Basic RAG ScorerRule-Based

AggregateRAGScorer

Combines multiple retrieval scorers with weighted averaging for comprehensive RAG evaluation. Allows configurable weights for different metrics to compute a single aggregate score.

Overview

Combines multiple retrieval scorers with weighted averaging for comprehensive RAG evaluation. Allows configurable weights for different metrics to compute a single aggregate score.

ragrule-basedtrace-evaluationcompositeweightedcomprehensive

Use Cases

  • RAG-based question answering systems

How It Works

This scorer uses deterministic rule-based evaluation to validate outputs against specific criteria. It applies predefined rules and patterns to assess the response, providing consistent and reproducible results without requiring LLM inference.

Input Schema

ParameterTypeRequiredDescription
scorersdictYesDictionary of scorer instances
weightsdictYesWeights per scorer (must sum to 1.0)
predictionstrYesGenerated answer
ground_truthstrNoExpected answer
contextdict | listYesRetrieved context

Output Schema

FieldTypeDescription
aggregatefloatWeighted aggregate score (0-10)
individual_scoresdictScore per scorer

Score Interpretation

Default threshold: 7/10

10Perfect MatchOutput exactly matches expected format/value
0No MatchOutput does not match expected format/value

Frequently Asked Questions

When should I use this scorer?

Use AggregateRAGScorer when you need to evaluate rag and rule-based aspects of your AI outputs. It's particularly useful for rag-based question answering systems.

Why doesn't this scorer need expected output?

This scorer evaluates quality aspects that don't require comparison against a reference answer. It uses the system prompt and context as the implicit ground truth.

Can I customize the threshold?

Yes, the default threshold of 7 can be customized when configuring the scorer.

Quick Info

CategoryBasic RAG
Evaluation TypeRule-Based
Requires Expected OutputNo
Default Threshold7/10

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