Analyze 2-3 year historical trends in technology, market, and business models to predict 1-2 years ahead. Uses pattern recognition, adoption curves, and cycle analysis to identify timing windows and emerging opportunities. History is cyclical - products and markets follow predictable patterns.
## Prediction: [TOPIC]
**Thesis**: [1-2 sentence prediction]
**Confidence**: High / Medium / Low
**Timing**: [When this will happen]
**Evidence**: [3-5 supporting data points]
**Counter-evidence**: [What could invalidate]
Step 5: Identify Opportunities
Opportunity
Timing Window
Competition
Action
{{OPP_1}}
{{WINDOW}}
Low/Med/High
Build/Watch/Avoid
{{OPP_2}}
{{WINDOW}}
Navigation
Resources (Deep Dives)
Resource
Purpose
technology-cycle-patterns.md
Technology adoption curves and cycles
market-cycle-patterns.md
Market evolution and consolidation patterns
business-model-evolution.md
Revenue model cycles and transitions
signal-vs-noise-filtering.md
Separating hype from substance
prediction-accuracy-tracking.md
Validating predictions over time
Templates (Outputs)
Template
Use For
trend-analysis-report.md
Full trend prediction report
technology-adoption-curve.md
Adoption stage mapping
market-timing-assessment.md
When to enter decision
cyclical-pattern-map.md
Historical pattern matching
prediction-hypothesis.md
Prediction with evidence
trend-opportunity-matrix.md
Trends → Opportunities
Data
File
Contents
sources.json
Trend data sources (Gartner, CB Insights, State of AI, etc.)
Key Principles
History Rhymes
Past patterns repeat with new technology:
Client-server → Web apps → Mobile → Edge AI
Mainframe → PC → Cloud → Distributed
Manual → Automated → AI-assisted → Autonomous
Timing Beats Being Right
Being right about a trend but wrong about timing = failure:
Too early: Market not ready, burn runway
Too late: Established players, commoditized
Just right: Ride the wave
Multiple Signals Required
Never bet on single signal:
Funding + Hiring + GitHub activity = Strong signal
Just media coverage = Hype, validate further
Just VC interest = May be speculative
Update Predictions
Predictions are living documents:
Revisit quarterly
Track accuracy over time
Adjust for new data
Document what changed and why
Integration Points
Feeds Into
startup-idea-validation - Market timing score
startup-mega-router - Trend context for analysis
product-management - Roadmap prioritization
Receives From
startup-review-mining - Pain point trends over time
startup-competitive-analysis - Competitor movement patterns
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