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Regression Analysis | CFR Solutions
Regression Analysis

Drivers Isolated, Impact Quantified

CFR Solutions builds regression models that isolate which variables actually move your outcome, controlling for the noise, so you know the real weight of each driver behind satisfaction, sales, or brand equity.

Analyst reviewing a regression scatter plot on screen Statistical model output displayed on a monitoring screen Laptop displaying a data trend analysis
Statistically Validated
Key Driver AnalysisLinear & Multiple RegressionLogistic RegressionShapley Value RegressionStructural Equation ModelingPredictive Modeling Key Driver AnalysisLinear & Multiple RegressionLogistic RegressionShapley Value RegressionStructural Equation ModelingPredictive Modeling
Analyst reviewing regression output on a dashboard
Close-up of a statistical model chart on a monitor
Who We Are

Every Driver Tested, Every Coefficient Checked

Variables are checked for multicollinearity before they ever enter a model, each coefficient is tested for significance rather than assumed, and the final model is validated against a hold-out sample before it's handed over.

Model Explanatory Power (R²)96%
Coefficient Significance Testing98%
Hold-Out Validation Accuracy95%
About Us
Our Services

Regression Models Built Around Your Question

Whether you're isolating a key driver or predicting an outcome, we match the model to what you're actually trying to explain.

Key Driver Analysis

Ranks the factors behind satisfaction or loyalty by how much each one actually moves the outcome.

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Logistic Regression

Models the probability of a yes/no outcome, such as purchase, churn, or conversion.

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Shapley Value Regression

Fairly splits credit for the outcome across correlated variables instead of overstating one.

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Structural Equation Modeling

Maps direct and indirect relationships across multiple linked variables at once.

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Predictive Modeling

Builds a model that forecasts a future outcome from current and historical data.

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