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Abhishek Verma
abskvrm
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Experimental global target bits‑per‑weight quantization of openbmb/MiniCPM5-1B and openbmb/MiniCPM5-2B. Unlike standard llama.cpp quantization that rely on fixed type heuristics (e.g., Q4_K_M), the Target BPW approach automatically optimizes per-tensor precision where it matters the most, and produces high quality models that meet a precise global size target. Key Advantages: - VRAM Maximization: Can generate high quality models sized exactly to fit hardware constraints (e.g., fitting the model into exactly 24GB VRAM). - Data-Driven Precision: Quantization mix is determined by actual weight error sensitivity rather than hardcoded rules, often yielding better PPL/KLD size trade-offs. Full benchmarks (PPL, KLD, ARC, GPQA, MMLU, etc.) and methodology in the model's card. https://huggingface.co/eaddario/MiniCPM5-1B-GGUF https://huggingface.co/eaddario/MiniCPM5-2B-GGUF
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TaichuAI/ZDTaichu5.0-9B
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New activity in
moonshotai/Kimi-K3
about 2 months ago
I was here
🤗
10
13
#14 opened about 2 months ago by
TestregX
New activity in
AngelSlim/Hy-MT1.5-1.8B-1.25bit-GGUF
4 months ago
Can you please make the demo app better?
2
#1 opened 4 months ago by
abskvrm
New activity in
ai21labs/AI21-Jamba-Reasoning-3B-GGUF
11 months ago
Bias
#8 opened 11 months ago by
abskvrm
New activity in
IFM/K2-Think
about 1 year ago
How is this different?
1
#4 opened about 1 year ago by
decodingdatascience