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VCP Screener

Free

Identify and analyze volatility contraction patterns in stocks.

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Free · Opens the source repo

What VCP Screener does

The VCP Screener is a specialized tool for traders interested in Mark Minervini's Volatility Contraction Pattern (VCP). This skill screens S&P 500 stocks to identify those that are in a Stage 2 uptrend, characterized by tight bases and contracting volatility near breakout points. It allows users to execute scans for current VCP setups or analyze historical data for any given ticker, providing insights into past performance and potential future outcomes. The tool is designed for both real-time screening and backtesting, making it versatile for different trading strategies.

Users can run the VCP Screener with various parameters to customize their screening process. For example, it can be set to scan the entire S&P 500 or a specific list of stocks, depending on the user's needs. The skill outputs detailed reports in both JSON and Markdown formats, which include essential metrics such as execution state, contraction details, and trade setup information. This allows traders to make informed decisions based on qualitative and quantitative data.

The VCP Screener is particularly useful for traders who follow Minervini's methodology and are looking for actionable trade setups. By focusing on stocks that exhibit specific patterns of volatility contraction, users can identify potential breakout candidates with defined risk parameters. Additionally, the historical analysis feature enables traders to study past patterns of individual stocks, providing context for their trading decisions and enhancing their understanding of market behavior.

Overall, the VCP Screener is an essential tool for traders looking to leverage the VCP methodology, offering comprehensive screening capabilities and detailed analysis to support informed trading decisions.

When to use it

Use this skill when you need to screen for VCP patterns in S&P 500 stocks or analyze historical VCPs for specific tickers.

When not to use it

This skill may not be suitable for users not familiar with Minervini's trading strategies or those looking for real-time market data beyond the S&P 500.

What you can build with it

Screening for Current VCPs

Use the VCP Screener to identify current stocks in the S&P 500 that are forming volatility contraction patterns, providing actionable trade setups.

Historical VCP Analysis

Analyze the historical performance of a specific stock to detect past VCP formations and their outcomes, aiding in backtesting strategies.

Custom Stock Universe Screening

Run the VCP Screener on a custom list of stocks to find potential breakout candidates tailored to your specific trading interests.

How to install VCP Screener

View source

1. Install with the skills CLI

npx skills add tradermonty/claude-trading-skills/vcp-screener --agent claude-code

2. Or install it manually

Download the skill folder and drop it into ~/.claude/skills/ for all projects, or .claude/skills/ to scope it to one repo. Restart Claude Code so it picks up the new skill.

Anthropic's agentic coding CLI, and the reference implementation of Agent Skills. Drop a skill folder into ~/.claude/skills and Claude Code loads it automatically whenever a task matches the skill's description. Claude Code docs

Inside SKILL.md

Written by tradermonty

VCP Screener - Minervini Volatility Contraction Pattern

Screen S&P 500 stocks for Mark Minervini's Volatility Contraction Pattern (VCP), identifying Stage 2 uptrend stocks with contracting volatility near breakout pivot points.

When to Use

  • User asks for VCP screening or Minervini-style setups
  • User wants to find tight base / volatility contraction patterns
  • User requests Stage 2 momentum stock scanning
  • User asks for breakout candidates with defined risk
  • User asks "find every historical VCP in <TICKER>" or wants to study one ticker's past VCP setups with forward outcomes (--history --ticker SYM)

Prerequisites

  • FMP API key (set FMP_API_KEY environment variable or pass --api-key)
  • Free tier (250 calls/day) is sufficient for default screening (top 100 candidates)
  • Paid tier recommended for full S&P 500 screening (--full-sp500)

Workflow

Step 1: Prepare and Execute Screening

Run the VCP screener script:

# Default: S&P 500, top 100 candidates
python3 skills/vcp-screener/scripts/screen_vcp.py --output-dir skills/vcp-screener/scripts

# Custom universe
python3 skills/vcp-screener/scripts/screen_vcp.py --universe AAPL NVDA MSFT AMZN META --output-dir skills/vcp-screener/scripts

# Full S&P 500 (paid API tier)
python3 skills/vcp-screener/scripts/screen_vcp.py --full-sp500 --output-dir skills/vcp-screener/scripts

Strict Mode (Minervini pure setup)

Only return stocks with valid_vcp=True AND execution_state in (Pre-breakout, Breakout):

python3 skills/vcp-screener/scripts/screen_vcp.py --strict --output-dir reports/

Historical single-ticker mode

Walk one ticker's multi-year history, detect every VCP that ever formed, and attach forward-outcome stats (breakout / stop-hit / timeout, days-to-outcome, max gain, max loss) per detection. Useful for pattern study and backtesting context — not a real-time screener.

# Default: scan ~5 years (1260 trading days), 5-day stride, 60-day outcome window
python3 skills/vcp-screener/scripts/screen_vcp.py \
  --history --ticker FIX --output-dir reports/

# Custom scan length: 750 trading days (~3 years), 90-day outcome window
python3 skills/vcp-screener/scripts/screen_vcp.py \
  --history 750 --ticker TSLA \
  --stride-days 5 --outcome-days 90 \
  --output-dir reports/

# Long scan: 10 years (2520 trading days)
python3 skills/vcp-screener/scripts/screen_vcp.py \
  --history 2520 --ticker NVDA --output-dir reports/

Outputs (timestamped):

  • vcp_history_<SYM>_<YYYY-MM-DD_HHMMSS>.json — timeline of detections with full analyzer payload + forward_outcome per detection + summary stats.
  • vcp_history_<SYM>_<YYYY-MM-DD_HHMMSS>.md — human-readable timeline.

Mode-specific flags:

ParameterDefaultRangeEffect
--history [DAYS](off) / 1260 if bare100-5040Enable historical mode; optionally specify trading-day scan window (requires --ticker)
--ticker SYMTicker to scan
--stride-days51-60Trading-day step between as-of cursor positions
--outcome-days605-252Forward window evaluated per detection

Notes:

  • Two FMP API calls per scan (ticker + SPY history), not 100+ like the cross-sectional pipeline.
  • marketCap and absolute RS percentile reflect the ticker in isolation, not against the live screening universe — use this report for pattern study, not portfolio sizing.
  • Detections are deduplicated by (T1_high_date, last_low_date, pivot) so the same VCP isn't reported repeatedly as the cursor ages.

Advanced Tuning (for backtesting)

Adjust VCP detection parameters for research and backtesting:

python3 skills/vcp-screener/scripts/screen_vcp.py \
  --min-contractions 3 \
  --t1-depth-min 12.0 \
  --breakout-volume-ratio 2.0 \
  --trend-min-score 90 \
  --atr-multiplier 1.5 \
  --output-dir reports/
ParameterDefaultRangeEffect
--min-contractions22-4Higher = fewer but higher-quality patterns
--t1-depth-min10.0%1-50Higher = excludes shallow first corrections
--breakout-volume-ratio1.5x0.5-10Higher = stricter volume confirmation
--trend-min-score850-100Higher = stricter Stage 2 filter
--atr-multiplier1.50.5-5Lower = more sensitive swing detection
--contraction-ratio0.700.1-1Lower = requires tighter contractions
--min-contraction-days51-30Higher = longer minimum contraction
--lookback-days12030-365Longer = finds older patterns
--max-sma200-extension50.0%SMA200 distance threshold for Overextended state and penalty
--wide-and-loose-threshold15.0%Final contraction depth above which wide-and-loose flag triggers
--strictoffMinervini strict mode: only Pre-breakout or Breakout with valid VCP

Step 2: Review Results

  1. Read the generated JSON and Markdown reports
  2. Load references/vcp_methodology.md for pattern interpretation context
  3. Load references/scoring_system.md for score threshold guidance

Step 3: Present Analysis

For each top candidate, present:

  • Quality (composite_score / rating) — how well-formed is the VCP pattern?
  • Execution State (execution_state) — is it buyable now? (Pre-breakout / Breakout = actionable)
  • Pattern Type (pattern_type) — Textbook VCP / VCP-adjacent / Post-breakout / Extended Leader / Damaged
  • marker if a State Cap was applied (raw score was downgraded)
  • Contraction details (T1/T2/T3 depths and ratios)
  • Trade setup: pivot price, stop-loss, risk percentage
  • Volume dry-up ratio and breakout_volume_score
  • Relative strength rank

Step 4: Provide Actionable Guidance

By Execution State (primary filter):

  • Pre-breakout / Breakout: Pattern is in the active entry window — apply rating-based sizing
  • Early-post-breakout: Breakout underway but above ideal entry — reduced size or wait for pullback
  • Extended / Overextended: Trade missed — add to watchlist for next base
  • Damaged / Invalid: Setup invalidated — do not enter

By Rating (secondary, after state confirms actionability):

  • Textbook VCP (90+): Buy at pivot with aggressive sizing (1.5-2x)
  • Strong VCP (80-89): Buy at pivot with standard sizing (1x)
  • Good VCP (70-79): Buy on volume confirmation above pivot (0.75x)
  • Developing (60-69): Add to watchlist, wait for tighter contraction
  • Weak/No VCP (<60): Monitor only or skip

3-Phase Pipeline

  1. Pre-Filter - Quote-based screening (price, volume, 52w position) ~101 API calls
  2. Trend Template - 7-point Stage 2 filter with 260-day histories ~100 API calls
  3. VCP Detection - Pattern analysis, scoring, report generation (no additional API calls)

Output

  • vcp_screener_YYYY-MM-DD_HHMMSS.json - Structured results
  • vcp_screener_YYYY-MM-DD_HHMMSS.md - Human-readable report

Resources

  • references/vcp_methodology.md - VCP theory and Trend Template explanation
  • references/scoring_system.md - Scoring thresholds and component weights
  • references/fmp_api_endpoints.md - API endpoints and rate limits

Frequently asked questions about VCP Screener

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