AI product Open source

NanoJev

NanoJev is an open-source 0.6B parallel-decision model and training pipeline based on Qwen3-0.6B. It accepts states, questions, and candidate sets in a single forward pass and returns complete probability distributions without output-token decoding. Shared decision heads support dynamic-choice distributions over supplied candidates, Boolean proposition probabilities, and ordered score levels with expected values.

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Overview

The repository includes data generation, distribution-loss training, evaluation, persistent serving, and browser replay tools. Its game demonstrations combine model judgments with controller code: maze controllers ask local safety questions and track collisions and explored paths, while Snake controllers filter immediate collisions, plan toward visible food, and use the model to break ties between remaining actions. Checkpoints and datasets are distributed through Hugging Face, and the service exposes repeated batched evaluations through a local HTTP endpoint.

What NanoJev is used for

1 use taken from transcripts — each links to the moment in the video.

  • A 600-million-parameter Jev replica that scores candidate answers or moves in one forward pass. The repository includes training tools and browser replays for maze and snake tests.

Videos mentioning NanoJev

1 in the library.