Scene conversion method and system combining instance segmentation and cyclic generative adversarial network
A scene conversion and network technology, applied in the field of image recognition, can solve the problems of only day or night data, high-quality data is not easy to provide, etc., to achieve the effect of improving the overall effect, enriching the data set, and stabilizing the overall effect
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[0033] This embodiment discloses a scene conversion method combining instance segmentation and cyclic generation of confrontational networks, an automatic image instance segmentation method based on MaskR-CNN, and a scene conversion method of regional cyclic generation of confrontational networks based on time and space attribute requirements.
[0034] Mask R-CNN can be regarded as a general instance segmentation framework. It is extended with Faster R-CNN as a prototype. For each Proposal Box of Faster R-CNN, a fully convolutional network is used for semantic segmentation; and the introduction RoI Align replaces RoIPooling in Faster RCNN, because RoI Pooling is not aligned pixel by pixel, which has a great impact on the accuracy of the segmentation mask.
[0035] See attached figure 1 As shown, in the specific implementation example, the scene conversion method combined with instance segmentation and recurrent generation confrontation network includes: based on the Mask R-CNN...
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