//+------------------------------------------------------------------+ //| AMA_Calculator.mqh | //| VERSION 2.10: Optimized for incremental calculation. | //| Copyright 2025, xxxxxxxx | //+------------------------------------------------------------------+ #property copyright "Copyright 2025, xxxxxxxx" #include //+==================================================================+ //| CLASS 1: CAMACalculator (Base Class) | //+==================================================================+ class CAMACalculator { protected: int m_ama_period; int m_fast_period; int m_slow_period; //--- Persistent Buffer for Incremental Calculation double m_price[]; //--- Updated: Accepts start_index virtual bool PreparePriceSeries(int rates_total, int start_index, ENUM_APPLIED_PRICE price_type, const double &open[], const double &high[], const double &low[], const double &close[]); public: CAMACalculator(void) {}; virtual ~CAMACalculator(void) {}; bool Init(int ama_p, int fast_p, int slow_p); int GetPeriod(void) const { return m_ama_period; } //--- Updated: Accepts prev_calculated void Calculate(int rates_total, int prev_calculated, ENUM_APPLIED_PRICE price_type, const double &open[], const double &high[], const double &low[], const double &close[], double &ama_buffer[]); }; //+------------------------------------------------------------------+ //| Init | //+------------------------------------------------------------------+ bool CAMACalculator::Init(int ama_p, int fast_p, int slow_p) { m_ama_period = (ama_p < 1) ? 1 : ama_p; m_fast_period = (fast_p < 1) ? 1 : fast_p; m_slow_period = (slow_p < 1) ? 1 : slow_p; return true; } //+------------------------------------------------------------------+ //| Main Calculation (Optimized) | //+------------------------------------------------------------------+ void CAMACalculator::Calculate(int rates_total, int prev_calculated, ENUM_APPLIED_PRICE price_type, const double &open[], const double &high[], const double &low[], const double &close[], double &ama_buffer[]) { if(rates_total <= m_ama_period) return; //--- 1. Determine Start Index int start_index; if(prev_calculated == 0) start_index = 0; else start_index = prev_calculated - 1; //--- 2. Resize Buffer if(ArraySize(m_price) != rates_total) ArrayResize(m_price, rates_total); //--- 3. Prepare Price (Optimized) if(!PreparePriceSeries(rates_total, start_index, price_type, open, high, low, close)) return; //--- 4. Calculate AMA (Incremental Loop) double fast_sc = 2.0 / (m_fast_period + 1.0); double slow_sc = 2.0 / (m_slow_period + 1.0); int loop_start = MathMax(m_ama_period, start_index); for(int i = loop_start; i < rates_total; i++) { // --- Initialization Step --- if(i == m_ama_period) { ama_buffer[i] = m_price[i]; continue; } // --- Calculate Efficiency Ratio (ER) --- // We need m_price[i - m_ama_period], which is safe due to persistent buffer double direction = MathAbs(m_price[i] - m_price[i - m_ama_period]); double volatility = 0; for(int j = 0; j < m_ama_period; j++) { volatility += MathAbs(m_price[i - j] - m_price[i - j - 1]); } double er = (volatility > 0) ? direction / volatility : 0; // --- Calculate Scaled Smoothing Constant (SSC) --- double ssc = er * (fast_sc - slow_sc) + slow_sc; double ssc_sq = ssc * ssc; // --- Calculate Final AMA --- // Recursive calculation uses ama_buffer[i-1] which is persistent ama_buffer[i] = ama_buffer[i-1] + ssc_sq * (m_price[i] - ama_buffer[i-1]); } } //+------------------------------------------------------------------+ //| Prepare Price (Standard - Optimized) | //+------------------------------------------------------------------+ bool CAMACalculator::PreparePriceSeries(int rates_total, int start_index, ENUM_APPLIED_PRICE price_type, const double &open[], const double &high[], const double &low[], const double &close[]) { // Optimized copy loop for(int i = start_index; i < rates_total; i++) { switch(price_type) { case PRICE_CLOSE: m_price[i] = close[i]; break; case PRICE_OPEN: m_price[i] = open[i]; break; case PRICE_HIGH: m_price[i] = high[i]; break; case PRICE_LOW: m_price[i] = low[i]; break; case PRICE_MEDIAN: m_price[i] = (high[i]+low[i])/2.0; break; case PRICE_TYPICAL: m_price[i] = (high[i]+low[i]+close[i])/3.0; break; case PRICE_WEIGHTED: m_price[i] = (high[i]+low[i]+2*close[i])/4.0; break; default: m_price[i] = close[i]; break; } } return true; } //+==================================================================+ //| CLASS 2: CAMACalculator_HA (Heikin Ashi) | //+==================================================================+ class CAMACalculator_HA : public CAMACalculator { private: CHeikinAshi_Calculator m_ha_calculator; // Internal HA buffers double m_ha_open[], m_ha_high[], m_ha_low[], m_ha_close[]; protected: virtual bool PreparePriceSeries(int rates_total, int start_index, ENUM_APPLIED_PRICE price_type, const double &open[], const double &high[], const double &low[], const double &close[]) override; }; //+------------------------------------------------------------------+ //| Prepare Price (Heikin Ashi - Optimized) | //+------------------------------------------------------------------+ bool CAMACalculator_HA::PreparePriceSeries(int rates_total, int start_index, ENUM_APPLIED_PRICE price_type, const double &open[], const double &high[], const double &low[], const double &close[]) { // Resize internal HA buffers if(ArraySize(m_ha_open) != rates_total) { ArrayResize(m_ha_open, rates_total); ArrayResize(m_ha_high, rates_total); ArrayResize(m_ha_low, rates_total); ArrayResize(m_ha_close, rates_total); } //--- STRICT CALL: Use the optimized 10-param HA calculation m_ha_calculator.Calculate(rates_total, start_index, open, high, low, close, m_ha_open, m_ha_high, m_ha_low, m_ha_close); //--- Copy to m_price (Optimized loop) for(int i = start_index; i < rates_total; i++) { switch(price_type) { case PRICE_CLOSE: m_price[i] = m_ha_close[i]; break; case PRICE_OPEN: m_price[i] = m_ha_open[i]; break; case PRICE_HIGH: m_price[i] = m_ha_high[i]; break; case PRICE_LOW: m_price[i] = m_ha_low[i]; break; case PRICE_MEDIAN: m_price[i] = (m_ha_high[i]+m_ha_low[i])/2.0; break; case PRICE_TYPICAL: m_price[i] = (m_ha_high[i]+m_ha_low[i]+m_ha_close[i])/3.0; break; case PRICE_WEIGHTED: m_price[i] = (m_ha_high[i]+m_ha_low[i]+2*m_ha_close[i])/4.0; break; default: m_price[i] = m_ha_close[i]; break; } } return true; } //+------------------------------------------------------------------+