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External pipelines · RISE project catalogue

data-to-paper

An end-to-end framework that takes annotated data and produces *backward-traceable* scientific manuscripts: every numeric value in the output can be click-traced to the specific code line that generated it. Navigates interacting LLM and rule-based agents through data exploration, literature search, hypothesis raising, code-debugging, interpretation, and step-by-step paper writing. Released alongside an NEJM AI peer-reviewed paper (Ifargan et al., 2024 — DOI:10.1056/AIoa2400555).

Indexed in RISE · dormantConformance with the standard plannedProject site

What it does

The "data-chained" provenance design is unique in the catalog: the manuscript is constructed so that traceability is intrinsic, not a reporting add-on — any reported number resolves backward through the data analysis steps. Ships both Autopilot and Copilot modes (oversee / inspect / guide / rewind / replay) and overrides standard statistical packages with coding guardrails to minimize common LLM coding errors.

Focus
end-to-end
Inputs
annotated-dataset, research-goal
Outputs
traceable-manuscript, data-chained-paper, code
Architecture
multi-agent, human-in-loop, tool-use, artifact-versioning, dag-orchestration
Maintained by
Roy Kishony Lab (Technion)
Started
2023

Description

Data model
Discipline
General
Method family
not specified
Design
not specified
Research stage
HypothesesLiterature discoveryResearch designData analysisCode generationDraftingRevision and editing
Contributors
Roy Kishony Lab
Usage
not used in published research yet
Source
RISE project catalogue · projects/landscape · @4c17bae
Record
pipeline:data-to-paper · JSON

Solid tags are declared by the source or mapped from its terms; dashed tags are inferred by a published rule. Hover a tag for its provenance.

Bring it into the standard

A pipeline built outside E2ER can meet the standard by describing its steps as a template, attaching the floor of checks and publishing evaluation records. Its authors keep ownership and credit.