Esempio n. 1
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 def test_2_train_faces(self):
     base_model_path = base_models_dir + '/inception_v1'
     trainer = Trainer(base_model_path, test_dir + '/fixtures/scaffolds/faces', num_steps=10000)
     trainer.prepare()
     benchmark_info = trainer.train(test_dir + '/fixtures/tmp/faces_test')
     validate_model(test_dir + '/fixtures/tmp/faces_test')
     self.assertEqual(benchmark_info['test_accuracy'] >= 0.80, True)
Esempio n. 2
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 def test_7_train_coffee_roasts(self):
     scaffold_dir = test_dir + '/fixtures/scaffolds/coffee_roasts'
     output_model_path = test_dir + '/fixtures/tmp/coffee_roasts_test'
     base_model_path = base_models_dir + '/inception_v3'
     trainer = Trainer(base_model_path, scaffold_dir, num_steps=100)
     clear_scaffold_cache(scaffold_dir)
     trainer.prepare()
     benchmark_info = trainer.train(output_model_path)
     self.assertEqual(benchmark_info['test_accuracy'] >= 0.75, True)
     validate_model(output_model_path)
Esempio n. 3
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 def test_5_train_scene_type_resnet_v2(self):
     scaffold_dir = test_dir + '/fixtures/scaffolds/scene_type'
     output_model_path = test_dir + '/fixtures/tmp/scene_type_test_resnetv2'
     base_model_path = base_models_dir + '/inception_resnet_v2'
     trainer = SlimTrainer(base_model_path, scaffold_dir, num_steps=20, batch_size=32)
     clear_scaffold_cache(scaffold_dir)
     trainer.prepare()
     benchmark_info = trainer.train(output_model_path)
     self.assertEqual(benchmark_info['final_loss'] <= 0.80, True)
     validate_model(output_model_path)