The future of robots and perception systems with synthetic data

The future of robots and perception systems with synthetic data Collecting and annotating data is a time-consuming and expensive process, and to ensure models can generalize well, the data must be diverse and balanced. Recent advancements in simulation tools…

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The future of robots and perception systems with synthetic data

Collecting and annotating data is a time-consuming and expensive process, and to ensure models can generalize well, the data must be diverse and balanced. Recent advancements in simulation tools and generative models have led many computer vision AI practitioners to consider synthetic data as a possible alternative to real data. In this story, Ekaterina Sirazitdinova of NVIDIA discusses the benefits and challenges of synthetic data and will share a typical workflow of synthetic data creation. 

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  1. 01The future of robots and perception systems with synthetic data
  2. 02Testing and improving AI models
  3. 03The role of simulation tools and generative models

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