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grepai-embeddings-openai
Configure OpenAI as embedding provider for GrepAI. Use this skill for high-quality cloud embeddings.
Codex または Claude でインストール この Prompt をコピーして Codex、Claude、または他のアシスタントに貼り付けると、Skill ページを確認してインストールできます。
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Configure OpenAI as embedding provider for GrepAI. Use this skill for high-quality cloud embeddings.
Codex または Claude でインストール この Prompt をコピーして Codex、Claude、または他のアシスタントに貼り付けると、Skill ページを確認してインストールできます。
SOC 職業分類に基づく
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Find function callees with GrepAI trace. Use this skill to discover what functions a specific function calls.
Find function callers with GrepAI trace. Use this skill to discover what code calls a specific function.
Build complete call graphs with GrepAI trace. Use this skill for recursive dependency analysis.
Supported programming languages in GrepAI. Use this skill to understand which languages can be indexed and traced.
| name | grepai-embeddings-openai |
| description | Configure OpenAI as embedding provider for GrepAI. Use this skill for high-quality cloud embeddings. |
This skill covers using OpenAI's embedding API with GrepAI for high-quality, cloud-based embeddings.
| Aspect | Details |
|---|---|
| ✅ Quality | State-of-the-art embeddings |
| ✅ Speed | Fast, no local compute needed |
| ✅ Scalability | Handles any codebase size |
| ⚠️ Privacy | Code sent to OpenAI servers |
| ⚠️ Cost | Pay per token |
| ⚠️ Internet | Requires connection |
Get your API key at: https://platform.openai.com/api-keys
# .grepai/config.yaml
embedder:
provider: openai
model: text-embedding-3-small
api_key: ${OPENAI_API_KEY}
Set the environment variable:
export OPENAI_API_KEY="sk-..."
embedder:
provider: openai
model: text-embedding-3-small
api_key: ${OPENAI_API_KEY}
parallelism: 8 # Concurrent requests for speed
embedder:
provider: openai
model: text-embedding-3-small
api_key: sk-your-api-key-here # Avoid committing secrets!
Warning: Never commit API keys to version control.
| Property | Value |
|---|---|
| Dimensions | 1536 |
| Price | $0.00002 / 1K tokens |
| Quality | Very high |
| Speed | Fast |
Best for: Most use cases, good balance of cost/quality.
embedder:
provider: openai
model: text-embedding-3-small
| Property | Value |
|---|---|
| Dimensions | 3072 |
| Price | $0.00013 / 1K tokens |
| Quality | Highest |
| Speed | Fast |
Best for: Maximum accuracy, cost not a concern.
embedder:
provider: openai
model: text-embedding-3-large
dimensions: 3072
You can reduce dimensions to save storage:
embedder:
provider: openai
model: text-embedding-3-large
dimensions: 1024 # Reduced from 3072
| Model | Dimensions | Cost/1K tokens | Quality |
|---|---|---|---|
text-embedding-3-small | 1536 | $0.00002 | ⭐⭐⭐⭐ |
text-embedding-3-large | 3072 | $0.00013 | ⭐⭐⭐⭐⭐ |
Approximate costs per 1000 source files:
| Codebase Size | Chunks | Small Model | Large Model |
|---|---|---|---|
| Small (100 files) | ~500 | $0.01 | $0.06 |
| Medium (1000 files) | ~5,000 | $0.10 | $0.65 |
| Large (10000 files) | ~50,000 | $1.00 | $6.50 |
Note: Costs are one-time for initial indexing. Updates only re-embed changed files.
GrepAI v0.24.0+ supports adaptive rate limiting and parallel requests:
embedder:
provider: openai
model: text-embedding-3-small
api_key: ${OPENAI_API_KEY}
parallelism: 8 # Adjust based on your rate limit tier
Parallelism recommendations:
GrepAI automatically batches chunks for efficient API usage.
OpenAI has rate limits based on your account tier:
| Tier | RPM | TPM |
|---|---|---|
| Free | 3 | 150,000 |
| Tier 1 | 500 | 1,000,000 |
| Tier 2 | 5,000 | 5,000,000 |
GrepAI handles rate limiting automatically with adaptive backoff.
macOS/Linux:
# In ~/.bashrc, ~/.zshrc, or ~/.profile
export OPENAI_API_KEY="sk-..."
Windows (PowerShell):
$env:OPENAI_API_KEY = "sk-..."
# Or permanently
[System.Environment]::SetEnvironmentVariable('OPENAI_API_KEY', 'sk-...', 'User')
Create .env in your project root:
OPENAI_API_KEY=sk-...
Add to .gitignore:
.env
For Azure-hosted OpenAI:
embedder:
provider: openai
model: your-deployment-name
api_key: ${AZURE_OPENAI_API_KEY}
endpoint: https://your-resource.openai.azure.com
.env files❌ Problem: 401 Unauthorized
✅ Solution: Check API key is correct and environment variable is set:
echo $OPENAI_API_KEY
❌ Problem: 429 Rate limit exceeded
✅ Solution: Reduce parallelism or upgrade OpenAI tier:
embedder:
parallelism: 2 # Lower value
❌ Problem: High costs ✅ Solutions:
text-embedding-3-small instead of large❌ Problem: Slow indexing ✅ Solution: Increase parallelism:
embedder:
parallelism: 8
❌ Problem: Privacy concerns ✅ Solution: Use Ollama for local embeddings instead
embedder:
provider: openai
model: text-embedding-3-small
api_key: ${OPENAI_API_KEY}
rm .grepai/index.gob
grepai watch
Important: You cannot mix embeddings from different models/providers.
Successful OpenAI configuration:
✅ OpenAI Embedding Provider Configured
Provider: OpenAI
Model: text-embedding-3-small
Dimensions: 1536
Parallelism: 4
API Key: sk-...xxxx (from environment)
Estimated cost for this codebase:
- Files: 245
- Chunks: ~1,200
- Cost: ~$0.02
Note: Code will be sent to OpenAI servers.