perplexity-search — independently scanned and version-tracked by SaferSkills.
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Perform AI-powered web searches using Perplexity models through LiteLLM and OpenRouter. Perplexity provides real-time, web-grounded answers with source citations, making it ideal for finding current information, recent scientific literature, and facts beyond the model's training data cutoff.
This skill provides access to all Perplexity models through OpenRouter, requiring only a single API key (no separate Perplexity account needed).
Use this skill when:
Do not use for:
# Set API key
export OPENROUTER_API_KEY='sk-or-v1-your-key-here'
# Or use setup script
python scripts/setup_env.py --api-key sk-or-v1-your-key-here uv pip install litellm python scripts/perplexity_search.py --check-setupSee references/openrouter_setup.md for detailed setup instructions, troubleshooting, and security best practices.
Simple search:
python scripts/perplexity_search.py "What are the latest developments in CRISPR gene editing?"Save results:
python scripts/perplexity_search.py "Recent CAR-T therapy clinical trials" --output results.jsonUse specific model:
python scripts/perplexity_search.py "Compare mRNA and viral vector vaccines" --model sonar-pro-searchVerbose output:
python scripts/perplexity_search.py "Quantum computing for drug discovery" --verboseAccess models via --model parameter:
Model selection guide:
sonar-prosonar-pro-searchsonar-reasoning-prosonarsonarSee references/model_comparison.md for detailed comparison, use cases, pricing, and performance characteristics.
Good examples:
Bad examples:
Perplexity searches real-time web data:
For high-quality results, mention source preferences:
Break complex questions into clear components:
Example: "What improvements does AlphaFold3 offer over AlphaFold2 for protein structure prediction, according to research published between 2023 and 2024? Include specific accuracy metrics and benchmarks."
See references/search_strategies.md for comprehensive guidance on query design, domain-specific patterns, and advanced techniques.
python scripts/perplexity_search.py \
"What does recent research (2023-2024) say about the role of gut microbiome in Parkinson's disease? Focus on peer-reviewed studies and include specific bacterial species identified." \
--model sonar-propython scripts/perplexity_search.py \
"How to implement real-time data streaming from Kafka to PostgreSQL using Python? Include considerations for handling backpressure and ensuring exactly-once semantics." \
--model sonar-reasoning-propython scripts/perplexity_search.py \
"Compare PyTorch versus TensorFlow for implementing transformer models in terms of ease of use, performance, and ecosystem support. Include benchmarks from recent studies." \
--model sonar-pro-searchpython scripts/perplexity_search.py \
"What is the evidence for intermittent fasting in managing type 2 diabetes in adults? Focus on randomized controlled trials and report HbA1c changes and weight loss outcomes." \
--model sonar-propython scripts/perplexity_search.py \
"What are the key trends in single-cell RNA sequencing technology over the past 5 years? Highlight improvements in throughput, cost, and resolution, with specific examples." \
--model sonar-proUse perplexity_search.py as a module:
from scripts.perplexity_search import search_with_perplexity
result = search_with_perplexity(
query="What are the latest CRISPR developments?",
model="openrouter/perplexity/sonar-pro",
max_tokens=4000,
temperature=0.2,
verbose=False
)
if result["success"]:
print(result["answer"])
print(f"Tokens used: {result['usage']['total_tokens']}")
else:
print(f"Error: {result['error']}")# Save to JSON
python scripts/perplexity_search.py "query" --output results.json
# Process with jq
cat results.json | jq '.answer'
cat results.json | jq '.usage'Create a script for multiple queries:
#!/bin/bash
queries=(
"CRISPR developments 2024"
"mRNA vaccine technology advances"
"AlphaFold3 accuracy improvements"
)
for query in "${queries[@]}"; do
echo "Searching: $query"
python scripts/perplexity_search.py "$query" --output "results_$(echo $query | tr ' ' '_').json"
sleep 2 # Rate limiting
donePerplexity models have different pricing tiers:
Approximate costs per query:
Cost optimization strategies:
sonar for simple fact lookupssonar-pro for most queriessonar-pro-search for complex analysis--max-tokens to limit response lengthError: "OpenRouter API key not configured"
Solution:
export OPENROUTER_API_KEY='sk-or-v1-your-key-here'
# Or run setup script
python scripts/setup_env.py --api-key sk-or-v1-your-key-hereError: "LiteLLM not installed"
Solution:
uv pip install litellmError: "Rate limit exceeded"
Solutions:
Error: "Insufficient credits"
Solution:
See references/openrouter_setup.md for comprehensive troubleshooting guide.
This skill complements other scientific skills:
Use with literature-review skill:
Use with scientific-writing skill:
Use with hypothesis-generation skill:
Use with scientific-critical-thinking skill:
--max-tokens to control costsScripts:
scripts/perplexity_search.py: Main search script with CLI interfacescripts/setup_env.py: Environment setup and validation helperReferences:
references/search_strategies.md: Comprehensive query design guidereferences/model_comparison.md: Detailed model comparison and selection guidereferences/openrouter_setup.md: Complete setup, troubleshooting, and security guideAssets:
assets/.env.example: Example environment file templateOpenRouter:
LiteLLM:
Perplexity:
# LiteLLM for API access
uv pip install litellm# For .env file support
uv pip install python-dotenv
# For JSON processing (usually pre-installed)
uv pip install jqRequired:
OPENROUTER_API_KEY: Your OpenRouter API keyOptional:
DEFAULT_MODEL: Default model to use (default: sonar-pro)DEFAULT_MAX_TOKENS: Default max tokens (default: 4000)DEFAULT_TEMPERATURE: Default temperature (default: 0.2)This skill provides:
Conduct AI-powered web searches to find current information, recent research, and grounded answers with source citations.
~30 seconds. Free. No account. Every finding cites a rule and a line of evidence.