Kanchi Dividend Review Monitor

作者 tradermontyeab8d5cb97b9無授權條款2.9K 個星標收錄於 2026年10月8日更新於 2026年10月8日儲存庫3 天前更新

Monitor dividend portfolios with Kanchi-style forced-review triggers (T1-T5) and convert anomalies into OK/WARN/REVIEW states without auto-selling. Use when users ask for 減配検知, 8-Kガバナンス監視, 配当安全性モニタリング, REVIEWキュー自動化, or periodic dividend risk checks.

AI 產生的概覽

偵測投資組合中的股利風險異常,並將其歸入 OK/WARN/REVIEW 人工複核佇列。

功能
此技能會對正規化後的股利持股 JSON 資料集執行本機規則引擎,依據 T1-T5 風險觸發條件將每檔股票對應為 OK、WARN 或 REVIEW 狀態。它會產出帶日期的佇列 JSON(含彙總計數與逐檔股票發現)、用於快速分診的 Markdown 儀表板,以及需要立即處理的股票的人工複核工單。它明確不自動賣出,自動化僅用於異常偵測。
適用情境
適用於對股利持股進行每日、每週或每季的異常偵測,包括減配偵測、8-K 與治理關鍵字掃描,以及覆蓋率或結構性衰退檢查。適合需要在人工決策前取得確定性 OK/WARN/REVIEW 輸出的工作流程。
執行需求
需要 Python 3 執行隨附指令碼 scripts/build_review_queue.py,以及 requirements.txt 中列出的相依套件。輸入必須是符合 references/input-schema.md 的正規化 JSON,至少包含 ticker、instrument_type 以及最新/前一期定期股利欄位。即時 SEC 文件擷取需要合規的 User-Agent、快取、節流,以及對 SEC 端點的網路存取。

Kanchi Dividend Review Monitor

Overview

Detect abnormal dividend-risk signals and route them into a human review queue. Treat automation as anomaly detection, not automated trade execution.

When to Use

Use this skill when the user needs:

  • Daily/weekly/quarterly anomaly detection for dividend holdings.
  • Forced review queueing for T1-T5 risk triggers.
  • 8-K/governance keyword scans tied to portfolio tickers.
  • Deterministic OK/WARN/REVIEW output before manual decision making.

Prerequisites

Provide normalized input JSON that follows:

  • references/input-schema.md

If upstream data is unavailable, provide at least:

  • ticker
  • instrument_type
  • dividend.latest_regular
  • dividend.prior_regular

Non-Negotiable Rule

Never auto-sell based only on machine triggers. Always create WARN or REVIEW evidence for human confirmation first.

State Machine

  • OK: no action.
  • WARN: add to next check cycle and pause optional adds.
  • REVIEW: immediate human review ticket + pause adds.

Use references/trigger-matrix.md for trigger thresholds and actions.

Flat-dividend cadence caveat

When T6 is driven only by freeze_flag / latest regular dividend equal to prior regular dividend, treat it as a WARN for cadence confirmation, not as proof of dividend deterioration. Many quarterly dividend payers repeat the same dividend for several quarters between annual raise cycles. In reports, phrase this as “confirm next dividend-growth cadence / pause optional adds until checked” and avoid implying a cut or broken thesis unless T1/T2/T3/T4/T5 evidence also supports escalation.

Monitoring Cadence

  • Daily:
    • T1 dividend cut/suspension.
    • T4 SEC filing keyword scan (8-K oriented).
  • Weekly:
    • T3 proxy credit stress checks.
  • Quarterly:
    • T2 coverage deterioration and T5 structural decline scoring.

Workflow

1) Normalize input dataset

Collect per ticker fields in one JSON document:

  • Dividend points (latest regular, prior regular, missing/zero flag).
  • Coverage fields (FCF or FFO or NII, dividends paid, ratio history).
  • Balance-sheet trend fields (net debt, interest coverage, buybacks/dividends).
  • Filing text snippets (especially recent 8-K or equivalent alert text).
  • Operations trend fields (revenue CAGR, margin trend, guidance trend).

Use references/input-schema.md for field definitions and sample payload.

2) Run the rule engine

Run:

bash
python3 skills/kanchi-dividend-review-monitor/scripts/build_review_queue.py \  --input /path/to/monitor_input.json \  --output-dir reports/

The script maps each ticker to OK/WARN/REVIEW based on T1-T5. Output files are saved to the specified directory with dated filenames (e.g., review_queue_20260227.json and .md).

3) Prioritize and deduplicate

If multiple triggers fire:

  • Keep all findings for audit trail.
  • Escalate final state to highest severity only.
  • Store trigger reasons as single-line evidence.

4) Generate human review tickets

For each REVIEW ticker, include:

  • Trigger IDs and evidence.
  • Suspected failure mode.
  • Required manual checks for next decision.

Use references/review-ticket-template.md output format.

SEC Filing Guardrail

When implementing live SEC fetchers:

  • Include a compliant User-Agent string (name + email).
  • Use caching and throttling.
  • Respect SEC fair-access guidance.
  • In scheduled portfolio reviews where upstream filing snippets are empty, use SEC company_tickers.json plus https://data.sec.gov/submissions/CIK##########.json to enumerate recent 8-K / 8-K/A filings for each holding, then scan primary filing documents for the T4 keyword family (Item 4.02, non-reliance, restatement, material weakness, SEC investigation, subpoena, going concern, auditor resignation, internal control). Record the scan window, recent 8-K count, and whether hits were found. Treat "no keyword hits" as a narrow T4 scan result, not a full governance clearance.

Output Contract

Always return:

  1. Queue JSON with summary counts and ticker-level findings.
  2. Markdown dashboard for quick triage.
  3. List of immediate REVIEW tickets.

Multi-Skill Handoff

  • Consume ticker universe and baseline assumptions from kanchi-dividend-sop.
  • Feed REVIEW results back to kanchi-dividend-sop for re-underwriting and position-size review.
  • Share account-type context with kanchi-dividend-us-tax-accounting when risk events imply account relocation decisions.

Resources

  • scripts/build_review_queue.py: local rule engine for T1-T5.
  • scripts/tests/test_build_review_queue.py: unit tests for T1-T5 and report rendering.
  • references/trigger-matrix.md: trigger definitions, cadence, and actions.
  • references/input-schema.md: normalized input schema and sample JSON.
  • references/review-ticket-template.md: standardized manual-review ticket layout.

來源與署名

來源:tradermonty/claude-trading-skills位於skills/kanchi-dividend-review-monitor提交eab8d5c

授權條款: 無授權條款

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