Fractal-based Algorithm (FBA, 2017) tackles continuous optimization by building a self-similar, hierarchical partition of the search space. Instead of sampling uniformly, it repeatedly splits regions and allocates work where good solutions cluster, balancing global exploration with local refinement. The workflow: generate an initial population, keep the best fraction of points, estimate each subspace’s “potential” by counting how many strong points fall inside, then mark the top-ranked regions and subdivide them. A small share of mutated points injects randomness to reduce stagnation. The MT5 implementation (C_AO_FBA) models subspaces with bounds, hierarchy level, parent links, and a normalized rank. New populations are generated proportionally to subspace ranks, with safeguards for high dimensions and a hard cap on subspace count to control resources. #MQL5 #MT5 #algorithm #Strategy https://t.co/IlMxiJZl1V

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