Smaller alternatives
Models that need less memory than Granite 4.2 8B and score about as well or better.
No scored model is both smaller and about as intelligent as Granite 4.2 8B.
IBM · 8.8B · Dense
Granite 4.2 8B is a 8.8B model from IBM with a 128K-token context. At Q4_K_M with an 8K context it needs about 6.7 GB; 10 GB leaves room for longer chats.
| Quant | Bits | Memory | Quality | On your hardware |
|---|---|---|---|---|
| Q2_K | 3.16 | — | Noticeably worse | … |
| Q3_K_M | 4 | — | Some loss | … |
| Q4_K_M | 4.89 | — | Good | … |
| Q5_K_M | 5.7 | — | Good | … |
| Q6_K | 6.56 | — | Near original | … |
| Q8_0 | 8.5 | — | Near original | … |
| F16 | 16 | — | Original | … |
At Q4_K_M. The context cache grows with every token the model keeps in mind.
| Context | Context cache | Total |
|---|---|---|
| 4K | 0.6 GB | 6.1 GB |
| 8K | 1.3 GB | 6.7 GB |
| 32K | 5 GB | 10.5 GB |
| 128K | 20 GB | 25.5 GB |
Models that need less memory than Granite 4.2 8B and score about as well or better.
No scored model is both smaller and about as intelligent as Granite 4.2 8B.
Scored models of a similar size, side by side on your device.
Desktop devices with the least memory that give Granite 4.2 8B grade A or S at Q4_K_M.
Yes, if your GPU or Mac has about 6.7 GB free for it at Q4_K_M. Open this page on that computer to see the grade for your exact hardware, then start it with llama.cpp, Ollama or LM Studio.
About 6.7 GB at Q4_K_M with an 8K context and 10.3 GB at Q8_0. Lower quantizations fit smaller cards with some loss in quality; longer contexts add to the total.
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