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1 #!/bin/bash
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2 # Copyright 2010 Thomas Walters <tom@acousticscale.org>
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3 #
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4 # Run a series of experiments which compare MFCC features generated by HTK to
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5 # AIM features generated using AIM-C using a series of syllable recogntiton
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6 # tasks.
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7 # This script expects the HTK binaries and AIM-C AIMCopy binary to be present
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8 # in the PATH.
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9
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10 # Set these to be the location of your input database, and desired output
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11 # locations.
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12 SYLLABLES_DATABASE_TAR=/mnt/sounds/cnbh-syllables.tar
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13 SOUNDS_ROOT=/mnt/experiments/sounds/
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14 FEATURES_ROOT=/mnt/experiments/features/
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15 HMMS_ROOT=/mnt/experiments/hmms/
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16
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17 # Number of cores on the experimental machine. Various scripts will try to use
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18 # this if it's set.
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19 NUMBER_OF_CORES=2
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20
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21 # Fail if any command fails
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22 set -e
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23
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24 # Fail if any variable is unset
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25 set -u
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26
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27 if [ ! -e $SYLLABLES_DATABASE_TAR ]; then
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28 sudo mkdir -p `dirname $SYLLABLES_DATABASE_TAR`
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29 sudo chown ubuntu `dirname $SYLLABLES_DATABASE_TAR`
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30 wget -O $SYLLABLES_DATABASE_TAR $SYLLABLES_DATABASE_URL
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31 fi
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32
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33 if [ ! -d $SOUNDS_ROOT ]; then
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34 sudo mkdir -p $SOUNDS_ROOT
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35 sudo chown `whoami` $SOUNDS_ROOT
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36 fi
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37
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38 # Untar the CNBH syllables database, and convert the files from FLAC to WAV
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39 if [ ! -e $SOUNDS_ROOT/.untar_db_success ]; then
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40 tar -x -C $SOUNDS_ROOT -f $SYLLABLES_DATABASE_TAR
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41 touch $SOUNDS_ROOT/.untar_db_success
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42 fi
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43
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44 # Convert the database to .WAV format and place it in $SOUNDS_ROOT/clean
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45 ./cnbh-syllables/feature_generation/convert_flac_to_wav.sh $SOUNDS_ROOT
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46
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47 # Generate versions of the CNBH syllables spoke pattern with a range of
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48 # signal-to-noise ratios (SNRs). The versions are put in the directory
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49 # ${SOUNDS_ROOT}/${SNR}_dB/ for each SNR in $SNRS.
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50 SNRS="30 27 24 21 18 15 12 9 6 3 0"
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51 ./cnbh-syllables/feature_generation/pink_noise.sh $SOUNDS_ROOT/clean/ $SNRS
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52
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53 # Make the list of all feature drectories
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54 FEATURE_DIRS="clean"
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55 for SNR in $SNRS; do
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56 FEATURE_DIRS="$FEATURE_DIRS snr_${SNR}dB"
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57 done
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58
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59 # Generate feature sets (for the full range of SNRs in $FEATURE_DIRS)
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60 # 1. Standard MFCC features
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61 # 2. AIM features
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62 # 3. MFCC features with optimal VTLN
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63
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64
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65 if [ ! -d $FEATURES_ROOT ]; then
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66 sudo mkdir -p $FEATURES_ROOT
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67 sudo chown `whoami` $FEATURES_ROOT
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68 fi
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69
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70 for SOURCE_SNR in $FEATURE_DIRS; do
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71
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72 if [ ! -e $FEATURES_ROOT/mfcc/$SOURCE_SNR/.make_mfcc_features_success ]; then
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73 mkdir -p $FEATURES_ROOT/mfcc/$SOURCE_SNR/
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74 # Generate the list of files to convert
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75 ./cnbh-syllables/feature_generation/gen_hcopy_aimcopy_script.sh $FEATURES_ROOT/mfcc/$SOURCE_SNR/ $SOUNDS_ROOT/$SOURCE_SNR/
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76 # Run the conversion
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77 ./cnbh-syllables/feature_generation/run_hcopy.sh $FEATURES_ROOT/mfcc/$SOURCE_SNR/ $NUMBER_OF_CORES
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78 touch $FEATURES_ROOT/mfcc/$SOURCE_SNR/.make_mfcc_features_success
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79 fi
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80
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81 if [ ! -e $FEATURES_ROOT/mfcc_vtln/$SOURCE_SNR/.make_mfcc_vtln_features_success ]; then
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82 mkdir -p $FEATURES_ROOT/mfcc_vtln/$SOURCE_SNR/
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83 # Generate the file list and run the conversion (all one step, since this
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84 # version uses a different configuraiton for each talker)
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85 ./cnbh-syllables/feature_generation/run_mfcc_vtln_conversion.sh $FEATURES_ROOT/mfcc_vtln/$SOURCE_SNR/ $SOUNDS_ROOT/$SOURCE_SNR/
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86 touch $FEATURES_ROOT/mfcc_vtln/$SOURCE_SNR/.make_mfcc_vtln_features_success
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87 fi
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88
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89 if [ ! -e $FEATURES_ROOT/aim/$SOURCE_SNR/.make_aim_features_success ]; then
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90 mkdir -p $FEATURES_ROOT/aim/$SOURCE_SNR/
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91 ./cnbh-syllables/feature_generation/gen_hcopy_aimcopy_script.sh $FEATURES_ROOT/aim/$SOURCE_SNR/ $SOUNDS_ROOT/$SOURCE_SNR/
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92 # Run the conversion
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93 ./cnbh-syllables/feature_generation/run_aimcopy.sh $FEATURES_ROOT/aim/$SOURCE_SNR/ $NUMBER_OF_CORES
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94 touch $FEATURES_ROOT/aim/$SOURCE_SNR/.make_aim_features_success
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95 fi
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96 done
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97
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98 # Now run a bunch of experiments.
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99 # For each of the feature types, we want to run HMMs with a bunch of
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100 # parameters.
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101 TRAINING_ITERATIONS="0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20"
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102 TESTING_ITERATIONS="1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20"
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103 HMM_STATES="3 4 5 6 7 8"
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104 HMM_OUTPUT_COMPONENTS=""
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105
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106
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