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moinnadeem

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投稿

Beam built a zero-egress storage layer for their GPU cloud

tigrisdata.com
1 ポイント·投稿者 moinnadeem·2 年前·0 コメント

Training Stable Diffusion from Scratch Costs <$160k

mosaicml.com
98 ポイント·投稿者 moinnadeem·3 年前·48 コメント

With MLPerf, Nvidia Wins, Again

forbes.com
1 ポイント·投稿者 moinnadeem·4 年前·0 コメント

[untitled]

1 ポイント·投稿者 moinnadeem·4 年前·0 コメント

Composer: A new PyTorch library to train models 4x faster with better algorithms

github.com
21 ポイント·投稿者 moinnadeem·4 年前·0 コメント

MosaicML Explorer: Train ResNet101 4x faster with algorithmic methods

app.mosaicml.com
24 ポイント·投稿者 moinnadeem·5 年前·0 コメント

Multiplying Matrices Without Multiplying

arxiv.org
235 ポイント·投稿者 moinnadeem·5 年前·122 コメント

コメント

moinnadeem
·3 年前·議論
I would hold skepticism for the moment.

I know the authors from the blog post quite well. Say what you will about the firm, but one of the authors have been investing in machine learning since 2016, and another has a PhD in CS (including a SIGCOMM test of time award!)

I come from a strong ML background (multiple publications, PhD dropout), I would say that the canon is actually quite good.
moinnadeem
·3 年前·議論
I wouldn't go so far. I know the authors quite well, and as someone who has multiple publications in machine learning confeerences (and started a PhD in ML), they know their stuff well.
moinnadeem
·4 年前·議論
Disclosure: I work at MosaicML

Yeah, I strongly agree. While Nvidia is working on better hardware (and they're doing a great job at it!), we believe that better training methods should be a big source of efficiency. We've released a new PyTorch library for efficient training at http://github.com/mosaicml/composer.

Our combinations of methods can train CV models ~4x faster to the same accuracy on CV tasks, and ~2x faster to the same perplexity/GLUE score on NLP tasks!
moinnadeem
·5 年前·議論
Instagram is down for me (located in the midwest). Reports "5xx server error"