwen3.5-4b-nli")
jev.predict([("The bird is 0.05 below the centre of the gap.", "The bird is below the centre of the gap.")])
# -> [[contradiction, entailment, neutral]] probabilities
jev.rerank("Which gas do plants absorb during photosynthesis?", ["oxygen", "carbon dioxide", "nitrogen"])
# -> index of the option with the highest entailment
Or with plain transformers:
from transformers import AutoModelForSequenceClassification, AutoTokenizer
tok = AutoTokenizer.from_pretrained("AlexWortega/openjev", subfolder="qwen3.5-4b-nli")
model = AutoModelForSequenceClassification.from_pretrained("AlexWortega/openjev", subfolder="qwen3.5-4b-nli")
text = model.config.nli_template.format(premise="...", hypothesis="...")
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