Oil Price Trackers Inspired by Immune Memory

Published: 01 Jan 2010, Last Modified: 05 Feb 2025CoRR 2010EveryoneRevisionsBibTeXCC BY-SA 4.0
Abstract: We outline initial concepts for an immune inspired algorithm to evaluate and predict oil price time series data. The proposed solution evolves a short term pool of trackers dynamically, with each member attempting to map trends and anticipate future price movements. Successful trackers feed into a long term memory pool that can generalise across repeating trend patterns. The resulting sequence of trackers, ordered in time, can be used as a forecasting tool. Examination of the pool of evolving trackers also provides valuable insight into the properties of the crude oil market.
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