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Record W3113372188 · doi:10.1177/1755738020972128

Pharmacogenomics: Prescribing based on genetic variation

2020· article· en· W3113372188 on OpenAlexaff
Imran Rafi, Judith Hayward, Martin Dawes

Bibliographic record

VenueInnovAiT Education and inspiration for general practice · 2020
Typearticle
Languageen
FieldPharmacology, Toxicology and Pharmaceutics
TopicPharmacogenetics and Drug Metabolism
Canadian institutionsUniversity of British Columbia
Fundersnot available
KeywordsPharmacogenomicsPolypharmacyMedicineDrugPharmacogeneticsDrug responseDiseaseIntensive care medicineClinical decision support systemFunction (biology)Adverse effectClinical PracticeDecision support systemPharmacologyFamily medicineComputer scienceData miningInternal medicineBiology

Abstract

fetched live from OpenAlex

Clinical decision support systems relating to prescribing are available on general practice information technology systems, with warnings relating to drug–drug interactions and allergies. These tools can help us anticipate and avoid known side effects of drugs, but only after we have selected the drug. Combining these with renal function, liver function, other biophysical markers and pharmacogenomics information, can improve medicines optimisation and reduce adverse effects. Managing all these variables at the same time as conforming to disease guidelines is a challenge. The challenge is even greater when managing multi-morbidity and the associated polypharmacy.

Fetched live from OpenAlex and de-inverted. Abstracts are not stored in this database: the inverted indexes are 8.6 GB of the frame’s 9.3 GB of text, and the host has 13 GB free.

How this classification was reachedexpand

Full frame distilled prediction

Teacher imitation

Not calibrated prevalence, not ground truth. Human validation pending. Learned from the 10,348 direct Codex labels and 10,348 direct Gemma labels. Candidate is the union of thresholded teacher heads; consensus is their intersection. These outputs are machine_predicted_unvalidated and are not human labels or direct frontier model labels.

metaresearch head score (Codex)0.001
metaresearch head score (Gemma)0.001
Version: codex-gemma-dda1882f352aValidation status: machine_predicted_unvalidated
Candidate categoriesMeta-epidemiology (narrow)
Consensus categoriesnone
DomainCandidate signal: none · Consensus signal: none
Study designCandidate signal: Not applicable · Consensus signal: none
GenreCandidate signal: Empirical · Consensus signal: Empirical
Teacher disagreement score0.734
Threshold uncertainty score1.000

Codex and Gemma teacher scores by category

CategoryCodexGemma
Metaresearch0.0010.001
Meta-epidemiology (narrow)0.0000.000
Meta-epidemiology (broad)0.0000.000
Bibliometrics0.0000.000
Science and technology studies0.0000.000
Scholarly communication0.0000.000
Open science0.0000.000
Research integrity0.0000.000
Insufficient payload (model declined to judge)0.0000.000

Machine scores (provisional)

The two teacher heads of the student model, read on this work. A score orders the frame for review; it never asserts a category, and the validation status ships verbatim with every row.

Baseline scores from an immature model (maturity gate not passed, 7 training rounds). Scores rank; they never assert a category.

Opus teacher head0.146
GPT teacher head0.446
Teacher spread0.300 · how far apart the two teachers sit on this one work
Validation statusscore_only:v0-immature-baseline · verbatim from the scoring run: score_only means the number may rank works, and no category label ships from it

Classification

machine, unvalidated

Machine predicted; a candidate call from one teacher head, not a consensus.

Study designNot applicable
Domainnot available
GenreEmpirical

How this classification was reached, model by model and score by score, is at the end of the page under "How this classification was reached".

Quick stats

Citations2
Published2020
Admission routes1
Has abstractyes

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