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LFM2.5 2.6B model competitive with 4x larger models

86 pointsby nateb202208/04/202618 commentsview on HN

Comments

lend000today at 5:32 AM

I can't imagine who is using something like this for agentic coding, but I see exciting opportunities on the horizon when we can have hundreds of reasonably rational and conversational agents working on local machines to simulate emergent behavior (simulating crowds, markets, ecosystems, game NPCs, etc.)

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Gecko4072today at 5:03 AM

These LiquidAI models have never worked well for me in practice.

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lostmsutoday at 7:06 AM

It's not even competitive with 2x sized Qwen 4B.

Why is Qwen3.5 2B not in the table?

0xbadcafebeetoday at 5:44 AM

LFM's training/post-training is famously different than other models. They target reliable operation of tiny models in ways other model families don't (they aren't just scaling a larger model to a smaller size). If you're looking for good performance out of tiny models, LFM has the most advanced design.

Note how they're much smaller than all other models in the comparison yet match or exceed them. This is for 2.6B params, but they have models as small as 230M. Nobody else designs models that small.

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harshshah212003today at 6:18 AM

Will this work in i3/i5 laptops?

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GaggiXtoday at 8:02 AM

The model is cool but I would prefer if people do not editorialize the titles on their HN submissions.

madhu_ghalametoday at 7:14 AM

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