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Stream Clustering

A set of techniques aimed at partitioning data that arrives continuously and potentially infinitely, in real-time and with limited resources.

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Macro-cluster

A stable, long-term representation of a cluster, often derived from the merging or evolution of micro-clusters to capture persistent trends in the stream.

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Landmark Window

A memory model that processes all data from a fixed starting point in time, useful for analyzing evolution since a landmark event.

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Density-Based Stream Clustering

A clustering approach that identifies dense regions of data points in a stream, capable of handling arbitrarily shaped clusters and detecting noise.

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DBSTREAM Algorithm

A density-based stream clustering algorithm that uses dense grids and micro-clusters for efficient memory management and rapid drift detection.

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Density Factor

A metric used in some stream clustering algorithms to evaluate the density of a micro-cluster, influencing its creation, merging, or removal.

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Decaying Weight

A mechanism that assigns decreasing importance to older data points, allowing the model to focus on recent trends in the stream.

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Online Clustering

A phase of the process where each new data point is processed and assigned to a micro-cluster incrementally, without requiring the entire dataset.

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Offline Clustering

Optional phase that generates the final macro-clusters from existing micro-clusters, often on user demand for analysis at a specific point in time.

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Dynamic Grid

Spatial data structure that adapts by dividing or merging cells to track the evolution of data distribution in a stream, optimizing memory usage.

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Stream Anomaly Detection

Process integrated into stream clustering that identifies data points not belonging to any dense cluster, flagging them as anomalies or noise.

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Cluster Synopsis

Compact representation of a cluster (or a micro-cluster) containing essential statistics such as center, radius, and weight, enabling efficient calculations.

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DenStream Algorithm

Density-based stream clustering algorithm that distinguishes potential micro-clusters from core micro-clusters to model emerging and stable clusters.

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Time Horizon

Parameter defining the relevance period of data in a stream clustering model, influencing the speed at which the model forgets old information.

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