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An emerging autonomous vehicle startup, aimed to enhance their self-driving car’s scene understanding capabilities. To achieve this, they required precise semantic segmentation annotations on their dataset of 2000 urban and suburban road images. These annotations were essential for training their AI to differentiate between road elements like vehicles, pedestrians, road signs, and traffic signals.
FutureBeeAI stepped in to deliver high-quality semantic segmentation tailored to the complexities of urban environments. By leveraging our skilled annotators and advanced annotation platforms, we ensured precise labeling across diverse road scenarios, lighting conditions, and weather variations.
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