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nfl's Introduction

Introduction

NFL is a two-stage learned index framework, consisting of a normalizing flow that performs a Distribution Transformation on the key distribution and a learned index that achieves excellent performance on the near-uniform key distritbuion with small buffers.

Early access: https://arxiv.org/abs/2205.11807

Requirements

  • Intel MKL 11.3
  • CMake 3.12
  • GNU C++ 17
  • OpenMP

Getting Started

Acitivating intel mkl.

$ source ~/intel/oneapi/setvars.sh --force intel64

Downloading libraries and compiling codes.

$ bash scripts/bootstrap.sh

Generating workloads and configs.

$ bash scripts/generate_workloads.sh
$ bash scripts/generate_configs.sh

Reproducing results.

$ bash scripts/benchmark.sh

Clearing.

$ bash scripts/clear.sh

Training

To train our numerical flowl, please follow the guideline in the train directory.

First, run the script to generate training data for the flow.

$ bash scripts/prepare_keys_for_flows.sh

Then, run the script in the train directory.

$ bash train/train_flow.sh

Results

The results are shown in the following format.

(dataset name) (index name) (batch size) (bulk loading time) (transformation time in bulk loading) (model size) (index size) (overall throughput) (avg-T) (avg-I) (50-T) (50-I) (75-T) (75-I) (99-T) (99-I) (995-T) (995-I) (9999-T) (9999-I) (max-T) (max-I)

where 'T' represents the transformation time, 'I' represents the indexing latency.

Contact

Please be free to contact us via [email protected].

nfl's People

Contributors

luffy06 avatar

Stargazers

Metetor avatar  avatar Ao Qiao avatar Artificial Intelligence & Marine Information Processing Lab of Tianjin University avatar Sachith G Pai avatar Woooooow Pro avatar Meng Li avatar  avatar wyy avatar Andy avatar 齐豪 avatar  avatar Eva Xiong avatar  avatar Ce Li avatar 诺伊 avatar  avatar gdymind avatar Yuanhui Luo avatar  avatar

Watchers

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