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GPT-5.4 mini vs LFM2.5-230M

Head-to-head comparison across 1benchmark categories. Overall scores shown here use BenchLM's provisional ranking lane.

GPT-5.4 mini

68

VS

LFM2.5-230M

17

1 categoriesvs0 categories

Pick GPT-5.4 mini if you want the stronger benchmark profile. LFM2.5-230M only becomes the better choice if you want the cheaper token bill or you would rather avoid the extra latency and token burn of a reasoning model.

Category Radar

Head-to-Head by Category

Category Breakdown

Knowledge

GPT-5.4 mini
57.4vs20.3

+37.1 difference

Operational Comparison

GPT-5.4 mini

LFM2.5-230M

Price (per 1M tokens)

$0.75 / $4.5

$0 / $0

Speed

201 t/s

N/A

Latency (first answer)

3.85s

N/A

Context Window

400K

32K

Quick Verdict

Pick GPT-5.4 mini if you want the stronger benchmark profile. LFM2.5-230M only becomes the better choice if you want the cheaper token bill or you would rather avoid the extra latency and token burn of a reasoning model.

GPT-5.4 mini is clearly ahead on the provisional aggregate, 68 to 17. The gap is large enough that you do not need to squint at the spreadsheet to see the difference.

GPT-5.4 mini's sharpest advantage is in knowledge, where it averages 57.4 against 20.3.

GPT-5.4 mini is also the more expensive model on tokens at $0.75 input / $4.50 output per 1M tokens, versus $0.00 input / $0.00 output per 1M tokens for LFM2.5-230M. That is roughly Infinityx on output cost alone. GPT-5.4 mini is the reasoning model in the pair, while LFM2.5-230M is not. That usually helps on harder chain-of-thought-heavy tests, but it can also mean more latency and more token spend in real use. GPT-5.4 mini gives you the larger context window at 400K, compared with 32K for LFM2.5-230M.

Benchmark Deep Dive

Frequently Asked Questions (2)

Which is better, GPT-5.4 mini or LFM2.5-230M?

GPT-5.4 mini is ahead on BenchLM's provisional leaderboard, 68 to 17.

Which is better for knowledge tasks, GPT-5.4 mini or LFM2.5-230M?

GPT-5.4 mini has the edge for knowledge tasks in this comparison, averaging 57.4 versus 20.3. LFM2.5-230M stays close enough that the answer can still flip depending on your workload.

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Last updated: June 29, 2026

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