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judgly

Calibrated, deterministic judgments from open language models.

Status: early development. This release (0.0.1) contains no functionality yet; it reserves the name while the package is built. Do not depend on it.

What judgly will do

judgly answers typed questions about a text (a choice among options, a yes or no, a rating on a scale) with a probability for every allowed answer, without generating any text. A frozen open language model reads the text once, every question is answered from that single reading and kept isolated from the others, and a small calibration head, fitted on public data, turns the model's scores into probabilities that match observed accuracy: when judgly says 0.8, it is right about 80% of the time. Answers are repeatable: the same request gives the same probabilities.

The default model is Google's Gemma 4 12B, run locally through llama.cpp.

Planned interface (subject to change)

from judgly import Engine, Choice

engine = Engine.load("gemma4-12b")
answer = engine.decide(
    state="Claim: ...\n\nEvidence: ...",
    questions={
        "stance": Choice(
            format="stance",
            instructions="How does the evidence bear on the claim?",
            options={"supports": "The evidence supports the claim",
                     "contradicts": "The evidence contradicts the claim",
                     "no_bearing": "The evidence has no bearing on the claim"},
        ),
    },
)
answer["stance"].probs   # {"supports": ..., "contradicts": ..., "no_bearing": ...}

Acknowledgements

judgly runs on Google's Gemma 4 models, released under the Apache License 2.0, and on llama.cpp and ggml by the ggml authors (MIT License). See NOTICE.

Licence

Apache License 2.0. See LICENSE and NOTICE.

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