推荐系统入门教程,在线阅读地址:https://datawhalechina.github.io/fun-rec/
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Updated
Jun 27, 2026 - Python
推荐系统入门教程,在线阅读地址:https://datawhalechina.github.io/fun-rec/
KaHyPar (Karlsruhe Hypergraph Partitioning) is a multilevel hypergraph partitioning framework providing direct k-way and recursive bisection based partitioning algorithms that compute solutions of very high quality.
KaHIP -- HIGH Quality Partitioning.
Mt-KaHyPar (Multi-Threaded Karlsruhe Hypergraph Partitioner) is a shared-memory multilevel graph and hypergraph partitioner equipped with parallel implementations of techniques used in the best sequential partitioning algorithms. Mt-KaHyPar can partition extremely large hypergraphs very fast and with high quality.
Agentic Algorithm Engineering
Karlsruhe Rapid Ride-Pooling (KaRRi) Dynamic Ride-Pooling Dispatcher.
Exercises for the Algorithm Engineering (ALE) course at University of Pisa
A list of all publications related to the KaHyPar frameworks.
Dynamic Matching in Practice — fully dynamic maximal matching algorithms
Buffered Streaming Graph Partitioning
Experiment execution and result management for empirical evaluations of algorithms in Python.
Material for the AlgLab (Winter 2024/2025) @ TU Braunschweig
StreamCPI is a framework for reducing the memory consumption of streaming graph partitioners by compressing the array of block assignments used by such partitioners with run-length compression.
A scalable Python framework that transforms algorithm practice into a data-driven, testable, and high-performance workflow—built to help developers grow faster and understand algorithms more deeply.
Fully dynamic exact and heuristic algorithms for edge orientation (delta-orientation)
Exact minimum cuts in hypergraphs at scale using FPT kernelization
Fully dynamic solver for the Maximum (Weight) Independent Set problem
Collection of our hypergraph partitioning experiments
Streaming Process Mapping
Secretly a Master's Thesis
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