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single_image_object_counting.py
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single_image_object_counting.py
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#----------------------------------------------
#--- Author : Ahmet Ozlu
#--- Mail : [email protected]
#--- Date : 27th January 2018
#----------------------------------------------
# Imports
import tensorflow as tf
# Object detection imports
from utils import backbone
from api import object_counting_api
if tf.__version__ < '1.4.0':
raise ImportError('Please upgrade your tensorflow installation to v1.4.* or later!')
input_video = "sample_input_image.jpg"
# By default I use an "SSD with Mobilenet" model here. See the detection model zoo (https://github.com/tensorflow/models/blob/master/research/object_detection/g3doc/detection_model_zoo.md) for a list of other models that can be run out-of-the-box with varying speeds and accuracies.
detection_graph, category_index = backbone.set_model('ssd_mobilenet_v1_coco_2017_11_17')
fps = 30 # change it with your input video fps
width = 626 # change it with your input video width
height = 360 # change it with your input vide height
is_color_recognition_enabled = 0
result = object_counting_api.single_image_object_counting(input_video, detection_graph, category_index, is_color_recognition_enabled, fps, width, height) # targeted objects counting
print (result)