Experiments
Searchable full-text extractions: founding hypothesis, core claims, experimental setups, key results and statistics — pulled out of each paper as structure. Search a cell line, an assay or an entity (e.g. HUH7) and find every paper that worked with it. This corpus stands on its own: most entries carry no reproduction assessment (yet).
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Assessing batch effects of genotype calling algorithm BRLMM for the Affymetrix GeneChip Human Mapping 500 K array set using 270 HapMap samples.
PMID 18793462 · PMC2537568 · BMC bioinformatics · 2008 · 8 claims · 4 setups
Batch size affects genotype calling results (call rate and concordance) and the resulting lists of significantly associated SNPs.
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Allelotyping of pooled DNA with 250 K SNP microarrays.
PMID 17367522 · PMC1839100 · BMC genomics · 2007 · 8 claims · 5 setups
The polynomial based probe specific correction (PPC) algorithm is the most accurate method for estimating allele frequency from pooled DNA.
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Microdroplet-based PCR enrichment for large-scale targeted sequencing.
PMID 19881494 · PMC2779736 · Nature biotechnology · 2009 · 7 claims · 5 setups
Microdroplet PCR enables massively parallel singleplex amplification (up to ~1.5 million reactions, up to 4,000 targets) for targeted sequencing enrichment
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Modeling genetic inheritance of copy number variations.
PMID 18832372 · PMC2588508 · Nucleic acids research · 2008 · 8 claims · 4 setups
A joint HMM framework for parents-offspring trios significantly improves CNV call rates and boundary inference accuracy compared to existing methods.
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Analysis and visualization of chromosomal abnormalities in SNP data with SNPscan.
PMID 16420694 · PMC1382255 · BMC bioinformatics · 2006 · 8 claims · 8 setups
SNPscan is a web-accessible tool that displays SNP copy number, genotype call, and LOH p-value data together in a single plot per sample
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The diploid genome sequence of an Asian individual.
PMID 18987735 · PMC2716080 · Nature · 2008 · 8 claims · 8 setups
First diploid genome sequence of an Asian (Han Chinese) individual generated using massively parallel Illumina sequencing