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annotate doc/v2_planning/requirements.txt @ 1174:fe6c25eb1e37
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1 ============ |
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2 Requirements |
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3 ============ |
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4 |
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5 |
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6 Application Requirements |
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7 ======================== |
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8 |
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9 Terminology and Abbreviations: |
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10 ------------------------------ |
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11 |
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12 MLA - machine learning algorithm |
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13 |
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14 learning problem - a machine learning application typically characterized by a |
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15 dataset (possibly dataset folds) one or more functions to be learned from the |
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16 data, and one or more metrics to evaluate those functions. Learning problems |
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17 are the benchmarks for empirical model comparison. |
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18 |
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19 n. of - number of |
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20 |
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21 SGD - stochastic gradient descent |
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22 |
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23 Users: |
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24 ------ |
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25 |
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26 - New masters and PhD students in the lab should be able to quickly move into |
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27 'production' mode without having to reinvent the wheel. |
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28 |
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29 - Students in the two ML classes, able to play with the library to explore new |
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30 ML variants. This means some APIs (e.g. Experiment level) must be really well |
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31 documented and conceptually simple. |
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32 |
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33 - Researchers outside the lab (who might study and experiment with our |
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34 algorithms) |
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35 |
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36 - Partners outside the lab (e.g. Bell, Ubisoft) with closed-source commercial |
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37 projects. |
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38 |
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39 Uses: |
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40 ----- |
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41 |
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42 R1. reproduce previous work (our own and others') |
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43 |
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44 R2. explore MLA variants by swapping components (e.g. optimization algo, dataset, |
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45 hyper-parameters) |
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46 |
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47 R3. analyze experimental results (e.g. plotting training curves, finding best |
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48 models, marginalizing across hyper-parameter choices) |
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49 |
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50 R4. disseminate (or serve as platform for disseminating) our own published algorithms |
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51 |
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52 R5. provide implementations of common MLA components (e.g. classifiers, datasets, |
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53 optimization algorithms, meta-learning algorithms) |
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54 |
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55 R6. drive large scale parallizable computations (e.g. grid search, bagging, |
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56 random search) |
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57 |
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58 R7. provide implementations of standard pre-processing algorithms (e.g. PCA, |
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59 stemming, Mel-scale spectrograms, GIST features, etc.) |
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60 |
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61 R8. provide high performance suitable for large-scale experiments |
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62 |
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63 R9. be able to use the most efficient algorithms in special case combinations of |
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64 learning algorithm components (e.g. when there is a fast k-fold validation |
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65 algorithm for a particular model family, the library should not require users |
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66 to rewrite their standard k-fold validation script to use it) |
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67 |
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68 R10. support experiments on a variety of datasets (e.g. movies, images, text, |
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69 sound, reinforcement learning?) |
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70 |
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71 R11. support efficient computations on datasets larger than RAM and GPU memory |
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72 |
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73 R12. support infinite datasets (i.e. generated on the fly) |
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74 |
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75 R13. apply trained models "in production". |
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76 - e.g. say you try many combinations of preprocessing, models and associated |
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77 hyper-parameters, and want to easily be able to recover the full "processing |
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78 pipeline" that performs best, and use it on real/test data later. |
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79 |
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80 OD comments: Note that R9 and R13 may conflict with each other. Some |
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81 optimizations performed by R9 may modify the input "symbolic graph" in such a |
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82 way that extracting the required components for "production purpose" (R13) |
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83 could be made more difficult (or even impossible). Imagine for instance that |
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84 the graph is modified to take advantage of the fact that k-fold validation can |
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85 be performed efficiently internally by some specific algorithm. Then it may |
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86 not be obvious anymore how to remove the k-fold split in the saved model you |
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87 want to use in production. |
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88 |