Papers › Measuring Approximate Functional Dependencies: a Comparative Study

Measuring Approximate Functional Dependencies: a Comparative Study

11 Dec 2023arXiv:2312.06296links table onlyarchive 2025-07-28

Marcel Parciak, Sebastiaan Weytjens, Niel Hens, Frank Neven, Liesbet M. Peeters, Stijn Vansummeren

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Approximate functional dependencies (AFDs) are functional dependencies (FDs) that "almost" hold in a relation. While various measures have been proposed to quantify the level to which an FD holds approximately, they are difficult to compare and it is unclear which measure is preferable when one needs to discover FDs in real-world data, i.e., data that only approximately satisfies the FD. In response, this paper formally and qualitatively compares AFD measures. We obtain a formal comparison through a novel presentation of measures in terms of Shannon and logical entropy. Qualitatively, we perform a sensitivity analysis w.r.t. structural properties of input relations and quantitatively study the effectiveness of AFD measures for ranking AFDs on real world data. Based on this analysis, we give clear recommendations for the AFD measures to use in practice.

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marcelpa/afd_comparative_study officialmentioned in paperMIT report
mstrutov/desbordante mentioned on GitHubAGPL-3.0 report

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assign_fds marcelpa/afd_comparative_study/code/synthetic_data/generator.py official repository ran MIT (permissive) · e280965b83f79edc · report
beta_skewness marcelpa/afd_comparative_study/code/synthetic_data/utils.py official repository ran fingerprinted MIT (permissive) · e52ea935b4e637d2 · report
clean_colname marcelpa/afd_comparative_study/code/afd_measures/utils.py official repository ran fingerprinted MIT (permissive) · 03c4f95a71a3fbc9 · report
create_skew_lookup marcelpa/afd_comparative_study/code/synthetic_data/utils.py official repository ran MIT (permissive) · acb336a84922ac1f · report
g1 UHasselt-DSI-Data-Systems-Lab/paper-afd-comparative-study/code/afd_measures/measures.py official repository ran · honoured contract MIT (permissive) · 3cd4d23b55e8e293 · report
g1_prime UHasselt-DSI-Data-Systems-Lab/paper-afd-comparative-study/code/afd_measures/measures.py official repository ran · honoured contract MIT (permissive) · f93d28280628c369 · report
generate_tuples marcelpa/afd_comparative_study/code/synthetic_data/generator.py official repository ran MIT (permissive) · 04dd4314a67cd3db · report
get_noise_potential marcelpa/afd_comparative_study/code/synthetic_data/generator.py official repository ran MIT (permissive) · ce4246afcedad2d3 · report
infer_column_settings marcelpa/afd_comparative_study/code/synthetic_data/inferrence.py official repository ran MIT (permissive) · 7c2473ca65d4d508 · report
infer_settings marcelpa/afd_comparative_study/code/synthetic_data/inferrence.py official repository ran MIT (permissive) · 2997facb2db472b7 · report
is_perfect_fd marcelpa/afd_comparative_study/code/afd_measures/utils.py official repository ran MIT (permissive) · 7e4c9257b67a30bc · report
is_trivial_fd marcelpa/afd_comparative_study/code/afd_measures/utils.py official repository ran MIT (permissive) · 4791011a8084d08f · report
rho UHasselt-DSI-Data-Systems-Lab/paper-afd-comparative-study/code/afd_measures/measures.py official repository ran · honoured contract MIT (permissive) · ef806ce68c4507d0 · report

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