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model-index:
- name: Cloud Service RAG Model
results:
- task:
type: text-generation
dataset:
name: rag_contents
type: pricing_info
metrics:
- type: custom
value: 85.0
name: Retrieval Accuracy
- task:
type: retrieval-augmented generation (RAG)
dataset:
name: pricing_info
type: custom
metrics:
- type: custom
value: 75
name: Pricing Retrieval Accuracy
---
# βοΈ Cloud Cents RAG Model βοΈ
## π Model Description
This model is a fine-tuned GPT-2 model designed to answer cloud-related questions about AWS, Azure, GCP, and other cloud platforms. It uses **Retrieval-Augmented Generation (RAG)** to combine document retrieval with text generation, leveraging cloud-related documents and real-time pricing information.
## π Intended Use
- π Cloud service comparisons (e.g., AWS vs Azure)
- π° Real-time cloud pricing queries
- π General information about cloud platforms and services
## π§ Pipeline
`text-generation` with `retrieval-augmented generation (RAG)`
- π Document retrieval from `rag_contents` and `pricing_info`
- βοΈ Text generation using fine-tuned GPT-2
## π Datasets
- **rag_contents**: Contains cloud-related documents from sources such as AWS, Azure, GCP.
- **pricing_info**: Provides real-time pricing details for cloud services (e.g., EC2, Blob Storage, Container Registry).
## π Metrics
- **Perplexity**: Evaluated for fluency of text generation.
- **BLEU**: Used for measuring the accuracy of generated answers.
- **Retrieval Accuracy**: Custom metric for FAISS-based document retrieval.
## β οΈ Limitations
- π The model may not always retrieve the most up-to-date information about cloud services.
- π The retrieval and generation quality is based on the documents stored in the `rag_contents` table.
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