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The Alpha Data Platform incorporates neural networks trained across multiple data domains — including reference data, pricing, and corporate actions — to detect anomalies. According to State Street, this approach reduced false positive data exception alerts dramatically compared to traditional rules-based validation: one cited comparison found that rules-based methods flagged over 31,000 exceptions in six months (of which only 250 were genuine), while the neural network identified 4,000 exceptions and still caught 100% of true exceptions. The system escalates suspicious records to human analysts for validation and remediation.
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