SteamGauge search encoder

Qwen/Qwen3-Embedding-0.6B as a half-precision ONNX graph, weights unchanged. SteamGauge uses it to search Steam reviews by meaning: the encoder finds the claims closest to a search, and the reranker orders them.

Use

  • model.onnx takes input_ids and attention_mask from tokenizer.json, padded on the right.
  • Returns vector: a normalised 1,024-dimension embedding per text, taken at the last token.
  • Searches are written as Instruct: {instruction}\nQuery: {query}; the passages searched are embedded as they are.
  • Parity with the original model on DirectML: cosine similarity at least 0.99988.

Licence

Apache-2.0, as is Qwen/Qwen3-Embedding-0.6B. The model is Qwen's work.

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