cogito:8b

llama · 8.0B · Q4_K_M

MacBook Air (Apple M4)

32 GB · macOS 26.3

Tested on March 6, 2026
Top 24% Compare
Global Score
77 /100
Good
Hardware Fit
92/100
Quality
70/100

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Hardware

Machine
MacBook Air
CPU
Apple M4
Cores
10 total (4 perf + 6 eff)
Frequency
2.4 GHz
RAM
32 GB LPDDR5
GPU
Apple M4
OS
macOS 26.3
Arch
arm64
Power Mode
balanced

Performance

Tokens/sec
21.0
Standard deviation
±0.0
First chunk latency
312 ms
Time to first token
312 ms
Load time
0.8 s
Memory usage
10.4 GB (33%)
Total tokens
1016

Score breakdown

Speed
42/50
Time to first token
20/20
Memory
30/30

Quality

Reasoning
14/20
Coding
13/20
Instruction following
13/20
Structured output
15/15
Math
5/15
Multilingual
10/10

Category levels

Reasoning: Adequate Coding: Adequate Instruction Following: Adequate Structured Output: Strong Math: Weak Multilingual: Strong

Metadata

Spec version
0.2.1
Runtime
Ollama 0.17.6
Model format
GGUF
Hardware profile
BALANCED
Result hash
b8336fd7d9e37d20b05a4005f27c3585ae104baeb5f39e2e73b7d63b209bad4a

Interpretation

Hardware fit: 92/100. Overall suitability: GOOD (Global 77/100). Category profile: Reasoning: Adequate, Coding: Adequate, Instruction Following: Adequate, Structured Output: Strong, Math: Weak, Multilingual: Strong.

Bench Environment

Power: AC CPU load: avg 5% (peak 11%)

Run yours now

$ npm install -g metrillm@latest
$ metrillm

Requires Node 20+ and Ollama or LM Studio running

Or run without installing: npx metrillm@latest