Guardrails AI is a cloud-based platform that enables organizations to automate and manage their data quality, data governance, and data compliance efforts. It uses AI-powered algorithms to identify and remediate data quality issues, and provides real-time data governance and compliance reporting. The platform supports various data...
Real-time data quality monitoring and alerting for instant issue detection.
Automated data profiling and validation to ensure data accuracy and completeness.
Machine learning-based anomaly detection for identifying unusual data patterns.
Customizable dashboards and reporting for data quality metrics and trends.
Collaborative workflows and task management for streamlined data quality operations.
Integration with popular data platforms and tools for seamless data quality management.
How does Guardrails AI validate LLM outputs?
Guardrails AI uses validatorspre-built measures of specific types of risksthat can be combined into input and output guards. These validators intercept the inputs and outputs of LLMs to ensure they meet defined quality criteria.
What is Guardrails AI?
Guardrails AI is a Python framework that helps build reliable AI applications by running input/output guards in your application to detect, quantify, and mitigate specific types of risks. It also assists in generating structured data from LLMs
Can I host Guardrails as its own server?
Yes, starting from version 0.5.0, you can run Guardrails as a server using the guardrails-ai package. This allows for features like OpenAI SDK-compatible endpoints, remote validator executions, and server-side support of custom functions.
What are validators, and where can I find them?
Validators are components that check LLM outputs against specific criteria. You can find a variety of validators on the Guardrails Hub, which is a collection of pre-built measures for different use cases like chatbots, customer support, etc.
How does Guardrails impact my LLM app's latency?
Guardrails aims to add less than 100ms to each LLM request. Guard execution time is minimal, while validation execution time varies depending on the validator used. Recommendations to optimize performance include using streaming, hosting validator models on GPUs, and running Guardrails on a dedicated server.
How can I get started with Guardrails AI?
To get started, install the guardrails-ai package using pip, generate an API key from the Guardrails Hub, and configure the CLI. You can then install validators and integrate Guardrails into your application.
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