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(I ) The difference in mean spatial content of frames with high and low VTA unit activity, relative to the mean (RR units: p=0.045, signed-rank test).
RR unit firing rate was lower in frames associated with higher spatial content (above the mean spatial content of frames) than in frames associated with lower spatial content (below the mean; RR unit firing rate at high spatial content frames 4.11 ± 0.78 Hz vs. firing rate at low spatial content frames 4.83 ± 0.91 Hz, p =0.001; signed-rank test, n = 42).
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Since an effect usually causes large variations in the contents of frames, scene changes can always be found in the duration of an effect.
The content of a frame is dynamically loaded and independent of the other frames in a frameset.
CAUEP improves UEPWZ by adapting the protection levels of different video data element, to the content of each frame.
We improve the performance of our unequal error protection technique by adapting the parity data rates for protecting the video information to the content of each frame.
One method adapts the protection levels to the content of each frame, while another utilizes feedback regarding the latest channel packet loss rate to adjust the protection levels.
This simplification is possible as the content of each frame does not change significantly, especially for the sequences with slow motion.
For FBUEP and CAUEP methods, the parity data rate assignments are always adaptive to the content of the frame or the channel packet loss rate.
Content adaptive unequal error protection (CAUEP) improves UEPWZ from the encoder side by analyzing the content of each frame while feedback aided unequal error protection (FBUEP) utilizes channel loss information conveyed from the H.264 decoder side.
Pitch synchronous analysis will be used later on, for statistical characterization in Section 4. At each time instant t i, the main goal is to represent the frequency content of each frame using features capturing independent characteristics of the speech signal.
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