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| File | Quantization | Size | SHA-256 |
|---|---|---|---|
fluid-2-qwen3.5-2b-beta-Q4_K_M.gguf | Q4_K_M | 1,274,396,800 bytes | 36ba74f8298d69f7ffe4a50e554b41d0661bc1c3ef4dd2d3f521260fe4374bae |
fluid-2-qwen3.5-2b-beta-Q6_K.gguf | Q6_K | 1,556,391,040 bytes | d009e51a8826527d707cefd6a12ad5390ab561e6678c854b472a6f1e051130ea |
fluid-2-qwen3.5-2b-beta-Q8_0.gguf | Q8_0 | 2,012,012,672 bytes | 245c42169cdbfab6b5e879d41d75ef06e3316d891e3957f76d60ab1dc547e52d |
| Metric | Result |
|---|---|
| Scored text rows | 7,016 |
| Exact match | 30.3449% |
| CER | 17.4199% |
| WER | 27.4544% |
| Excluded EOS-only rows | 121 |
| Excluded generation-capped rows | 24 |
<|start_target_text|>; generation stops at <|end_target_text|>.1<|dictation_clean_v1|>
2<|start_prev_text|>{previous context}<|end_prev_text|>
3<|start_post_text|>{following context}<|end_post_text|>
4<|start_asr_text|>{ASR transcript to clean}<|end_asr_text|>
5<|start_target_text|>llama.cpp llama-completion binary. This example selects
Q4_K_M and uses greedy decoding:1PROMPT='<|dictation_clean_v1|>
2<|start_prev_text|><|end_prev_text|>
3<|start_post_text|><|end_post_text|>
4<|start_asr_text|>hello world<|end_asr_text|>
5<|start_target_text|>'
6
7./llama-completion \
8 --hf-repo johnbean393/fluid-2-qwen3.5-2b-beta-GGUF:Q4_K_M \
9 --prompt "$PROMPT" \
10 --predict 256 \
11 --temperature 0 \
12 --ctx-size 8192 \
13 --no-conversation \
14 --no-display-prompt:Q6_K or :Q8_0 for another quant. For a local file, replace
--hf-repo ... with --model ./fluid-2-qwen3.5-2b-beta-Q6_K.gguf.
Add --special while debugging to display the terminal control token.llama.cpp
b10411 release. No CUDA/source build was performed. Every quant
passed GGUF metadata validation and a load/generation smoke test with that
pre-built binary. Exact hashes are recorded in conversion_manifest.json.--no-mtp. This omits only the absent optional
speculative draft layer; it does not remove trained decoder weights and does
not change ordinary next-token generation. The files correctly declare
24 blocks.