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---
name: ds-regression-evaluation
compatibility: opencode
completeness: 95
content-types:
- code
- guidance
- do-dont
- examples
description: '"Evaluates regression models using MSE, RMSE, MAE, MAPE, R-squared
and other metrics for assessing predictive accuracy"'
license: MIT
maturity: stable
metadata:
domain: coding
output-format: code
related-skills: ds-cross-validation, ds-linear-regression, ds-metrics-and-kpis
ds-time-series-forecasting ds-model-selection
role: implementation
scope: implementation
triggers: regression evaluation, MSE, RMSE, MAE, R-squared, regression metrics
how do i evaluate
archetypes:
- tactical
- generation
anti_triggers:
- brainstorming
- vague ideation
- code golf
- over-engineering
response_profile:
verbosity: low
directive_strength: high
abstraction_level: operational
version: "1.0.0"
---
# Regression Evaluation
Comprehensive guide to regression evaluation in machine learning and data science workflows.
## When to Use This Skill
- Solving real-world supervised learning problems
- Building machine learning pipelines with regression evaluation
- Implementing best practices for regression evaluation
- Optimizing model performance using regression evaluation techniques
- Learning industry-standard approaches to regression evaluation
## When NOT to Use This Skill
- When using pre-built libraries without understanding underlying concepts
- For toy problems that don't require regression evaluation rigor
- When domain expertise in specific problem requires different approach
- If your problem doesn't require the complexity this skill provides
## Purpose and Key Concepts
Regression Evaluation is a critical component of the machine learning workflow. This skill covers:
1. **Theoretical foundations** — Mathematical principles and statistical concepts
2. **Practical implementation** — Working code examples and patterns
3. **Common pitfalls** — Mistakes to avoid and how to recover from them
4. **Best practices** — Industry-standard approaches and optimization techniques
## Core Workflow
1. **Understand the problem** — Clearly define what you're solving for
2. **Select approach** — Choose the right technique for your data and constraints
3. **Implement solution** — Write clean, tested code following best practices
4. **Validate results** — Verify your implementation with tests and validation
5. **Optimize performance** — Improve efficiency and accuracy incrementally
## Implementation Patterns
### Pattern 1: Basic Regression Evaluation
```python
import numpy as np
import pandas as pd
from sklearn.linear_model import LinearRegression
from sklearn.metrics import mean_squared_error, mean_absolute_error, r2_score
from sklearn.model_selection import train_test_split
from typing import Dict, Tuple
def basic_regression_evaluation(X: np.ndarray, y: np.ndarray) -> Dict[str, float]:
"""Train a linear regression model and compute core evaluation metrics."""
if X.shape[0] != y.shape[0]:
raise ValueError("X and y must have the same number of samples")
if X.ndim != 2 or y.ndim != 1:
raise ValueError("X must be 2D array and y must be 1D array")
test_ratio: float = 0.2
X_train, X_test, y_train, y_test = train_test_split(
X, y, test_size=test_ratio, random_state=42
)
model = LinearRegression()
model.fit(X_train, y_train)
y_pred = model.predict(X_test)
metrics: Dict[str, float] = {
'mse': float(mean_squared_error(y_test, y_pred))
'rmse': float(np.sqrt(mean_squared_error(y_test, y_pred)))
'mae': float(mean_absolute_error(y_test, y_pred))
'r2': float(r2_score(y_test, y_pred))
}
return metrics
```
### Pattern 2: Production-Ready Regression Evaluation
```python
import logging
import numpy as np
import pandas as pd
from sklearn.ensemble import RandomForestRegressor
from sklearn.metrics import mean_squared_error, mean_absolute_error, r2_score
from typing import Any, Dict, Optional
logger = logging.getLogger(__name__)
class RegressionEvaluator:
"""Production-grade regression evaluation with comprehensive metrics and logging."""
def __init__(self, test_size: float = 0.2, random_state: int = 42) -> None:
self.test_size: float = test_size
self.random_state: int = random_state
self.model: Optional[RandomForestRegressor] = None
def evaluate(self, X: pd.DataFrame, y: pd.Series) -> Dict[str, Any]:
"""Evaluate regression performance on provided data."""
if X.empty or y.empty:
raise ValueError("Input data cannot be empty")
if X.shape[0] != y.shape[0]:
raise ValueError("X and y must have matching row counts")
logger.info("Starting regression evaluation pipeline")
X_train, X_test, y_train, y_test = self._split_data(X, y)
self.model = RandomForestRegressor(n_estimators=100, random_state=self.random_state)
self.model.fit(X_train, y_train)
y_pred = self.model.predict(X_test)
metrics: Dict[str, Any] = {
'mse': float(mean_squared_error(y_test, y_pred))
'rmse': float(np.sqrt(mean_squared_error(y_test, y_pred)))
'mae': float(mean_absolute_error(y_test, y_pred))
'r2': float(r2_score(y_test, y_pred))
'mape': float(np.mean(np.abs((y_test - y_pred) / y_test)) * 100)
}
logger.info(f"Evaluation complete. R2: {metrics['r2']:.4f}")
return metrics
def _split_data(self, X: pd.DataFrame, y: pd.Series) -> Tuple[pd.DataFrame, pd.DataFrame, pd.Series, pd.Series]:
"""Split data into training and testing sets."""
from sklearn.model_selection import train_test_split
return train_test_split(X, y, test_size=self.test_size, random_state=self.random_state)
```
### Pattern 3: BAD vs GOOD Evaluation Practices
**BAD:** Computing metrics on training data without validation, using hardcoded values, and ignoring dimension checks
```python
import pandas as pd
import numpy as np
from sklearn.linear_model import LinearRegression
from sklearn.metrics import r2_score
def bad_evaluation(X: pd.DataFrame, y: pd.Series) -> float:
"""Bad practice: no test split, hardcoded parameters, missing validation."""
model = LinearRegression()
model.fit(X, y)
y_pred = model.predict(X)
score = r2_score(y, y_pred)
return score # Returns overfit metric, no error handling, no type hints
```
**GOOD:** Proper train/test split with comprehensive metric reporting, explicit validation, and type hints
```python
import numpy as np
import pandas as pd
from sklearn.linear_model import LinearRegression
from sklearn.metrics import mean_squared_error, mean_absolute_error, r2_score
from sklearn.model_selection import train_test_split
from typing import Dict, Tuple
def good_evaluation(X: pd.DataFrame, y: pd.Series) -> Dict[str, float]:
"""Good practice: proper split, validation, type hints, and multiple metrics."""
if X.shape[0] != y.shape[0]:
raise ValueError("Dimension mismatch between features and targets")
if X.isnull().any().any() or y.isnull().any():
raise ValueError("Input data contains missing values")
test_ratio: float = 0.2
X_train, X_test, y_train, y_test = train_test_split(
X, y, test_size=test_ratio, random_state=42
)
model = LinearRegression()
model.fit(X_train, y_train)
y_pred = model.predict(X_test)
metrics: Dict[str, float] = {
'r2': float(r2_score(y_test, y_pred))
'rmse': float(np.sqrt(mean_squared_error(y_test, y_pred)))
'mae': float(mean_absolute_error(y_test, y_pred))
}
return metrics
```
## Best Practices
- ✅ Always validate your implementation on test data
- ✅ Document your assumptions and methodology
- ✅ Use version control for reproducibility
- ✅ Monitor performance metrics in production
- ✅ Periodically review and update your approach
- ✅ Test with edge cases and outliers
- ✅ Log all significant operations for debugging
- ✅ Adhere to SOLID principles to keep evaluation logic modular, testable, and maintainable
## Common Pitfalls
| Pitfall | Problem | Solution |
|
---
---
## Constraints
### MUST DO
- Validate all data preprocessing steps are fit-only on training data, never on validation or test sets
- Implement reproducible pipelines with fixed random seeds and deterministic operations where possible
- Report model performance with confidence intervals via bootstrapping or cross-validation across multiple runs
- Log all experiments with parameters, metrics, and artifacts using MLflow or equivalent tracking system
### MUST NOT DO
- Do not evaluate a model on the same data used for training — always hold out a proper test set
- Avoid overfitting to the validation set by limiting hyperparameter search iterations
- Never use features that can only be computed at inference time (look-ahead bias)
- Do not report single-run accuracy without statistical significance testing or error bars
## Live References
> Authoritative documentation links for this skill's domain. The model follows markdown links at load time to resolve external references and inline content.
- [Scikit-learn Model Evaluation — Regression Metrics](https://scikit-learn.org/stable/modules/model_evaluation.html#regression-metrics)
- [Mean Squared Error, R² — Scikit-learn docs](https://scikit-learn.org/stable/modules/model_evaluation.html#mean-squared-error)
- [Residual Analysis (NIST Handbook)](https://www.itl.nist.gov/div898/handbook/tq/section4/tq_3.htm)
- [Regression Diagnostics — Wikipedia](https://en.wikipedia.org/wiki/Regression_analysis#Diagnostics)
- [Cross-Validation for Regression (Kaggle Learn)](https://www.kaggle.com/learn/cross-validation)