dmlc--dgl
565f0c88fc
* refactor graph conv * docs & tests * fix lint * fix lint * fix lint * fix lint script * fix lint * Update * Style fix * Fix style * Fix style * Fix gpu case * Fix for gpu case * Hotfix edgesoftmax docs * Handle repeated features * Add docstring * Set default arguments * Remove dropout from nn.conv * Fix * add util fn for renaming * revert gcn_spmv.py * mx folder * fix wierd bug * fix mx * fix lint
128 行
4.0 KiB
Python
128 行
4.0 KiB
Python
"""Training GCN model on citation graphs."""
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import argparse, time
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import numpy as np
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import mxnet as mx
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from mxnet import gluon
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from dgl import DGLGraph
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from dgl.data import register_data_args, load_data
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from gcn import GCN
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#from gcn_mp import GCN
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#from gcn_spmv import GCN
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def evaluate(model, features, labels, mask):
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pred = model(features).argmax(axis=1)
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accuracy = ((pred == labels) * mask).sum() / mask.sum().asscalar()
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return accuracy.asscalar()
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def main(args):
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# load and preprocess dataset
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data = load_data(args)
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features = mx.nd.array(data.features)
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labels = mx.nd.array(data.labels)
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train_mask = mx.nd.array(data.train_mask)
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val_mask = mx.nd.array(data.val_mask)
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test_mask = mx.nd.array(data.test_mask)
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in_feats = features.shape[1]
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n_classes = data.num_labels
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n_edges = data.graph.number_of_edges()
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print("""----Data statistics------'
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#Edges %d
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#Classes %d
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#Train samples %d
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#Val samples %d
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#Test samples %d""" %
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(n_edges, n_classes,
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train_mask.sum().asscalar(),
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val_mask.sum().asscalar(),
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test_mask.sum().asscalar()))
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if args.gpu < 0:
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cuda = False
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ctx = mx.cpu(0)
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else:
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cuda = True
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ctx = mx.gpu(args.gpu)
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features = features.as_in_context(ctx)
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labels = labels.as_in_context(ctx)
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train_mask = train_mask.as_in_context(ctx)
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val_mask = val_mask.as_in_context(ctx)
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test_mask = test_mask.as_in_context(ctx)
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# create GCN model
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g = DGLGraph(data.graph)
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g.add_edges(g.nodes(), g.nodes())
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# normalization
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degs = g.in_degrees().astype('float32')
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norm = mx.nd.power(degs, -0.5)
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if cuda:
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norm = norm.as_in_context(ctx)
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g.ndata['norm'] = mx.nd.expand_dims(norm, 1)
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model = GCN(g,
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in_feats,
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args.n_hidden,
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n_classes,
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args.n_layers,
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mx.nd.relu,
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args.dropout)
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model.initialize(ctx=ctx)
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n_train_samples = train_mask.sum().asscalar()
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loss_fcn = gluon.loss.SoftmaxCELoss()
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# use optimizer
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print(model.collect_params())
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trainer = gluon.Trainer(model.collect_params(), 'adam',
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{'learning_rate': args.lr, 'wd': args.weight_decay})
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# initialize graph
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dur = []
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for epoch in range(args.n_epochs):
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if epoch >= 3:
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t0 = time.time()
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# forward
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with mx.autograd.record():
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pred = model(features)
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loss = loss_fcn(pred, labels, mx.nd.expand_dims(train_mask, 1))
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loss = loss.sum() / n_train_samples
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loss.backward()
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trainer.step(batch_size=1)
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if epoch >= 3:
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loss.asscalar()
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dur.append(time.time() - t0)
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acc = evaluate(model, features, labels, val_mask)
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print("Epoch {:05d} | Time(s) {:.4f} | Loss {:.4f} | Accuracy {:.4f} | "
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"ETputs(KTEPS) {:.2f}". format(
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epoch, np.mean(dur), loss.asscalar(), acc, n_edges / np.mean(dur) / 1000))
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# test set accuracy
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acc = evaluate(model, features, labels, test_mask)
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print("Test accuracy {:.2%}".format(acc))
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if __name__ == '__main__':
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parser = argparse.ArgumentParser(description='GCN')
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register_data_args(parser)
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parser.add_argument("--dropout", type=float, default=0.5,
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help="dropout probability")
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parser.add_argument("--gpu", type=int, default=-1,
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help="gpu")
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parser.add_argument("--lr", type=float, default=3e-2,
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help="learning rate")
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parser.add_argument("--n-epochs", type=int, default=200,
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help="number of training epochs")
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parser.add_argument("--n-hidden", type=int, default=16,
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help="number of hidden gcn units")
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parser.add_argument("--n-layers", type=int, default=1,
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help="number of hidden gcn layers")
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parser.add_argument("--weight-decay", type=float, default=5e-4,
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help="Weight for L2 loss")
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args = parser.parse_args()
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print(args)
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main(args)
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