We have hosted the application raster vision in order to run this application in our online workstations with Wine or directly.


Quick description about raster vision:

Raster Vision is an open source framework for Python developers building computer vision models on satellite, aerial, and other large imagery sets (including oblique drone imagery). There is built-in support for chip classification, object detection, and semantic segmentation using PyTorch. Raster Vision allows engineers to quickly and repeatably configure pipelines that go through core components of a machine learning workflow: analyzing training data, creating training chips, training models, creating predictions, evaluating models, and bundling the model files and configuration for easy deployment. The input to a Raster Vision pipeline is a set of images and training data, optionally with Areas of Interest (AOIs) that describe where the images are labeled. The output of a Raster Vision pipeline is a model bundle that allows you to easily utilize models in various deployment scenarios.

Features:
  • Gather dataset-level statistics and metrics for use in downstream processes
  • Create training chips from a variety of image and label sources
  • Train a model using a �backend� such as PyTorch
  • Make predictions using trained models on validation and test data
  • Derive evaluation metrics such as F1 score, precision and recall against the model�s predictions on validation datasets
  • Bundle the trained model and associated configuration into a model bundle, which can be deployed in batch processes, live servers, and other workflows


Programming Language: Python.
Categories:
Machine Learning, Computer Vision Libraries, Object Detection Models, Deep Learning Frameworks

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