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Reorganize documentation into user-focused, developer-focused, and deployment-focused sections. **New structure:** - Root: README.md (streamlined), QUICK_START.md, API_REFERENCE.md - docs/user-guide/: configuration, API usage, integrations, troubleshooting - docs/developer/: contributing, development setup, testing, architecture - docs/deployment/: Docker deployment, production checklist, monitoring - docs/reference/: environment variables, MCP tools, data formats **Changes:** - Streamline README.md from 831 to 469 lines - Create QUICK_START.md for 5-minute onboarding - Create API_REFERENCE.md as single source of truth for API - Remove 9 outdated specification docs (v0.2.0 API design) - Remove DOCKER_API.md (content consolidated into new structure) - Remove docs/plans/ directory with old design documents - Update CLAUDE.md with documentation structure guide - Remove orchestration-specific references **Benefits:** - Clear entry points for different audiences - No content duplication - Better discoverability through logical hierarchy - All content reflects current v0.3.0 API
183 lines
4.0 KiB
Markdown
183 lines
4.0 KiB
Markdown
# Using the API
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Common workflows and best practices for AI-Trader API.
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---
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## Basic Workflow
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### 1. Trigger Simulation
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```bash
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curl -X POST http://localhost:8080/simulate/trigger \
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-H "Content-Type: application/json" \
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-d '{
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"start_date": "2025-01-16",
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"end_date": "2025-01-17",
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"models": ["gpt-4"]
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}'
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```
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Save the `job_id` from response.
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### 2. Poll for Completion
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```bash
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JOB_ID="your-job-id-here"
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while true; do
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STATUS=$(curl -s http://localhost:8080/simulate/status/$JOB_ID | jq -r '.status')
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echo "Status: $STATUS"
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if [[ "$STATUS" == "completed" ]] || [[ "$STATUS" == "partial" ]] || [[ "$STATUS" == "failed" ]]; then
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break
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fi
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sleep 10
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done
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```
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### 3. Retrieve Results
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```bash
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curl "http://localhost:8080/results?job_id=$JOB_ID" | jq '.'
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```
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---
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## Common Patterns
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### Single-Day Simulation
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Omit `end_date` to simulate just one day:
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```bash
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curl -X POST http://localhost:8080/simulate/trigger \
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-d '{"start_date": "2025-01-16", "models": ["gpt-4"]}'
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```
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### All Enabled Models
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Omit `models` to run all enabled models from config:
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```bash
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curl -X POST http://localhost:8080/simulate/trigger \
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-d '{"start_date": "2025-01-16", "end_date": "2025-01-20"}'
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```
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### Filter Results
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```bash
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# By date
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curl "http://localhost:8080/results?date=2025-01-16"
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# By model
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curl "http://localhost:8080/results?model=gpt-4"
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# Combined
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curl "http://localhost:8080/results?job_id=$JOB_ID&date=2025-01-16&model=gpt-4"
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```
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---
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## Best Practices
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### 1. Check Health Before Triggering
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```bash
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curl http://localhost:8080/health
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# Only proceed if status is "healthy"
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```
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### 2. Use Exponential Backoff for Retries
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```python
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import time
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import requests
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def trigger_with_retry(max_retries=3):
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for attempt in range(max_retries):
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try:
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response = requests.post(
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"http://localhost:8080/simulate/trigger",
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json={"start_date": "2025-01-16"}
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)
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response.raise_for_status()
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return response.json()
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except requests.HTTPError as e:
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if e.response.status_code == 400:
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# Don't retry on validation errors
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raise
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wait = 2 ** attempt # 1s, 2s, 4s
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time.sleep(wait)
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raise Exception("Max retries exceeded")
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```
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### 3. Handle Concurrent Job Conflicts
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```python
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response = requests.post(
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"http://localhost:8080/simulate/trigger",
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json={"start_date": "2025-01-16"}
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)
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if response.status_code == 400 and "already running" in response.json()["detail"]:
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print("Another job is running. Waiting...")
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# Wait and retry, or query existing job status
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```
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### 4. Monitor Progress with Details
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```python
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def get_detailed_progress(job_id):
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response = requests.get(f"http://localhost:8080/simulate/status/{job_id}")
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status = response.json()
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print(f"Overall: {status['status']}")
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print(f"Progress: {status['progress']['completed']}/{status['progress']['total_model_days']}")
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# Show per-model-day status
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for detail in status['details']:
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print(f" {detail['trading_date']} {detail['model_signature']}: {detail['status']}")
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```
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---
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## Error Handling
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### Validation Errors (400)
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```python
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try:
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response = requests.post(
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"http://localhost:8080/simulate/trigger",
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json={"start_date": "2025-1-16"} # Wrong format
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)
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response.raise_for_status()
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except requests.HTTPError as e:
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if e.response.status_code == 400:
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print(f"Validation error: {e.response.json()['detail']}")
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# Fix input and retry
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```
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### Service Unavailable (503)
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```python
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try:
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response = requests.post(
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"http://localhost:8080/simulate/trigger",
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json={"start_date": "2025-01-16"}
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)
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response.raise_for_status()
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except requests.HTTPError as e:
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if e.response.status_code == 503:
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print("Service unavailable (likely price data download failed)")
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# Retry later or check ALPHAADVANTAGE_API_KEY
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```
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---
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See [API_REFERENCE.md](../../API_REFERENCE.md) for complete endpoint documentation.
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