We know that machine learning uses computer vision to understand images. Among all the techniques available, image annotation is the gold standard in this process, and many techniques are known in image annotation. For example, one technique is semantic image segmentation among image annotation techniques.
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In computer vision and image processing, segmentation is dividing up an image into separate parts, also called regions. The process of image segmentation involves assigning labels to each pixel in a snap. Consequently, pixels with similar titles have similar properties. It is easier to analyze an image when it is segmented into parts. With image semantic segmentation, each pixel label in an image is identified by its characteristics and attribute. It allows the comparison of assigned labels with the same attributes and characters.
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Semantic segmentation aims to simplify and transform an image into something more informative that can be easily analyzed. Segmentation in pictures is usually used to identify objects and boundaries (lines, curves, etc.). There are several uses for image segmentation that make a significant impact.
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Image Segmentation for Deep Learning
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Precise Movement of Self-driving Cars
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Instance Segmentation for Deep Learning
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Panoptic Segmentation Datasets for AI
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Semantic Segmentation for Medical Image
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