Jupyter notebook "Chemogenetic Activation Hippocampal is a B.Tech project topic for Electrical Engineering. It gives students a clear starting point for research, implementation planning, and documentation.
Jupyter notebook "Chemogenetic Activation Hippocampal Project Details
| Abstract |
This project shows how to build an automated system for tracking behavior and analyzing space using deepβlearning computer vision. It uses the openβsource DeepLabCut framework to follow userβchosen body points in videos of newborn rodents, so no physical markers are needed. The positions of each point are saved as trajectories and then processed in a Jupyter notebook to compute movement metrics such as speed, distance traveled, and body orientation. To measure preferences, the program draws the trajectories on the video frames and marks several regions of interest (ROIs). It then adds up the time the animal spends in each ROI, giving an automatic readout of nestβselection behavior. The framework includes
stepβbyβstep instructions for setting up the deepβlearning model, handling the coordinate CSV files, and running the spatial analysis. Automating the scoring cuts down on manual work and reduces human bias in experiments. Electrical and electronics engineering students can use this as a handsβon guide for combining deep learning, computer vision, and bioβsignal analysis in automated labs.
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| Reference Paper |
Jupyter notebook for "Chemogenetic Activation of Hippocampal Neurons Enhances Nest Selection in Neonatal Rats" |
| Domain |
Computer Vision & Bio-Signal Processing |
| Sub-Domain |
Electrical & Electronics Engineering |
| PDF Download |
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| Get Help |
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