Skills Agentes

Shap

Explica y audita predicciones de machine learning con SHAP: selección de explainers y maskers, cálculo y validación de atribuciones, explicaciones multisalida y visualizaciones SHAP locales o globales.

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56

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el mes pasado

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últimos 90 días

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60 tok en reposo

Paquete
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Instalar

Funciona con cualquier agente que lea SKILL.md

npx -y skills add K-Dense-AI/scientific-agent-skills --skill shap --agent claude-code

Se instala solo en este repositorio.

Qué hace

  • Selecciona el explainer y masker de SHAP adecuados (Tree, Linear, Exact, Permutation, Partition, Deep, Kernel)
  • Calcula explicaciones como objetos shap.Explanation y valida la aditividad frente a la salida real del modelo
  • Gestiona explicaciones multisalida seleccionando el índice de clase o salida antes de graficar
  • Genera visualizaciones locales y globales (beeswarm, waterfall, bar, heatmap, scatter, texto, imagen)
  • Guía la solución de problemas de aditividad, formas de array y compatibilidad de versiones

Úsalo cuando

  • Explicar cómo un modelo predictivo ya entrenado y evaluado mapea entradas a salidas
  • Elegir el explainer o masker apropiado para árboles, modelos lineales, texto, imágenes o modelos generales
  • Producir gráficos SHAP locales (waterfall) o globales (beeswarm, bar) de atribución de características
  • Comparar cohortes o analizar errores usando atribuciones SHAP

No lo uses cuando

  • Usar SHAP como sustituto de la validación predictiva del modelo
  • Tratar las atribuciones SHAP como prueba de causalidad, equidad o mecanismo científico

Qué lo activa

Di cualquiera de estas frases y el agente debería cargar este skill.

  • Explica las predicciones de este RandomForestClassifier con TreeExplainer
  • Genera un beeswarm plot con las atribuciones SHAP globales del modelo
  • Calcula el waterfall plot para esta predicción individual
  • Compara las atribuciones SHAP entre estas dos cohortes

SKILL.md

En inglés

SHAP

Use SHAP to describe how a fitted predictive model maps inputs to outputs. Work from the modern shap.Explanation API, make the explained output and background distribution explicit, and validate every explanation before interpreting it.

This skill is aligned with SHAP 0.52.0 (released 2026-05-28). That release requires Python 3.12 or newer.

Operating Rules

  1. Explain a fixed, evaluated model; do not use SHAP as a substitute for predictive validation.
  2. Use held-out or clearly labeled analysis rows for explanations. Choose background rows only from an appropriate training or reference population.
  3. State the explained output: regression value, raw margin, probability, log loss, logit, or another model method.
  4. Keep explanations as shap.Explanation objects. Call explainer(X); use .shap_values(X) only when maintaining legacy code.
  5. For multi-output models, select one output before using tabular plots: explanation[..., output_index].
  6. Check base_values + values.sum(...) against the exact model output being explained.
  7. Treat SHAP as a description of model behavior under a masking/background choice. It does not establish causality, fairness, recourse, or scientific mechanism.
  8. Never silence an additivity failure until input shape, preprocessing, model version, output space, and row ordering have been checked.
  9. Do not load untrusted pickle, joblib, model, or explainer artifacts; those formats can execute code during deserialization.

Install

Create an isolated environment and pin the documented release:

uv venv --python 3.12
source .venv/bin/activate
uv pip install "shap[plots]==0.52.0"

shap[plots] installs the plotting dependencies. Add the fitted model's package at a version compatible with the project. For older Python compatibility, read references/migration.md instead of silently installing a different SHAP release.

Confirm the environment before debugging an API mismatch:

import platform
import shap

print("Python:", platform.python_version())
print("SHAP:", shap.__version__)

Standard Workflow

1. Define the explanation target

Record:

  • model and preprocessing version;
  • exact callable or model method being explained;
  • output name/index and units;
  • evaluation rows;
  • background/reference population;
  • masker and explainer algorithm;
  • SHAP and model-library versions.

For classifiers, decide whether the task needs raw margins or probabilities. Defaults differ by model family; never infer units from the plot color or sign.

2. Select an explainer and masker

Start with shap.Explainer(model, masker) when automatic dispatch is sufficient. Instantiate a specialized explainer when its assumptions or output controls matter.

Situation Preferred choice Important constraint
Supported tree ensemble TreeExplainer model_output="probability" and "log_loss" require interventional masking and background data
Linear model LinearExplainer The masker determines interventional versus correlation-aware behavior
Small feature space ExactExplainer Cost grows quickly with unconstrained feature count
General tabular callable PermutationExplainer Budget at least one full forward/reverse permutation
Hierarchical feature groups, text, or image PartitionExplainer The partition tree changes the cooperative game
Differentiable neural network DeepExplainer or GradientExplainer Framework support, output shape, and background choice require testing
Legacy Kernel SHAP workflow KernelExplainer Usually much slower than model-specific methods

Use the detailed decision guide in references/explainers.md. Use references/data-maskers.md when features are correlated, structured, sparse, or semantically grouped.

3. Compute a modern Explanation

This complete binary-classification example uses an explicit background and selects the positive-class output:

import numpy as np
import shap
from sklearn.datasets import load_breast_cancer
from sklearn.ensemble import RandomForestClassifier
from sklearn.model_selection import train_test_split

X, y = load_breast_cancer(as_frame=True, return_X_y=True)
X_train, X_test, y_train, y_test = train_test_split(
    X,
    y,
    test_size=0.2,
    stratify=y,
    random_state=7,
)

model = RandomForestClassifier(
    n_estimators=200,
    min_samples_leaf=3,
    random_state=7,
    n_jobs=-1,
).fit(X_train, y_train)

background = shap.sample(X_train, 100, random_state=7)
explainer = shap.Explainer(model, background, algorithm="tree")
all_outputs = explainer(X_test)

# sklearn tree classifiers expose one output per class.
positive = all_outputs[..., 1]
assert positive.values.shape == X_test.shape

reconstructed = np.asarray(positive.base_values) + positive.values.sum(axis=1)
expected = model.predict_proba(X_test)[:, 1]
np.testing.assert_allclose(reconstructed, expected, rtol=1e-5, atol=1e-6)

shap.plots.beeswarm(positive, max_display=15)
shap.plots.waterfall(positive[0], max_display=15)

Output shape is model-dependent:

  • one tabular output: (samples, features);
  • multiple tabular outputs: (samples, features, outputs);
  • multiple model inputs: often a list of arrays or explanations;
  • image/text explanations: feature axes follow the input representation, with output selection on the final axis when present.

Do not use the pre-0.45 pattern values[class_index] for a modern multi-output array. Use values[..., class_index] or slice the Explanation itself.

4. Control tree output semantics when needed

For a supported tree classifier, probability-space explanations must be explicit:

background = shap.sample(X_train, 200, random_state=7)

explainer = shap.TreeExplainer(
    model,
    data=background,
    feature_perturbation="interventional",
    model_output="probability",
)
probability_exp = explainer(X_test)

In SHAP 0.52:

  • feature_perturbation="auto" uses interventional semantics when background data is supplied and tree-path-dependent semantics otherwise;
  • probability and log-loss output modes are supported only with interventional semantics;
  • pass approximate=True to explainer(X, approximate=True) if deliberately using the lower-fidelity tree approximation; do not pass it to the constructor.

5. Use a model-agnostic callable deliberately

Pass the exact callable whose outputs will be interpreted:

masker = shap.maskers.Independent(background, max_samples=100)
explainer = shap.Explainer(
    model.predict_proba,
    masker,
    algorithm="permutation",
    output_names=[str(label) for label in model.classes_],
    seed=7,
)

budget = 2 * X_test.shape[1] + 1
all_outputs = explainer(X_test.iloc[:20], max_evals=budget)
positive = all_outputs[..., 1]

Increase max_evals to average over more permutations when estimates are unstable. Keep the seed, background sample, and evaluation budget in the report.

6. Visualize the question, not merely the available plot

Question Plot
Which features have the largest average attribution magnitude? shap.plots.bar(exp)
How do direction, magnitude, and observed values vary globally? shap.plots.beeswarm(exp)
Why did one prediction differ from its baseline? shap.plots.waterfall(exp[i])
How does one feature's attribution vary over its values? shap.plots.scatter(exp[:, feature])
Do explanations form sample-level patterns? shap.plots.heatmap(exp)
How do predefined cohorts differ descriptively? shap.plots.bar(exp.cohorts(labels).abs.mean(0))
Which tokens or image regions contribute to an output? shap.plots.text(exp) or shap.plots.image(exp)

Read references/plots.md before customizing or saving figures.

7. Report limitations with results

At minimum, report:

  • output and units;
  • baseline/reference population;
  • explainer and masker;
  • sample count and selection;
  • output index/name;
  • additivity error or applicable approximation diagnostics;
  • known correlated/grouped features;
  • whether results are local, aggregated, or cohort-specific;
  • a clear non-causal statement.

Common Tasks

Global and local analysis

Use global plots to locate important patterns, scatter plots to inspect those patterns, and local plots to investigate selected rows. Do not select only visually dramatic rows without documenting the selection rule.

Multiclass models

Set output_names where possible, inspect explanation.output_names, and slice an output before plotting:

class_exp = explanation[..., "class_name"]
# or
class_exp = explanation[..., class_index]

Never average signed attributions across classes. For cross-class comparison, preserve the same model, rows, background, output space, and aggregation.

Cohorts, subgroup analysis, and fairness

SHAP can compare how a model uses features across cohorts, but this is not a fairness test. A protected feature with small SHAP magnitude does not rule out proxy discrimination, and removing a protected feature does not establish fairness. Pair attribution analysis with performance, calibration, error-rate, and domain-appropriate fairness metrics.

See references/workflows.md for cohort construction, model comparison, error analysis, log-loss explanations, monitoring, and production records.

Text and images

Use domain maskers rather than treating tokens or pixels as ordinary independent columns:

  • shap.maskers.Text(tokenizer) with PartitionExplainer for token groups;
  • shap.maskers.Image(...) with PartitionExplainer for image regions;
  • restrict expensive multi-output models with outputs=....

Read references/modalities.md for current examples and output-shape guidance.

Troubleshooting Order

  1. Print Python, SHAP, model-library, NumPy, and framework versions.
  2. Verify the model receives exactly the same transformed columns, order, dtype, and missing-value representation used during fitting.
  3. Print values.shape, base_values.shape, data.shape, feature_names, and output_names.
  4. Confirm the selected output and output units.
  5. Recompute predictions on the same rows in the same order.
  6. Test a smaller batch and representative background.
  7. Only then investigate package-specific compatibility or approximation settings.

Use references/troubleshooting.md for additivity failures, shape mismatches, categorical features, pipelines, deep-learning frameworks, plotting, and performance.

Bundled Script

Run a deterministic, self-contained tabular example that writes importance data, metadata, and plots:

uv run --no-project --python 3.12 --with "shap[plots]==0.52.0" \
  skills/shap/scripts/tabular_report.py --output-dir /tmp/shap-report

The script does not download data or deserialize models. Read it as a template, then replace the built-in dataset and model while preserving output selection and additivity validation.

Reference Map

File Load when
references/explainers.md Selecting or configuring explainers
references/data-maskers.md Choosing background data, masking semantics, or feature groups
references/plots.md Selecting, composing, or saving visualizations
references/workflows.md Running audits, comparisons, cohorts, monitoring, or production workflows
references/modalities.md Explaining text, images, or deep models
references/migration.md Updating legacy SHAP code or supporting older Python
references/theory.md Explaining estimands, guarantees, dependence, interactions, and limitations
references/troubleshooting.md Diagnosing runtime, shape, additivity, and compatibility problems

Primary Sources

Reproducido de K-Dense-AI/scientific-agent-skills bajo licencia MIT. Leer esta página en markdown.

Archivos

10 archivos en el paquete. Solo se lee SKILL.md al activarse — las referencias se cargan si el skill decide que las necesita.

Antes de instalar

Requiere Python 3.12+ y uv para instalar shap[plots]==0.52.0; no cargar artefactos pickle/joblib no confiables.

Detalles

Creador
K-Dense-AI
Licencia
MIT
Recursos incluidos
scripts en python + referencias
Código fuente
Ver SKILL.md

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