YOLOv11-Segmentation: Optimized for Mobile Deployment

Real-time object segmentation optimized for mobile and edge by Ultralytics

Ultralytics YOLOv11 is a machine learning model that predicts bounding boxes, segmentation masks and classes of objects in an image.

This model is an implementation of YOLOv11-Segmentation found here.

More details on model performance across various devices, can be found here.

Model Details

  • Model Type: Model_use_case.semantic_segmentation
  • Model Stats:
    • Model checkpoint: YOLO11N-Seg
    • Input resolution: 640x640
    • Number of output classes: 80
    • Number of parameters: 2.89M
    • Model size (float): 11.1 MB
    • Model size (w8a16): 11.4 MB
Model Precision Device Chipset Target Runtime Inference Time (ms) Peak Memory Range (MB) Primary Compute Unit Target Model
YOLOv11-Segmentation float QCS8275 (Proxy) Qualcomm® QCS8275 (Proxy) TFLITE 20.984 ms 4 - 66 MB NPU --
YOLOv11-Segmentation float QCS8275 (Proxy) Qualcomm® QCS8275 (Proxy) QNN_DLC 16.17 ms 1 - 114 MB NPU --
YOLOv11-Segmentation float QCS8450 (Proxy) Qualcomm® QCS8450 (Proxy) TFLITE 12.435 ms 4 - 45 MB NPU --
YOLOv11-Segmentation float QCS8550 (Proxy) Qualcomm® QCS8550 (Proxy) TFLITE 8.577 ms 4 - 30 MB NPU --
YOLOv11-Segmentation float QCS8550 (Proxy) Qualcomm® QCS8550 (Proxy) QNN_DLC 4.781 ms 5 - 33 MB NPU --
YOLOv11-Segmentation float QCS9075 (Proxy) Qualcomm® QCS9075 (Proxy) TFLITE 10.54 ms 4 - 65 MB NPU --
YOLOv11-Segmentation float QCS9075 (Proxy) Qualcomm® QCS9075 (Proxy) QNN_DLC 6.419 ms 0 - 113 MB NPU --
YOLOv11-Segmentation float SA7255P ADP Qualcomm® SA7255P TFLITE 20.984 ms 4 - 66 MB NPU --
YOLOv11-Segmentation float SA7255P ADP Qualcomm® SA7255P QNN_DLC 16.17 ms 1 - 114 MB NPU --
YOLOv11-Segmentation float SA8255 (Proxy) Qualcomm® SA8255P (Proxy) TFLITE 8.72 ms 4 - 28 MB NPU --
YOLOv11-Segmentation float SA8255 (Proxy) Qualcomm® SA8255P (Proxy) QNN_DLC 4.742 ms 5 - 25 MB NPU --
YOLOv11-Segmentation float SA8295P ADP Qualcomm® SA8295P TFLITE 13.774 ms 4 - 33 MB NPU --
YOLOv11-Segmentation float SA8650 (Proxy) Qualcomm® SA8650P (Proxy) TFLITE 8.675 ms 4 - 30 MB NPU --
YOLOv11-Segmentation float SA8650 (Proxy) Qualcomm® SA8650P (Proxy) QNN_DLC 4.761 ms 5 - 28 MB NPU --
YOLOv11-Segmentation float SA8775P ADP Qualcomm® SA8775P TFLITE 10.54 ms 4 - 65 MB NPU --
YOLOv11-Segmentation float SA8775P ADP Qualcomm® SA8775P QNN_DLC 6.419 ms 0 - 113 MB NPU --
YOLOv11-Segmentation float Samsung Galaxy S23 Snapdragon® 8 Gen 2 Mobile TFLITE 8.599 ms 4 - 30 MB NPU --
YOLOv11-Segmentation float Samsung Galaxy S23 Snapdragon® 8 Gen 2 Mobile QNN_DLC 4.759 ms 5 - 21 MB NPU --
YOLOv11-Segmentation float Samsung Galaxy S23 Snapdragon® 8 Gen 2 Mobile ONNX 104.627 ms 90 - 104 MB CPU --
YOLOv11-Segmentation float Samsung Galaxy S24 Snapdragon® 8 Gen 3 Mobile TFLITE 6.191 ms 4 - 75 MB NPU --
YOLOv11-Segmentation float Samsung Galaxy S24 Snapdragon® 8 Gen 3 Mobile QNN_DLC 3.467 ms 5 - 195 MB NPU --
YOLOv11-Segmentation float Samsung Galaxy S24 Snapdragon® 8 Gen 3 Mobile ONNX 81.515 ms 101 - 127 MB CPU --
YOLOv11-Segmentation float Snapdragon 8 Elite QRD Snapdragon® 8 Elite Mobile TFLITE 5.867 ms 3 - 64 MB NPU --
YOLOv11-Segmentation float Snapdragon 8 Elite QRD Snapdragon® 8 Elite Mobile QNN_DLC 2.63 ms 5 - 128 MB NPU --
YOLOv11-Segmentation float Snapdragon 8 Elite QRD Snapdragon® 8 Elite Mobile ONNX 89.263 ms 106 - 121 MB CPU --
YOLOv11-Segmentation float Snapdragon X Elite CRD Snapdragon® X Elite QNN_DLC 5.408 ms 5 - 5 MB NPU --
YOLOv11-Segmentation float Snapdragon X Elite CRD Snapdragon® X Elite ONNX 32.052 ms 114 - 114 MB CPU --
YOLOv11-Segmentation w8a16 Samsung Galaxy S23 Snapdragon® 8 Gen 2 Mobile ONNX 152.068 ms 151 - 156 MB CPU --
YOLOv11-Segmentation w8a16 Samsung Galaxy S24 Snapdragon® 8 Gen 3 Mobile ONNX 113.532 ms 164 - 189 MB CPU --
YOLOv11-Segmentation w8a16 Snapdragon 8 Elite QRD Snapdragon® 8 Elite Mobile ONNX 111.728 ms 149 - 167 MB CPU --
YOLOv11-Segmentation w8a16 Snapdragon X Elite CRD Snapdragon® X Elite ONNX 570.501 ms 258 - 258 MB CPU --

License

  • The license for the original implementation of YOLOv11-Segmentation can be found here.
  • The license for the compiled assets for on-device deployment can be found here

References

Community

Usage and Limitations

Model may not be used for or in connection with any of the following applications:

  • Accessing essential private and public services and benefits;
  • Administration of justice and democratic processes;
  • Assessing or recognizing the emotional state of a person;
  • Biometric and biometrics-based systems, including categorization of persons based on sensitive characteristics;
  • Education and vocational training;
  • Employment and workers management;
  • Exploitation of the vulnerabilities of persons resulting in harmful behavior;
  • General purpose social scoring;
  • Law enforcement;
  • Management and operation of critical infrastructure;
  • Migration, asylum and border control management;
  • Predictive policing;
  • Real-time remote biometric identification in public spaces;
  • Recommender systems of social media platforms;
  • Scraping of facial images (from the internet or otherwise); and/or
  • Subliminal manipulation
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