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#14710: Subtract op Sweep for failing cases
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VirdhatchaniKN committed Nov 7, 2024
1 parent c078fc3 commit 8271461
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1 change: 1 addition & 0 deletions .github/workflows/ttnn-run-sweeps.yaml
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- eltwise.unary_complex.angle_bw.angle_bw
- eltwise.binary.subtract.subtract
- eltwise.binary.subtract.subtract_tensor_pytorch2
- eltwise.binary.subtract.subtract_tensor_fails
- eltwise.binary.multiply.multiply
- eltwise.binary.multiply.mul_tensor_pytorch2
- eltwise.binary.multiply.multiply_scalar_pytorch2
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# SPDX-FileCopyrightText: © 2024 Tenstorrent Inc.

# SPDX-License-Identifier: Apache-2.0

from typing import Optional, Tuple
from functools import partial

import torch
import random
import ttnn
from tests.sweep_framework.sweep_utils.utils import gen_shapes
from tests.tt_eager.python_api_testing.sweep_tests.generation_funcs import gen_func_with_cast_tt

from tests.ttnn.utils_for_testing import check_with_pcc, start_measuring_time, stop_measuring_time
from models.utility_functions import torch_random

TIMEOUT = 30

random.seed(0)


parameters = {
"nightly": {
"input_specs": [
{"shape": [0, 1], "other": [0, 1]},
{"shape": [0], "other": [0]},
{"shape": [1, 10], "other": [10, 1]},
{"shape": [1, 15], "other": [15, 1]},
{"shape": [1, 17], "other": [17, 1]},
{"shape": [1, 2], "other": [2, 1]},
{"shape": [16, 1, 49], "other": [16, 49, 1]},
{"shape": [16, 1, 64], "other": [16, 64, 1]},
{"shape": [24, 1], "other": [1, 24]},
{"shape": [4, 1, 49], "other": [4, 49, 1]},
{"shape": [4, 1, 64], "other": [4, 64, 1]},
{"shape": [64, 1, 49], "other": [64, 49, 1]},
{"shape": [64, 1, 64], "other": [64, 64, 1]},
],
"input_a_dtype": [ttnn.bfloat16],
"input_b_dtype": [ttnn.bfloat16],
"input_a_layout": [ttnn.TILE_LAYOUT],
"input_b_layout": [ttnn.TILE_LAYOUT],
"input_a_memory_config": [ttnn.DRAM_MEMORY_CONFIG, ttnn.L1_MEMORY_CONFIG],
"input_b_memory_config": [ttnn.DRAM_MEMORY_CONFIG, ttnn.L1_MEMORY_CONFIG],
"output_memory_config": [ttnn.DRAM_MEMORY_CONFIG, ttnn.L1_MEMORY_CONFIG],
},
}


def run(
input_specs,
input_a_dtype,
input_b_dtype,
input_a_layout,
input_b_layout,
input_a_memory_config,
input_b_memory_config,
output_memory_config,
*,
device,
) -> list:
data_seed = random.randint(0, 20000000)
torch.manual_seed(data_seed)

input_shape = input_specs["shape"]
torch_input_tensor_a = gen_func_with_cast_tt(
partial(torch_random, low=-100, high=100, dtype=torch.float32), input_a_dtype
)(input_shape)

other = input_specs["other"]
if isinstance(other, (int, float)):
torch_other_tensor = torch.tensor(other, dtype=torch.float32)
else:
torch_other_tensor = gen_func_with_cast_tt(
partial(torch_random, low=-100, high=100, dtype=torch.float32), input_b_dtype
)(other)

golden_function = ttnn.get_golden_function(ttnn.sub)
torch_output_tensor = golden_function(torch_input_tensor_a, torch_other_tensor)

input_tensor_a = ttnn.from_torch(
torch_input_tensor_a,
dtype=input_a_dtype,
layout=input_a_layout,
device=device,
memory_config=input_a_memory_config,
)

input_tensor_b = ttnn.from_torch(
torch_other_tensor,
dtype=input_b_dtype,
layout=input_b_layout,
device=device,
memory_config=input_b_memory_config,
)

start_time = start_measuring_time()

output_tensor = ttnn.subtract(input_tensor_a, input_tensor_b, memory_config=output_memory_config)
output_tensor = ttnn.to_torch(output_tensor)

e2e_perf = stop_measuring_time(start_time)

return [check_with_pcc(torch_output_tensor, output_tensor, 0.999), e2e_perf]

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