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162
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MapReduce

Parallel programming model for processing large datasets on clusters, dividing processing into two main phases: Map for filtering and transforming, and Reduce for aggregating results.

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Lambda Architecture

Data processing architecture combining a batch path for comprehensive analysis and a speed path for real-time results, with a unified service layer to merge both views.

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Kappa Architecture

Simplification of Lambda architecture using only a stream processing pipeline, where data is processed in real-time and historical queries are satisfied by replaying events.

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Batch Processing

Processing mode where data is collected and processed in batches at predefined intervals, optimized for throughput rather than latency, typical of traditional ETL analyses.

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Stream Processing

Continuous processing of data in motion as it is generated, enabling real-time analysis with minimal latency between capture and processing.

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Distributed File System

File system storing data across multiple servers while appearing as a single system to users, ensuring replication and fault tolerance for reliability.

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HDFS

Hadoop Distributed File System, distributed file system designed to store petabytes of data on standard hardware with high fault tolerance through block replication.

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YARN

Yet Another Resource Negotiator, Hadoop resource manager separating data processing from resource management, enabling execution of multiple frameworks on the same cluster.

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RDD

Resilient Distributed Dataset, fundamental data structure of Spark representing an immutable and partitioned collection of objects that can be computed in parallel with automatic fault tolerance.

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Data Locality

Distributed computing principle where tasks are executed on nodes containing the necessary data, minimizing network transfer and significantly improving performance.

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Speculative Execution

Fault tolerance mechanism launching copies of slow tasks on other nodes, using the first completed result to reduce the impact of faulty or overloaded nodes.

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DAG

Directed Acyclic Graph, representation of the Spark workflow where transformations are organized in a directed acyclic graph, optimizing parallel execution of steps.

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Fault Tolerance

Ability of a distributed system to continue functioning correctly in case of component failures, typically through redundancy, replication, and automatic recovery mechanisms.

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Consistency Model

Contract defining data consistency guarantees in a distributed system, ranging from strong consistency to eventual consistency based on application needs.

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Combiner

MapReduce optimization function executed locally on each mapper to reduce the volume of data transferred during shuffle, applying pre-aggregation before the reduce phase.

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