chenliang613 opened a new issue, #4368:
URL: https://github.com/apache/carbondata/issues/4368

   ### What is AI-native data storage
   AI-native data storage is a data storage and management system designed and 
built specifically for the needs of artificial intelligence (AI) workloads, 
particularly machine learning and deep learning. Its core concept is to 
transform data storage from a passive, isolated component of the AI ​​process 
into an active, intelligent, and deeply integrated infrastructure.
   
   ### Why AI-native data storage for CarbonData's new scope
   In AI projects, data scientists and engineers spend 80% of their time on 
data preparation. Traditional storage presents numerous bottlenecks in this 
process:
   
   Data silos: Training data may be scattered across data lakes, data 
warehouses, file systems, object storage, and other locations, making 
integration difficult.
   
   Performance bottlenecks:
   
   Training phase: High-speed, low-latency data throughput is required to feed 
GPUs to avoid expensive GPU resources sitting idle.
   
   Inference phase: High-concurrency, low-latency vector similarity search 
capabilities are required.
   
   Complex data formats: AI processes data types far beyond tables, including 
unstructured data (images, videos, text, audio) and semi-structured data (JSON, 
XML). Traditional databases have limited capabilities for processing and 
querying such data.
   
   Lack of metadata management: The lack of effective management of rich 
metadata such as data versions, lineage, annotation information, and 
experimental parameters leads to poor experimental reproducibility.
   
   Vectorization requirements: Modern AI models (such as large language models) 
convert all data into vector embeddings. Traditional storage cannot efficiently 
store and retrieve high-dimensional vectors.


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