Worked case · Reference condition · 12 figures

Overrides and final outcomes

Monitor overrides and outcomes

Figure 01 / 12

Start with the assigned population

Start with the assigned population — Overrides and final outcomes. Count; synthetic experiment. Exact values are in the figure data below.
Count; synthetic experiment

This teaching experiment assigns 4,500 eligible units to comparison and 4,500 to treatment. The units are review-eligible decisions. Mandatory controls are outside the experimental choice. Eligibility and assignment are defined before observing outcomes.

Figure data and text version
Assigned armUnits
Comparison4,500
Treatment4,500

Human review can correct a model error or introduce a new inconsistency. The final customer outcome includes both automated and manual actions.

The reference case starts with the stated population and a functioning evidence path. The owner is risk operations.

All amounts, rates, capacity limits, and outcomes in this case are synthetic. The three conditions are separate assumptions for comparison. A better result in the response condition is not measured proof that the proposed control causes that improvement. The figures expose the calculation and its limits; a real deployment needs its own evidence.

Read the result

The comparison arm has 405/4500 adverse outcomes (9.00%) and the treatment arm has 373/4500 (8.29%). The absolute difference is -0.71 percentage points, with an illustrative large-sample 95% interval from -1.87 to 0.45. Interpretation depends on assignment integrity, outcome maturity, independence, and the actual decision being evaluated.

Model inputs and calculated values

Inputs below are the case-specific values. Each figure states the condition-specific assumptions and units used in its calculation. Calculated values are rounded for display.

InputValue
population9,000
rate0.09
clusterSize8
Calculated valueResult
n9,000
nc4,500
nt4,500
yc405
yt373
effect-0.0071
lower-0.0187
upper0.0045
clusterSize8
icc0.01
effectiveN8,411.215
Figure 02 / 12

Retain events and nonevents in both arms

Retain events and nonevents in both arms — Overrides and final outcomes. Count; binary outcome over one fixed window. Exact values are in the figure data below.
Count; binary outcome over one fixed window

The defined adverse outcome occurs 405 times in comparison and 373 times in treatment. Each row includes every assigned unit under this complete-outcome illustration. Omitting nonevents or unresolved cases changes the denominator and the estimand.

Figure data and text version
Assigned armAdverse outcomeOther outcome
Comparison4054,095
Treatment3734,127
Figure 03 / 12

Absolute and relative effects answer different questions

Absolute and relative effects answer different questions — Overrides and final outcomes. Observed synthetic rates. Exact values are in the figure data below.
Observed synthetic rates

Treatment minus comparison is -0.71 percentage points. The relative change is -7.90% when the comparison rate is nonzero. A percentage-point difference and a percentage change must not share the same label.

Figure data and text version
MeasureValueUnit
Comparison rate9Percent
Treatment rate8.289Percent
Absolute difference-0.711Percentage points
Relative change-7.901Percent of comparison rate
Figure 04 / 12

Each arm’s rate has sampling uncertainty

Each arm’s rate has sampling uncertainty — Overrides and final outcomes. Percent; Wilson score intervals. Exact values are in the figure data below.
Percent; Wilson score intervals

The 95% Wilson intervals are [8.20, 9.87]% and [7.52, 9.13]%. These intervals use independent Bernoulli sampling assumptions. Shared customers or merchants can violate that independence and require an appropriate clustered analysis.

Figure data and text version
ArmObserved %Lower 95%Upper 95%
Comparison98.1989.871
Treatment8.2897.5189.13
Figure 05 / 12

Uncertainty in the difference

Uncertainty in the difference — Overrides and final outcomes. Percentage points; treatment minus comparison. Exact values are in the figure data below.
Percentage points; treatment minus comparison

The normal-approximation 95% interval for treatment minus comparison is [-1.87, 0.45] percentage points. It is a teaching large-sample interval, not a replacement for the analysis appropriate to the design, low counts, sequential monitoring, or multiple comparisons.

Figure data and text version
Difference measurePercentage points
Lower bound-1.872
Point estimate-0.711
Upper bound0.45
Figure 06 / 12

A fixed outcome horizon prevents premature comparison

A fixed outcome horizon prevents premature comparison — Overrides and final outcomes. Observed adverse events. Exact values are in the figure data below.
Observed adverse events

Both arms use the same explicitly constructed maturation fractions. Earlier data can undercount the final outcome even when assignment is correct. Stopping at the first favorable partial result also changes the statistical interpretation unless the monitoring design accounts for it. Horizontal positions are the labeled observations or scenarios; equal spacing does not imply equal numerical increments.

Figure data and text version
Observation ageComparison eventsTreatment events
Day 18175
Day 3162149
Day 7263242
Day 14344317
Day 30405373
Figure 07 / 12

Assignment and received treatment differ

Assignment and received treatment differ — Overrides and final outcomes. Count; received-action counts are illustrative. Exact values are in the figure data below.
Count; received-action counts are illustrative

4500 units are assigned to treatment, while 4230 receive the modeled action. The primary assignment-based comparison retains all assigned units. Restricting to action recipients selects a post-assignment subgroup and can introduce bias.

Figure data and text version
PopulationUnits
Assigned comparison4,500
Comparison action observed4,410
Assigned treatment4,500
Treatment action observed4,230
Figure 08 / 12

Correlated units reduce independent information

Correlated units reduce independent information — Overrides and final outcomes. Effective units under stated approximation. Exact values are in the figure data below.
Effective units under stated approximation

The design-effect illustration is 1 + (m − 1)ρ with cluster size m = 8. At the case’s assumed ρ = 0.01, the design effect is 1.070 and n/design-effect is about 8,411.2. This approximation assumes a simple equal-cluster design; it is not a universal effective-sample-size formula. Horizontal positions are the labeled observations or scenarios; equal spacing does not imply equal numerical increments.

Figure data and text version
Intracluster correlationApproximate effective n
0.009,000
0.018,411.2
0.037,659.6
0.056,666.7
0.105,294.1
0.203,750
Figure 09 / 12

Segment totals must reconcile to the whole

Segment totals must reconcile to the whole — Overrides and final outcomes. Count; constructed disjoint segments. Exact values are in the figure data below.
Count; constructed disjoint segments

The two synthetic segments partition each arm. Their outcome counts add back to the original totals. Segment effects can differ from the overall effect, but small cells, selection, and multiple comparisons must be considered before interpreting a subgroup result.

Figure data and text version
SegmentComparison nComparison eventsTreatment nTreatment events
Segment A2,2502632,250149
Segment B2,2501422,250224
Figure 10 / 12

The primary outcome is only one decision input

The primary outcome is only one decision input — Overrides and final outcomes. Experiment decision contract. Exact values are in the figure data below.
Experiment decision contract

The primary target is Defined adverse final outcome. A release also considers customer friction, queue capacity, required controls, and the uncertainty of the result. A favorable loss metric cannot justify an action that violates a separate obligation.

Figure data and text version
DimensionRequired definition
Primary outcomeDefined adverse final outcome
Customer impactCompletion, delay, complaints, and access
Operating costReview effort and capacity in the same window
Mandatory controlsOutside randomized relaxation
Decision ownerrisk operations
Figure 11 / 12

Specify the analysis before observing the result

Specify the analysis before observing the result — Overrides and final outcomes. Synthetic experimental workflow. Exact values are in the figure data below.
Synthetic experimental workflow

The protocol fixes assignment, exclusions, metrics, outcome maturity, and the comparison method. Changing these after seeing results can make an ordinary noise fluctuation look like an improvement. Amendments need a documented reason and a clear distinction between confirmatory and exploratory work.

Figure data and text version
StageTimingRecord
Define estimandBefore assignmentmonitor overrides and outcomes
Assign unitsExperiment startStable unit and arm
Collect outcomesFixed windowSame definition for both arms
AnalyzeAt planned maturityChosen method and uncertainty
DecideAfter reviewNet effect, guardrails, and limitations
Figure 12 / 12

What this example establishes and omits

What this example establishes and omits — Overrides and final outcomes. Interpretation boundaries. Exact values are in the figure data below.
Interpretation boundaries

The arithmetic shows how the stated counts become rates, differences, and intervals. It does not prove a causal effect in production. Causal interpretation requires a valid assignment process, appropriate handling of interference and missing outcomes, and analysis consistent with the design.

Figure data and text version
PropertyIn this exampleProduction requirement
AssignmentAssumed validVerify implementation and unit integrity
OutcomesComplete at final windowResolve delayed and missing outcomes
IndependenceSimple interval assumptionAccount for clustering or interference
CostNot included in rate differenceMeasure net economics separately

Connect the result to the system

Retain override reasons and compare final outcomes with an analysis that respects selection and uncertainty.

Check the population, evidence, permitted action, and actual effect together. A balanced calculation can still use the wrong population; a successful response can still leave an unknown financial outcome. The case’s numerical result applies only to its stated assumptions.

Sources and further reading

The chapter sources support the concepts and scope. They do not prescribe the synthetic model rates.

  1. Regulation B, 12 CFR 1002.6: evaluation of applications
  2. Regulation B, 12 CFR 1002.9: notifications
  3. NIST: AI Risk Management Framework
  4. SciPy: binomial proportion confidence intervals