0.8M parameters model (16,000 times smaller than Vicuna-13B) training… #1
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A simple 4 layer generative Transformer with 16 attention heads.
One tweak of LLaMA is the embedding matrix, for which computed a pseudo-inverse used as unembedding that's being backpropagated.
After 50,000 iterations it generates wild tiny stories.
This PR adds an example of inference parameters and training (with example of run over 50,000 iterations).