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Add note about fix
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train.py
2
train.py
@ -140,7 +140,7 @@ def get_batch(split, step):
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else:
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data = np.memmap(os.path.join(data_dir, 'val.bin'), dtype=np.uint16, mode='r')
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d_rng = random.Random(f"{split}-{step}-{seed}")
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ix = [ d_rng.randint(0, len(data) - block_size) for _ in range(batch_size) ]
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ix = [ d_rng.randint(0, len(data) - block_size) for _ in range(batch_size) ] # TODO: I think this needs to be len(data) - block_size - 1 but changing it breaks determinism badly
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x = torch.stack([torch.from_numpy((data[i:i+block_size]).astype(np.int64)) for i in ix])
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y = torch.stack([torch.from_numpy((data[i+1:i+1+block_size]).astype(np.int64)) for i in ix])
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if device_type == 'cuda':
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