liquidation heatmap interpreter

    1

    Interpret liquidation heatmaps to identify volatility zones, stop-hunt risks, and liquidity-driven price magnets.

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    Works with the AI tools you already use

    CClaude CodeCCursorCCodex CLIGGitHub CopilotGGemini CLI+17 more

    See it in action

    You say

    I'm looking at a BTC heatmap. There is a massive cluster at $68,500, but the trend is currently bearish on the 4H. Price is at $66,000. How should I view this?

    Your agent does

    The $68.5k cluster is a distal magnet. Since the trend is bearish, this cluster represents 'trapped liquidity' rather than an immediate target. Do not long into it. If price rallies there, expect high volatility and a potential sharp rejection as shorts are liquidated and absorbed by limit sellers.

    What you get

    Identify zones where forced liquidations will likely amplify market volatility.Adjust stop-loss placement to avoid obvious liquidity wicks and stop hunts.Determine if a cluster is acting as a price magnet or a potential reversal zone.Build a probabilistic framework for price action around high-leverage levels.

    About this skill

    The problem

    Traders often treat liquidation clusters as guaranteed price targets, leading to premature entries or holding losers into stop hunts. Relying on raw heatmap data without a probabilistic framework results in getting trapped by volatility wicks and cascading liquidations.

    What it does

    • Identifies high-leverage clusters that act as price magnets or rejection zones.
    • Classifies liquidity zones into proximal, magnet, trapped, and distal categories for risk assessment.
    • Provides a framework for adjusting position sizing and stop placement relative to liquidity cascades.
    • Analyzes the confluence between liquidation levels and market structure to filter noise from significant zones.

    Why this beats prompting it yourself

    Generic LLM prompts often interpret heatmaps as simple support and resistance. This skill implements a disciplined risk-first methodology that treats liquidity as a volatility map rather than a predictive crystal ball, preventing the "exact target" fallacy.

    Use cases

    • Setting partial profit-taking zones near high-density liquidation clusters.
    • Identifying potential stop-hunt zones to avoid placing stops in high-liquidity wicks.
    • Gauging whether a breakout has sufficient liquidity "fuel" to continue or if it is a trap.
    • Analyzing market bias by comparing the weight of liquidity above versus below current price.

    Known limitations

    Requires external access to liquidation heatmap data (e.g., Coinglass, Kingfisher). Does not provide real-time price feeds or automated execution.

    How to install

    Drop the file into your AI Agent. Works with Claude, Cursor, ChatGPT, and 20+ more.

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