modelparams.dev
Bedrock 5 params

Bedrock Mistral Large 2402 API parameters

These are the API parameters modelparams.dev tracks for Bedrock Mistral Large 2402 — the settings you send in a request. Each row gives the type, default, valid range or values, and the conditions that gate it. It's the same data the JSON API serves.

After the parameter count instead — how many weights Mistral Large 2402 has? That's a different number, and we don't track it. Here's the difference.

Length 2 params
Parameter Type Default Description Condition
Max tokens
inferenceConfig.maxTokens
integer (1…+∞) Maximum number of output tokens the model may generate.
Stop sequences
inferenceConfig.stopSequences
string A list of strings where the model stops generating further tokens.
Sampling 3 params
Parameter Type Default Description Condition
Temperature
inferenceConfig.temperature
number (0…1 step 0.1) Controls randomness. Lower values make outputs more focused; higher values make them more varied. Bedrock rejects values above 1 for this model.
Top P
inferenceConfig.topP
number (0…1 step 0.01) Controls nucleus sampling by limiting generation to tokens whose cumulative probability reaches this value.
Top K
additionalModelRequestFields.top_k
integer (0…+∞) Limits token sampling to the top K most likely next tokens. Converse carries it through additionalModelRequestFields; it is not part of inferenceConfig.

Bedrock Mistral Large 2402 API parameters in brief

Bedrock Mistral Large 2402 documents 5 API parameters, grouped by what they control:

Frequently asked questions

Which API parameters does Bedrock Mistral Large 2402 support?
Bedrock Mistral Large 2402 accepts 5 API parameters in the request body: inferenceConfig.maxTokens, inferenceConfig.temperature, inferenceConfig.topP, inferenceConfig.stopSequences, additionalModelRequestFields.top_k.

Resources

All Bedrock models Glossary Full catalog

Mistral Large 2402 — JSON

The full model definition as served by the API. Copy it or open the endpoint directly.

{
  "$schema": "https://modelparams.dev/api/v1/schema.json",
  "provider": "bedrock",
  "authType": "api_key",
  "model": "mistral-large-2402",
  "wireId": "mistral.mistral-large-2402-v1:0",
  "params": [
    {
      "path": "inferenceConfig.maxTokens",
      "label": "Max tokens",
      "description": "Maximum number of output tokens the model may generate.",
      "group": "generation_length",
      "type": "integer",
      "range": {
        "min": 1
      }
    },
    {
      "path": "inferenceConfig.temperature",
      "label": "Temperature",
      "description": "Controls randomness. Lower values make outputs more focused; higher values make them more varied. Bedrock rejects values above 1 for this model.",
      "group": "sampling",
      "type": "number",
      "range": {
        "min": 0,
        "max": 1,
        "step": 0.1
      }
    },
    {
      "path": "inferenceConfig.topP",
      "label": "Top P",
      "description": "Controls nucleus sampling by limiting generation to tokens whose cumulative probability reaches this value.",
      "group": "sampling",
      "type": "number",
      "range": {
        "min": 0,
        "max": 1,
        "step": 0.01
      }
    },
    {
      "path": "inferenceConfig.stopSequences",
      "label": "Stop sequences",
      "description": "A list of strings where the model stops generating further tokens.",
      "group": "generation_length",
      "type": "string"
    },
    {
      "path": "additionalModelRequestFields.top_k",
      "label": "Top K",
      "description": "Limits token sampling to the top K most likely next tokens. Converse carries it through additionalModelRequestFields; it is not part of inferenceConfig.",
      "group": "sampling",
      "type": "integer",
      "range": {
        "min": 0
      }
    }
  ]
}

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How to use

Building with an AI agent? Hit Copy to grab this whole guide as Markdown and paste it in — or point your agent straight at /llms.txt.

modelparams.dev is an open, community-maintained catalog of model parameters. Each entry shows the knobs you can turn — type, default, range, and the conditions that gate it.

The same model accessed via an API key and via a subscription usually exposes a different set of parameters. We list both as separate entries so the data stays honest.

Catalog API

The full catalog is static JSON, CORS-enabled, served from the edge.

curl https://modelparams.dev/api/v1/models.json

Each entry is keyed by provider/model for API-key variants; subscription variants append -subscription.

If you only need the params for one model contract, use the providerless endpoint. Subscription contracts are model slugs with -subscription.

curl https://modelparams.dev/api/v1/models/openai/gpt-5.5.json
curl https://modelparams.dev/api/v1/models/openai/gpt-5.5-subscription.json

Single model

curl https://modelparams.dev/api/v1/models/anthropic/claude-opus-4-7.json
curl https://modelparams.dev/api/v1/models/anthropic/claude-opus-4-7-subscription.json

JSON Schema

Every entry validates against a JSON Schema you can use in your editor or pipeline.

curl https://modelparams.dev/api/v1/schema.json

Add this header to any YAML you author for autocomplete in VS Code:

# yaml-language-server: $schema=https://modelparams.dev/api/v1/schema.json

Logos

Provider logos are available at /assets/logos/{provider}.svg where {provider} is the provider slug. They use currentColor so they inherit your text color.

curl https://modelparams.dev/assets/logos/anthropic.svg

Logos are sourced from the models.dev repo (MIT) and used under nominative fair use.

Contribute

The data lives in YAML under models/{provider}/{model}-{auth}.yaml in the GitHub repo. Open a PR; CI validates against the schema and rebuilds.

Edit on GitHub MIT licensed