L LLM Cloud Hub
Side-by-side comparison

GLM 4.6 vs Llama 3.1 Euryale 70B v2.2

Z.ai

GLM 4.6

πŸ”§ Tools {} JSON
Input / 1M
$0.4300
Output / 1M
$1.7400
View GLM 4.6 β†’
Sao10K

Llama 3.1 Euryale 70B v2.2

πŸ”§ Tools {} JSON
Input / 1M
$0.8500
Output / 1M
$0.8500
View Llama 3.1 Euryale 70B v2.2 β†’
GLM 4.6Llama 3.1 Euryale 70B v2.2
Provider Z.ai Sao10K
Context window Maximum tokens (input + output) the model can process in a single request. Glossary β†’ 202,752 131,072
Capabilities Optional capabilities the model advertises: vision (images), tools (function calling), json_mode (structured output). tools, json_mode tools, json_mode
Input $ / 1M tokens Cost for tokens you send (prompt + context). Cheaper side highlighted. Glossary β†’ 0.4300 0.8500
Output $ / 1M tokens Cost for tokens the model generates. Output is normally 3–5Γ— pricier than input. Glossary β†’ 1.7400 0.8500

Frequently asked questions

Which is cheaper, GLM 4.6 or Llama 3.1 Euryale 70B v2.2?

Llama 3.1 Euryale 70B v2.2 is cheaper than GLM 4.6 on a 50/50 input/output blend by about $0.235 per 1M tokens. Exact savings depend on your input-vs-output ratio β€” use the cost calculator on this page for a workload-specific estimate.

Which has a larger context window, GLM 4.6 or Llama 3.1 Euryale 70B v2.2?

GLM 4.6 has the larger context window at 203k tokens versus 131k tokens for Llama 3.1 Euryale 70B v2.2. That means GLM 4.6 can ingest about 1.5x as much text per request.

What is the difference between GLM 4.6 and Llama 3.1 Euryale 70B v2.2?

GLM 4.6 comes from Z.ai; Llama 3.1 Euryale 70B v2.2 comes from Sao10K. They differ in pricing, context window, and supported capabilities β€” see the side-by-side table on this page for the exact figures, refreshed nightly.

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