What is typically evaluated in the prediction-based anomaly detection methodology by Dynatrace?

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In the prediction-based anomaly detection methodology employed by Dynatrace, the evaluation of periodic traffic and load deviations that correlate to established patterns is crucial. This method relies on understanding the normal behavior of applications over time to identify when deviations occur that may signal potential issues.

By incorporating historical performance metrics, Dynatrace can establish baseline patterns of traffic and load. This baseline is essential for recognizing anomalies that might indicate performance degradation or other problems. If deviations from these established patterns happen during specific periods, it triggers alerts, enabling teams to investigate and address issues proactively before they escalate into significant problems.

Using this methodology allows organizations to ensure that they maintain optimal application performance and availability, as it combines predictive analytics with historical context to enhance operational readiness and responsiveness.

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