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https://github.com/huggingface/text-generation-inference.git
synced 2025-09-12 04:44:52 +00:00
fix: add missing tests and renames
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29e922d3d4
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b16109966d
@ -28,7 +28,7 @@ dummy_file_system = {
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),
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},
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"test_get_weights_col_packed": {
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"col_packed.weight": torch.tensor(
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"weight.weight": torch.tensor(
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[
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[1, 2],
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[3, 4],
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@ -39,7 +39,7 @@ dummy_file_system = {
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),
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},
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"test_get_multi_weights_col": {
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"col.weight": torch.tensor(
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"weight.weight": torch.tensor(
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[
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[1, 2],
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[3, 4],
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@ -48,7 +48,7 @@ dummy_file_system = {
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],
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dtype=torch.float32,
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),
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"col.weight": torch.tensor(
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"weight.weight": torch.tensor(
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[
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[1, 2],
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[3, 4],
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@ -59,7 +59,7 @@ dummy_file_system = {
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),
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},
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"test_get_multi_weights_row": {
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"row_packed.weight": torch.tensor(
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"weight.weight": torch.tensor(
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[
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[1, 2],
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[3, 4],
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@ -85,6 +85,10 @@ dummy_file_system = {
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"gptq_bits": torch.tensor([8], dtype=torch.float32),
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"gptq_groupsize": torch.tensor([4], dtype=torch.float32),
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},
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"test_get_weights_col_marlin": {
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"weight.B": torch.tensor([[1, 2], [3, 4]], dtype=torch.int32),
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"weight.s": torch.tensor([[0.5000], [0.2500]], dtype=torch.float16),
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},
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"test_get_multi_weights_row_gptq": {
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"weight.qweight": torch.tensor(
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[
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@ -118,7 +122,7 @@ dummy_file_system = {
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"gptq_groupsize": torch.tensor([4], dtype=torch.float32),
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},
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"test_get_weights_col_packed_gptq": {
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"col_packed.qweight": torch.tensor(
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"weight.qweight": torch.tensor(
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[
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[1, 2],
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[3, 4],
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@ -127,15 +131,15 @@ dummy_file_system = {
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],
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dtype=torch.int32,
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),
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"col_packed.g_idx": torch.tensor([1.0], dtype=torch.int32),
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"col_packed.qzeros": torch.tensor([[1.0], [2.0]], dtype=torch.int32),
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"col_packed.scales": torch.tensor([[8]], dtype=torch.float16),
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"weight.g_idx": torch.tensor([1.0], dtype=torch.int32),
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"weight.qzeros": torch.tensor([[1.0], [2.0]], dtype=torch.int32),
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"weight.scales": torch.tensor([[8]], dtype=torch.float16),
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"gptq_bits": torch.tensor([8], dtype=torch.float32),
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"gptq_groupsize": torch.tensor([4], dtype=torch.float32),
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},
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# TODO: review id col packed exl2 is supported
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# TODO: review if col packed exl2 is supported
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"test_get_weights_col_packed_exl2": {
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"col_packed.q_weight": torch.tensor(
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"weight.q_weight": torch.tensor(
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[
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[1, 2],
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[3, 4],
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@ -144,10 +148,10 @@ dummy_file_system = {
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],
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dtype=torch.int32,
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),
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"col_packed.q_scale": torch.tensor([8], dtype=torch.int32),
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"col_packed.q_invperm": torch.tensor([1.0], dtype=torch.int32),
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"col_packed.q_scale_max": torch.tensor([100], dtype=torch.float16),
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"col_packed.q_groups": torch.tensor([4], dtype=torch.int16),
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"weight.q_scale": torch.tensor([8], dtype=torch.int32),
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"weight.q_invperm": torch.tensor([1.0], dtype=torch.int32),
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"weight.q_scale_max": torch.tensor([100], dtype=torch.float16),
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"weight.q_groups": torch.tensor([4], dtype=torch.int16),
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},
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"test_get_multi_weights_row_exl2": {
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"weight.q_weight": torch.tensor(
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@ -182,7 +186,7 @@ dummy_file_system = {
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"weight.q_groups": torch.tensor([4], dtype=torch.int16),
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},
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"test_get_weights_col_exl2": {
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"col_packed.q_weight": torch.tensor(
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"weight.q_weight": torch.tensor(
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[
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[1, 2],
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[3, 4],
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@ -191,10 +195,10 @@ dummy_file_system = {
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],
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dtype=torch.int32,
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),
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"col_packed.q_scale": torch.tensor([8], dtype=torch.int32),
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"col_packed.q_invperm": torch.tensor([1.0], dtype=torch.int32),
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"col_packed.q_scale_max": torch.tensor([100], dtype=torch.float16),
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"col_packed.q_groups": torch.tensor([4], dtype=torch.int16),
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"weight.q_scale": torch.tensor([8], dtype=torch.int32),
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"weight.q_invperm": torch.tensor([1.0], dtype=torch.int32),
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"weight.q_scale_max": torch.tensor([100], dtype=torch.float16),
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"weight.q_groups": torch.tensor([4], dtype=torch.int16),
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},
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"test_get_multi_weights_row_marlin": {
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"weight.B": torch.tensor([[1, 2], [3, 4]], dtype=torch.int32),
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@ -205,8 +209,8 @@ dummy_file_system = {
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"weight.s": torch.tensor([[0.5], [0.25]], dtype=torch.float16),
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},
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"test_get_weights_col_packed_marlin": {
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"col_packed.B": torch.tensor([[1, 2], [3, 4]], dtype=torch.int32),
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"col_packed.s": torch.tensor([[0.5], [0.25]], dtype=torch.float16),
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"weight.B": torch.tensor([[1, 2], [3, 4]], dtype=torch.int32),
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"weight.s": torch.tensor([[0.5], [0.25]], dtype=torch.float16),
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},
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}
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@ -362,7 +366,7 @@ def test_get_weights_col_packed():
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dummy_fs=dummy_file_system,
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)
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prefix = "col_packed"
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prefix = "weight"
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quantize = None
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block_sizes = 1
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@ -398,7 +402,7 @@ def test_get_weights_col_packed_block_size():
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dummy_fs=dummy_file_system,
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)
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prefix = "col_packed"
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prefix = "weight"
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quantize = None
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block_sizes = 2
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@ -434,7 +438,7 @@ def test_get_weights_col_packed_block_size_arr():
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dummy_fs=dummy_file_system,
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)
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prefix = "col_packed"
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prefix = "weight"
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quantize = None
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block_sizes = [1, 1]
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@ -469,7 +473,7 @@ def test_get_multi_weights_col():
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dummy_fs=dummy_file_system,
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)
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prefixes = ["col", "col"]
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prefixes = ["weight", "weight"]
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quantize = None
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w = weights.get_multi_weights_col(
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@ -507,7 +511,7 @@ def test_get_multi_weights_row():
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dummy_fs=dummy_file_system,
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)
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prefix = "row_packed"
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prefix = "weight"
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quantize = None
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w = weights.get_multi_weights_row(
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@ -524,6 +528,47 @@ def test_get_multi_weights_row():
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)
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# test_get_weights_col
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def test_get_weights_col_awq():
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weights = MockWeights(
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[
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"test_get_weights_col_gptq",
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],
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device="cpu",
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dtype=torch.float32,
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process_group=dummy_process_group,
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dummy_fs=dummy_file_system,
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)
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prefix = "weight"
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quantize = "awq"
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w = weights.get_weights_col(
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prefix=prefix,
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quantize=quantize,
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)
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expected_weight = GPTQWeight(
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qweight=torch.tensor([[1.0, 2.0], [3.0, 4.0], [5.0, 6.0], [7.0, 8.0]]),
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qzeros=torch.tensor([[1], [2]], dtype=torch.int32),
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scales=torch.tensor([[100.0], [100.0]], dtype=torch.float16),
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g_idx=None,
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bits=8.0,
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groupsize=4.0,
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use_exllama=False,
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)
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assert torch.allclose(w.qweight, expected_weight.qweight), "qweight mismatch"
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assert torch.allclose(w.qzeros, expected_weight.qzeros), "qzeros mismatch"
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assert torch.allclose(w.scales, expected_weight.scales), "scales mismatch"
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assert w.g_idx == expected_weight.g_idx, "g_idx mismatch"
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assert w.bits == expected_weight.bits, "bits mismatch"
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assert w.groupsize == expected_weight.groupsize, "groupsize mismatch"
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assert w.use_exllama == expected_weight.use_exllama, "use_exllama mismatch"
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def test_get_weights_col_gtpq():
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weights = MockWeights(
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[
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@ -573,7 +618,7 @@ def test_get_weights_col_exl2():
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dummy_fs=dummy_file_system,
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)
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prefix = "col_packed"
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prefix = "weight"
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quantize = "exl2"
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w = weights.get_weights_col(
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@ -599,6 +644,34 @@ def test_get_weights_col_exl2():
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assert torch.allclose(w.q_groups, expected_weight.q_groups), "q_groups mismatch"
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def test_get_weights_col_marlin():
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weights = MockWeights(
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[
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"test_get_weights_col_marlin",
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],
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device="cpu",
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dtype=torch.float16,
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process_group=dummy_process_group,
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dummy_fs=dummy_file_system,
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)
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prefix = "weight"
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quantize = "marlin"
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w = weights.get_weights_col(
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prefix=prefix,
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quantize=quantize,
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)
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expected_weight = MarlinWeight(
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B=torch.tensor([[1, 2], [3, 4]], dtype=torch.int32),
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s=torch.tensor([[0.5000], [0.2500]], dtype=torch.float16),
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)
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assert torch.allclose(w.B, expected_weight.B), "B mismatch"
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assert torch.allclose(w.s, expected_weight.s), "s mismatch"
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# test_get_weights_col_packed
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@ -613,7 +686,7 @@ def test_get_weights_col_packed_awq():
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dummy_fs=dummy_file_system,
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)
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prefix = "col_packed"
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prefix = "weight"
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quantize = "awq"
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block_sizes = 1
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@ -654,7 +727,7 @@ def test_get_weights_col_packed_exl2():
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dummy_fs=dummy_file_system,
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)
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prefix = "col_packed"
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prefix = "weight"
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quantize = "exl2"
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block_sizes = 1
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@ -693,7 +766,7 @@ def test_get_weights_col_packed_gptq():
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dummy_fs=dummy_file_system,
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)
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prefixes = ["col_packed"]
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prefixes = ["weight"]
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quantize = "gptq"
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w = weights.get_multi_weights_col(
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@ -732,7 +805,7 @@ def test_get_weights_col_packed_marlin():
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dummy_fs=dummy_file_system,
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)
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prefix = "col_packed"
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prefix = "weight"
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quantize = "marlin"
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w = weights.get_multi_weights_col(
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