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How to Report Your Statistics in a Methods Section Reviewers Won't Question
Reviewers examining 100 clinical papers found 65% needed revisions just to explain what their statistical tests were for, and 64% had omitted effect sizes entirely. Statistical reporting problems are rarely about running the wrong analysis; they're about not writing down enough for a reader to judge it. Here's what belongs in the section, built on the SAMPL guidelines: seven things to state in your methods, the results formats that draw fewest queries, and a template you can
Sep 45 min read


ANCOVA Protocol: A Step-by-Step for Comparing Groups While Controlling for a Covariate
Your treated and control wells started at different confluence, so comparing endpoints with a plain ANOVA measures your treatment effect plus the head start. ANCOVA fixes that by adjusting for a continuous covariate, and usually buys power too. This step-by-step ANCOVA protocol runs 24 numbered steps from covariate choice through reporting, with the assumption checks in the order they need to happen, including the parallel-slopes test most people skip.
Aug 127 min read


Technical vs. Biological Replicates: The Pseudo-replication Trap That Sinks Papers
An audit of 200 published animal studies found only 22% had replicated the right thing, and 46% counted repeated measurements of one biological unit as independent samples. That error, pseudoreplication, inflates your n, shrinks your error bars, and manufactures significance that won't replicate. Here's what separates technical vs biological replicates, why the mistake inflates false positives, and what actually counts as a biological replicate in cell culture.
Aug 107 min read


Effect Size Explained: Reporting Cohen's d and Why p-Values Aren't Enough
Your p-value can confirm an effect is real and say nothing about whether it's big enough to matter. Effect size answers that second question, and for a two-group comparison Cohen's d is the standard measure: the mean difference divided by the pooled standard deviation. This guide covers how to calculate and report Cohen's d, why to report it alongside every p-value and confidence interval, and how to interpret it without leaning on the 0.2/0.5/0.8 benchmarks that often don't
Jul 278 min read


The Guide to the Bland-Altman Plot: Method Comparison, Interpretation, and Analysis
Stop using correlation to validate your methods! The Bland-Altman plot is the gold standard for method comparison, revealing bias and error that simple correlation hides. This ultimate guide covers the math, step-by-step construction, interpretation of "Limits of Agreement," and advanced troubleshooting for proportional bias and non-normal data. Master the art of statistical agreement today.
Apr 206 min read


Mastering the Standard Curve: Step by Step Calculation for Concentration
Stop wasting hours on Excel regression formulas. This ultimate guide explains the science of standard curves, from serial dilution math to troubleshooting low R-squared values. Plus, discover how to automate your entire analysis workflow using the CLYTE Concentration Calculator for instant, error-free results.
Mar 94 min read
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