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---
license: apache-2.0
tags:
- image-segmentation
- instance-segmentation
- vision
---
# rtmdet_inst_tiny-fp16-ov
- Model creator: [Geti™](https://github.com/open-edge-platform/geti)
- Original model: [RTMDet Instance Tiny](https://github.com/open-mmlab/mmdetection/tree/main/configs/rtmdet)
## Description
This is a [Geti™](https://github.com/open-edge-platform/geti) version of [RTMDet Instance Tiny](https://github.com/open-mmlab/mmdetection/tree/main/configs/rtmdet) model converted to the [OpenVINO™ IR](https://docs.openvino.ai/2026/documentation/openvino-ir-format.html) (Intermediate Representation) format with weights compressed to FP16.
To fine-tune your model with a custom dataset, you can use Geti™ to annotate data, perform fine-tuning, and export the resulting model.
## Compatibility
The provided OpenVINO™ IR model is compatible with:
- OpenVINO version 2026.1.0 and higher
- Model API 0.4.0 and higher
## Running Model Inference with [Model API](https://github.com/open-edge-platform/model_api)
1. Install required packages:
```sh
pip install openvino-model-api[huggingface]
```
<!-- markdownlint-disable MD029 -->
2. Run model inference:
```python
import cv2
from model_api.models import Model
from model_api.visualizer import Visualizer
# 1. Load model
model = Model.from_pretrained("OpenVINO/rtmdet_inst_tiny-fp16-ov")
# 2. Load image
image = cv2.imread("image.jpg")
# 3. Run inference
result = model(image)
# 4. Visualize and save results
vis = Visualizer().render(image, result)
cv2.imwrite("output.jpg", vis)
```
For more examples and possible optimizations, refer to the [Model API Documentation](https://open-edge-platform.github.io/model_api/latest/).
## Limitations
Check the [original model documentation](https://github.com/open-mmlab/mmdetection/tree/main/configs/rtmdet) for limitations.
## Legal information
The original model is distributed under the [Apache-2.0](https://github.com/open-mmlab/mmdetection/blob/main/LICENSE) license. More details can be found in the [original model repository](https://github.com/open-mmlab/mmdetection/tree/main/configs/rtmdet).
## Disclaimer
Intel is committed to respecting human rights and avoiding causing or contributing to adverse impacts on human rights. See [Intel's Global Human Rights Principles](https://www.intel.com/content/dam/www/central-libraries/us/en/documents/policy-human-rights.pdf). Intel's products and software are intended only to be used in applications that do not cause or contribute to adverse impacts on human rights.