session_id stringlengths 16 36 | messages listlengths 2 20 |
|---|---|
TEMP_SESSION_123 | [
{
"role": "user",
"content": "北京到台州2日游怎么规划?",
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"tool_call_id": null,
"name": null
},
{
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{
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"type": "tool_use",
"function": {
"name": "... |
0a5ddd7a-2336-4f6a-829a-697684455143 | [
{
"role": "user",
"content": "Draw a pie chart of these data, display percentage not raw number. {'finance': 79, 'AI AGENT': 304, 'knowledge-and-memory': 98, 'Audio Generator': 53, 'Heathcare': 22, 'other': 93, 'art-and-culture': 13, 'BUSINESS': 12, 'AI Agent Marketplace': 38, 'calendar-management': 140, 'S... |
c54cc814-787b-4ab6-96fb-9219530719b0 | [
{
"role": "user",
"content": "Draw a pie chart of these data, display percentage not raw number. {'finance': 79, 'AI AGENT': 304, 'knowledge-and-memory': 98, 'Audio Generator': 53, 'Heathcare': 22, 'other': 93, 'art-and-culture': 13, 'BUSINESS': 12, 'AI Agent Marketplace': 38, 'calendar-management': 140, 'S... |
be56e802-6ac1-4a5e-afc9-b7efa37b164b | [
{
"role": "user",
"content": "Have you got any Google Drive MCP server template?",
"tool_calls": null,
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"name": null
},
{
"role": "assistant",
"content": "<img class=\"agent_display_icon\" src=\"https://agent.deepnlp.org/static/img/icon_chatbot_agent.png\"> Multi... |
a62516dd-4a7a-4a68-95b5-10d099c603d7 | [
{
"role": "user",
"content": "Find the best routes from New York JFK Airport to Times Square.",
"tool_calls": null,
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"name": null
},
{
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"content": "",
"tool_calls": [
{
"id": "call_41d68645f2c94f1db65dd5",
"type": "to... |
ef2be5d7-7dd7-4bf5-b458-74c12283531d | [
{
"role": "user",
"content": "<div class=\"segment-container\"><div class=\"file-container-grid\">\n <div class=\"message_file_display_wrapper\" data-file-name=\"employees.xlsx\" data-file-url=\"/files-wd/download/demo/demo_session_id/employees.xlsx\" data-file-type=\"... |
176aef92-eca4-4af8-ae52-e6673b9a8170 | [
{
"role": "user",
"content": "Plot a pie chart showing 25% of employees graduated within 3 years and 75% graduated more than 3 years ago.",
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},
{
"role": "assistant",
"content": "<img class=\"agent_display_icon\" src=\"https://age... |
b01230b3-695b-44b5-b999-b4cca1838fee | [
{
"role": "user",
"content": "NBA十佳球",
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},
{
"role": "system",
"content": "\n **Background**\n You are an AI Agent expert good at making function calls and choosing proper tools from the available tool list.\n If you thin... |
41b3995e-3b98-4144-833b-a1a9d311d542 | [
{
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3845f3e2-efab-43f6-af31-f000b2a5367a | [
{
"role": "user",
"content": "Find Greek Island Beach View Pictures",
"tool_calls": null,
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},
{
"role": "assistant",
"content": "",
"tool_calls": [
{
"id": "call_200ae2716abc4608880310",
"type": "tool_use",
"function... |
37e83ca0-d0d4-4204-b3e6-95be51bf57a6 | [
{
"role": "user",
"content": "从魏公村到康桥水郡小区公交有多少路?",
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},
{
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"tool_calls": [
{
"id": "call_b40b53c30b4245679229d5",
"type": "tool_use",
"function": {
"nam... |
a4a09da6-83d6-46e6-a042-a8387e7558d4 | [
{
"role": "user",
"content": "I would like to visit Spain and Italy for 7 days. Please help me generate a detail travel plans, covering major cities of Madrid, Rome, Venice. And I like to see Churches and relics.",
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},
{
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e0294867-a273-4e3a-99e5-5f9cb1fa946c | [
{
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"tool_calls": null,
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},
{
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4f58ae06-0190-4875-9b36-bd1fdff37a83 | [
{
"role": "user",
"content": "I would like to visit Spain and Italy for 7 days. Please help me generate a detail travel plans, covering major cities of Madrid, Rome, Venice. And I like to see Churches and relics.",
"tool_calls": null,
"tool_call_id": null,
"name": null
},
{
"role": "assi... |
ba7d0684-fb47-49c2-90a1-9fdf4af2d3fb | [
{
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"content": "Latest NBA News",
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},
{
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"tool_calls": [
{
"id": "call_2f1ae699ed854421941c48",
"type": "tool_use",
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"name":... |
b907bbb3-60cd-4e27-8f23-aa75b9296013 | [
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{
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"tool_calls": [
{
"id": "call_2f97c4140d0240d4a7f3ea",
"type": "tool_use",
"function": {
"name":... |
2c05505a-daf2-4432-aca4-5a4a68a0e40b | [
{
"role": "user",
"content": "Find Greek Island Beach View Pictures",
"tool_calls": null,
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"name": null
},
{
"role": "assistant",
"content": "",
"tool_calls": [
{
"id": "call_b993c3f30bd04559aa2ce9",
"type": "tool_use",
"function... |
ae6655f5-53a2-4ace-a3cc-afee0a3bd5e9 | [
{
"role": "user",
"content": "New York Time Square Address and Coordinates",
"tool_calls": null,
"tool_call_id": null,
"name": null
},
{
"role": "system",
"content": "Please respond using the same language as original question.",
"tool_calls": null,
"tool_call_id": null,
... |
839f25df-711b-4b94-b436-28a314267968 | [
{
"role": "user",
"content": "Find Greek Island Beach View Pictures",
"tool_calls": null,
"tool_call_id": null,
"name": null
},
{
"role": "system",
"content": "Please respond using the same language as original question.",
"tool_calls": null,
"tool_call_id": null,
"name":... |
YAML Metadata Warning: empty or missing yaml metadata in repo card
Check out the documentation for more information.
Open Agent RL Dataset: High Quality AI Agent | Tool Use & Function Calls | Reinforcement Learning Datasets
Github|Huggingface|Pypi | Open Source AI Agent Marketplace DeepNLP|Agent RL Dataset
DeepNLP website provides high quality, genuine, online users' request of Agent & RL datasets to help LLM foundation/SFT/Post Train to get more capable models at function call, tool use and planning. The datasets are collected and sampled from users' requests on our various clients (Web/App/Mini App) and Open OneKey Agent Router and Open OneKey MCP Router. Some datasets requires credit to deduct and you can easily gain more credit by activities such as commenting and discussion and uploading your own datasets to the communities.
We have released sampled examples on huggingface. If you find it useful, please visit our AI store dataset Tab to Select Agent RL Dataset.
| Dataset Name | Description | User Feedback | Example Dataset Download | Full DataSet Download |
|---|---|---|---|---|
| Tool Use Multi-Turn Dialogue | The tool use multi-turn dialogue dataset is in the list of messages formats, Useful for AI Search/Deep Research/Map/Financial Data/etc | YES | 50 instances, Download | 1k, Download |
Disclaimer: Safe privacy preserving or personalized information are marked and filtered out.
1. Dataset Features
Genuinue Users' Queries: Most of the high quality datasets are collected from query logs of our live AI Agents, such as MCP Tool Use Agent, Open OneKey Agent Router and Open OneKey MCP Router.
Function Call and MCP Servers Support: The datasets covers wide range of MCP servers from the Open MCP Marketplace() and Playgrounds.
Users Action and Humans' Feedback: Users' actual feedbacks are crucial in improving the AI Agents training process. We collects users' genuine actions, such as ACCEPT/REJECT in confirming the function call results, Upvote/Downvote action of the final responses, and many other users' feedback on clickable elements.
Various Domains and Tasks: We covers 40+ categories of AI agents' tool use scenarios, ranging from information seeking (AI search, map search, etc) to autonomous AI agents browser use, computer use, Data Analysis, Excel Spreadsheet and Powerpoint creation and generation, etc.
Example AI Agent Dataset Dialogues
| Domain | Related MCP Server | Demo |
|---|---|---|
| Office File Agent | Excel Spreadsheet, Powerpoint, PDF, etc | Example MCP |
| AI Search/Deep Research | Bing/Google Custom/Perplexity/Tavily/Firecrawl | Demo MCP |
| Map Trip Planning | GoogleMap, Amap(Gaode), BaiduMap, etc. | Example MCP Use MCP |
| Browser Usage | Playwright, Puppeteer, etc. | Demo MCP |
| Chart,Graph,Image | everart,mcp-server-charts(AntV),canva-mcp | Demo MCP |
2. Dataset Introduction
We provide main below types of AI agents datasets in List of Messages Json Formats and scalar data such as rewards, etc.
| Dataset Name | Description | User Feedback | Example Dataset Download | Full DataSet Download |
|---|---|---|---|---|
| Tool Use Multi-Turn Dialogue | The tool use multi-turn dialogue dataset is in the list of messages formats, Useful for AI Search/Deep Research/Map/Financial Data/etc | YES | 50 instances, Download | 1k, Download |
| Function Calling Tool Use | The dataset contains messages and available tools as input and output the choosen tool_call result indicating which tool to use and the arguments. The datasets are collected from calling SOTA LLM such as GPT, OpenAI o-series, Claude, Qwen, Kimi, etc. | No | 50 instances, Download | 1k, Download |
| Reinforcement Learning | Sessions of user and assistant' multi-dialogues, rewards from users' feedback in this session, such click of confirmation (Accept/Reject), Upvote, Downvote on the responses, etc. | YES | 50 instances, Download | 1k, Download |
Dataset 1 Tool Use Multi-Turn Dialogue Dataset
Dataset Description
| KEY | Type | Description |
|---|---|---|
| trace_id | String | Identify each unique new user request or API calling |
| session_id | String | The identifier of each dialogue, which consists of multiple turns of dialogues and every user input produces a new trace_id |
| messages | List of Json Object | Dialogue Messages |
This data instances indicates a multi-turn dialogues of users' calling Google Maps get_weather tool to know the recent weather in San Francisco. The dialogues contains three types of messages:
User: query, original question that user asks,
User: available_tools, List of Json that user provides to LLM,
Assistant: message, content.type='tool_use', LLM output which tool to use and its parameters,
User: message, content.type='tool_result', Users' actual function call running results.
[
{
"role": "user",
"content": "What is the weather like in San Francisco?"
},
{
"role": "assistant",
"content": [
{
"type": "text",
"text": "I need to use get_weather, and the user wants SF, which is likely San Francisco, CA."
},
{
"type": "tool_use",
"id": "toolu_01A09q90qw90lq917835lq9",
"name": "get_weather",
"input": {
"location": "San Francisco, CA",
"unit": "celsius"
}
}
]
},
{
"role": "user",
"content": [
{
"type": "tool_result",
"tool_use_id": "toolu_01A09q90qw90lq917835lq9",
"content": "15 degrees"
}
]
}
]
Note that the function call comes in different formats when calling various models. We are mainly collecting in the OpenAI and anthroupic function calling formats. We supported both and you can see the differences from the offical documentations.
Multi-modal and Files formats are also attached:
The images and raw descriptions of the files such as path are also attached for context variables.
OpenAI/Qwen/etc Function Call Formats
{
"tool_call": {
"id": "call_d6f4ed29ce614390b99a05",
"function": {
"arguments": "{\"url\": \"https://www.stackoverflow.com\", \"browserType\": \"chromium\"}",
"name": "playwright_navigate"
},
"type": "function",
"index": 0
}
}
Anthroupic Tool Use Formats
{
"type": "tool_use",
"id": "toolu_01A09q90qw90lq917835lq9",
"name": "get_weather",
"input": {
"location": "San Francisco, CA",
"unit": "celsius"
}
}
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