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import gradio as gr | |
from icevision.all import * | |
import PIL | |
class_map = ClassMap(['raccoon']) | |
model = models.torchvision.faster_rcnn.model(backbone=models.torchvision.faster_rcnn.backbones.resnet50_fpn(pretrained=True), num_classes=len(class_map)) | |
state_dict = torch.load('modelResnet50raccoon.pth') | |
model.load_state_dict(state_dict) | |
size = 384 | |
infer_tfms = tfms.A.Adapter([*tfms.A.resize_and_pad(size),tfms.A.Normalize()]) | |
def predict(img): | |
# img = PIL.Image.open(img) | |
np.int = int | |
img = PIL.Image.fromarray(img) | |
pred_dict = models.torchvision.faster_rcnn.end2end_detect(img, infer_tfms, model.to("cpu"), class_map=class_map, detection_threshold=0.5) | |
return pred_dict['img'] | |
# Creamos la interfaz y la lanzamos. | |
gr.Interface(fn=predict, inputs=["image"], outputs=["image"], examples=['raccoon-106.jpg','raccoon-129.jpg']).launch(share=True,debug=True) |