Data-Driven Development

For the development and validation of applications based on artificial intelligence (AI), data-driven development is the method of choice in the industry today. It has decisive advantages because it is faster, simpler, and more efficient. AI is often used for it. The automotive industry in particular uses this method to develop automated or autonomous driving. This requires vast amounts of data from real sensors. Preparation and processing require time and resources. This is where we come in – because here, too, dSPACE offers support at every stage.

A data cycle takes place during the data-driven development of autonomous vehicles. This cycle includes data collection on the road, data acquisition with high bandwidth in a data center, analysis of the data for relevant traffic situations, and labeling for AI training and for generating ground truth in data replay tests.
 

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