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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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Author (1)
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.
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Summary

In this chapter, we learned how to use Lightly to efficiently select the most informative frames in videos to improve object detection models using diverse sampling strategies. We also saw how to send these selected frames to the labeling platform Encord, thereby completing an end-to-end use case. Finally, we explored how to further enhance sampling by incorporating an SSL step into the active ML pipeline.

Moving forward, our focus will shift to exploring how to effectively evaluate, monitor, and test the active ML pipeline. This step is essential in ensuring that the pipeline remains robust and reliable throughout its deployment. By implementing comprehensive evaluation strategies, we can assess the performance of the pipeline against predefined metrics and benchmarks. Additionally, continuous monitoring will allow us to identify any potential issues or deviations from expected behavior, enabling us to take proactive measures to maintain optimal performance.

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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