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Shape: 276 rows Γ— 202 columns
Domain: Engineering β€” this is a survey dataset about requirements engineering practices for ML-enabled systems.
Column groups (the 202 columns are organized into sections):

D1–D15 β€” Demographic info: education level, country, company size, role, software/ML experience, team size, management frameworks, programming languages, ML algorithms used, etc.
Q1 β€” ML lifecycle phase importance ratings (Problem Understanding β†’ Monitoring)
Q2 β€” ML lifecycle phase difficulty ratings
Q3 β€” ML lifecycle phase effort ratings
Q4 β€” Open-ended main problems per lifecycle phase
Q5 β€” Ranking of main problems
Q6–Q7 β€” Solution optimality and extra effort
Q8 β€” Who addresses ML requirements (roles)
Q9 β€” Elicitation techniques used
Q10 β€” Documentation methods
Q11 β€” Non-functional requirements (NFRs) considered
Q12 β€” Most difficult RE activities
Q13–Q16 β€” Model deployment and monitoring practices
Q17 β€” AutoML tool usage
Origin β€” Survey source URL


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