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AI-Generated Code Detection: The New Frontier in Academic Integrity
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AI-Generated Code Detection: The New Frontier in Academic Integrity

As AI coding assistants become ubiquitous, learn how institutions are adapting to detect AI-generated code and maintain educational standards.

Codequiry Editorial Team Codequiry Editorial Team · Jan 5, 2026
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Token, AST, and Fingerprint Matching on Refactored Student Code General 9 min
Rachel Foster Rachel Foster · 5 hours ago

Token, AST, and Fingerprint Matching on Refactored Student Code

Renaming a variable, extracting a helper, and swapping a for loop for a while loop are the three moves students reach for when they want a copied submission to look original. Some similarity engines shrug them off, and some lose the match entirely. This piece walks through how token hashing, AST subtree matching, and fingerprinting each behave against a deliberately refactored Python pair, then compares what MOSS, JPlag, Dolos, and Codequiry actually reported on the same cohort.

A Triage Framework for AI Code Detection in Student Work General 12 min
David Kim David Kim · 22 hours ago

A Triage Framework for AI Code Detection in Student Work

An AI detection score is a signal, not a verdict. This is the four-stage triage I borrowed from a fintech incident pipeline to decide which alerts deserve a conversation, which deserve a case file, and which deserve to be closed.

How a Lecturer Catches Code Translated Between Languages General 11 min
Rachel Foster Rachel Foster · 2 days ago

How a Lecturer Catches Code Translated Between Languages

MOSS and JPlag compare Java to Java and Python to Python, which means a translated submission can score in single digits while the logic stays identical. This is how one lecturer, a TA, and a department chair handle ports, and what they've learned about the tooling that catches them.

Can a Python Submission Be Traced Back to a Java Repository? General 15 min
Alex Petrov Alex Petrov · 2 days ago

Can a Python Submission Be Traced Back to a Java Repository?

Two Python submissions scored 4% against each other and in the 70s against a Java gist from 2017. Cross-language plagiarism is the fastest-growing blind spot in academic integrity because translation destroys the text while preserving everything that matters. Here's what survives a translation, what detectors actually see, and where the false positives come from.

How Code Plagiarism Detection Went From Hashes to LLMs General 11 min
Marcus Rodriguez Marcus Rodriguez · 4 days ago

How Code Plagiarism Detection Went From Hashes to LLMs

Ottenstein's 1976 detector hashed student Fortran token streams, and most of what we run today is a refined version of the same idea. This is the fifty-year arc from line diffs to winnowing, AST matching, web crawling, and statistical AI detection, plus the failure mode that still bites: a 0% similarity score that tells you nothing about authorship.

A Framework for Verifying Code Originality From Contractors General 11 min
Marcus Rodriguez Marcus Rodriguez · 5 days ago

A Framework for Verifying Code Originality From Contractors

Most statements of work say "original work" and never define it, which is how GPL code ends up in your settlement service. Here is the four-question intake review I run on every contractor deliverable, with the thresholds and tooling that hold up under scrutiny.

Token and AST Normalization in Code Similarity Detection General 10 min
David Kim David Kim · 6 days ago

Token and AST Normalization in Code Similarity Detection

Line diffing under-reports copied code and over-reports similar-looking code. Here's what token normalization and AST fingerprinting actually compare, where each one breaks, and how to wire both into a CI pipeline or an academic submission workflow.

How AST Comparison Catches Refactored Code Plagiarism General 12 min
Rachel Foster Rachel Foster · 6 days ago

How AST Comparison Catches Refactored Code Plagiarism

Renaming variables and swapping a for loop for a while loop defeats simple text matching, but it rarely defeats structural comparison. This report walks through the obfuscation ladder, the algorithms that climb it, and the published detection rates behind the claims, including the cases where every engine still misses.

A Framework for Reading AI Code Detection Scores General 9 min
Priya Sharma Priya Sharma · 1 week ago

A Framework for Reading AI Code Detection Scores

A single AI detection score is a ranking, not a verdict, and most of the damage we've seen comes from reading it as one. This is the five-step triage we settled on after two years of grading CS 1 and CS 2 cohorts of roughly 400 submissions, including the score bands, the script, and the two cases where the whole thing fell apart.

What Cross-Language Code Plagiarism Detection Can and Cannot See General 11 min
James Okafor James Okafor · 1 week ago

What Cross-Language Code Plagiarism Detection Can and Cannot See

Cross-language code plagiarism detection compares normalized structure rather than raw text, which works when a translation was mechanical and fails when the student rewrote the algorithm. Here is what survives a Java-to-Python translation, what the token and IR approaches actually see, and how to run the check across a whole cohort without drowning in false positives.

What One CS Department Learned From a Year of AI Code Detection General 11 min
Priya Sharma Priya Sharma · 1 week ago

What One CS Department Learned From a Year of AI Code Detection

A public research university ran AI code detection as part of its grading workflow for a full academic year: eleven assignments, three courses, 4,118 submissions. The interesting number isn't the 3.8% that ended in a finding. It's the roughly two flagged files that got cleared for every one that held up, and what the department changed because of it.

How Cross-Language Code Plagiarism Detection Works General 13 min
Alex Petrov Alex Petrov · 1 week ago

How Cross-Language Code Plagiarism Detection Works

A Java submission and a Python submission looked nothing alike, but they were the same algorithm translated line by line. This is the story of how cross-language code plagiarism detection actually works, where it catches translated code, and where it still fails.