No, when the one-shot command is used, that is the end of training. Showing multiple angles of animal does not enhance its accuracy in identification. Learning from multiple samples are the case for DNN.
Say, for example from the demo, a picture of a Parrot. The parrot was successfully learned using the existing background that was previously used to train tiger, elephant, car etc so by your logic, AKIDA had enough one-shots to subtract background from the object.
But it was still not able to recognize correctly as Parrot when shown a photo. It jumped all over the place from car, background, elephant etc.
As always, I stay within the factual observation, whether liked or not.
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