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You're reading from  Active Machine Learning with Python

Product typeBook
Published inMar 2024
PublisherPackt
ISBN-139781835464946
Edition1st Edition
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Margaux Masson-Forsythe
Margaux Masson-Forsythe
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Margaux Masson-Forsythe

Margaux Masson-Forsythe is a skilled machine learning engineer and advocate for advancements in surgical data science and climate AI. As the Director of Machine Learning at Surgical Data Science Collective, she builds computer vision models to detect surgical tools in videos and track procedural motions. Masson-Forsythe manages a multidisciplinary team and oversees model implementation, data pipelines, infrastructure, and product delivery. With a background in computer science and expertise in machine learning, computer vision, and geospatial analytics, she has worked on projects related to reforestation, deforestation monitoring, and crop yield prediction.
Read more about Margaux Masson-Forsythe

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Designing interactive learning systems and workflows

The effectiveness of a human-in-the-loop system depends heavily on how well the labeling interface and workflow are designed. Even with advanced active ML algorithms selecting the most useful data points, poor interface design can cripple the labeling process. Without intuitive controls, informative queries, and efficient workflows adapted to humans, annotation quality and speed will suffer.

In this section, we will cover best practices for optimizing the human experience when interacting with active ML systems. Following these guidelines will enable you to create intuitive labeling pipelines, minimize ambiguity, and streamline the labeling process as much as possible. We will also discuss strategies for integrating active ML queries, collecting labeler feedback, and combining expert and crowd labelers. By focusing on human-centered design, you can develop interactive systems that maximize the utility of human input for your models...

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Active Machine Learning with Python
Published in: Mar 2024Publisher: PacktISBN-13: 9781835464946

Author (1)

author image
Margaux Masson-Forsythe

Margaux Masson-Forsythe is a skilled machine learning engineer and advocate for advancements in surgical data science and climate AI. As the Director of Machine Learning at Surgical Data Science Collective, she builds computer vision models to detect surgical tools in videos and track procedural motions. Masson-Forsythe manages a multidisciplinary team and oversees model implementation, data pipelines, infrastructure, and product delivery. With a background in computer science and expertise in machine learning, computer vision, and geospatial analytics, she has worked on projects related to reforestation, deforestation monitoring, and crop yield prediction.
Read more about Margaux Masson-Forsythe