Adds memory headroom for longer context windows and future model growth.
~$6,999 MSRP
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Falcon3 1B Instruct abliterated needs ~11.5 GB VRAM. RTX PRO 6000 Blackwell Server Edition 96GB has 96.0 GB. With Q4_K_M quantization, expect ~14 tok/s.
Operating mode
Interactive favors responsiveness, while light API and scale-out lean harder on serving readiness. The fit stays the same, but the recommendation lens changes.
Current mode
Balanced
Balanced for general local use. Keeps the ranking neutral across personal and serving workflows.
Select quantization to explore
Fit status
Runs well
Decode
14.0 tok/s
TTFT
13829 ms
Safe context
11.5M
Memory
11.5 GB / 96.0 GB
This setup is broadly balanced for this model.
No major red flags
This recommendation has enough memory headroom and acceptable estimated speed for the selected workload.
| Workload | Grade | Fit | Decode | TTFT | Context |
|---|---|---|---|---|---|
| Chat | D | Runs well | 14.0 tok/s | 7543 ms | 6.8M |
| Coding | D | Runs well | 14.0 tok/s | 13829 ms | 11.5M |
| Agentic Coding | D | Runs well | 14.0 tok/s | 20114 ms | 11.5M |
| Reasoning | D | Runs well | 14.0 tok/s | 16343 ms | 11.5M |
| RAG | D | Runs well | 14.0 tok/s | 25143 ms | 11.5M |
How Falcon3 1B Instruct abliterated (1B params) fits at each quantization level on RTX PRO 6000 Blackwell Server Edition 96GB (96.0 GB usable).
| Quant | Bits | VRAM | Quality | Fit |
|---|---|---|---|---|
Q2_K | 2 | 0.4 GB | Low | D39 |
Q3_K_S | 3 | 0.5 GB | Low | D39 |
NVFP4 | 4 |
Copy-paste commands to run Falcon3 1B Instruct abliterated on your machine.
Run
lms load hf-bartowski--falcon3-1b-instruct-abliterated-gguf && lms server startUpgrade options
Adds memory headroom for longer context windows and future model growth.
~$6,999 MSRP
0.6 GB |
| Medium |
| D39 |
Q4_K_M | 4 | 0.6 GB | Medium | D39 |
Q5_K_M | 5 | 0.7 GB | High | D39 |
Q6_K | 6 | 0.8 GB | High | D39 |
Q8_0 | 8 | 1.1 GB | Very High | D39 |
F16Best for your GPU | 16 | 2.1 GB | Maximum | D39 |
On RTX PRO 6000 Blackwell Server Edition 96GB, Falcon3 1B Instruct abliterated can safely use up to 11.5M tokens of context. The model's official context limit is —, but available memory constrains the safe maximum.