[BugFix] Stop silent failures on compressed-tensors parsing (#9381)
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@ -31,4 +31,4 @@ pyyaml
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six>=1.16.0; python_version > '3.11' # transitive dependency of pandas that needs to be the latest version for python 3.12
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setuptools>=74.1.1; python_version > '3.11' # Setuptools is used by triton, we need to ensure a modern version is installed for 3.12+ so that it does not try to import distutils, which was removed in 3.12
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einops # Required for Qwen2-VL.
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compressed-tensors == 0.6.0 # required for compressed-tensors
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compressed-tensors == 0.7.1 # required for compressed-tensors
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@ -100,12 +100,21 @@ class CompressedTensorsConfig(QuantizationConfig):
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target_scheme_map[target][
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"weights"] = QuantizationArgs.parse_obj(
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quant_config.get("weights"))
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try:
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target_scheme_map[target]["input_activations"] = None
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if is_activation_quantization_format(quant_format):
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input_activations = quant_config.get("input_activations")
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# The only case where we have activation quant supported
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# but no input_activations provided in the config
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# should be w8a16fp8 w8a16fp8 can also run for cases where
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# there is an input_quant but it is ignored
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if not input_activations:
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assert target_scheme_map[target][
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"weights"].type == QuantizationType.FLOAT
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else:
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target_scheme_map[target][
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"input_activations"] = QuantizationArgs.parse_obj(
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quant_config.get("input_activations"))
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except Exception:
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target_scheme_map[target]["input_activations"] = None
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return cls(target_scheme_map=target_scheme_map,
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ignore=ignore,
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@ -244,8 +253,6 @@ class CompressedTensorsConfig(QuantizationConfig):
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group_size=weight_quant.group_size,
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actorder=weight_quant.actorder)
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# Detect If Activation Quantization.
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# TODO @dsikka: clean-up conditions
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if is_activation_quantization_format(self.quant_format):
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if self._is_fp8_w8a8(weight_quant, input_quant):
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is_fp8_w8a8_supported = self._check_scheme_supported(
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@ -256,16 +263,19 @@ class CompressedTensorsConfig(QuantizationConfig):
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is_static_input_scheme=(input_quant
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and not input_quant.dynamic))
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else:
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# note: input_quant will be present for converted models;
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# will be ignored during inference post loading
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return CompressedTensorsW8A16Fp8(
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strategy=weight_quant.strategy,
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is_static_input_scheme=(input_quant
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and not input_quant.dynamic))
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is_static_input_scheme=not input_quant.dynamic)
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# note: input_quant can be None
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if self._is_fp8_w8a16(weight_quant, input_quant):
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is_static_input_scheme = (input_quant
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and not input_quant.dynamic)
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return CompressedTensorsW8A16Fp8(
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strategy=weight_quant.strategy,
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is_static_input_scheme=(input_quant
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and not input_quant.dynamic))
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is_static_input_scheme=is_static_input_scheme)
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if self._is_static_tensor_w8a8(weight_quant, input_quant):
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return CompressedTensorsW8A8Int8(
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