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| File | Quant | Size (MB) | Recall @ IoU 0.5 | Recall @ IoU 0.95 | Mean |Δscore| | Latency (median ms, T=8) |
|---|---|---|---|---|---|---|
rfdetr-nano-f32.gguf | F32 | 112.7 | 1.0000 | 1.0000 | 0.0012 | 55.8 |
rfdetr-nano-f16.gguf ← recommended | F16 | 60.5 | 1.0000 | 1.0000 | 0.0007 | 49.6 |
rfdetr-nano-q8_0.gguf | Q8_0 | 36.0 | 1.0000 | 1.0000 | 0.0053 | 59.3 |
rfdetr-nano-q4_K.gguf | Q4_K | 29.7 | 0.9495 | 0.8593 | 0.0311 | 60.6 |
rfdetr 1.9.0) on 7 images (000000000139.jpg, 000000000632.jpg, 000000039769.jpg, 000000087038.jpg, 000000252219.jpg, 000000397133.jpg, bus.jpg) at threshold 0.5. Latency is measured separately with rfdetr-cli bench (8 iters + 3 warmup) at T=8 threads on a single Intel Core i7-12800HX, on tests/fixtures/ci/test_image.jpg.ne[0] % 256 != 0 (the decoder's 128-dim MLP halves, 60 tensors) silently fall back to Q8_0 per ggml's quantizer logic — net compression is still ~3.8× over F32. Use only when the size budget is tight; expect a measurable Recall@0.95 drop relative to F16/Q8_0 (see file table above).rfdetr.preprocess.resize_mode = "bilinear_no_antialias", matching RF-DETR 1.9's antialias-free float bilinear resize (align_corners=false, half-pixel coordinates, no intermediate uint8 rounding). rf-detr.cpp treats this key as optional: GGUFs that predate this metadata (no resize_mode key) keep using the legacy stb-based resize path, so older files continue to produce their original outputs unchanged. An unrecognized resize_mode value is rejected rather than guessed.1# 1. Clone + build rfdetr.cpp
2git clone https://github.com/adithyab94/rf-detr.cpp
3cd rf-detr.cpp
4cmake -B build -DRFDETR_BUILD_CLI=ON && cmake --build build -j
5
6# 2. Download a quant (F16 recommended)
7hf download adithya-balaji/rfdetr-cpp-nano rfdetr-nano-f16.gguf --local-dir models/
8
9# 3. Run detection
10build/bin/rfdetr-cli detect \
11 --model models/rfdetr-nano-f16.gguf \
12 --input my_image.jpg \
13 --threshold 0.5 --threads 8 \
14 --output detections.jsonrfdetr 1.9.0) on 7 images (000000000139.jpg, 000000000632.jpg, 000000039769.jpg, 000000087038.jpg, 000000252219.jpg, 000000397133.jpg, bus.jpg) at threshold 0.5. Each detection match uses greedy Hungarian-style assignment by IoU (≥ 0.5 lenient, ≥ 0.95 strict) with class equality required.benchmarks/results/accuracy_sweep.json for the full sweep across the (variant × quant) cells.rfdetr==1.9.0fbef9387bed3rfdetr-nano weights (downloaded by the rfdetr package on first use)SHA256SUMS in this repo.179a744d083eb6aa611de1e258b12696e3f85a2c530c2b348a4fc4115c016df2 rfdetr-nano-f32.gguf
aa1c065e0069e552b715deb651caa5c76300eec4a87c76f1ef598413a0915ef8 rfdetr-nano-f16.gguf
6cf9cc1684ee6f42a6a044a5e3428b5269904bccd28942f99badd9248221c695 rfdetr-nano-q8_0.gguf
b7fc9e4a455e0623a1f0008c1ba9841a0cbc5eb07fb2f8125830e59c3694728c rfdetr-nano-q4_K.gguf