Data Processing Pipeline

A data processing pipeline is an organized sequence of steps that collects, transforms, validates, and delivers data for analysis or operational use. In an engineering workflow, raw inputs move through stages such as ingestion, cleaning, formatting, computation, and storage, with each stage applying defined rules that convert data into a consistent and usable form; automated scheduling and monitoring can coordinate this flow. Pipelines support reliable sensor analysis, simulation workflows, manufacturing systems, and software services by improving repeatability, traceability, and scalability. Well-designed pipelines also help teams detect errors, integrate diverse data sources, and produce timely outputs for modeling, decision-making, and system control.

Data Processing Pipeline - Related Videos

Research

JoVE Journal - Genetics

A Computational Pipeline for Intergenic/Intragenic Enhancer RNA Quantification in Mouse Embryonic Stem Cells

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2025

This protocol provides a streamlined computational pipeline for quantifying nascent enhancer transcripts. By integrating chromatin accessibility, chromatin feature, and transcriptional data, it enables accurate detection and strand-specific analysis of enhancer activity in complex intragenic regions, while remaining accessible to researchers without extensive bioinformatics training.

Data Communication Based on MQTT in a Polymer Extrusion Process

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Cited by 1 •

2022

This work proposes a flexible method for data communication between a film extrusion system and monitoring devices based on a message protocol called Message Queuing Telemetry Transport (MQTT).

Research

JoVE Journal - Chemistry
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An Introduction to Processing, Fitting, and Interpreting Transient Absorption Data

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Cited by 11 •

2024

This protocol is a beginner's entryway into processing, fitting, and interpreting transient absorption spectra. The focus of this protocol is the preparation of datasets, and fitting using both single wavelength kinetics and global lifetime analysis. Challenges associated with transient absorption data and its fitting are discussed.

Research

JoVE Journal - Environment
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Collecting and Processing Drone-based Remotely Sensed Data for Use in Forest Recovery Monitoring

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Cited by 1 •

2025

Recent advancements in remotely piloted aircraft systems (RPAS) allow sub-meter resolution, ideal for forest recovery monitoring. Integrating artificial intelligence (AI) enables deeper insights from large remotely sensed datasets. This protocol improves monitoring by supporting more efficient assessment and management of forested lands recovering from disturbance.

Research

JoVE Journal - Biochemistry
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Using the Open-Source MALDI TOF-MS IDBac Pipeline for Analysis of Microbial Protein and Specialized Metabolite Data

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Cited by 20 •

2019

IDBac is an open-source mass spectrometry-based bioinformatics pipeline that integrates data from both intact protein and specialized metabolite spectra, collected on cell material scraped from bacterial colonies. The pipeline allows researchers to rapidly organize hundreds to thousands of bacterial colonies into putative taxonomic groups, and further differentiate them based on specialized metabolite production.

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