Publication | Open Access
Deep learning for class-generic object detection
17
Citations
7
References
2013
Year
Image ClassificationDeep Neural NetworksImage AnalysisMachine LearningMachine VisionEngineeringPattern RecognitionObject DetectionObject RecognitionObject CategorizationConvolutional Neural NetworkComputer ScienceNeural NetworksDeep LearningComputer VisionImagenet Recognition Challenge
We investigate the use of deep neural networks for the novel task of class generic object detection. We show that neural networks originally designed for image recognition can be trained to detect objects within images, regardless of their class, including objects for which no bounding box labels have been provided. In addition, we show that bounding box labels yield a 1% performance increase on the ImageNet recognition challenge.
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