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13 changes: 13 additions & 0 deletions backends/cadence/aot/ops_registrations.py
Original file line number Diff line number Diff line change
Expand Up @@ -139,6 +139,7 @@
"int in_zero_point, bool channel_last=False) -> (Tensor out)"
)
lib.define("linalg_vector_norm(Tensor X) -> (Tensor Y)")
lib.define("rms_norm(Tensor X, float eps, Tensor W) -> (Tensor Y)")
lib.define(
"transposed_im2row(Tensor input, int[2] kernel_size, int[2] dilation, int[2] padding, int[2] stride, "
"int[2] output_padding, Tensor in_zero_point, bool channel_last=False) -> (Tensor out)"
Expand Down Expand Up @@ -210,6 +211,9 @@
"fully_connected.out(Tensor input, Tensor weight, Tensor? bias=None, *, Tensor(a!) out) -> Tensor(a!)"
)
lib.define("linalg_vector_norm.out(Tensor X, *, Tensor(a!) out) -> Tensor(a!)")
lib.define(
"rms_norm.out(Tensor X, float eps, Tensor W, *, Tensor(a!) out) -> Tensor(a!)"
)
lib.define(
"quantized_fully_connected.out(Tensor src, Tensor weight, Tensor bias, int src_zero_point, "
"Tensor weight_zero_point, Tensor out_multiplier, Tensor out_shift, int out_zero_point, Tensor? offset, *, Tensor(a!) out) -> Tensor(a!)"
Expand Down Expand Up @@ -615,6 +619,15 @@ def linalg_vector_norm_meta(
return X.new_empty([], dtype=X.dtype)


@register_fake("cadence::rms_norm")
def rms_norm_meta(
X: torch.Tensor,
eps: float,
weight: torch.Tensor,
) -> torch.Tensor:
return X.new_empty(X.shape, dtype=X.dtype)


@register_fake("cadence::requantize")
def requantize_meta(
input: torch.Tensor,
Expand Down
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