Comments (4)
Hi @NicoJuicy. We are not currently supporting TF Lite, but this can definitely be an interesting feature to include in the future! In the coming days we will draw up a roadmap for the planned releases of nebullvm and we can think about adding support for TFLite as well.
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@morgoth95 thank you for this wonderful repo!
Supporting edge devices and deployment (TF-lite / CoreML) should be given top priority since we are really looking for speed and reduced computational cost when working with edge devices (as opposed to cloud training, which is important, but less so).
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Hi, thanks for the response.
I do want to admit that I'm working with tensorflow lite micro, which really means very low powered devices.
But it also seems the best match for this use-case, just a guess
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Hi @NicoJuicy. We are not currently supporting TF Lite, but this can definitely be an interesting feature to include in the future! In the coming days we will draw up a roadmap for the planned releases of nebullvm and we can think about adding support for TFLite as well.
Hello @morgoth95 , I can see TOT commit for TFLite backend. Are TFLite models supported now? if yes, can we please reflect updates in docs as well?
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Related Issues (20)
- [chatllama]Do I need to split the llama model manully? HOT 2
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- module not found:chatllama.rlhf.dataset HOT 1
- Support for torch 2.0 HOT 1
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- [chatllama]How models enable inference HOT 1
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- Forward Forward Algorithm Questions HOT 2
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