CenterNet object detection model ctdet_coco_dlav0_512
originally trained with PyTorch*.
CenterNet models an object as a single point - the center point of its bounding box
and uses keypoint estimation to find center points and regresses to object size.
For details see paper, repository.
Metric | Value |
---|---|
Type | Detection |
GFlops | 62.211 |
MParams | 17.911 |
Source framework | PyTorch* |
Metric | Original model | Converted model |
---|---|---|
mAP | 44.2% | 44.28% |
Image, name: input.1
, shape: 1, 3, 512, 512
, format: B, C, H, W
, where:
B
- batch sizeC
- number of channelsH
- image heightW
- image width
Expected color order: BGR
.
Mean values: [104.04, 113.985, 119.85], scale values: [73.695, 69.87, 70.89].
Image, name: input.1
, shape: 1, 3, 512, 512
, format: B, C, H, W
, where:
B
- batch sizeC
- number of channelsH
- image heightW
- image width
Expected color order: BGR
.
- Object center points heatmap, name:
center_heatmap
. Contains predicted objects center point, for each of the 80 categories, according to Common Objects in Context (COCO) dataset version with 80 categories of objects, without background label, mapping to class names provided in<omz_dir>/data/dataset_classes/coco_80cl.txt
file. - Object size output, name:
width_height
. Contains predicted width and height for each object. - Regression output, name:
regression
. Contains offsets for each prediction.
You can download models and if necessary convert them into OpenVINO™ IR format using the Model Downloader and other automation tools as shown in the examples below.
An example of using the Model Downloader:
omz_downloader --name <model_name>
An example of using the Model Converter:
omz_converter --name <model_name>
The model can be used in the following demos provided by the Open Model Zoo to show its capabilities:
The original model is distributed under the following license
MIT License
Copyright (c) 2019 Xingyi Zhou
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