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Conditional-range High/Low adoptive-MA Crossover Strategy

Developed from the doctoral research of Abu-Kadunagra at ****** University on topic of Digital Finance and Crypto in Australia, this strategy implements a "Campaign-Based Adaptive Execution" framework. It moves beyond simple entries and exits by treating each market engagement as a multi-phase campaign with distinct operational states. The system intelligently identifies cyclical turning points, then employs a feedback-driven approach to capital allocation—reinforcing successful momentum with pyramiding while deploying controlled defensive averaging during temporary setbacks. By anchoring its exit mechanism to dynamically updated market structure rather than static profit targets, the algorithm seeks to capture cyclical momentum while maintaining disciplined risk parameters. This research-driven approach represents an evolution toward state-aware algorithmic systems that adapt their tactics in real-time based on market phase recognition.
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此脚本以闭源形式发布。 但是,您可以自由使用,没有任何限制 — 了解更多信息这里。
Kadunagra
Email: kadunagra@gmail.com
Whatsapp: +923133232427
Email: kadunagra@gmail.com
Whatsapp: +923133232427
免责声明
这些信息和出版物并非旨在提供,也不构成TradingView提供或认可的任何形式的财务、投资、交易或其他类型的建议或推荐。请阅读使用条款了解更多信息。
受保护脚本
此脚本以闭源形式发布。 但是,您可以自由使用,没有任何限制 — 了解更多信息这里。
Kadunagra
Email: kadunagra@gmail.com
Whatsapp: +923133232427
Email: kadunagra@gmail.com
Whatsapp: +923133232427
免责声明
这些信息和出版物并非旨在提供,也不构成TradingView提供或认可的任何形式的财务、投资、交易或其他类型的建议或推荐。请阅读使用条款了解更多信息。