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Lane Detection Optimized With GPU Coder for Jetson TX2

5 vues (au cours des 30 derniers jours)
Vasyl Varvolik
Vasyl Varvolik le 30 Nov 2017
Hallo! In the project, we use camera of the type DFK23UP1300 and the Jetson TX2 for image processing. I want to make a self drive mini car. I think that I can use this simple:
https://de.mathworks.com/help/gpucoder/examples/lane-detection-optimized-with-gpu-coder.html?searchHighlight=GPU%20coder&s_tid=doc_srchtitle
I checked it works on Jetson TX2, but I don't know how to pretraine AlexNET to my road.
I have to use these recommendations: https://www.mathworks.com/help/nnet/ref/alexnet.html
Can I use Ground-Truth Labeling for pretraine AlexNET?
Maybe you can give advice?
Thanks a lot.

Réponses (1)

Girish Venkataramani
Girish Venkataramani le 30 Nov 2017
Hi Vasyl
We published an blog article that describes the training:
https://devblogs.nvidia.com/parallelforall/deep-learning-automated-driving-matlab/
Let me know if this helps. Girish
  1 commentaire
Vasyl Varvolik
Vasyl Varvolik le 1 Déc 2017
Modifié(e) : Vasyl Varvolik le 2 Déc 2017
I use Ground Truth Labeler on the MATLAB and I don't understand how to get redressionOutputs with a,b,c coefficients
I don't understand why the right and left lines are superimposed

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