Difference between revisions of "Training Projects"

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(Object Detection)
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[https://drive.google.com/file/d/1q55Q3wHfeRwD_gkuMMrRZcT_Vbtz1qG7/view?usp=sharing Download Instructions]
 
[https://drive.google.com/file/d/1q55Q3wHfeRwD_gkuMMrRZcT_Vbtz1qG7/view?usp=sharing Download Instructions]
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== Regression ==
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Predicting the values of one buoy using the parameters of another buoy. In this project, we are using the dataset of Mouth of Placentia Bay Buoy, Pilot Boarding Station / Red Island Shoal Buoy, Placentia Bay: Ragged Islands – KLUMI( Land station) which are located in Newfoundland and Labrador.

Revision as of 13:04, 20 April 2021

DeepSense has compiled a few data sets for students, and others interested in the ocean and AI, so they can have the opportunity to complete AI projects independently. We hope participants can learn about a specific type of ocean related data, and experience an explicit AI project. It is expected that the participants work on the project alone, but we have provided some guidance that includes notebooks, data, outputs and models to try to improve upon.

We have found that the data cleaning step can take a long time, so our hope is that these datasets will be reasonably clean, allowing the participants to explore ocean AI.

Object Detection

We used the google open images database to obtain approximately 650 images of starfish. The metadata includes coordinates for bounding boxes around the starfish.

Dataset

Download Instructions

Regression

Predicting the values of one buoy using the parameters of another buoy. In this project, we are using the dataset of Mouth of Placentia Bay Buoy, Pilot Boarding Station / Red Island Shoal Buoy, Placentia Bay: Ragged Islands – KLUMI( Land station) which are located in Newfoundland and Labrador.