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Machine Learning · ML-04

Business Survival & Exit Prediction

Develop time-aware models of synthetic business continuity and exit, linking enterprise histories to employment and financial context.

  • Synthetic records
  • Longitudinal
  • Nairobi + Lagos

Scope & purpose

Connected scope

Connect business registration, status, workforce and financial context to study firm survival.

  • Business
  • Employment
  • Finance
  • Demographics

Define the prediction date and horizon. Keep earlier inputs separate from later outcomes.

Possible uses

Prediction prototyping · Feature exploration · Temporal validation · Cohort comparison

Who it is for

ML teams · economists · business researchers · development agencies

Preview type
Illustrative format preview
Shows example structure and fields. It is not a sample extracted from the paid release.
Commercial availability
Confirmed in your written quote
The listed cities describe catalogue coverage. We confirm the exact release and available extract before agreement.
Starting-price basis
USD per selected city
Cohort size and period are specified in the quote; the listed rate does not define a fixed-size package. Discount and tax are shown separately.
Your agreed delivery
Scope and supporting artifacts listed in the quote
Confirm entities or rows, observation period, fields, formats, documentation, evidence, known limits and usage rights.

Paid dataset delivery

What you receive

SD delivery standard
Published cities
Nairobi + Lagos
Record scope
Business-level
Structure
Longitudinal

Striped Donkey delivery package

  • data/Agreed extract and formats
  • documentation/Schema, fields and relationships
  • evidence/Agreed release checks and limits
  • examples/Agreed loading and join examples
  • LICENSEApplicable rights
  • MANIFESTRelease and file inventory
  • CHECKSUMSSHA-256 fingerprints
  • DELIVERY_NOTEScope and handoff record

Your written quote confirms selected cities, period, formats, commercial rights, detailed artifacts and secure delivery. The complete paid package is prepared privately after agreement.

Free evaluation preview

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15 illustrative rows · 11 fields · CSV

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Illustrative rows show the format. Your quote confirms delivered records, fields and time coverage.

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Fields and record structure

Listed features

Business-level · Longitudinal

  • registration / closure dates
  • survival status
  • workforce change
  • business lifecycle
  • ownership / founder context
  • workforce history
  • employment spells

Study question

Evaluation design

Can a business's prior workforce and financial history predict whether it records an exit within 12 months and how long it remains active?

Define exit dates, eligible active businesses and observation coverage; evaluate survival probabilities and preserve firms still active at the cutoff.

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Evidence you can inspect

Source & limitations

Review release-specific methods and published checks. Preview rows show format and scope; they do not certify a dataset.

Supporting references

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Clear rights for your work

Licence & delivery

Free preview

Use free samples under the public-use policy or their dataset-specific licence. Attribution is required for publication and research outputs.

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Purchased dataset

Your agreement defines the release, licensed organization, permitted uses and duration. Commercial model training, external applications and redistribution require explicit agreement.

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