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Llama 3.1 405B Instruct vs Qwen3 VL 4B Thinking

Llama 3.1 405B Instruct and Qwen3 VL 4B Thinking are closely matched at 14.7 and 12.9 on the LLM Stats Score. Qwen3 VL 4B Thinking is 2.7x cheaper per token.

Meta · Alibaba Cloud / Qwen Team · Updated for 2026

Which is better?

Llama 3.1 405B Instruct and Qwen3 VL 4B Thinking are closely matched on the overall LLM Stats Score at 14.7 and 12.9.

The models split the 4 individual benchmarks reported for both models evenly.

On price, Qwen3 VL 4B Thinking is roughly 2.7x cheaper per token on a blended 3:1 input/output basis, which adds up quickly at production volume.

Qwen3 VL 4B Thinking also accepts a larger context window (262,144 input tokens), making it the stronger choice for long documents and large codebases.

Based on current LLM Stats indexes, shared benchmarks, pricing, and model metadata for 2026.

Choose Llama 3.1 405B Instruct

  • you want predictable pricing at $0.89/M input and $0.89/M output

Choose Qwen3 VL 4B Thinking

  • cost matters — it's about 2.7x cheaper per token
  • you process long inputs — it offers a 262,144 token context window
  • you want the most recent training data — it shipped Sep 2025

At a glance

The differences that matter most.

Core performance indexes
14.7
#233
12.9
#249
13.8
#233
14.0
#231
Cost, coverage & limits
Benchmark wins
2 of 4
2 of 4
Input price
$0.89 / M
$0.10 / M
Output price
$0.89 / M
$1.00 / M
Context window
128,000
262,144

Capability indexes

Additional strengths measured across groups of related public benchmarks

3 shared
Index
Llama 3.1 405B Instruct
Qwen3 VL 4B Thinking
19.3#168
15.6#216
17.7#105
16.5#112
17.7#89
15.9#98
Conservative TrueSkill rating · higher is betterHow scores work

Individual benchmarks

18 reported for Llama 3.1 405B Instruct · 48 for Qwen3 VL 4B Thinking

4 shared

Llama 3.1 405B Instruct outperforms in 2 benchmarks (IFEval, MMLU), while Qwen3 VL 4B Thinking is better at 2 benchmarks (GPQA, MMLU-Pro).

Both models are evenly matched across the benchmarks.

Mon Sep 21 2026 • llm-stats.com

Human preference

Blind head-to-head votes and playground preference scores

Pricing Analysis

Price comparison per million tokens

Qwen3 VL 4B Thinking costs less

For input processing, Llama 3.1 405B Instruct ($0.89/1M tokens) is 8.9x more expensive than Qwen3 VL 4B Thinking ($0.10/1M tokens).

For output processing, Llama 3.1 405B Instruct ($0.89/1M tokens) is 1.1x cheaper than Qwen3 VL 4B Thinking ($1.00/1M tokens).

In conclusion, Llama 3.1 405B Instruct is more expensive than Qwen3 VL 4B Thinking.*

* Using a 3:1 ratio of input to output tokens

Lowest available price from all providers
Mon Sep 21 2026 • llm-stats.com
Meta
Llama 3.1 405B Instruct
Input tokens$0.89
Output tokens$0.89
Best providerLambda
Alibaba Cloud / Qwen Team
Qwen3 VL 4B Thinking
Input tokens$0.10
Output tokens$1.00
Best providerDeepinfra
Notice missing or incorrect data?Start an Issue

Model Size

Parameter count comparison

401.0B diff

Llama 3.1 405B Instruct has 401.0B more parameters than Qwen3 VL 4B Thinking, making it 10025.0% larger.

Meta
Llama 3.1 405B Instruct
405.0Bparameters
Alibaba Cloud / Qwen Team
Qwen3 VL 4B Thinking
4.0Bparameters
405.0B
Llama 3.1 405B Instruct
4.0B
Qwen3 VL 4B Thinking

Context Window

Maximum input and output token capacity

Qwen3 VL 4B Thinking accepts 262,144 input tokens compared to Llama 3.1 405B Instruct's 128,000 tokens. Qwen3 VL 4B Thinking can generate longer responses up to 262,144 tokens, while Llama 3.1 405B Instruct is limited to 128,000 tokens.

Meta
Llama 3.1 405B Instruct
Input128,000 tokens
Output128,000 tokens
Alibaba Cloud / Qwen Team
Qwen3 VL 4B Thinking
Input262,144 tokens
Output262,144 tokens
Mon Sep 21 2026 • llm-stats.com

Input capabilities

Documented input modalities across available providers

Qwen3 VL 4B Thinking supports multimodal inputs, whereas Llama 3.1 405B Instruct does not.

Qwen3 VL 4B Thinking can handle both text and other forms of data like images, making it suitable for multimodal applications.

Llama 3.1 405B Instruct

Text
Images
Audio
Video

Qwen3 VL 4B Thinking

Text
Images
Audio
Video

License

Usage and distribution terms

Llama 3.1 405B Instruct is licensed under Llama 3.1 Community License, while Qwen3 VL 4B Thinking uses Apache 2.0.

License differences may affect how you can use these models in commercial or open-source projects.

Llama 3.1 405B Instruct

Llama 3.1 Community License

Open weights

Qwen3 VL 4B Thinking

Apache 2.0

Open weights

Release Timeline

When each model was launched

Llama 3.1 405B Instruct was released on 2024-07-23, while Qwen3 VL 4B Thinking was released on 2025-09-22.

Qwen3 VL 4B Thinking is 14 months newer than Llama 3.1 405B Instruct.

Llama 3.1 405B Instruct

Jul 23, 2024

2.2 years ago

Qwen3 VL 4B Thinking

Sep 22, 2025

12 months ago

1.2yr newer

Knowledge Cutoff

When training data ends

Neither model specifies a knowledge cutoff date.

Unable to compare the recency of their training data.

No cutoff dates available

Provider Availability

Llama 3.1 405B Instruct is available from Lambda, DeepInfra, Fireworks, Bedrock, Together, Hyperbolic, Google, Replicate. Qwen3 VL 4B Thinking is available from DeepInfra.

Llama 3.1 405B Instruct

lambda logo
Lambda
Input Price:Input: $0.89/1MOutput Price:Output: $0.89/1M
deepinfra logo
Deepinfra
Input Price:Input: $1.79/1MOutput Price:Output: $1.79/1M
fireworks logo
Fireworks
Input Price:Input: $3.00/1MOutput Price:Output: $3.00/1M
bedrock logo
AWS Bedrock
Input Price:Input: $3.00/1MOutput Price:Output: $3.00/1M
together logo
Together
Input Price:Input: $3.50/1MOutput Price:Output: $3.50/1M
hyperbolic logo
Hyperbolic
Input Price:Input: $4.00/1MOutput Price:Output: $4.00/1M
google logo
Google
Input Price:Input: $5.00/1MOutput Price:Output: $16.00/1M
replicate logo
Replicate
Input Price:Input: $9.50/1MOutput Price:Output: $9.50/1M

Qwen3 VL 4B Thinking

deepinfra logo
Deepinfra
Input Price:Input: $0.10/1MOutput Price:Output: $1.00/1M
* Prices shown are per million tokens

Outputs Comparison

Notice missing or incorrect data?Start an Issue discussion

Judge for yourself.

Run your own prompts against Llama 3.1 405B Instruct and Qwen3 VL 4B Thinking side-by-side, then vote on the output you prefer.

Llama 3.1 405B Instruct
✓ Preferred
Qwen3 VL 4B Thinking
Open in Playground

FAQ

Common questions about Llama 3.1 405B Instruct vs Qwen3 VL 4B Thinking.

Which is better, Llama 3.1 405B Instruct or Qwen3 VL 4B Thinking?

Llama 3.1 405B Instruct and Qwen3 VL 4B Thinking are closely matched on the LLM Stats Score at 14.7 and 12.9. Llama 3.1 405B Instruct is made by Meta and Qwen3 VL 4B Thinking is made by Alibaba Cloud / Qwen Team. The best choice depends on your use case — compare their capability indexes, individual benchmarks, pricing, and limits above.

How does Llama 3.1 405B Instruct compare to Qwen3 VL 4B Thinking in benchmarks?

Llama 3.1 405B Instruct scores ARC-C: 96.9%, GSM8k: 96.8%, API-Bank: 92.0%, Multilingual MGSM (CoT): 91.6%, HumanEval: 89.0%. Qwen3 VL 4B Thinking scores DocVQAtest: 94.2%, ScreenSpot: 92.9%, MMBench-V1.1: 86.7%, MMLU-Redux: 86.0%, AI2D: 84.9%.

Is Llama 3.1 405B Instruct cheaper than Qwen3 VL 4B Thinking?

Qwen3 VL 4B Thinking is 8.9x cheaper for input tokens. Llama 3.1 405B Instruct costs $0.89/M input and $0.89/M output via lambda. Qwen3 VL 4B Thinking costs $0.10/M input and $1.00/M output via deepinfra.

What are the context window sizes for Llama 3.1 405B Instruct and Qwen3 VL 4B Thinking?

Llama 3.1 405B Instruct supports 128K tokens and Qwen3 VL 4B Thinking supports 262K tokens. A larger context window lets you process longer documents, conversations, or codebases in a single request.

What are the main differences between Llama 3.1 405B Instruct and Qwen3 VL 4B Thinking?

Key differences include LLM Stats Score (14.7 vs 12.9), context window (128K vs 262K), input pricing ($0.89 vs $0.10/M), multimodal support (no vs yes), licensing (Llama 3.1 Community License vs Apache 2.0). See the full comparison above for benchmark-by-benchmark results.

Who makes Llama 3.1 405B Instruct and Qwen3 VL 4B Thinking?

Llama 3.1 405B Instruct is developed by Meta and Qwen3 VL 4B Thinking is developed by Alibaba Cloud / Qwen Team.