update requirements
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@ -89,7 +89,7 @@ pip install pointnet2_ops_lib/.
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By default, it will create a folder named "checkpoints/{modelName}-{msg}-{randomseed}", which includes args.txt, best_checkpoint.pth, last_checkpoint.pth, log.txt, out.txt.
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```bash
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cd pointMLP-pytorch/classification_ModelNet40
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cd classification_ModelNet40
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# train pointMLP
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python main.py --model pointMLP
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# train pointMLP-elite
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@ -111,6 +111,7 @@ The dataset will be automatically downloaded
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- Train pointMLP/pointMLPElite
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```bash
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cd classification_ScanObjectNN
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# train pointMLP
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python main.py --model pointMLP
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# train pointMLP-elite
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@ -124,7 +125,7 @@ By default, it will create a fold named "checkpoints/{modelName}-{msg}-{randomse
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- Make data folder and download the dataset
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```bash
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cd pointMLP-pytorch/part_segmentation
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cd part_segmentation
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mkdir data
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cd data
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wget https://shapenet.cs.stanford.edu/media/shapenetcore_partanno_segmentation_benchmark_v0_normal.zip --no-check-certificate
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@ -1,13 +1,12 @@
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cudatoolkit=10.2.89
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cycler=0.10.0
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einops=0.3.0
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h5py=3.2.1
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matplotlib=3.4.2
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numpy=1.20.2
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numpy-base=1.20.2
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pytorch=1.8.1
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pyyaml=5.4.1
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scikit-learn=0.24.2
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scipy=1.6.3
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torchvision=0.9.1
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tqdm=4.61.1
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torch
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torchvision
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cudatoolkit
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cycler
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einops
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h5py
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matplotlib==3.4.2
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pytorch
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pyyaml==5.4.1
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scikit-learn==0.24.2
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scipy
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tqdm
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