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path: root/text_recognizer/network/transformer/norm.py
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"""Normalization layers for transformers.

Copied from lucidrains:
    https://github.com/lucidrains/x-transformers/blob/main/x_transformers/x_transformers.py

"""
import torch
from torch import Tensor, nn
import torch.nn.functional as F


class RMSNorm(nn.Module):
    """Root mean square layer normalization."""

    def __init__(self, heads: int, dim: int) -> None:
        super().__init__()
        self.scale = dim**-0.5
        self.gamma = nn.Parameter(torch.ones(heads, 1, dim))

    def forward(self, x: Tensor) -> Tensor:
        """Applies normalization."""
        return F.normalize(x, dim=-1) * self.scale * self.gamma