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DeepSeek-V2-Lite-Instruct-Abliterated-15-1.2

kxdyh/DeepSeek-V2-Lite-Instruct-Abliterated-15-1.2

DeepSeek-V2-Lite-Instruct-Abliterated-15-1.2 at Q4_K_M is exactly 10,367,958,656 bytes (9.66 GiB / 10.37 GB) — an effective 5.281 bits per weight, not the nominal 4.

From the file· summed from 1 file(s)
Parameters
15.7B
Architecture
deepseek2
Context
native (config.json)
License

Shipped quantizations

exact bytes, summed from published files
QuantSizeExact bytesEffective bpwTensorsPublisher
Q2_K6.00 GiB6,437,103,2323.279mradermacher
Q3_K_S6.98 GiB7,491,426,9443.816mradermacher
Q3_K_M7.57 GiB8,130,370,1764.141mradermacher
Q3_K_L7.88 GiB8,463,161,9844.311mradermacher
IQ4_XS8.05 GiB8,647,691,9044.405mradermacher
Q4_K_S8.88 GiB9,537,150,5924.858mradermacher
Q4_K_M9.66 GiB10,367,958,6565.281mradermacher
Q5_K_S10.38 GiB11,144,830,5925.677mradermacher
Q5_K_M11.04 GiB11,853,086,3366.037mradermacher
Q6_K13.11 GiB14,073,832,0647.168mradermacher
Q8_015.56 GiB16,702,520,9608.507mradermacher

Compare with

same modality, comparable size

Will it run on your card?

full quant x context sweep

Why other calculators give a different number

A parameters × bits ÷ 8 estimate puts Q4_K_M at roughly 8.23 GiB. The real file is 9.66 GiB, because a quantization is a mixture and some tensors are always kept at higher precision.

Architecture

Architecture unavailable — this repository is gated and no ungated mirror was found. Exact file sizes above are still authoritative; only the KV math needs the config.

Questions people ask

How much VRAM does DeepSeek-V2-Lite-Instruct-Abliterated-15-1.2 need?
Q4_K_M is exactly 10,367,958,656 bytes (9.66 GiB) in weights. Add the KV cache, which depends on your context length, plus roughly half a gigabyte of runtime overhead.
Which quantization of DeepSeek-V2-Lite-Instruct-Abliterated-15-1.2 should I use?
Q4_K_M is the usual default. Pick the largest quantization that fits your card at the context you actually need — the table above gives exact sizes for every one published.