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litert-community/MobileNet-v3-small
MobileNet-v3-small is a image classification model from litert-community. Use it when you need a label for an image. It is set up for litert.
MobileNet V3 model pre-trained on ImageNet-1k at resolution 224x224. Originally introduced by Andrew Howard, Mark Sandler, Grace Chu, Liang-Chieh Chen, Bo Chen, Mingxing Tan, Weijun Wang, Yukun Zhu, Ruoming Pang, Vija…
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.tflite20 MB · 100%
From the Hugging Face model README
MobileNet V3 model pre-trained on ImageNet-1k at resolution 224x224. Originally introduced by Andrew Howard, Mark Sandler, Grace Chu, Liang-Chieh Chen, Bo Chen, Mingxing Tan, Weijun Wang, Yukun Zhu, Ruoming Pang, Vijay Vasudevan, Quoc V. Le, and Hartwig Adam in the paper, Searching for MobileNetV3.
The model was converted from a checkpoint from PyTorch Vision.
The original model has:
acc@1 (on ImageNet-1K): 67.668%
acc@5 (on ImageNet-1K): 87.402%
num_params: 2,542,856
The license information of the original model was missing.
Static INT8 quantization is not available because naive post-training quantization causes severe classification accuracy degradation.
Naive post-training quantization of this MobileNetV3 Small checkpoint can lose important activation detail: channels with very different ranges share one INT8 activation scale, and the first depthwise convolution amplifies the resulting rounding error. Successful conversion or NPU compilation does not establish acceptable accuracy.
We are working on a validated solution. In the meantime, please use a larger model, such as MobileNetV3 Large, when you need static INT8 inference. No validated static INT8 MobileNetV3 Small checkpoint is currently available in this repository. The FP32 and weight-only INT8 variants listed below are available.
| File | Description |
|---|---|
mobilenet_v3_small.tflite | Full precision LiteRT/TFLite model. |
mobilenet_v3_small_weight_only_wi8_afp32.tflite | Weight-only INT8 model with FP32 activations. |
mobilenet_v3_small_Google_Tensor_G5_apply_plugin.tflite | AOT-compiled artifact for the Google Tensor G5 target. |
mobilenet_v3_small_weight_only_wi8_afp32.tflite is a weight-only int8
quantization of the same weights (about 3.7x smaller than float32).
Weight-only quantization is used instead of dynamic-range quantization
because MobileNetV3's SE and hard-swish layers are sensitive to activation
quantization; in a spot check against the float model the weight-only
file keeps the top-1 predictions on real photos with a minimum logit
correlation of 0.991.
| File | CPU | GPU | NPU |
|---|---|---|---|
mobilenet_v3_small.tflite | Supported | Supported | N/A |
For GPU execution, explicitly select FP32 precision.
The model files were converted from pretrained weights from PyTorch Vision. The models may have their own licenses or terms and conditions derived from PyTorch Vision and the dataset used for training. It is your responsibility to determine whether you have permission to use the models for your use case.
1. Install Dependencies Ensure your Python environment is set up with the required libraries. Run the following command in your terminal:
pip install numpy Pillow huggingface_hub ai-edge-litert
2. Prepare Your Image The script expects an image file to analyze. Make sure you have an image (e.g., cat.jpg or car.png) saved in the same working directory as your script.
3. Save the Script Create a new file named classify.py, paste the script below into it, and save the file:
#!/usr/bin/env python3
import argparse, json
import numpy as np
from PIL import Image
from huggingface_hub import hf_hub_download
from ai_edge_litert.compiled_model import CompiledModel
def preprocess(img: Image.Image) -> np.ndarray:
img = img.convert("RGB")
w, h = img.size
s = 256
if w < h:
img = img.resize((s, int(h * s / w)), Image.BILINEAR)
else:
img = img.resize((int(w * s / h), s), Image.BILINEAR)
left = int(round((img.size[0] - 224) / 2.0))
top = int(round((img.size[1] - 224) / 2.0))
img = img.crop((left, top, left + 224, top + 224))
x = np.asarray(img, dtype=np.float32) / 255.0
x = (x - np.array([0.485, 0.456, 0.406], dtype=np.float32)) / np.array(
[0.229, 0.224, 0.225], dtype=np.float32
)
return np.ascontiguousarray(x.transpose(2, 0, 1)[None])
def main():
ap = argparse.ArgumentParser()
ap.add_argument("--image", required=True)
args = ap.parse_args()
model_path = hf_hub_download("litert-community/MobileNet-v3-small", "mobilenet_v3_small.tflite")
labels_path = hf_hub_download(
"huggingface/label-files", "imagenet-1k-id2label.json", repo_type="dataset"
)
with open(labels_path, "r", encoding="utf-8") as f:
id2label = {int(k): v for k, v in json.load(f).items()}
img = Image.open(args.image)
x = preprocess(img)
model = CompiledModel.from_file(model_path)
inp = model.create_input_buffers(0)
out = model.create_output_buffers(0)
inp[0].write(x)
model.run_by_index(0, inp, out)
req = model.get_output_buffer_requirements(0, 0)
y = out[0].read(req["buffer_size"] // np.dtype(np.float32).itemsize, np.float32)
pred = int(np.argmax(y))
label = id2label.get(pred, f"class_{pred}")
print(f"Top-1 class index: {pred}")
print(f"Top-1 label: {label}")
if __name__ == "__main__":
main()
4. Execute the Python Script Run the below command:
python classify.py --image cat.jpg
@article{DBLP:journals/corr/abs-1905-02244,
author = {Andrew Howard and
Mark Sandler and
Grace Chu and
Liang{-}Chieh Chen and
Bo Chen and
Mingxing Tan and
Weijun Wang and
Yukun Zhu and
Ruoming Pang and
Vijay Vasudevan and
Quoc V. Le and
Hartwig Adam},
title = {Searching for MobileNetV3},
journal = {CoRR},
volume = {abs/1905.02244},
year = {2019},
url = {http://arxiv.org/abs/1905.02244},
eprinttype = {arXiv},
eprint = {1905.02244},
timestamp = {Thu, 27 May 2021 16:20:51 +0200},
biburl = {https://dblp.org/rec/journals/corr/abs-1905-02244.bib},
bibsource = {dblp computer science bibliography, https://dblp.org}
}