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- W4313226905 abstract "The multimedia is playing role of timing frames in videos. The representation frame shows the intention on video definition. The keyframes the important factor for extraction information from video frames. The non-related frames is a problem for finding new key exposure. In this paper, we present a new method for extracting essential frames from motion capture data using Optimized Convolution Neural Network (OCNN) and Intensity Feature Selection (IFS) for better visualisation and understanding of motion content. It first removes noise from motion capture data using the Butterworth filter, then reduces the size via principal component analysis (PCA). Finding the zero-crosses of velocity in the main components yields the initial set of crucial frames. To avoid redundancy, the first batch of important frames is divided into identical poses. Experiments are based on data access from frames in the motion capture database, and experimental results suggest that crucial frames retrieved by our method can improve motion capture visualisation and comprehension." @default.
- W4313226905 created "2023-01-06" @default.
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- W4313226905 creator A5078914300 @default.
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- W4313226905 date "2022-10-10" @default.
- W4313226905 modified "2023-10-18" @default.
- W4313226905 title "Key Frame Extraction Analysis Based on Optimized Convolution Neural Network (OCNN) using Intensity Feature Selection (IFS)" @default.
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- W4313226905 doi "https://doi.org/10.1109/ictacs56270.2022.9988474" @default.
- W4313226905 hasPublicationYear "2022" @default.
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