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litert-community/yolox-tiny-litert
yolox-tiny-litert is a object detection model from litert-community. Use it when you need objects located in an image. It is set up for litert. The card lists the license as apache-2.0.
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.tflite10.4 MB · 88%
From the Hugging Face model README

Megvii YOLOX-Tiny (COCO, Apache-2.0) re-authored to a GPU-native LiteRT .tflite via the
official litert_torch path (no onnx2tf). FP16, 10.4 MB, input 416×416.
Verified on a Pixel 8a: the whole graph runs on the GPU delegate (full LITERT_CL residency, zero CPU fallback) and the GPU output matches the CPU/PyTorch reference (corr ≥ 0.999).
YOLOX is a pure CNN, but its Focus stem (stride-2 space-to-depth slicing) lowers to
GATHER_ND, which the GPU delegate rejects. Here the Focus + its following 3×3 conv are folded
into a single, numerically-exact 6×6 stride-2 conv, so the graph has zero GATHER/GATHER_ND/
TopK/Cast ops and no >4D tensors. Activations (SiLU) lower to LOGISTIC+MUL.
images [1, 416, 416, 3] NHWC, BGR, 0–255, no normalization (YOLOX letterbox:
uniform-scale to fit, pad bottom/right with gray 114).[1, 3549, 85] raw heads, anchor-major. `85 = 4 box (cx,cy,w,h, grid units) + 1 obj
For anchor i at grid (gx,gy) with stride ∈ {8,16,32}:
cx=(raw_cx+gx)*stride, cy=(raw_cy+gy)*stride, w=exp(raw_w)*stride, h=exp(raw_h)*stride;
score = obj * max_class; then per-class NMS. Divide boxes by the letterbox ratio to map back.
Reference Kotlin + Python decode in the sample below.
Android (Kotlin, CompiledModel GPU)
val model = CompiledModel.create(context.assets, "yolox_tiny.tflite",
CompiledModel.Options(Accelerator.GPU), null)
val inputs = model.createInputBuffers()
val outputs = model.createOutputBuffers()
inputs[0].writeFloat(nhwc) // [1,416,416,3] BGR 0-255, letterbox pad 114
model.run(inputs, outputs)
val raw = outputs[0].readFloat() // [1,3549,85] -> decode + NMS on host (see Python)
Python (desktop verification)
import numpy as np
from PIL import Image
from ai_edge_litert.interpreter import Interpreter
SIZE = 416
img = Image.open("photo.jpg").convert("RGB")
r = min(SIZE / img.width, SIZE / img.height)
w, h = round(img.width * r), round(img.height * r)
canvas = np.full((SIZE, SIZE, 3), 114, np.float32) # letterbox, gray 114
canvas[:h, :w] = np.asarray(img.resize((w, h)), np.float32)
x = np.ascontiguousarray(canvas[..., ::-1])[None] # RGB -> BGR, 0-255, NHWC
it = Interpreter(model_path="yolox_tiny.tflite"); it.allocate_tensors()
it.set_tensor(it.get_input_details()[0]["index"], x); it.invoke()
out = it.get_tensor(it.get_output_details()[0]["index"])[0] # [3549,85]
grids, strides = [], [] # anchors = grid cells, s 8/16/32
for s in (8, 16, 32):
n = SIZE // s
gy, gx = np.mgrid[:n, :n]
grids.append(np.stack([gx, gy], -1).reshape(-1, 2)); strides.append(np.full((n * n, 1), s))
g = np.concatenate(grids).astype(np.float32); sv = np.concatenate(strides).astype(np.float32)
xy = (out[:, :2] + g) * sv; wh = np.exp(out[:, 2:4]) * sv # boxes in 416-space
score = out[:, 4:5] * out[:, 5:] # obj x class (already sigmoid)
cls, conf = score.argmax(1), score.max(1)
for i in np.where(conf > 0.35)[0]: # + per-class NMS in practice
x1, y1 = (xy[i] - wh[i] / 2) / r; x2, y2 = (xy[i] + wh[i] / 2) / r
print(f"coco class {cls[i]} {conf[i]:.2f} [{x1:.0f},{y1:.0f},{x2:.0f},{y2:.0f}]")
COCO val2017 AP 32.8 (FP32 reference). Real-time on Pixel 8a GPU.
Trained by Megvii on COCO 2017 (train2017), a public academic object-detection dataset (Creative Commons). COCO images contain people as one of the 80 object categories; no names, identities, or other personal attributes are modeled or output — the model emits only class id + box. No additional or private data was used. Weights are the official Megvii release; only the op graph was re-authored for GPU (weights unchanged).
Android sample (CompiledModel GPU, Kotlin decode + NMS) and the litert_torch conversion script:
https://github.com/google-ai-edge/litert-samples (compiled_model_api/object_detection)
Measured on a Pixel 8a (Tensor G3, Android 16) with the standard TFLite benchmark_model tool — 10 warm-up runs then 50 timed runs, reported as the tool's mean.
| Runtime | Backend | Graph on GPU | Latency |
|---|---|---|---|
TFLite benchmark_model (TfLiteGpuDelegateV2) | GPU (OpenCL) | 362 / 362 | 24.2 ms |
TFLite benchmark_model | CPU (XNNPACK, 4 threads) | — | 72.9 ms |
Any on-device figure recorded when this model shipped came from a different runtime. It was taken through LiteRT's own CompiledModel accelerator (logcat reports it as LITERT_CL), which is the path the Kotlin sample app and the LiteRT API use, and it appears elsewhere on this card. The rows above are the classic TFLite OpenCL delegate, measured with a tool anyone can download and re-run. The two are not comparable, so read the rows above as a reproducible floor rather than as this model's speed on LiteRT.
The NPU is 3.45x faster than the GPU (1.46 ms against 5.04 ms) and loads 8.95x faster (104 ms against 931 ms).
| backend | compiled | inference (median / min) | load |
|---|---|---|---|
| NPU (Hexagon v81) | on-device JIT | 1.46 ms / 1.38 ms | 104 ms |
| GPU (Adreno) | — | 5.04 ms / 4.10 ms | 931 ms |
Measured on a Samsung Galaxy S26 (Snapdragon 8 Elite Gen 5 / SM8850, Hexagon v81, Android 16) with LiteRT CompiledModel 2.2.0, one accelerator per process, 5 warm-up runs then N=50 timed runs, median reported. Every run held thermal status NONE throughout. Headroom 0.80–0.80, where 1.0 is the throttling threshold.
The NPU rows ran the published file unchanged. LiteRT compiled it for the Hexagon on the device at first load. That first compile took 655 ms here. The load column above is the cached load every later run pays. Recipe and the runtime libraries it needs: NPU guide.
GPU wiring: GPU guide.
Measured on a Raspberry Pi 5 Model B Rev 1.1 (8 GB, Raspberry Pi OS 64-bit) with the LiteRT benchmark_model tool from litert-cli-nightly 0.2.0.dev20260805: CPU inference (XNNPACK, 4 threads), 3 invocations per file of 10 warm-up plus 50 timed runs (the tool caps a phase at 150 s, so very slow graphs run fewer — the Runs column is the actual timed total). The latency is the median across invocations; the spread is the min–max over all timed runs. No thermal throttling occurred during these runs (vcgencmd get_throttled stayed 0x0).
| File | Inference (median) | Spread (min–max) | Runs | Peak memory |
|---|---|---|---|---|
yolox_tiny.tflite | 72.4 ms | 72.0–102.5 ms | 150 | 138 MB |