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47 lines
1.9 KiB
47 lines
1.9 KiB
2 years ago
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import pytest
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import torch
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from tests.components_to_test.registry import non_distributed_component_funcs
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from colossalai.nn.optimizer import CPUAdam, HybridAdam
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def move_some_params_to_cuda(model, torch_model):
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model.embed.weight.data = model.embed.weight.cuda()
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torch_model.embed.weight.data = model.embed.weight.cuda()
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model.ln1.weight.data = model.ln1.weight.cuda()
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torch_model.ln1.weight.data = model.ln1.weight.cuda()
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def check_params_equal(model, torch_model):
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for p, torch_p in zip(model.parameters(), torch_model.parameters()):
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assert torch.allclose(p, torch_p, atol=1e-3), f'diff: {torch.abs(p - torch_p)}'
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@pytest.mark.parametrize('nvme_offload_fraction', [0.0, 0.5, 1.0])
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@pytest.mark.parametrize('nvme_offload_dir', ['./offload', None])
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@pytest.mark.parametrize('adam_cls', [CPUAdam, HybridAdam])
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def test_nvme_adam(nvme_offload_fraction, nvme_offload_dir, adam_cls):
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get_components_func = non_distributed_component_funcs.get_callable('simple_net')
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model_builder, train_dataloader, test_dataloader, optimizer_class, criterion = get_components_func()
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model = model_builder()
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torch_model = model_builder()
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move_some_params_to_cuda(model, torch_model)
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optimizer = adam_cls(model.parameters(),
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lr=0.1,
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nvme_offload_fraction=nvme_offload_fraction,
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nvme_offload_dir=nvme_offload_dir)
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torch_optimizer = torch.optim.Adam(torch_model.parameters(), lr=0.1)
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with torch.no_grad():
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for p, torch_p in zip(model.parameters(), torch_model.parameters()):
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torch_p.copy_(p)
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p.grad = torch.rand_like(p)
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torch_p.grad = p.grad
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for _ in range(3):
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optimizer.step()
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torch_optimizer.step()
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check_params_equal(model, torch_model)
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if __name__ == '__main__':
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test_nvme_adam(0.5, './offload', CPUAdam)
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