Raises estimated decode speed by about 198%.
~$4,999 MSRP
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VOOZH | about |
Yi 1.5 34B needs ~32.2 GB VRAM. MacBook Pro M4 Pro 64GB has 46.1 GB. With Q4_K_M quantization, expect ~20 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
19.8 tok/s
TTFT
9774 ms
Safe context
4K
Memory
32.2 GB / 46.1 GB
This setup is broadly balanced for this model.
Shared-memory contention still exists
The OS, browser, and inference runtime all compete for the same physical memory pool, so real-world headroom is less forgiving than raw capacity suggests.
| Workload | Grade | Fit | Decode | TTFT | Context |
|---|---|---|---|---|---|
| Chat | B | Runs well | 19.8 tok/s | 5331 ms | 4K |
| Coding | B | Runs well | 19.8 tok/s | 9774 ms | 4K |
| Agentic Coding | B | Runs well | 19.8 tok/s | 14217 ms | 4K |
| Reasoning | B | Runs well | 19.8 tok/s | 11551 ms | 4K |
| RAG | B | Runs well | 19.8 tok/s | 17771 ms | 4K |
How Yi 1.5 34B (34B params) fits at each quantization level on MacBook Pro M4 Pro 64GB (46.1 GB usable).
| Quant | Bits | VRAM | Quality | Fit |
|---|---|---|---|---|
Q2_K | 2 | 13.3 GB | Low | B57 |
Q3_K_S | 3 | 16.7 GB | Low | B58 |
NVFP4 | 4 | 19.0 GB | Medium | B59 |
Q4_K_M | 4 | 20.7 GB | Medium | B60 |
Q5_K_M | 5 | 24.5 GB | High | B61 |
Q6_K | 6 | 27.9 GB | High | B61 |
Q8_0Best for your GPU | 8 | 36.4 GB | Very High | B60 |
F16 | 16 | 69.7 GB | Maximum | F0 |
Copy-paste commands to run Yi 1.5 34B on your machine.
Run
lms load Yi-1.5-34B-Chat && lms server startUpgrade options