What GPU do I need to run IFM/K2-Type-0.9B?

1.1B parameters, published in BF16. View on Hugging Face

1.1B
Parameters
BF16
Native precision
K2HorizonForCausalLM
Architecture
text-generation
Pipeline

K2-Type-0.9B is published by IFM on Hugging Face, with 1,335 downloads and 25 likes to date. It's a K2HorizonForCausalLM model built for text-generation, published natively in BF16.

VRAM required & cheapest live GPU fit

Required VRAM = weight size at each precision, plus a fixed overhead for KV-cache, activations, and fragmentation. Full formula and assumptions: methodology.

PrecisionWeight sizeRequired VRAMCheapest live fitGPUs neededEst. $/hr (full fit)
BF162.0 GB2.4 GBRTX 30701$0.088/hr
FP8 (quantized)1.0 GB1.2 GBRTX 40701$0.121/hr
INT4 (quantized)0.5 GB0.6 GBRTX 30701$0.088/hr

A GPU is only matched to a row if its hardware supports that precision, and the primary recommendation is always a single-GPU fit when one exists.

INT4 requires a quantized checkpoint actually published for this model, check its Hugging Face page before relying on this row.

Cheapest way to run K2-Type-0.9B at its published (BF16) precision: 1× RTX 3070, at $0.088/hr per GPU ($0.088/hr total). Quantizing to FP8 or INT4 (rows above) can cost less, but requires a compatible quantized checkpoint to exist for this model.

K2-Type-0.9B: common questions

How much VRAM does K2-Type-0.9B need?

2.4 GB at BF16, 1.2 GB at FP8 (quantized), 0.6 GB at INT4 (quantized). All of those sit under 6 GB, the smallest capacity this page reasons about, so VRAM is not what limits where this model runs. The 2.0 GB of weights plus inference overhead is the whole requirement.

How many copies of K2-Type-0.9B fit on one RTX 3070?

3, by VRAM alone. That card carries 8.0 GB and one copy needs 2.4 GB at BF16, on a live rate of $0.088/hr for the whole card. Throughput is not modelled here, so 3 copies is not 3 times the requests served.

Weight-to-VRAM math, the fit rules, and how live prices are normalized: full methodology.

More IFM models

Related reading: RTX 3070 pricing and specs, The NVIDIA Inception program, explained, Google Colab alternatives for dedicated GPU access, Free GPU credits for students and researchers, and RunPod volume disk vs. network volume, compared.

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