Compare - Holoclean VS Griffin

Here’s the difference between Holoclean and Griffin. The comparison is based on pricing, deployment, business model, and other important factors.

About Holoclean

HoloClean is a statistical inference engine to impute, clean, and enrich data. As a weakly supervised machine learning system, HoloClean leverages available quality rules, value correlations, reference data, and multiple other signals to build a probabilistic model that accurately captures the data generation process, and uses the model in a variety of data curation tasks. HoloClean allows data practitioners and scientists to save the enormous time they spend in building piecemeal cleaning solutions, and instead, effectively communicate their domain knowledge in a declarative way to enable accurate analytics, predictions, and insights from noisy, incomplete, and erroneous data.

About Griffin

Apache Griffin is a model-driven data quality service platform where you can examine your data on-demand. It provides a standard process to define data quality measures, executions and reports, allowing those examinations across multiple data systems. When you don't trust your data, or concern that poorly controlled data can negatively impact critical decision, you can utilize Apache Griffin to ensure data quality.

Comparison Table

Overview
CategoriesData Quality MonitoringData Quality Monitoring
StageEarly StageMid Stage
Target SegmentMid sizeEnterprise, Mid size
DeploymentOn PremOn Prem
Business ModelCommercialOpen Source
PricingFreemiumFreemium
LocationWaterloo, CanadaUS
Companies using it
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