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Robot Perception and Mask R-CNN

Honeywell AI data scientist Chris DeBellis explains Mask R-CNN for robot perception, covering how it compares with other CNN approaches and how to get started with the method.

Aug 27 · · primary fetch1 sourceupdated Aug 27 ·

Chris DeBellis, a lead AI data scientist at Honeywell, helps us understand what Mask R-CNN is and why it’s useful for robot perception. We also explore how this method compares with other convolutional neural network approaches and how you can get started with Mask R-CNN. Sponsors: DigitalOcean – Enjoy CPU optimized droplets with dedicated hyper-threads from best in class Intel CPUs for all your machine learning and batch processing needs. Easily spin up a one-click Machine Learning and AI application image and get immediate access to Python3, R, Jupyter Notebook, TensorFlow, SciKit, and PyTorch.

Our listeners get $100 in credit! Hired – Salary and benefits upfront? Yes please. Our listeners get a double hiring bonus of $600! Or, refer a friend and get a check for $1,337 when they accept a job. On Hired companies send you offers with salary, benefits, and even equity upfront. You are in full control of the process. Learn more at hired.com/practicalai. Featuring: Chris DeBellis – Website Chris Benson – Website, GitHub, LinkedIn, X Daniel Whitenack – Website, GitHub, X Show Notes: Matterport R-CNN Mask R-CNN paper COCO dataset Stanford CNN course Stanford Deep Learning course…

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