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Apply correct processors/syntax to process individual records in a collection using For Each scopes, and predict outcomes
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Apply correct processors/syntax to process individual records in a collection using batch scopes, and predict outcomes
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Predict how batch block size and concurrency settings affect batch job throughput.
Learn this conceptApply correct processors/syntax to process individual records in a collection using async scopes, and predict outcomes
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Apply correct processors/syntax to process individual records in a collection using DB listeners, and predict outcomes
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Apply correct processors/syntax to process individual records in a collection using messaging queues, and predict outcomes
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Apply correct processors/syntax to persist data between flow executions
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For Each and Batch Processing both iterate over collections, but they handle scale, parallelism, and failures differently. For Each processes items sequentially in memory, making it suitable for small collections where variable state must persist. Batch Processing splits large datasets into individual records processed across multiple threads, providing resilience and memory efficiency for heavy workloads.