LRCN

E899022

LRCN is a deep learning architecture that combines convolutional neural networks with recurrent neural networks to model and interpret visual sequences such as video and image descriptions.

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LRCN canonical 1

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Predicate Object
instanceOf deep learning architecture ⓘ
appliedTo activity recognition ⓘ
image captioning ⓘ
image sequences ⓘ
video data ⓘ
video description ⓘ
visual sequences ⓘ
architecturePattern CNN followed by RNN ⓘ
canUsePretrained CNN backbone ⓘ
captures long-term temporal dependencies in visual data ⓘ
combines spatial feature learning and temporal modeling ⓘ
domain computer vision ⓘ
multimodal learning ⓘ
sequence modeling ⓘ
featureExtractionBy convolutional neural network ⓘ
feeds frame-level CNN features into RNN ⓘ
fullName Long-term Recurrent Convolutional Network ⓘ
handles variable-length input sequences ⓘ
variable-length output sequences ⓘ
inputType sequence of images ⓘ
sequence of video frames ⓘ
introducedInField deep learning for video understanding ⓘ
learningType supervised learning ⓘ
models spatiotemporal data ⓘ
temporal dynamics of visual features ⓘ
outputType class label sequence ⓘ
natural language description ⓘ
relatedTo RNN-based sequence models ⓘ
encoder-decoder architectures ⓘ
image captioning models ⓘ
video captioning models ⓘ
represents each frame with CNN features ⓘ
sequenceModelingBy LSTM network ⓘ
linked to: LSTM networks

recurrent neural network ⓘ
supports one-to-sequence learning ⓘ
sequence-to-one learning ⓘ
sequence-to-sequence learning ⓘ
trainingObjective minimize prediction loss over sequences ⓘ
usedFor end-to-end training on image captioning ⓘ
end-to-end training on video tasks ⓘ
usesComponent CNN ⓘ
LSTM ⓘ
linked to: LSTM networks

RNN ⓘ
convolutional neural network ⓘ
recurrent neural network ⓘ

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