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Criterion
Paper illustration of a four-column Kanban board with limited ongoing work, a visible blocker and a review loop.
Engineering
Kanban
Story Splitting method illustration showing its working structure
Agile
Story Splitting
Paper illustration for Bottleneck Analysis.
Operations
Bottleneck Analysis
Paper illustration for Affinity Estimation.
Agile
Affinity Estimation
Purposedifferent
When work sits in too many parallel streams, throughput suffers and no one sees the bottlenecks. Kanban makes the flow of work visible and limits overload so a system becomes calmer and more predictable.When a story becomes too large for a clean flow, it breaks scope down along value and risk. It shapes the work into a form that ships earlier and is easier to verify.For a flow that backs up at one point, the method looks for the capacity limit with the greatest leverage. It explains why extra effort elsewhere barely improves throughput.When many tasks need to be classified quickly, it sorts them by perceived effort and similarity. It reduces the effort of fine-grained estimation for large volumes.
Complexitysame
MediumMediumMediumMedium
Timedifferent
Ongoing30-60 min1-3 h30-90 min
Participantsdifferent
2-122-63-83-12
Formatdifferent
Workshop + asyncWorkshop + asyncWorkshop + asyncWorkshop
Outputdifferent
Kanban board, WIP policies, Flow metricsSmaller Stories, Acceptance Criteria, Split RationaleBottleneck Map, Flow Metrics, Improvement Options, Follow-up MeasuresAffinity Size Map, Grouped Estimates, Unclear Items
Tagsno overlap
FlowVisual managementDelivery
BacklogIterationDelivery
FlowMeasurementConstraints
EstimationBacklogRelative sizing
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