alphaear-signal-tracker

Track finance investment signal evolution and update logic based on new finance market information. Use when monitoring finance signals and determining if th...

zhouzhonglu8-png

@zhouzhonglu8-png

What This Skill Does

Tracks how new market information affects existing investment signals, classifying them as strengthened, weakened, falsified, or unchanged. It uses a structured workflow of research, analysis, and tracking to update signal confidence and intensity.

Replaces manual signal monitoring and subjective judgment by providing a systematic, repeatable process to evaluate how breaking news and price changes impact your investment theses.

When to Use It

  • Assess whether a recent earnings report strengthens or weakens your buy signal for a stock
  • Determine if a macroeconomic announcement falsifies your existing sector rotation signal
  • Update signal confidence after a major price movement in a tracked asset
  • Evaluate how a regulatory change impacts the thesis behind your active investment signal
  • Re-evaluate a signal after a competitor's product launch or industry disruption

Install

$ openclaw skills install @zhouzhonglu8-png/alphaear-signal-tracker

AlphaEar Signal Tracker Skill

Overview

This skill provides logic to track and update investment signals. It assesses how new market information impacts existing signals (Strengthened, Weakened, Falsified, or Unchanged).

Capabilities

1. Track Signal Evolution

1. Track Signal Evolution (Agentic Workflow)

YOU (the Agent) are the Tracker. Use the prompts in references/PROMPTS.md.

Workflow:

  1. Research: Use FinResearcher Prompt to gather facts/price for a signal.
  2. Analyze: Use FinAnalyst Prompt to generate the initial InvestmentSignal.
  3. Track: For existing signals, use Signal Tracking Prompt to assess evolution (Strengthened/Weakened/Falsified) based on new info.

Tools:

  • Use alphaear-search and alphaear-stock skills to gather the necessary data.
  • Use scripts/fin_agent.py helper _sanitize_signal_output if needing to clean JSON.

Key Logic:

  • Input: Existing Signal State + New Information (News/Price).
  • Process:
    1. Compare new info with signal thesis.
    2. Determine impact direction (Positive/Negative/Neutral).
    3. Update confidence and intensity.
  • Output: Updated Signal.

Example Usage (Conceptual):

# This skill is currently a pattern extracted from FinAgent.
# In a future refactor, it should be a standalone utility class.
# For now, refer to `scripts/fin_agent.py`'s `track_signal` method implementation.

Dependencies

  • agno (Agent framework)
  • sqlite3 (built-in)

Ensure DatabaseManager is initialized correctly.

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