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Building a population of models that trade crypto and mutate iteratively

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NeuroEvolution BTC Trader

The goal of this project was to create a model that would trade on technicals through neuroevolution. The initial population is built given a specified network topology and assigned random weights. For each generation, these weights are randomly mutated and each network is assigned a fitness value based on its performance. A pooling algorithm is then used to select models for the next generation and the process is repeated. Models with a higher fitness tend to make it to the next generation where their weights are mutated and ideally create a higher performing generation.

See python branch for original implementation

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Building a population of models that trade crypto and mutate iteratively

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