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62 changes: 62 additions & 0 deletions examples/workflows/workflow_intent_classifier/README.md
Original file line number Diff line number Diff line change
Expand Up @@ -51,3 +51,65 @@ Run your MCP Agent app:
```bash
uv run main.py
```

## `4` [Beta] Deploy to the cloud

### `a.` Log in to [MCP Agent Cloud](https://docs.mcp-agent.com/cloud/overview)

```bash
uv run mcp-agent login
```

### `b.` Update your `mcp_agent.secrets.yaml` to mark your developer secrets (keys)

```yaml
openai:
api_key: !developer_secret
# Other secrets as needed
```

### `c.` Deploy your agent with a single command
```bash
uv run mcp-agent deploy workflow-intent-classifier
```

### `d.` Connect to your deployed agent as an MCP server through any MCP client

#### Claude Desktop Integration

Configure Claude Desktop to access your agent servers by updating your `~/.claude-desktop/config.json`:

```json
"my-agent-server": {
"command": "/path/to/npx",
"args": [
"mcp-remote",
"https://[your-agent-server-id].deployments.mcp-agent-cloud.lastmileai.dev/sse",
"--header",
"Authorization: Bearer ${BEARER_TOKEN}"
],
"env": {
"BEARER_TOKEN": "your-mcp-agent-cloud-api-token"
}
}
```

#### MCP Inspector

Use MCP Inspector to explore and test your agent servers:

```bash
npx @modelcontextprotocol/inspector
```

Make sure to fill out the following settings:

| Setting | Value |
|---|---|
| *Transport Type* | *SSE* |
| *SSE* | *https://[your-agent-server-id].deployments.mcp-agent-cloud.lastmileai.dev/sse* |
| *Header Name* | *Authorization* |
| *Bearer Token* | *your-mcp-agent-cloud-api-token* |

> [!TIP]
> In the Configuration, change the request timeout to a longer time period. Since your agents are making LLM calls, it is expected that it should take longer than simple API calls.
22 changes: 16 additions & 6 deletions examples/workflows/workflow_intent_classifier/main.py
Original file line number Diff line number Diff line change
Expand Up @@ -12,8 +12,15 @@

app = MCPApp(name="intent_classifier")


async def example_usage():
@app.tool
async def example_usage()->str:
'''
this is an example function/tool call that uses the intent classification workflow.
It uses both the OpenAI embedding intent classifier and the OpenAI LLM intent classifier
'''

results=""

async with app.run() as intent_app:
logger = intent_app.logger
context = intent_app.context
Expand All @@ -35,12 +42,13 @@ async def example_usage():
context=context,
)

results = await embedding_intent_classifier.classify(
output = await embedding_intent_classifier.classify(
request="Hello, how are you?",
top_k=1,
)

logger.info("Embedding-based Intent classification results:", data=results)
logger.info("Embedding-based Intent classification results:", data=output)
results="Embedding-based Intent classification results: " + ", ".join(r.intent for r in output)

llm_intent_classifier = OpenAILLMIntentClassifier(
intents=[
Expand All @@ -58,13 +66,15 @@ async def example_usage():
context=context,
)

results = await llm_intent_classifier.classify(
output = await llm_intent_classifier.classify(
request="Hello, how are you?",
top_k=1,
)

logger.info("LLM-based Intent classification results:", data=results)
logger.info("LLM-based Intent classification results:", data=output)
results+="LLM-based Intent classification results: " + ", ".join(r.intent for r in output)

return results

if __name__ == "__main__":
import time
Expand Down
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