mirror of https://github.com/hpcaitech/ColossalAI
42 lines
1.4 KiB
Python
42 lines
1.4 KiB
Python
import torch
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import colossalai
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from colossalai.legacy.zero.gemini.tensor_utils import colo_model_data_tensor_move, colo_model_data_tensor_move_inline
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from colossalai.legacy.zero.sharded_param import ShardedTensor
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from colossalai.testing import rerun_if_address_is_in_use, spawn
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def run_tensor_move(rank, world_size, port):
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colossalai.legacy.launch(config={}, rank=0, world_size=world_size, host="localhost", port=port, backend="nccl")
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src_t = torch.ones(2, 3).cuda()
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tgt_t = torch.zeros(2, 3)
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colo_model_data_tensor_move(src_t, tgt_t)
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assert torch.sum(tgt_t) == 6.0, f"{torch.sum(tgt_t.payload)} vs. 6.0"
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src_t = torch.ones(2, 3)
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tgt_t = torch.zeros(2, 3).cuda().half()
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colo_model_data_tensor_move(src_t, tgt_t)
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# the src_t has been removed
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assert src_t.numel() == 0
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assert torch.sum(tgt_t) == 6.0, f"{torch.sum(tgt_t.payload)} vs. 6.0"
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src_t = ShardedTensor(torch.ones(2, 3))
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tgt_t = ShardedTensor(torch.zeros(2, 3).cuda().half())
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colo_model_data_tensor_move(src_t, tgt_t)
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assert torch.sum(tgt_t.payload) == 6.0, f"{torch.sum(tgt_t.payload)} vs. 6.0"
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assert tgt_t.device.type == "cuda"
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colo_model_data_tensor_move_inline(tgt_t, torch.device("cpu"))
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assert tgt_t.device.type == "cpu"
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@rerun_if_address_is_in_use()
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def test_tensor_move():
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spawn(run_tensor_move, 1)
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if __name__ == "__main__":
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test_tensor_move()
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