Upload openai_whisper-large-v3-v20240930_turbo and openai_whisper-large-v3-v20240930_turbo_632MB, 4-bit compressed, outlier_decomp std 3, no qlora
Browse files- openai_whisper-large-v3-v20240930_turbo/AudioEncoder.mlmodelc/analytics/coremldata.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo/AudioEncoder.mlmodelc/coremldata.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo/AudioEncoder.mlmodelc/metadata.json +67 -0
- openai_whisper-large-v3-v20240930_turbo/AudioEncoder.mlmodelc/model.mil +0 -0
- openai_whisper-large-v3-v20240930_turbo/AudioEncoder.mlmodelc/weights/weight.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo/MelSpectrogram.mlmodelc/analytics/coremldata.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo/MelSpectrogram.mlmodelc/coremldata.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo/MelSpectrogram.mlmodelc/metadata.json +71 -0
- openai_whisper-large-v3-v20240930_turbo/MelSpectrogram.mlmodelc/model.mil +66 -0
- openai_whisper-large-v3-v20240930_turbo/MelSpectrogram.mlmodelc/weights/weight.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo/TextDecoder.mlmodelc/analytics/coremldata.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo/TextDecoder.mlmodelc/coremldata.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo/TextDecoder.mlmodelc/metadata.json +165 -0
- openai_whisper-large-v3-v20240930_turbo/TextDecoder.mlmodelc/model.mil +0 -0
- openai_whisper-large-v3-v20240930_turbo/TextDecoder.mlmodelc/weights/weight.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo/TextDecoderContextPrefill.mlmodelc/analytics/coremldata.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo/TextDecoderContextPrefill.mlmodelc/coremldata.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo/TextDecoderContextPrefill.mlmodelc/metadata.json +82 -0
- openai_whisper-large-v3-v20240930_turbo/TextDecoderContextPrefill.mlmodelc/model.mil +29 -0
- openai_whisper-large-v3-v20240930_turbo/TextDecoderContextPrefill.mlmodelc/weights/weight.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo/config.json +1 -0
- openai_whisper-large-v3-v20240930_turbo/generation_config.json +1 -0
- openai_whisper-large-v3-v20240930_turbo_632MB/AudioEncoder.mlmodelc/analytics/coremldata.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo_632MB/AudioEncoder.mlmodelc/coremldata.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo_632MB/AudioEncoder.mlmodelc/metadata.json +69 -0
- openai_whisper-large-v3-v20240930_turbo_632MB/AudioEncoder.mlmodelc/model.mil +0 -0
- openai_whisper-large-v3-v20240930_turbo_632MB/AudioEncoder.mlmodelc/weights/weight.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo_632MB/MelSpectrogram.mlmodelc/analytics/coremldata.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo_632MB/MelSpectrogram.mlmodelc/coremldata.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo_632MB/MelSpectrogram.mlmodelc/metadata.json +71 -0
- openai_whisper-large-v3-v20240930_turbo_632MB/MelSpectrogram.mlmodelc/model.mil +66 -0
- openai_whisper-large-v3-v20240930_turbo_632MB/MelSpectrogram.mlmodelc/weights/weight.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo_632MB/TextDecoder.mlmodelc/analytics/coremldata.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo_632MB/TextDecoder.mlmodelc/coremldata.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo_632MB/TextDecoder.mlmodelc/metadata.json +167 -0
- openai_whisper-large-v3-v20240930_turbo_632MB/TextDecoder.mlmodelc/model.mil +0 -0
- openai_whisper-large-v3-v20240930_turbo_632MB/TextDecoder.mlmodelc/weights/weight.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo_632MB/TextDecoderContextPrefill.mlmodelc/analytics/coremldata.bin +3 -0
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- openai_whisper-large-v3-v20240930_turbo_632MB/TextDecoderContextPrefill.mlmodelc/weights/weight.bin +3 -0
- openai_whisper-large-v3-v20240930_turbo_632MB/config.json +1 -0
- openai_whisper-large-v3-v20240930_turbo_632MB/generation_config.json +1 -0
    	
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            [buildInfo = dict<tensor<string, []>, tensor<string, []>>({{"coremlc-component-MIL", "3304.5.2"}, {"coremlc-version", "3304.6.2"}, {"coremltools-component-torch", "2.4.1"}, {"coremltools-source-dialect", "TorchScript"}, {"coremltools-version", "8.0"}})]
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            {
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                func main<ios16>(tensor<fp16, [480000]> audio) {
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                        tensor<int32, [3]> var_10 = const()[name = tensor<string, []>("op_10"), val = tensor<int32, [3]>([1, 1, 480000])];
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                        tensor<fp16, [1, 1, 480000]> input_1_cast_fp16 = reshape(shape = var_10, x = audio)[name = tensor<string, []>("input_1_cast_fp16")];
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                        tensor<int32, [6]> input_3_pad_0 = const()[name = tensor<string, []>("input_3_pad_0"), val = tensor<int32, [6]>([0, 0, 0, 0, 200, 200])];
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                        tensor<string, []> input_3_mode_0 = const()[name = tensor<string, []>("input_3_mode_0"), val = tensor<string, []>("reflect")];
         | 
| 9 | 
            +
                        tensor<fp16, []> const_1_to_fp16 = const()[name = tensor<string, []>("const_1_to_fp16"), val = tensor<fp16, []>(0x0p+0)];
         | 
| 10 | 
            +
                        tensor<fp16, [1, 1, 480400]> input_3_cast_fp16 = pad(constant_val = const_1_to_fp16, mode = input_3_mode_0, pad = input_3_pad_0, x = input_1_cast_fp16)[name = tensor<string, []>("input_3_cast_fp16")];
         | 
| 11 | 
            +
                        tensor<int32, [1]> var_22 = const()[name = tensor<string, []>("op_22"), val = tensor<int32, [1]>([480400])];
         | 
| 12 | 
            +
                        tensor<fp16, [480400]> input_cast_fp16 = reshape(shape = var_22, x = input_3_cast_fp16)[name = tensor<string, []>("input_cast_fp16")];
         | 
| 13 | 
            +
                        tensor<int32, [1]> expand_dims_0_axes_0 = const()[name = tensor<string, []>("expand_dims_0_axes_0"), val = tensor<int32, [1]>([0])];
         | 
| 14 | 
            +
                        tensor<fp16, [1, 480400]> expand_dims_0_cast_fp16 = expand_dims(axes = expand_dims_0_axes_0, x = input_cast_fp16)[name = tensor<string, []>("expand_dims_0_cast_fp16")];
         | 
| 15 | 
            +
                        tensor<int32, [1]> expand_dims_3 = const()[name = tensor<string, []>("expand_dims_3"), val = tensor<int32, [1]>([160])];
         | 
| 16 | 
            +
                        tensor<int32, [1]> expand_dims_4_axes_0 = const()[name = tensor<string, []>("expand_dims_4_axes_0"), val = tensor<int32, [1]>([1])];
         | 
| 17 | 
            +
                        tensor<fp16, [1, 1, 480400]> expand_dims_4_cast_fp16 = expand_dims(axes = expand_dims_4_axes_0, x = expand_dims_0_cast_fp16)[name = tensor<string, []>("expand_dims_4_cast_fp16")];
         | 
| 18 | 
            +
                        tensor<string, []> conv_0_pad_type_0 = const()[name = tensor<string, []>("conv_0_pad_type_0"), val = tensor<string, []>("valid")];
         | 
| 19 | 
            +
                        tensor<int32, [2]> conv_0_pad_0 = const()[name = tensor<string, []>("conv_0_pad_0"), val = tensor<int32, [2]>([0, 0])];
         | 
| 20 | 
            +
                        tensor<int32, [1]> conv_0_dilations_0 = const()[name = tensor<string, []>("conv_0_dilations_0"), val = tensor<int32, [1]>([1])];
         | 
| 21 | 
            +
                        tensor<int32, []> conv_0_groups_0 = const()[name = tensor<string, []>("conv_0_groups_0"), val = tensor<int32, []>(1)];
         | 
| 22 | 
            +
                        tensor<fp16, [201, 1, 400]> expand_dims_1_to_fp16 = const()[name = tensor<string, []>("expand_dims_1_to_fp16"), val = tensor<fp16, [201, 1, 400]>(BLOBFILE(path = tensor<string, []>("@model_path/weights/weight.bin"), offset = tensor<uint64, []>(64)))];
         | 
| 23 | 
            +
                        tensor<fp16, [1, 201, 3001]> conv_0_cast_fp16 = conv(dilations = conv_0_dilations_0, groups = conv_0_groups_0, pad = conv_0_pad_0, pad_type = conv_0_pad_type_0, strides = expand_dims_3, weight = expand_dims_1_to_fp16, x = expand_dims_4_cast_fp16)[name = tensor<string, []>("conv_0_cast_fp16")];
         | 
| 24 | 
            +
                        tensor<string, []> conv_1_pad_type_0 = const()[name = tensor<string, []>("conv_1_pad_type_0"), val = tensor<string, []>("valid")];
         | 
| 25 | 
            +
                        tensor<int32, [2]> conv_1_pad_0 = const()[name = tensor<string, []>("conv_1_pad_0"), val = tensor<int32, [2]>([0, 0])];
         | 
| 26 | 
            +
                        tensor<int32, [1]> conv_1_dilations_0 = const()[name = tensor<string, []>("conv_1_dilations_0"), val = tensor<int32, [1]>([1])];
         | 
| 27 | 
            +
                        tensor<int32, []> conv_1_groups_0 = const()[name = tensor<string, []>("conv_1_groups_0"), val = tensor<int32, []>(1)];
         | 
| 28 | 
            +
                        tensor<fp16, [201, 1, 400]> expand_dims_2_to_fp16 = const()[name = tensor<string, []>("expand_dims_2_to_fp16"), val = tensor<fp16, [201, 1, 400]>(BLOBFILE(path = tensor<string, []>("@model_path/weights/weight.bin"), offset = tensor<uint64, []>(160960)))];
         | 
| 29 | 
            +
                        tensor<fp16, [1, 201, 3001]> conv_1_cast_fp16 = conv(dilations = conv_1_dilations_0, groups = conv_1_groups_0, pad = conv_1_pad_0, pad_type = conv_1_pad_type_0, strides = expand_dims_3, weight = expand_dims_2_to_fp16, x = expand_dims_4_cast_fp16)[name = tensor<string, []>("conv_1_cast_fp16")];
         | 
| 30 | 
            +
                        tensor<int32, [1]> squeeze_0_axes_0 = const()[name = tensor<string, []>("squeeze_0_axes_0"), val = tensor<int32, [1]>([0])];
         | 
| 31 | 
            +
                        tensor<fp16, [201, 3001]> squeeze_0_cast_fp16 = squeeze(axes = squeeze_0_axes_0, x = conv_0_cast_fp16)[name = tensor<string, []>("squeeze_0_cast_fp16")];
         | 
| 32 | 
            +
                        tensor<int32, [1]> squeeze_1_axes_0 = const()[name = tensor<string, []>("squeeze_1_axes_0"), val = tensor<int32, [1]>([0])];
         | 
| 33 | 
            +
                        tensor<fp16, [201, 3001]> squeeze_1_cast_fp16 = squeeze(axes = squeeze_1_axes_0, x = conv_1_cast_fp16)[name = tensor<string, []>("squeeze_1_cast_fp16")];
         | 
| 34 | 
            +
                        tensor<fp16, [201, 3001]> square_0_cast_fp16 = square(x = squeeze_0_cast_fp16)[name = tensor<string, []>("square_0_cast_fp16")];
         | 
| 35 | 
            +
                        tensor<fp16, [201, 3001]> square_1_cast_fp16 = square(x = squeeze_1_cast_fp16)[name = tensor<string, []>("square_1_cast_fp16")];
         | 
| 36 | 
            +
                        tensor<fp16, [201, 3001]> add_1_cast_fp16 = add(x = square_0_cast_fp16, y = square_1_cast_fp16)[name = tensor<string, []>("add_1_cast_fp16")];
         | 
| 37 | 
            +
                        tensor<fp16, [201, 3001]> magnitudes_1_cast_fp16 = identity(x = add_1_cast_fp16)[name = tensor<string, []>("magnitudes_1_cast_fp16")];
         | 
| 38 | 
            +
                        tensor<int32, [2]> magnitudes_begin_0 = const()[name = tensor<string, []>("magnitudes_begin_0"), val = tensor<int32, [2]>([0, 0])];
         | 
| 39 | 
            +
                        tensor<int32, [2]> magnitudes_end_0 = const()[name = tensor<string, []>("magnitudes_end_0"), val = tensor<int32, [2]>([201, 3000])];
         | 
| 40 | 
            +
                        tensor<bool, [2]> magnitudes_end_mask_0 = const()[name = tensor<string, []>("magnitudes_end_mask_0"), val = tensor<bool, [2]>([true, false])];
         | 
| 41 | 
            +
                        tensor<fp16, [201, 3000]> magnitudes_cast_fp16 = slice_by_index(begin = magnitudes_begin_0, end = magnitudes_end_0, end_mask = magnitudes_end_mask_0, x = magnitudes_1_cast_fp16)[name = tensor<string, []>("magnitudes_cast_fp16")];
         | 
| 42 | 
            +
                        tensor<bool, []> mel_spec_1_transpose_x_0 = const()[name = tensor<string, []>("mel_spec_1_transpose_x_0"), val = tensor<bool, []>(false)];
         | 
| 43 | 
            +
                        tensor<bool, []> mel_spec_1_transpose_y_0 = const()[name = tensor<string, []>("mel_spec_1_transpose_y_0"), val = tensor<bool, []>(false)];
         | 
| 44 | 
            +
                        tensor<fp16, [128, 201]> mel_filters_to_fp16 = const()[name = tensor<string, []>("mel_filters_to_fp16"), val = tensor<fp16, [128, 201]>(BLOBFILE(path = tensor<string, []>("@model_path/weights/weight.bin"), offset = tensor<uint64, []>(321856)))];
         | 
| 45 | 
            +
                        tensor<fp16, [128, 3000]> mel_spec_1_cast_fp16 = matmul(transpose_x = mel_spec_1_transpose_x_0, transpose_y = mel_spec_1_transpose_y_0, x = mel_filters_to_fp16, y = magnitudes_cast_fp16)[name = tensor<string, []>("mel_spec_1_cast_fp16")];
         | 
| 46 | 
            +
                        tensor<fp16, []> var_41_to_fp16 = const()[name = tensor<string, []>("op_41_to_fp16"), val = tensor<fp16, []>(0x1p-24)];
         | 
| 47 | 
            +
                        tensor<fp16, [128, 3000]> mel_spec_cast_fp16 = add(x = mel_spec_1_cast_fp16, y = var_41_to_fp16)[name = tensor<string, []>("mel_spec_cast_fp16")];
         | 
| 48 | 
            +
                        tensor<fp16, []> log_0_epsilon_0_to_fp16 = const()[name = tensor<string, []>("log_0_epsilon_0_to_fp16"), val = tensor<fp16, []>(0x0p+0)];
         | 
| 49 | 
            +
                        tensor<fp16, [128, 3000]> log_0_cast_fp16 = log(epsilon = log_0_epsilon_0_to_fp16, x = mel_spec_cast_fp16)[name = tensor<string, []>("log_0_cast_fp16")];
         | 
| 50 | 
            +
                        tensor<fp16, []> mul_0_y_0_to_fp16 = const()[name = tensor<string, []>("mul_0_y_0_to_fp16"), val = tensor<fp16, []>(0x1.bccp-2)];
         | 
| 51 | 
            +
                        tensor<fp16, [128, 3000]> mul_0_cast_fp16 = mul(x = log_0_cast_fp16, y = mul_0_y_0_to_fp16)[name = tensor<string, []>("mul_0_cast_fp16")];
         | 
| 52 | 
            +
                        tensor<bool, []> var_44_keep_dims_0 = const()[name = tensor<string, []>("op_44_keep_dims_0"), val = tensor<bool, []>(false)];
         | 
| 53 | 
            +
                        tensor<fp16, []> var_44_cast_fp16 = reduce_max(keep_dims = var_44_keep_dims_0, x = mul_0_cast_fp16)[name = tensor<string, []>("op_44_cast_fp16")];
         | 
| 54 | 
            +
                        tensor<fp16, []> var_46_to_fp16 = const()[name = tensor<string, []>("op_46_to_fp16"), val = tensor<fp16, []>(0x1p+3)];
         | 
| 55 | 
            +
                        tensor<fp16, []> var_47_cast_fp16 = sub(x = var_44_cast_fp16, y = var_46_to_fp16)[name = tensor<string, []>("op_47_cast_fp16")];
         | 
| 56 | 
            +
                        tensor<fp16, [128, 3000]> log_spec_3_cast_fp16 = maximum(x = mul_0_cast_fp16, y = var_47_cast_fp16)[name = tensor<string, []>("log_spec_3_cast_fp16")];
         | 
| 57 | 
            +
                        tensor<fp16, []> var_50_to_fp16 = const()[name = tensor<string, []>("op_50_to_fp16"), val = tensor<fp16, []>(0x1p+2)];
         | 
| 58 | 
            +
                        tensor<fp16, [128, 3000]> var_51_cast_fp16 = add(x = log_spec_3_cast_fp16, y = var_50_to_fp16)[name = tensor<string, []>("op_51_cast_fp16")];
         | 
| 59 | 
            +
                        tensor<fp16, []> _inversed_log_spec_y_0_to_fp16 = const()[name = tensor<string, []>("_inversed_log_spec_y_0_to_fp16"), val = tensor<fp16, []>(0x1p-2)];
         | 
| 60 | 
            +
                        tensor<fp16, [128, 3000]> _inversed_log_spec_cast_fp16 = mul(x = var_51_cast_fp16, y = _inversed_log_spec_y_0_to_fp16)[name = tensor<string, []>("_inversed_log_spec_cast_fp16")];
         | 
| 61 | 
            +
                        tensor<int32, [1]> var_55_axes_0 = const()[name = tensor<string, []>("op_55_axes_0"), val = tensor<int32, [1]>([0])];
         | 
| 62 | 
            +
                        tensor<fp16, [1, 128, 3000]> var_55_cast_fp16 = expand_dims(axes = var_55_axes_0, x = _inversed_log_spec_cast_fp16)[name = tensor<string, []>("op_55_cast_fp16")];
         | 
| 63 | 
            +
                        tensor<int32, [1]> var_62_axes_0 = const()[name = tensor<string, []>("op_62_axes_0"), val = tensor<int32, [1]>([2])];
         | 
| 64 | 
            +
                        tensor<fp16, [1, 128, 1, 3000]> melspectrogram_features = expand_dims(axes = var_62_axes_0, x = var_55_cast_fp16)[name = tensor<string, []>("op_62_cast_fp16")];
         | 
| 65 | 
            +
                    } -> (melspectrogram_features);
         | 
| 66 | 
            +
            }
         | 
    	
        openai_whisper-large-v3-v20240930_turbo/MelSpectrogram.mlmodelc/weights/weight.bin
    ADDED
    
    | @@ -0,0 +1,3 @@ | |
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            oid sha256:009d9fb8f6b589accfa08cebf1c712ef07c3405229ce3cfb3a57ee033c9d8a49
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            size 373376
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        openai_whisper-large-v3-v20240930_turbo/TextDecoder.mlmodelc/analytics/coremldata.bin
    ADDED
    
    | @@ -0,0 +1,3 @@ | |
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            oid sha256:47703aed03fbfa5128e118cfe6519024006f953a53e921d66003f1412c27996c
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            size 243
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        openai_whisper-large-v3-v20240930_turbo/TextDecoder.mlmodelc/coremldata.bin
    ADDED
    
    | @@ -0,0 +1,3 @@ | |
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            version https://git-lfs.github.com/spec/v1
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            size 633
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        openai_whisper-large-v3-v20240930_turbo/TextDecoder.mlmodelc/metadata.json
    ADDED
    
    | @@ -0,0 +1,165 @@ | |
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                    "shape" : "[1, 5120, 1, 1]",
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                    "name" : "key_cache_updates",
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                    "type" : "MultiArray"
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                  },
         | 
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                  {
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                  },
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                  }
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                ],
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         | 
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                  "ExpandDims" : 6,
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                  "Ios16.batchNorm" : 13,
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                  "Ios16.gather" : 2,
         | 
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         | 
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                  "Ios16.softmax" : 8
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                },
         | 
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                "computePrecision" : "Mixed (Float16, Int32)",
         | 
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                "availability" : {
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                },
         | 
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                "modelType" : {
         | 
| 83 | 
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                  "name" : "MLModelType_mlProgram"
         | 
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         | 
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         | 
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            {
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                func main<ios17>(tensor<int32, [1]> language, tensor<int32, [1]> task) {
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| 5 | 
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         | 
| 6 | 
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                        tensor<int32, [1]> var_7 = sub(x = language, y = var_6)[name = tensor<string, []>("op_7")];
         | 
| 7 | 
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         | 
| 8 | 
            +
                        tensor<int32, [1]> var_9 = mul(x = var_7, y = var_8)[name = tensor<string, []>("op_9")];
         | 
| 9 | 
            +
                        tensor<int32, [1]> input = add(x = var_9, y = task)[name = tensor<string, []>("input")];
         | 
| 10 | 
            +
                        tensor<int32, []> var_15_axis_0 = const()[name = tensor<string, []>("op_15_axis_0"), val = tensor<int32, []>(0)];
         | 
| 11 | 
            +
                        tensor<int32, []> var_15_batch_dims_0 = const()[name = tensor<string, []>("op_15_batch_dims_0"), val = tensor<int32, []>(0)];
         | 
| 12 | 
            +
                        tensor<bool, []> var_15_validate_indices_0 = const()[name = tensor<string, []>("op_15_validate_indices_0"), val = tensor<bool, []>(false)];
         | 
| 13 | 
            +
                        tensor<fp16, [200, 15360]> key_cache_lut_weight_to_fp16 = const()[name = tensor<string, []>("key_cache_lut_weight_to_fp16"), val = tensor<fp16, [200, 15360]>(BLOBFILE(path = tensor<string, []>("@model_path/weights/weight.bin"), offset = tensor<uint64, []>(64)))];
         | 
| 14 | 
            +
                        tensor<string, []> input_to_int16_dtype_0 = const()[name = tensor<string, []>("input_to_int16_dtype_0"), val = tensor<string, []>("int16")];
         | 
| 15 | 
            +
                        tensor<int16, [1]> input_to_int16 = cast(dtype = input_to_int16_dtype_0, x = input)[name = tensor<string, []>("cast_7")];
         | 
| 16 | 
            +
                        tensor<fp16, [1, 15360]> var_15_cast_fp16_cast_uint16 = gather(axis = var_15_axis_0, batch_dims = var_15_batch_dims_0, indices = input_to_int16, validate_indices = var_15_validate_indices_0, x = key_cache_lut_weight_to_fp16)[name = tensor<string, []>("op_15_cast_fp16_cast_uint16")];
         | 
| 17 | 
            +
                        tensor<int32, [4]> var_20 = const()[name = tensor<string, []>("op_20"), val = tensor<int32, [4]>([1, 5120, 1, 3])];
         | 
| 18 | 
            +
                        tensor<fp16, [1, 5120, 1, 3]> key_cache_prefill = reshape(shape = var_20, x = var_15_cast_fp16_cast_uint16)[name = tensor<string, []>("op_21_cast_fp16")];
         | 
| 19 | 
            +
                        tensor<int32, []> var_25_axis_0 = const()[name = tensor<string, []>("op_25_axis_0"), val = tensor<int32, []>(0)];
         | 
| 20 | 
            +
                        tensor<int32, []> var_25_batch_dims_0 = const()[name = tensor<string, []>("op_25_batch_dims_0"), val = tensor<int32, []>(0)];
         | 
| 21 | 
            +
                        tensor<bool, []> var_25_validate_indices_0 = const()[name = tensor<string, []>("op_25_validate_indices_0"), val = tensor<bool, []>(false)];
         | 
| 22 | 
            +
                        tensor<fp16, [200, 15360]> value_cache_lut_weight_to_fp16 = const()[name = tensor<string, []>("value_cache_lut_weight_to_fp16"), val = tensor<fp16, [200, 15360]>(BLOBFILE(path = tensor<string, []>("@model_path/weights/weight.bin"), offset = tensor<uint64, []>(6144128)))];
         | 
| 23 | 
            +
                        tensor<string, []> input_to_uint16_dtype_0 = const()[name = tensor<string, []>("input_to_uint16_dtype_0"), val = tensor<string, []>("uint16")];
         | 
| 24 | 
            +
                        tensor<uint16, [1]> input_to_uint16 = cast(dtype = input_to_uint16_dtype_0, x = input)[name = tensor<string, []>("cast_6")];
         | 
| 25 | 
            +
                        tensor<fp16, [1, 15360]> var_25_cast_fp16_cast_uint16 = gather(axis = var_25_axis_0, batch_dims = var_25_batch_dims_0, indices = input_to_uint16, validate_indices = var_25_validate_indices_0, x = value_cache_lut_weight_to_fp16)[name = tensor<string, []>("op_25_cast_fp16_cast_uint16")];
         | 
| 26 | 
            +
                        tensor<int32, [4]> var_30 = const()[name = tensor<string, []>("op_30"), val = tensor<int32, [4]>([1, 5120, 1, 3])];
         | 
| 27 | 
            +
                        tensor<fp16, [1, 5120, 1, 3]> value_cache_prefill = reshape(shape = var_30, x = var_25_cast_fp16_cast_uint16)[name = tensor<string, []>("op_31_cast_fp16")];
         | 
| 28 | 
            +
                    } -> (key_cache_prefill, value_cache_prefill);
         | 
| 29 | 
            +
            }
         | 
    	
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    ADDED
    
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         | 
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            {
         | 
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            +
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         | 
| 5 | 
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                        tensor<int32, [3]> var_10 = const()[name = tensor<string, []>("op_10"), val = tensor<int32, [3]>([1, 1, 480000])];
         | 
| 6 | 
            +
                        tensor<fp16, [1, 1, 480000]> input_1_cast_fp16 = reshape(shape = var_10, x = audio)[name = tensor<string, []>("input_1_cast_fp16")];
         | 
| 7 | 
            +
                        tensor<int32, [6]> input_3_pad_0 = const()[name = tensor<string, []>("input_3_pad_0"), val = tensor<int32, [6]>([0, 0, 0, 0, 200, 200])];
         | 
| 8 | 
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                        tensor<string, []> input_3_mode_0 = const()[name = tensor<string, []>("input_3_mode_0"), val = tensor<string, []>("reflect")];
         | 
| 9 | 
            +
                        tensor<fp16, []> const_1_to_fp16 = const()[name = tensor<string, []>("const_1_to_fp16"), val = tensor<fp16, []>(0x0p+0)];
         | 
| 10 | 
            +
                        tensor<fp16, [1, 1, 480400]> input_3_cast_fp16 = pad(constant_val = const_1_to_fp16, mode = input_3_mode_0, pad = input_3_pad_0, x = input_1_cast_fp16)[name = tensor<string, []>("input_3_cast_fp16")];
         | 
| 11 | 
            +
                        tensor<int32, [1]> var_22 = const()[name = tensor<string, []>("op_22"), val = tensor<int32, [1]>([480400])];
         | 
| 12 | 
            +
                        tensor<fp16, [480400]> input_cast_fp16 = reshape(shape = var_22, x = input_3_cast_fp16)[name = tensor<string, []>("input_cast_fp16")];
         | 
| 13 | 
            +
                        tensor<int32, [1]> expand_dims_0_axes_0 = const()[name = tensor<string, []>("expand_dims_0_axes_0"), val = tensor<int32, [1]>([0])];
         | 
| 14 | 
            +
                        tensor<fp16, [1, 480400]> expand_dims_0_cast_fp16 = expand_dims(axes = expand_dims_0_axes_0, x = input_cast_fp16)[name = tensor<string, []>("expand_dims_0_cast_fp16")];
         | 
| 15 | 
            +
                        tensor<int32, [1]> expand_dims_3 = const()[name = tensor<string, []>("expand_dims_3"), val = tensor<int32, [1]>([160])];
         | 
| 16 | 
            +
                        tensor<int32, [1]> expand_dims_4_axes_0 = const()[name = tensor<string, []>("expand_dims_4_axes_0"), val = tensor<int32, [1]>([1])];
         | 
| 17 | 
            +
                        tensor<fp16, [1, 1, 480400]> expand_dims_4_cast_fp16 = expand_dims(axes = expand_dims_4_axes_0, x = expand_dims_0_cast_fp16)[name = tensor<string, []>("expand_dims_4_cast_fp16")];
         | 
| 18 | 
            +
                        tensor<string, []> conv_0_pad_type_0 = const()[name = tensor<string, []>("conv_0_pad_type_0"), val = tensor<string, []>("valid")];
         | 
| 19 | 
            +
                        tensor<int32, [2]> conv_0_pad_0 = const()[name = tensor<string, []>("conv_0_pad_0"), val = tensor<int32, [2]>([0, 0])];
         | 
| 20 | 
            +
                        tensor<int32, [1]> conv_0_dilations_0 = const()[name = tensor<string, []>("conv_0_dilations_0"), val = tensor<int32, [1]>([1])];
         | 
| 21 | 
            +
                        tensor<int32, []> conv_0_groups_0 = const()[name = tensor<string, []>("conv_0_groups_0"), val = tensor<int32, []>(1)];
         | 
| 22 | 
            +
                        tensor<fp16, [201, 1, 400]> expand_dims_1_to_fp16 = const()[name = tensor<string, []>("expand_dims_1_to_fp16"), val = tensor<fp16, [201, 1, 400]>(BLOBFILE(path = tensor<string, []>("@model_path/weights/weight.bin"), offset = tensor<uint64, []>(64)))];
         | 
| 23 | 
            +
                        tensor<fp16, [1, 201, 3001]> conv_0_cast_fp16 = conv(dilations = conv_0_dilations_0, groups = conv_0_groups_0, pad = conv_0_pad_0, pad_type = conv_0_pad_type_0, strides = expand_dims_3, weight = expand_dims_1_to_fp16, x = expand_dims_4_cast_fp16)[name = tensor<string, []>("conv_0_cast_fp16")];
         | 
| 24 | 
            +
                        tensor<string, []> conv_1_pad_type_0 = const()[name = tensor<string, []>("conv_1_pad_type_0"), val = tensor<string, []>("valid")];
         | 
| 25 | 
            +
                        tensor<int32, [2]> conv_1_pad_0 = const()[name = tensor<string, []>("conv_1_pad_0"), val = tensor<int32, [2]>([0, 0])];
         | 
| 26 | 
            +
                        tensor<int32, [1]> conv_1_dilations_0 = const()[name = tensor<string, []>("conv_1_dilations_0"), val = tensor<int32, [1]>([1])];
         | 
| 27 | 
            +
                        tensor<int32, []> conv_1_groups_0 = const()[name = tensor<string, []>("conv_1_groups_0"), val = tensor<int32, []>(1)];
         | 
| 28 | 
            +
                        tensor<fp16, [201, 1, 400]> expand_dims_2_to_fp16 = const()[name = tensor<string, []>("expand_dims_2_to_fp16"), val = tensor<fp16, [201, 1, 400]>(BLOBFILE(path = tensor<string, []>("@model_path/weights/weight.bin"), offset = tensor<uint64, []>(160960)))];
         | 
| 29 | 
            +
                        tensor<fp16, [1, 201, 3001]> conv_1_cast_fp16 = conv(dilations = conv_1_dilations_0, groups = conv_1_groups_0, pad = conv_1_pad_0, pad_type = conv_1_pad_type_0, strides = expand_dims_3, weight = expand_dims_2_to_fp16, x = expand_dims_4_cast_fp16)[name = tensor<string, []>("conv_1_cast_fp16")];
         | 
| 30 | 
            +
                        tensor<int32, [1]> squeeze_0_axes_0 = const()[name = tensor<string, []>("squeeze_0_axes_0"), val = tensor<int32, [1]>([0])];
         | 
| 31 | 
            +
                        tensor<fp16, [201, 3001]> squeeze_0_cast_fp16 = squeeze(axes = squeeze_0_axes_0, x = conv_0_cast_fp16)[name = tensor<string, []>("squeeze_0_cast_fp16")];
         | 
| 32 | 
            +
                        tensor<int32, [1]> squeeze_1_axes_0 = const()[name = tensor<string, []>("squeeze_1_axes_0"), val = tensor<int32, [1]>([0])];
         | 
| 33 | 
            +
                        tensor<fp16, [201, 3001]> squeeze_1_cast_fp16 = squeeze(axes = squeeze_1_axes_0, x = conv_1_cast_fp16)[name = tensor<string, []>("squeeze_1_cast_fp16")];
         | 
| 34 | 
            +
                        tensor<fp16, [201, 3001]> square_0_cast_fp16 = square(x = squeeze_0_cast_fp16)[name = tensor<string, []>("square_0_cast_fp16")];
         | 
| 35 | 
            +
                        tensor<fp16, [201, 3001]> square_1_cast_fp16 = square(x = squeeze_1_cast_fp16)[name = tensor<string, []>("square_1_cast_fp16")];
         | 
| 36 | 
            +
                        tensor<fp16, [201, 3001]> add_1_cast_fp16 = add(x = square_0_cast_fp16, y = square_1_cast_fp16)[name = tensor<string, []>("add_1_cast_fp16")];
         | 
| 37 | 
            +
                        tensor<fp16, [201, 3001]> magnitudes_1_cast_fp16 = identity(x = add_1_cast_fp16)[name = tensor<string, []>("magnitudes_1_cast_fp16")];
         | 
| 38 | 
            +
                        tensor<int32, [2]> magnitudes_begin_0 = const()[name = tensor<string, []>("magnitudes_begin_0"), val = tensor<int32, [2]>([0, 0])];
         | 
| 39 | 
            +
                        tensor<int32, [2]> magnitudes_end_0 = const()[name = tensor<string, []>("magnitudes_end_0"), val = tensor<int32, [2]>([201, 3000])];
         | 
| 40 | 
            +
                        tensor<bool, [2]> magnitudes_end_mask_0 = const()[name = tensor<string, []>("magnitudes_end_mask_0"), val = tensor<bool, [2]>([true, false])];
         | 
| 41 | 
            +
                        tensor<fp16, [201, 3000]> magnitudes_cast_fp16 = slice_by_index(begin = magnitudes_begin_0, end = magnitudes_end_0, end_mask = magnitudes_end_mask_0, x = magnitudes_1_cast_fp16)[name = tensor<string, []>("magnitudes_cast_fp16")];
         | 
| 42 | 
            +
                        tensor<bool, []> mel_spec_1_transpose_x_0 = const()[name = tensor<string, []>("mel_spec_1_transpose_x_0"), val = tensor<bool, []>(false)];
         | 
| 43 | 
            +
                        tensor<bool, []> mel_spec_1_transpose_y_0 = const()[name = tensor<string, []>("mel_spec_1_transpose_y_0"), val = tensor<bool, []>(false)];
         | 
| 44 | 
            +
                        tensor<fp16, [128, 201]> mel_filters_to_fp16 = const()[name = tensor<string, []>("mel_filters_to_fp16"), val = tensor<fp16, [128, 201]>(BLOBFILE(path = tensor<string, []>("@model_path/weights/weight.bin"), offset = tensor<uint64, []>(321856)))];
         | 
| 45 | 
            +
                        tensor<fp16, [128, 3000]> mel_spec_1_cast_fp16 = matmul(transpose_x = mel_spec_1_transpose_x_0, transpose_y = mel_spec_1_transpose_y_0, x = mel_filters_to_fp16, y = magnitudes_cast_fp16)[name = tensor<string, []>("mel_spec_1_cast_fp16")];
         | 
| 46 | 
            +
                        tensor<fp16, []> var_41_to_fp16 = const()[name = tensor<string, []>("op_41_to_fp16"), val = tensor<fp16, []>(0x1p-24)];
         | 
| 47 | 
            +
                        tensor<fp16, [128, 3000]> mel_spec_cast_fp16 = add(x = mel_spec_1_cast_fp16, y = var_41_to_fp16)[name = tensor<string, []>("mel_spec_cast_fp16")];
         | 
| 48 | 
            +
                        tensor<fp16, []> log_0_epsilon_0_to_fp16 = const()[name = tensor<string, []>("log_0_epsilon_0_to_fp16"), val = tensor<fp16, []>(0x0p+0)];
         | 
| 49 | 
            +
                        tensor<fp16, [128, 3000]> log_0_cast_fp16 = log(epsilon = log_0_epsilon_0_to_fp16, x = mel_spec_cast_fp16)[name = tensor<string, []>("log_0_cast_fp16")];
         | 
| 50 | 
            +
                        tensor<fp16, []> mul_0_y_0_to_fp16 = const()[name = tensor<string, []>("mul_0_y_0_to_fp16"), val = tensor<fp16, []>(0x1.bccp-2)];
         | 
| 51 | 
            +
                        tensor<fp16, [128, 3000]> mul_0_cast_fp16 = mul(x = log_0_cast_fp16, y = mul_0_y_0_to_fp16)[name = tensor<string, []>("mul_0_cast_fp16")];
         | 
| 52 | 
            +
                        tensor<bool, []> var_44_keep_dims_0 = const()[name = tensor<string, []>("op_44_keep_dims_0"), val = tensor<bool, []>(false)];
         | 
| 53 | 
            +
                        tensor<fp16, []> var_44_cast_fp16 = reduce_max(keep_dims = var_44_keep_dims_0, x = mul_0_cast_fp16)[name = tensor<string, []>("op_44_cast_fp16")];
         | 
| 54 | 
            +
                        tensor<fp16, []> var_46_to_fp16 = const()[name = tensor<string, []>("op_46_to_fp16"), val = tensor<fp16, []>(0x1p+3)];
         | 
| 55 | 
            +
                        tensor<fp16, []> var_47_cast_fp16 = sub(x = var_44_cast_fp16, y = var_46_to_fp16)[name = tensor<string, []>("op_47_cast_fp16")];
         | 
| 56 | 
            +
                        tensor<fp16, [128, 3000]> log_spec_3_cast_fp16 = maximum(x = mul_0_cast_fp16, y = var_47_cast_fp16)[name = tensor<string, []>("log_spec_3_cast_fp16")];
         | 
| 57 | 
            +
                        tensor<fp16, []> var_50_to_fp16 = const()[name = tensor<string, []>("op_50_to_fp16"), val = tensor<fp16, []>(0x1p+2)];
         | 
| 58 | 
            +
                        tensor<fp16, [128, 3000]> var_51_cast_fp16 = add(x = log_spec_3_cast_fp16, y = var_50_to_fp16)[name = tensor<string, []>("op_51_cast_fp16")];
         | 
| 59 | 
            +
                        tensor<fp16, []> _inversed_log_spec_y_0_to_fp16 = const()[name = tensor<string, []>("_inversed_log_spec_y_0_to_fp16"), val = tensor<fp16, []>(0x1p-2)];
         | 
| 60 | 
            +
                        tensor<fp16, [128, 3000]> _inversed_log_spec_cast_fp16 = mul(x = var_51_cast_fp16, y = _inversed_log_spec_y_0_to_fp16)[name = tensor<string, []>("_inversed_log_spec_cast_fp16")];
         | 
| 61 | 
            +
                        tensor<int32, [1]> var_55_axes_0 = const()[name = tensor<string, []>("op_55_axes_0"), val = tensor<int32, [1]>([0])];
         | 
| 62 | 
            +
                        tensor<fp16, [1, 128, 3000]> var_55_cast_fp16 = expand_dims(axes = var_55_axes_0, x = _inversed_log_spec_cast_fp16)[name = tensor<string, []>("op_55_cast_fp16")];
         | 
| 63 | 
            +
                        tensor<int32, [1]> var_62_axes_0 = const()[name = tensor<string, []>("op_62_axes_0"), val = tensor<int32, [1]>([2])];
         | 
| 64 | 
            +
                        tensor<fp16, [1, 128, 1, 3000]> melspectrogram_features = expand_dims(axes = var_62_axes_0, x = var_55_cast_fp16)[name = tensor<string, []>("op_62_cast_fp16")];
         | 
| 65 | 
            +
                    } -> (melspectrogram_features);
         | 
| 66 | 
            +
            }
         | 
    	
        openai_whisper-large-v3-v20240930_turbo_632MB/MelSpectrogram.mlmodelc/weights/weight.bin
    ADDED
    
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            oid sha256:009d9fb8f6b589accfa08cebf1c712ef07c3405229ce3cfb3a57ee033c9d8a49
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            size 373376
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        openai_whisper-large-v3-v20240930_turbo_632MB/TextDecoder.mlmodelc/analytics/coremldata.bin
    ADDED
    
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            size 243
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        openai_whisper-large-v3-v20240930_turbo_632MB/TextDecoder.mlmodelc/coremldata.bin
    ADDED
    
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            size 633
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        openai_whisper-large-v3-v20240930_turbo_632MB/TextDecoder.mlmodelc/metadata.json
    ADDED
    
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                "availability" : {
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        openai_whisper-large-v3-v20240930_turbo_632MB/TextDecoderContextPrefill.mlmodelc/model.mil
    ADDED
    
    | @@ -0,0 +1,29 @@ | |
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            [buildInfo = dict<tensor<string, []>, tensor<string, []>>({{"coremlc-component-MIL", "3304.5.2"}, {"coremlc-version", "3304.6.2"}, {"coremltools-component-torch", "2.4.1"}, {"coremltools-source-dialect", "TorchScript"}, {"coremltools-version", "8.0"}})]
         | 
| 3 | 
            +
            {
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| 4 | 
            +
                func main<ios17>(tensor<int32, [1]> language, tensor<int32, [1]> task) {
         | 
| 5 | 
            +
                        tensor<int32, []> var_6 = const()[name = tensor<string, []>("op_6"), val = tensor<int32, []>(50259)];
         | 
| 6 | 
            +
                        tensor<int32, [1]> var_7 = sub(x = language, y = var_6)[name = tensor<string, []>("op_7")];
         | 
| 7 | 
            +
                        tensor<int32, []> var_8 = const()[name = tensor<string, []>("op_8"), val = tensor<int32, []>(2)];
         | 
| 8 | 
            +
                        tensor<int32, [1]> var_9 = mul(x = var_7, y = var_8)[name = tensor<string, []>("op_9")];
         | 
| 9 | 
            +
                        tensor<int32, [1]> input = add(x = var_9, y = task)[name = tensor<string, []>("input")];
         | 
| 10 | 
            +
                        tensor<int32, []> var_15_axis_0 = const()[name = tensor<string, []>("op_15_axis_0"), val = tensor<int32, []>(0)];
         | 
| 11 | 
            +
                        tensor<int32, []> var_15_batch_dims_0 = const()[name = tensor<string, []>("op_15_batch_dims_0"), val = tensor<int32, []>(0)];
         | 
| 12 | 
            +
                        tensor<bool, []> var_15_validate_indices_0 = const()[name = tensor<string, []>("op_15_validate_indices_0"), val = tensor<bool, []>(false)];
         | 
| 13 | 
            +
                        tensor<fp16, [200, 15360]> key_cache_lut_weight_to_fp16 = const()[name = tensor<string, []>("key_cache_lut_weight_to_fp16"), val = tensor<fp16, [200, 15360]>(BLOBFILE(path = tensor<string, []>("@model_path/weights/weight.bin"), offset = tensor<uint64, []>(64)))];
         | 
| 14 | 
            +
                        tensor<string, []> input_to_int16_dtype_0 = const()[name = tensor<string, []>("input_to_int16_dtype_0"), val = tensor<string, []>("int16")];
         | 
| 15 | 
            +
                        tensor<int16, [1]> input_to_int16 = cast(dtype = input_to_int16_dtype_0, x = input)[name = tensor<string, []>("cast_7")];
         | 
| 16 | 
            +
                        tensor<fp16, [1, 15360]> var_15_cast_fp16_cast_uint16 = gather(axis = var_15_axis_0, batch_dims = var_15_batch_dims_0, indices = input_to_int16, validate_indices = var_15_validate_indices_0, x = key_cache_lut_weight_to_fp16)[name = tensor<string, []>("op_15_cast_fp16_cast_uint16")];
         | 
| 17 | 
            +
                        tensor<int32, [4]> var_20 = const()[name = tensor<string, []>("op_20"), val = tensor<int32, [4]>([1, 5120, 1, 3])];
         | 
| 18 | 
            +
                        tensor<fp16, [1, 5120, 1, 3]> key_cache_prefill = reshape(shape = var_20, x = var_15_cast_fp16_cast_uint16)[name = tensor<string, []>("op_21_cast_fp16")];
         | 
| 19 | 
            +
                        tensor<int32, []> var_25_axis_0 = const()[name = tensor<string, []>("op_25_axis_0"), val = tensor<int32, []>(0)];
         | 
| 20 | 
            +
                        tensor<int32, []> var_25_batch_dims_0 = const()[name = tensor<string, []>("op_25_batch_dims_0"), val = tensor<int32, []>(0)];
         | 
| 21 | 
            +
                        tensor<bool, []> var_25_validate_indices_0 = const()[name = tensor<string, []>("op_25_validate_indices_0"), val = tensor<bool, []>(false)];
         | 
| 22 | 
            +
                        tensor<fp16, [200, 15360]> value_cache_lut_weight_to_fp16 = const()[name = tensor<string, []>("value_cache_lut_weight_to_fp16"), val = tensor<fp16, [200, 15360]>(BLOBFILE(path = tensor<string, []>("@model_path/weights/weight.bin"), offset = tensor<uint64, []>(6144128)))];
         | 
| 23 | 
            +
                        tensor<string, []> input_to_uint16_dtype_0 = const()[name = tensor<string, []>("input_to_uint16_dtype_0"), val = tensor<string, []>("uint16")];
         | 
| 24 | 
            +
                        tensor<uint16, [1]> input_to_uint16 = cast(dtype = input_to_uint16_dtype_0, x = input)[name = tensor<string, []>("cast_6")];
         | 
| 25 | 
            +
                        tensor<fp16, [1, 15360]> var_25_cast_fp16_cast_uint16 = gather(axis = var_25_axis_0, batch_dims = var_25_batch_dims_0, indices = input_to_uint16, validate_indices = var_25_validate_indices_0, x = value_cache_lut_weight_to_fp16)[name = tensor<string, []>("op_25_cast_fp16_cast_uint16")];
         | 
| 26 | 
            +
                        tensor<int32, [4]> var_30 = const()[name = tensor<string, []>("op_30"), val = tensor<int32, [4]>([1, 5120, 1, 3])];
         | 
| 27 | 
            +
                        tensor<fp16, [1, 5120, 1, 3]> value_cache_prefill = reshape(shape = var_30, x = var_25_cast_fp16_cast_uint16)[name = tensor<string, []>("op_31_cast_fp16")];
         | 
| 28 | 
            +
                    } -> (key_cache_prefill, value_cache_prefill);
         | 
| 29 | 
            +
            }
         | 
    	
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    ADDED
    
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            size 12288192
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            {"_name_or_path": "/raid/yoach/tmp_whisper_turbo", "activation_dropout": 0.0, "activation_function": "gelu", "apply_spec_augment": false, "architectures": ["WhisperForConditionalGeneration"], "attention_dropout": 0.0, "begin_suppress_tokens": [220, 50256], "bos_token_id": 50257, "classifier_proj_size": 256, "d_model": 1280, "decoder_attention_heads": 20, "decoder_ffn_dim": 5120, "decoder_layerdrop": 0.0, "decoder_layers": 4, "decoder_start_token_id": 50258, "dropout": 0.0, "encoder_attention_heads": 20, "encoder_ffn_dim": 5120, "encoder_layerdrop": 0.0, "encoder_layers": 32, "eos_token_id": 50257, "init_std": 0.02, "is_encoder_decoder": true, "mask_feature_length": 10, "mask_feature_min_masks": 0, "mask_feature_prob": 0.0, "mask_time_length": 10, "mask_time_min_masks": 2, "mask_time_prob": 0.05, "max_source_positions": 1500, "max_target_positions": 448, "median_filter_width": 7, "model_type": "whisper", "num_hidden_layers": 32, "num_mel_bins": 128, "pad_token_id": 50257, "scale_embedding": false, "torch_dtype": "float16", "transformers_version": "4.46.0.dev0", "use_cache": true, "use_weighted_layer_sum": false, "vocab_size": 51866}
         | 
    	
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    ADDED
    
    | @@ -0,0 +1 @@ | |
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| 1 | 
            +
            {"alignment_heads": [[2, 4], [2, 11], [3, 3], [3, 6], [3, 11], [3, 14]], "begin_suppress_tokens": [220, 50257], "bos_token_id": 50257, "decoder_start_token_id": 50258, "eos_token_id": 50257, "forced_decoder_ids": [[1, null], [2, 50360]], "is_multilingual": true, "lang_to_id": {"<|af|>": 50327, "<|am|>": 50334, "<|ar|>": 50272, "<|as|>": 50350, "<|az|>": 50304, "<|ba|>": 50355, "<|be|>": 50330, "<|bg|>": 50292, "<|bn|>": 50302, "<|bo|>": 50347, "<|br|>": 50309, "<|bs|>": 50315, "<|ca|>": 50270, "<|cs|>": 50283, "<|cy|>": 50297, "<|da|>": 50285, "<|de|>": 50261, "<|el|>": 50281, "<|en|>": 50259, "<|es|>": 50262, "<|et|>": 50307, "<|eu|>": 50310, "<|fa|>": 50300, "<|fi|>": 50277, "<|fo|>": 50338, "<|fr|>": 50265, "<|gl|>": 50319, "<|gu|>": 50333, "<|haw|>": 50352, "<|ha|>": 50354, "<|he|>": 50279, "<|hi|>": 50276, "<|hr|>": 50291, "<|ht|>": 50339, "<|hu|>": 50286, "<|hy|>": 50312, "<|id|>": 50275, "<|is|>": 50311, "<|it|>": 50274, "<|ja|>": 50266, "<|jw|>": 50356, "<|ka|>": 50329, "<|kk|>": 50316, "<|km|>": 50323, "<|kn|>": 50306, "<|ko|>": 50264, "<|la|>": 50294, "<|lb|>": 50345, "<|ln|>": 50353, "<|lo|>": 50336, "<|lt|>": 50293, "<|lv|>": 50301, "<|mg|>": 50349, "<|mi|>": 50295, "<|mk|>": 50308, "<|ml|>": 50296, "<|mn|>": 50314, "<|mr|>": 50320, "<|ms|>": 50282, "<|mt|>": 50343, "<|my|>": 50346, "<|ne|>": 50313, "<|nl|>": 50271, "<|nn|>": 50342, "<|no|>": 50288, "<|oc|>": 50328, "<|pa|>": 50321, "<|pl|>": 50269, "<|ps|>": 50340, "<|pt|>": 50267, "<|ro|>": 50284, "<|ru|>": 50263, "<|sa|>": 50344, "<|sd|>": 50332, "<|si|>": 50322, "<|sk|>": 50298, "<|sl|>": 50305, "<|sn|>": 50324, "<|so|>": 50326, "<|sq|>": 50317, "<|sr|>": 50303, "<|su|>": 50357, "<|sv|>": 50273, "<|sw|>": 50318, "<|ta|>": 50287, "<|te|>": 50299, "<|tg|>": 50331, "<|th|>": 50289, "<|tk|>": 50341, "<|tl|>": 50348, "<|tr|>": 50268, "<|tt|>": 50351, "<|uk|>": 50280, "<|ur|>": 50290, "<|uz|>": 50337, "<|vi|>": 50278, "<|yi|>": 50335, "<|yo|>": 50325, "<|yue|>": 50358, "<|zh|>": 50260}, "max_initial_timestamp_index": 50, "max_length": 448, "no_timestamps_token_id": 50364, "pad_token_id": 50257, "prev_sot_token_id": 50362, "return_timestamps": false, "suppress_tokens": [1, 2, 7, 8, 9, 10, 14, 25, 26, 27, 28, 29, 31, 58, 59, 60, 61, 62, 63, 90, 91, 92, 93, 359, 503, 522, 542, 873, 893, 902, 918, 922, 931, 1350, 1853, 1982, 2460, 2627, 3246, 3253, 3268, 3536, 3846, 3961, 4183, 4667, 6585, 6647, 7273, 9061, 9383, 10428, 10929, 11938, 12033, 12331, 12562, 13793, 14157, 14635, 15265, 15618, 16553, 16604, 18362, 18956, 20075, 21675, 22520, 26130, 26161, 26435, 28279, 29464, 31650, 32302, 32470, 36865, 42863, 47425, 49870, 50254, 50258, 50359, 50360, 50361, 50362, 50363], "task_to_id": {"transcribe": 50360, "translate": 50359}, "transformers_version": "4.46.0.dev0"}
         | 

