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Private project in development for codes related to the AddEstModel
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This project is meant to implement a model to provide the iCub robot with addressee estimation skill through a classifier based on hybrid deep learning neural network.
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Addressee Estimation is the ability to understand to whom a person is directing an utterance. This ability is crucial for social robot engaging in multi-party interaction to understand the basic dynamics of social communication. In this project, we deploy a DL model on an iCub robot to estimate the placement of the addressee from the robot's first person perspective by taking as input visual information of the speaker. Specifically, we extract two visual features: body pose vectors and face images of the speaker from the camera stream of the iCub and use them to feed our model. The model classify the addressee's placement as 'robot', 'left', or 'right, meaning respectfully that the addressee is the robot, or is at the robot's left or right.
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Autoencoder that recovers details in images obtained by perspective transformation
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Code repository for CITE-On: Cell Identification and Trace Extraction Online
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The python script and YAML database to generate CNCS website pages automatically, fetching also people's pictures.
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