Master the fundamental preprocessing techniques that power modern computer vision systems. Raw visual data is everywhere, but transforming it into actionable insights requires precise preprocessing and motion analysis skills that separate successful AI engineers from the rest.

Process Images & Extract Motion Features

Process Images & Extract Motion Features
This course is part of Vision & Audio AI Systems Specialization

Instructor: Hurix Digital
Access provided by Seminole State College
Recommended experience
What you'll learn
Image preprocessing with normalization and color-space conversion ensures stable training and consistent performance across visuals.
Motion features from optical flow and frame differencing help systems learn temporal dynamics for tracking and action tasks.
Strong preprocessing improves model accuracy and training efficiency, making it essential in any vision pipeline
Mastering pixel changes and motion patterns enables advanced AI systems to understand dynamic visual scenes.
Skills you'll gain
Details to know

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February 2026
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There are 2 modules in this course
Learners will master the foundational image preprocessing techniques essential for computer vision applications, including normalization methods and color-space conversions that ensure consistent model performance across diverse visual conditions.
What's included
1 video2 readings2 assignments
Learners will master motion analysis techniques essential for dynamic computer vision applications, implementing optical flow algorithms and frame differencing methods to extract temporal features from video sequences for applications like object tracking and action recognition.
What's included
1 video2 readings2 assignments1 ungraded lab
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