
FinViz Screener
FreeTranslate stock screening requests into FinViz URLs.
Free · Opens the source repo
What FinViz Screener does
The FinViz Screener skill enables users to convert natural language stock screening requests into actionable URLs for the FinViz stock screener. This tool is particularly useful for traders and investors who want to quickly filter stocks based on various criteria without needing to manually navigate the FinViz interface. By simply inputting queries in either Japanese or English, users can instantly generate URLs that reflect their specific screening conditions, such as filtering for high dividend stocks or identifying oversold large caps.
The skill operates by interpreting user requests and mapping them to predefined filter codes that FinViz recognizes. This process involves reading a reference file containing filter definitions and constructing a URL that can be opened directly in Chrome. The skill supports both public and Elite versions of FinViz, automatically detecting the user's access level based on an environment variable. This means that users can leverage advanced features of FinViz if they have the Elite subscription, enhancing their stock screening capabilities.
Users can issue commands like "Find oversold large caps near 52-week lows" or "テクノロジーセクターの割安株をスクリーニングしたい" to initiate the screening process. The skill also includes strict validation to ensure that the generated URLs are safe and free from injection vulnerabilities. This focus on security is crucial for users who may be concerned about the integrity of their data and the commands they execute.
Overall, the FinViz Screener skill is designed for traders, analysts, and anyone interested in stock market analysis who prefers a streamlined, natural language approach to filtering stocks based on specific financial metrics and conditions.
When to use it
Use this skill when you want to quickly screen stocks based on specific criteria using natural language queries.
When not to use it
Avoid this skill for deep fundamental analysis or portfolio reviews, as it focuses solely on screening rather than comprehensive stock evaluations.
What you can build with it
Quick Stock Screening
Use the FinViz Screener to quickly find stocks that meet specific criteria like high ROE or low debt.
Natural Language Queries
Input queries in Japanese or English to generate FinViz URLs without manual configuration.
Automated URL Generation
Streamline your stock screening process by generating and opening FinViz URLs directly from your requests.
How to install FinViz Screener
View source1. Install with the skills CLI
npx skills add tradermonty/claude-trading-skills/finviz-screener --agent claude-code2. 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 tradermontyFinViz Screener
Overview
Translate natural-language stock screening requests into FinViz screener filter codes, build the URL, and open it in Chrome. No API key required for public screener; FINVIZ Elite is auto-detected from $FINVIZ_API_KEY for enhanced functionality.
Key Features:
- Natural language → filter code mapping (Japanese + English)
- URL construction with view type and sort order selection
- Elite/Public auto-detection (environment variable or explicit flag)
- Chrome-first browser opening with OS-appropriate fallbacks
- Strict filter validation to prevent URL injection
When to Use This Skill
Explicit Triggers:
- "高配当で成長している小型株を探したい"
- "Find oversold large caps near 52-week lows"
- "テクノロジーセクターの割安株をスクリーニングしたい"
- "Screen for stocks with insider buying"
- "FinVizでブレイクアウト候補を表示して"
- "Show me high-growth small caps on FinViz"
- "配当利回り5%以上でROE15%以上の銘柄を探して"
Implicit Triggers:
- User describes stock screening criteria using fundamental or technical terms
- User mentions FinViz screener or stock filtering
- User asks to find stocks matching specific financial characteristics
When NOT to Use:
- Deep fundamental analysis of a specific stock (use us-stock-analysis)
- Portfolio review with holdings (use portfolio-manager)
- Chart pattern analysis on images (use technical-analyst)
- Earnings-based screening (use earnings-trade-analyzer or pead-screener)
Workflow
Step 1: Load Filter Reference
Read the filter knowledge base:
cat references/finviz_screener_filters.md
Step 2: Interpret User Request
Map the user's natural-language request to FinViz filter codes. Use the Common Concept Mapping table below for quick translation, and reference the full filter list for precise code selection.
Note: For range criteria (e.g., "dividend 3-8%", "P/E between 10 and 20"), use the {from}to{to} range syntax as a single filter token (e.g., fa_div_3to8, fa_pe_10to20) instead of combining separate _o and _u filters.
Common Concept Mapping:
| User Concept (EN) | User Concept (JP) | Filter Codes |
|---|---|---|
| High dividend | 高配当 | fa_div_o3 or fa_div_o5 |
| Small cap | 小型株 | cap_small |
| Mid cap | 中型株 | cap_mid |
| Large cap | 大型株 | cap_large |
| Mega cap | 超大型株 | cap_mega |
| Value / cheap | 割安 | fa_pe_u20,fa_pb_u2 |
| Growth stock | 成長株 | fa_epsqoq_o25,fa_salesqoq_o15 |
| Oversold | 売られすぎ | ta_rsi_os30 |
| Overbought | 買われすぎ | ta_rsi_ob70 |
| Near 52W high | 52週高値付近 | ta_highlow52w_b0to5h |
| Near 52W low | 52週安値付近 | ta_highlow52w_a0to5l |
| Breakout | ブレイクアウト | ta_highlow52w_b0to5h,sh_relvol_o1.5 |
| Technology | テクノロジー | sec_technology |
| Healthcare | ヘルスケア | sec_healthcare |
| Energy | エネルギー | sec_energy |
| Financial | 金融 | sec_financial |
| Semiconductors | 半導体 | ind_semiconductors |
| Biotechnology | バイオテク | ind_biotechnology |
| US stocks | 米国株 | geo_usa |
| Profitable | 黒字 | fa_pe_profitable |
| High ROE | 高ROE | fa_roe_o15 or fa_roe_o20 |
| Low debt | 低負債 | fa_debteq_u0.5 |
| Insider buying | インサイダー買い | sh_insidertrans_verypos |
| Short squeeze | ショートスクイーズ | sh_short_o20,sh_relvol_o2 |
| Dividend growth | 増配 | fa_divgrowth_3yo10 |
| Deep value | ディープバリュー | fa_pb_u1,fa_pe_u10 |
| Momentum | モメンタム | ta_perf_13wup,ta_sma50_pa,ta_sma200_pa |
| Defensive | ディフェンシブ | ta_beta_u0.5 or sec_utilities,sec_consumerdefensive |
| Liquid / high volume | 高出来高 | sh_avgvol_o500 or sh_avgvol_o1000 |
| Pullback from high | 高値からの押し目 | ta_highlow52w_10to30-bhx |
| Near 52W low reversal | 安値圏リバーサル | ta_highlow52w_10to30-alx |
| Fallen angel | 急落後反発 | ta_highlow52w_b20to30h,ta_rsi_os40 |
| AI theme | AIテーマ | --themes "artificialintelligence" |
| Cybersecurity theme | サイバーセキュリティ | --themes "cybersecurity" |
| AI + Cybersecurity | AI&サイバーセキュリティ | --themes "artificialintelligence,cybersecurity" |
| AI Cloud sub-theme | AIクラウド | --subthemes "aicloud" |
| AI Compute sub-theme | AI半導体 | --subthemes "aicompute" |
| Yield 3-8% (trap excluded) | 配当3-8%(トラップ除外) | fa_div_3to8 |
| Mid-range P/E | 適正PER帯 | fa_pe_10to20 |
| EV undervalued | EV割安 | fa_evebitda_u10 |
| Earnings next week | 来週決算 | earningsdate_nextweek |
| IPO recent | 直近IPO | ipodate_thismonth |
| Target price above | 目標株価以上 | targetprice_a20 |
| Recent news | 最新ニュースあり | news_date_today |
| High institutional | 機関保有率高 | sh_instown_o60 |
| Low float | 浮動株少 | sh_float_u20 |
| Near all-time high | 史上最高値付近 | ta_alltime_b0to5h |
| High ATR | 高ボラティリティ | ta_averagetruerange_o1.5 |
Step 3: Present Filter Selection
Before executing, present the selected filters in a table for user confirmation:
| Type | Value | Meaning |
|---|---|---|
| Theme | artificialintelligence | Artificial Intelligence |
| Sub-theme | aicloud | AI - Cloud & Infrastructure |
| Filter | cap_small | Small Cap ($300M–$2B) |
| Filter | fa_div_o3 | Dividend Yield > 3% |
| Filter | fa_pe_u20 | P/E < 20 |
| Filter | geo_usa | USA |
View: Overview (v=111)
Mode: Public / Elite (auto-detected)
Ask the user to confirm or adjust before proceeding.
Step 4: Execute Script
Run the screener script to build the URL and open Chrome:
python3 scripts/open_finviz_screener.py \
--filters "cap_small,fa_div_o3,fa_pe_u20,geo_usa" \
--view overview
# Theme-only screening (no --filters required)
python3 scripts/open_finviz_screener.py \
--themes "artificialintelligence,cybersecurity" \
--url-only
# Theme + sub-theme + filters combined
python3 scripts/open_finviz_screener.py \
--themes "artificialintelligence" \
--subthemes "aicloud,aicompute" \
--filters "cap_midover" \
--url-only
Script arguments:
--filters(optional): Comma-separated filter codes. Note:theme_*andsubtheme_*tokens are not allowed here — use--themes/--subthemesinstead.--themes(optional): Comma-separated theme slugs (e.g.,artificialintelligence,cybersecurity). Accepts bare slugs ortheme_-prefixed values.--subthemes(optional): Comma-separated sub-theme slugs (e.g.,aicloud,aicompute). Accepts bare slugs orsubtheme_-prefixed values.--elite: Force Elite mode (auto-detected from$FINVIZ_API_KEYif not set)--view: View type — overview, valuation, financial, technical, ownership, performance, custom--order: Sort order (e.g.,-marketcap,dividendyield,-change)--url-only: Print URL without opening browser
At least one of --filters, --themes, or --subthemes must be provided.
Step 5: Report Results
After opening the screener, report:
- The constructed URL
- Elite or Public mode used
- Summary of applied filters
- Suggested next steps (e.g., "Sort by dividend yield", "Switch to Financial view for detailed ratios")
Usage Recipes
Real-world screening patterns distilled from repeated use. Each recipe includes a starter filter set, recommended view, and tips for iterative refinement.
Recipe 1: High-Dividend Growth Stocks (Kanchi-Style)
Goal: High yield + dividend growth + earnings growth, excluding yield traps.
--filters "fa_div_3to8,fa_sales5years_pos,fa_eps5years_pos,fa_divgrowth_5ypos,fa_payoutratio_u60,geo_usa"
--view financial
| Filter Code | Purpose |
|---|---|
fa_div_3to8 | Yield 3-8% (caps high-yield traps) |
fa_sales5years_pos | Positive 5Y revenue growth |
fa_eps5years_pos | Positive 5Y EPS growth |
fa_divgrowth_5ypos | Positive 5Y dividend growth |
fa_payoutratio_u60 | Payout ratio < 60% (sustainability) |
geo_usa | US-listed stocks |
Iterative refinement: Start broad with fa_div_o3 → review results → add fa_div_3to8 to cap yield → add fa_payoutratio_u60 to exclude traps → switch to financial view for payout and growth columns.
Recipe 2: Minervini Trend Template + VCP
Goal: Stocks in a Stage 2 uptrend with volatility contraction (VCP setup).
--filters "ta_sma50_pa,ta_sma200_pa,ta_sma200_sb50,ta_highlow52w_0to25-bhx,ta_perf_26wup,sh_avgvol_o300,cap_midover"
--view technical
| Filter Code | Purpose |
|---|---|
ta_sma50_pa | Price above 50-day SMA |
ta_sma200_pa | Price above 200-day SMA |
ta_sma200_sb50 | 200 SMA below 50 SMA (uptrend) |
ta_highlow52w_0to25-bhx | Within 25% of 52W high |
ta_perf_26wup | Positive 26-week performance |
sh_avgvol_o300 | Avg volume > 300K |
cap_midover | Mid cap and above |
VCP tightening filters (add to narrow): ta_volatility_wo3,ta_highlow20d_b0to5h,sh_relvol_u1 — low weekly volatility, near 20-day high, below-average relative volume (contraction signal).
Recipe 3: Unfairly Sold-Off Growth Stocks
Goal: Fundamentally strong companies with recent sharp declines — potential mean reversion candidates.
--filters "fa_sales5years_o5,fa_eps5years_o10,fa_roe_o15,fa_salesqoq_pos,fa_epsqoq_pos,ta_perf_13wdown,ta_highlow52w_10to30-bhx,cap_large,sh_avgvol_o200"
--view overview
| Filter Code | Purpose |
|---|---|
fa_sales5years_o5 | 5Y sales growth > 5% |
fa_eps5years_o10 | 5Y EPS growth > 10% |
fa_roe_o15 | ROE > 15% |
fa_salesqoq_pos | Positive QoQ sales growth |
fa_epsqoq_pos | Positive QoQ EPS growth |
ta_perf_13wdown | Negative 13-week performance |
ta_highlow52w_10to30-bhx | 10-30% below 52W high |
cap_large | Large cap |
sh_avgvol_o200 | Avg volume > 200K |
After review: Switch to valuation view to check P/E and P/S for entry attractiveness.
Recipe 4: Turnaround Stocks
Goal: Companies with previously declining earnings now showing recovery — bottom-fishing with fundamental confirmation.
--filters "fa_eps5years_neg,fa_epsqoq_pos,fa_salesqoq_pos,ta_highlow52w_b30h,ta_perf_13wup,cap_smallover,sh_avgvol_o200"
--view performance
| Filter Code | Purpose |
|---|---|
fa_eps5years_neg | Negative 5Y EPS growth (prior decline) |
fa_epsqoq_pos | Positive QoQ EPS growth (recovery) |
fa_salesqoq_pos | Positive QoQ sales growth (recovery) |
ta_highlow52w_b30h | Within 30% of 52W high (not at bottom) |
ta_perf_13wup | Positive 13-week performance |
cap_smallover | Small cap and above |
sh_avgvol_o200 | Avg volume > 200K |
Recipe 5: Momentum Trade Candidates
Goal: Short-term momentum leaders near 52W highs with increasing volume.
--filters "ta_sma50_pa,ta_sma200_pa,ta_highlow52w_b0to3h,ta_perf_4wup,sh_relvol_o1.5,sh_avgvol_o1000,cap_midover"
--view technical
| Filter Code | Purpose |
|---|---|
ta_sma50_pa | Price above 50-day SMA |
ta_sma200_pa | Price above 200-day SMA |
ta_highlow52w_b0to3h | Within 3% of 52W high |
ta_perf_4wup | Positive 4-week performance |
sh_relvol_o1.5 | Relative volume > 1.5x |
sh_avgvol_o1000 | Avg volume > 1M |
cap_midover | Mid cap and above |
Recipe 6: Theme Screening (AI + Sub-theme Drill-Down)
Goal: Find mid-cap+ AI stocks focused on cloud infrastructure and compute acceleration.
--themes "artificialintelligence"
--subthemes "aicloud,aicompute"
--filters "cap_midover"
--view overview
| Type | Value | Purpose |
|---|---|---|
| Theme | artificialintelligence | AI theme universe |
| Sub-theme | aicloud | Cloud & Infrastructure vertical |
| Sub-theme | aicompute | Compute & Acceleration vertical |
| Filter | cap_midover | Mid cap and above |
Multi-theme example: --themes "artificialintelligence,cybersecurity" selects stocks tagged with either theme (OR logic via | grouping).
Tips: Iterative Refinement Pattern
Screening works best as a dialogue, not a one-shot query:
- Start broad — use 3-4 core filters to get an initial result set
- Review count — if too many results (>100), add tightening filters; if too few (<5), relax constraints
- Switch views — start with
overviewfor a quick scan, then switch tofinancialorvaluationfor deeper inspection - Layer in technicals — after confirming fundamental quality, add
ta_filters to time entries - Save and iterate — bookmark the URL, then adjust one filter at a time to understand its impact
Resources
references/finviz_screener_filters.md— Complete filter code reference with natural language keywords (includes industry code examples; full 142-code list is in the Industry Codes section)scripts/open_finviz_screener.py— URL builder and Chrome opener
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