PHPMem v2.0.1

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1.6.45
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7 days 18 hours 9 minutes 3 seconds

Memory

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512MB
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8,22MB (1.61%)
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503,78MB

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6 300
Total (since start)
11 098
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299
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0
llm:549ac1381631c4d5cba1f88f04697aea1ffc13adfba55db950cfff367d15f685
TTL 6 days 3 hours 25 minutes 12 seconds Size 1,82KB Export
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{
    "action": "final",
    "content": "Based on the dataset overview, this dataset represents a **data intelligence telemetry platform** designed to monitor, catalog, and analyze data workloads. It tracks everything from column-level metadata in external systems to the internal execution logs and AI model invocations used to profile that data.\n\nBecause this is a multi-table relational database (comprising 43 tables and over 2 million rows), there is no single definition for a \"row.\" Instead, a single row represents a specific entity or event depending on the table it belongs to. The dataset is structured across three main operational layers:\n\n*   **Metadata Catalog (`columns_catalog`, `tables_catalog`, `datasets`):** A single row here represents an inventoried data asset. For example, a row in `columns_catalog` (which makes up 75.3% of the dataset with over 1.5 million rows) represents a single profiled column from a monitored external dataset.\n*   **Execution Layer (`job_logs`, `analysis_runs`, `batches`):** A single row in these tables represents a processing activity or event. For instance, a row in `job_logs` (303,822 rows) is a granular execution event or log entry.\n*   **Intelligence Layer (`llm_calls`, `analysis_run_llm_usage`, `classification_candidates`):** A single row here captures an AI-assisted operation. A row in `llm_calls` (49,360 rows) represents a single invocation of a Large Language Model used to enrich metadata or profile data.\n\n**Note on Data Integration:** The dataset exists as a collection of distinct tables that can be joined to trace the full lifecycle of data profiling—from the initial batch job down to the specific LLM calls and the resulting column classifications."
}