Update export-ncnn.sh
#2
by
csukuangfj
- opened
- export-ncnn.sh +7 -6
export-ncnn.sh
CHANGED
@@ -36,7 +36,7 @@ popd
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# 7767517
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# -2028 2547
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# +2029 2547
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# +SherpaMetaData sherpa_meta_data1 0 0 0=2 1=32 2=4 3=7 -23316=5,2,4,3,2,4 -23317=5,384,384,384,384,384 -23318=5,192,192,192,192,192 -23319=5,1,2,4,8,2 -23320=5,31,31,31,31,31
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# Input in0 0 1 in0
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# Input in1 0 1 in1
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# Split splitncnn_0 1 2 in1 2 3
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@@ -51,10 +51,11 @@ popd
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# (5) 1=32, attribute 1, 32 is the value of --decode-chunk-len
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# (6) 2=4, attribute 2, 4 is the value of --num-left-chunks
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# (7) 3=7, attribute 3, 7 is the pad length. The first subsampling layer is using (x_len - 7) // 2, so we use 7 here
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# (8)
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# the first element of the array is the length of the array, which is 5 in our case.
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# 2,4,3,2,4 is the value of --num-encoder-layers
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# (
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# (
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# (
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# (
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# 7767517
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# -2028 2547
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# +2029 2547
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# +SherpaMetaData sherpa_meta_data1 0 0 0=2 1=32 2=4 3=7 15=1 -23316=5,2,4,3,2,4 -23317=5,384,384,384,384,384 -23318=5,192,192,192,192,192 -23319=5,1,2,4,8,2 -23320=5,31,31,31,31,31
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# Input in0 0 1 in0
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# Input in1 0 1 in1
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# Split splitncnn_0 1 2 in1 2 3
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# (5) 1=32, attribute 1, 32 is the value of --decode-chunk-len
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# (6) 2=4, attribute 2, 4 is the value of --num-left-chunks
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# (7) 3=7, attribute 3, 7 is the pad length. The first subsampling layer is using (x_len - 7) // 2, so we use 7 here
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# (8) 15=1, attribute 15, 1 is the model version. We require it to be >=1 for sherpa-ncnn v2.0
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# (9) -23316=5,2,4,3,2,4, attribute 16, this is an array attribute. It is attribute 16 since -23300 - (-23316) = 16
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# the first element of the array is the length of the array, which is 5 in our case.
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# 2,4,3,2,4 is the value of --num-encoder-layers
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# (10) -23317=5,384,384,384,384,384, attribute 17. 384,384,384,384,384 is the value of --encoder-dims
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# (11) -23318=5,192,192,192,192,192, attribute 18, 192,192,192,192,192 is the value of --attention-dims
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# (12) -23319=5,1,2,4,8,2, attribute 19, 1,2,4,8,2 is the value of --zipformer-downsampling-factors
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# (13) -23320=5,31,31,31,31,31, attribute 20, 31,31,31,31,31 is the value of --cnn-module-kernels
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