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It is a differentiable computer vision library for PyTorch. It consists of a set of routines and differentiable modules to solve generic computer vision problems. At its core, the package uses PyTorch as its main backend both for efficiency and to take advantage of the reverse-mode auto-differentiation to define and compute the gradient of complex functions. | It makes it easy to personalize any listing: recommendations, articles, and search results. Developers make one reranking API call, and Metarank takes care of ML feature updates, model training, and improving target goals like CTR/conversion. |
Perform feature detection; Perform data augmentation in the GPU;
Perform image filtering and edge detection;
Differentiable computer vision library | Built-in feature store to compute features used for online and offline training;
REST API, Kafka, Apache Pulsar connectors to receive events and metadata updates;
Offline and online (real-time personalization) operation modes;
Explain mode to understand how final ranking is computed;
Local mode to run Metarank locally without deploying to a cluster;
Cloud native: deploy Metarank to Kubernetes or AWS |
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GitHub Stars 10.8K | GitHub Stars 2.2K |
GitHub Forks 1.1K | GitHub Forks 102 |
Stacks 14 | Stacks 2 |
Followers 6 | Followers 9 |
Votes 0 | Votes 0 |
Integrations | |

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