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Groupement ADAS : Advanced Driver Assistance Systems
2 février 2019

DEEP LEARNING FOR AUTOMOTIVE - A HETEROGENEOUS APPROACH

DEEP LEARNING FOR AUTOMOTIVE - A HETEROGENEOUS APPROACH

The Artificial Intelligence is revolutionizing our world. Exponential growth in processing power in silicon and simultaneous reduction in its cost has created a new class of embedded technologies that have built-in Convolutional Neural Networks (CNNs). The CNN architecture is inspired by the neurons of the human brain. This is also known as ‘Deep Learning’, essentially because, layers of ‘Deep Neural Networks’ are trained using data sets from the real world. The ultimate goal here, is to empower the CNN to receive real time inputs from the environment and enable it to provide ‘outputs’ without any ‘errors’. This process is iterative and intense. CNN consumes Petabytes (and more) worth of data in order to achieve acceptable levels of predictive decisions.

Deep Learning can be applied to ‘image’, ‘voice’ and ‘sensory’ datasets to enable seeing and sensing autonomous vehicles. HCL’s white paper discusses the various approaches of using CNN to create solutions for Automotive use cases in image recognition. We hope you find it useful.

Read more : https://www.hcltech.com/white-papers/engineering/deep-learning-automotive-heterogeneous-approach

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Groupement ADAS is a Team of innovative companies with over 20 years experience in the field of technologies used in assistance driver systems (design, implementation and integration of ADAS in vehicles for safety features, driver assistance, partial delegation to the autonomous vehicle).

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Thierry Bapin, Pôle Mov'eo
groupement.adas@pole-moveo.org
Follow us : @groupement_adas

Groupement ADAS is empowered by Mov'eo French Automotive competitiveness cluster

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