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Qwen3-14B-Claude-4.5-Opus-High-Reasoning-Distill

TeichAI/Qwen3-14B-Claude-4.5-Opus-High-Reasoning-Distill

Qwen3-14B-Claude-4.5-Opus-High-Reasoning-Distill at Q4_K_M is exactly 9,001,754,240 bytes (8.38 GiB / 9.00 GB) — an effective 4.876 bits per weight, not the nominal 4. Its KV cache at 32K is 5.00 GiB.

From the file· summed from 1 file(s)From the file· KV per layer
Parameters
14.8B
Architecture
qwen3
40 layers
Context
40,960
native (config.json)
License
apache-2.0

Shipped quantizations

exact bytes, summed from published files
QuantSizeExact bytesEffective bpwTensorsPublisher
Q3_K_S6.20 GiB6,657,106,5603.606TeichAI
Q3_K_M6.82 GiB7,321,313,9203.966TeichAI
IQ4_NL8.01 GiB8,597,069,4404.657TeichAI
Q4_K_M8.38 GiB9,001,754,2404.876TeichAI
F1627.51 GiB29,543,424,00016.004TeichAI
BF1627.51 GiB29,543,424,64016.004TeichAI
Q8_02 shards29.24 GiB31,397,069,44017.008TeichAI

KV cache by context

computed per layer
ContextKV cache (f16)Flat formulaOverstated byFull / windowed / recurrent
4,0960.63 GiB0.63 GiB40 / 0 / 0
8,1921.25 GiB1.25 GiB40 / 0 / 0
16,3842.50 GiB2.50 GiB40 / 0 / 0
32,7685.00 GiB5.00 GiB40 / 0 / 0
65,53610.00 GiB10.00 GiB40 / 0 / 0
131,07220.00 GiB20.00 GiB40 / 0 / 0

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 7.74 GiB. The real file is 8.38 GiB, because a quantization is a mixture and some tensors are always kept at higher precision.

Architecture

from config.json
Layers
40
Attention heads
40
KV heads
8
Head dim
128
Hidden size
5120
Vocab
151,936
Sliding window
none
SWA period
MLA
no
Experts
Experts per token
use_sliding_window
false

Questions people ask

How much VRAM does Qwen3-14B-Claude-4.5-Opus-High-Reasoning-Distill need?
Q4_K_M is exactly 9,001,754,240 bytes (8.38 GiB) in weights. Add the KV cache, which depends on your context length, plus roughly half a gigabyte of runtime overhead.
How large is Qwen3-14B-Claude-4.5-Opus-High-Reasoning-Distill's KV cache?
5.00 GiB at 32K context with an f16 cache, computed per layer. Quantizing the cache to q8_0 roughly halves it, which is often the difference between a context length fitting and not.
Which quantization of Qwen3-14B-Claude-4.5-Opus-High-Reasoning-Distill 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.