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'cs': '<extra_id_0>', 'en': '<extra_id_1>','de': '<extra_id_2>', 'es': '<extra_id_3>', 'fr': '<extra_id_4>', 'ru': '<extra_id_5>', 'tu': '<extra_id_6>', 'zh': '<extra_id_7>'1
2## Configuration of summarization pipeline
3#
4def summ_config():
5 cfg = OrderedDict([
6
7 ## summarization model - checkpoint
8 # ctu-aic/m2m100-418M-multilingual-summarization-multilarge-cs
9 # ctu-aic/mt5-base-multilingual-summarization-multilarge-cs
10 # ctu-aic/mbart25-multilingual-summarization-multilarge-cs
11 ("model_name", "ctu-aic/mbart25-multilingual-summarization-multilarge-cs"),
12
13 ## language of summarization task
14 # language : string : cs, en, de, fr, es, tr, ru, zh
15 ("language", "en"),
16
17 ## generation method parameters in dictionary
18 #
19 ("inference_cfg", OrderedDict([
20 ("num_beams", 4),
21 ("top_k", 40),
22 ("top_p", 0.92),
23 ("do_sample", True),
24 ("temperature", 0.95),
25 ("repetition_penalty", 1.23),
26 ("no_repeat_ngram_size", None),
27 ("early_stopping", True),
28 ("max_length", 128),
29 ("min_length", 10),
30 ])),
31 #texts to summarize values = (list of strings, string, dataset)
32 ("texts",
33 [
34 "english text1 to summarize",
35 "english text2 to summarize",
36 ]
37 ),
38 #OPTIONAL: Target summaries values = (list of strings, string, None)
39 ('golds',
40 [
41 "target english text1",
42 "target english text2",
43 ]),
44 #('golds', None),
45 ])
46 return cfg
47
48cfg = summ_config()
49mSummarize = MultiSummarizer(**cfg)
50summaries,scores = mSummarize(**cfg)
51Train set: 3 464 563 docs
Validation set: 121 260 docs| Stats | fragment | avg document length | avg summary length | Documents | ||||
|---|---|---|---|---|---|---|---|---|
| dataset | compression | density | coverage | nsent | nwords | nsent | nwords | count |
| cnc | 7.388 | 0.303 | 0.088 | 16.121 | 316.912 | 3.272 | 46.805 | 750K |
| sumeczech | 11.769 | 0.471 | 0.115 | 27.857 | 415.711 | 2.765 | 38.644 | 1M |
| cnndm | 13.688 | 2.983 | 0.538 | 32.783 | 676.026 | 4.134 | 54.036 | 300K |
| xsum | 18.378 | 0.479 | 0.194 | 18.607 | 369.134 | 1.000 | 21.127 | 225K |
| mlsum/tu | 8.666 | 5.418 | 0.461 | 14.271 | 214.496 | 1.793 | 25.675 | 274K |
| mlsum/de | 24.741 | 8.235 | 0.469 | 32.544 | 539.653 | 1.951 | 23.077 | 243K |
| mlsum/fr | 24.388 | 2.688 | 0.424 | 24.533 | 612.080 | 1.320 | 26.93 | 425K |
| mlsum/es | 36.185 | 3.705 | 0.510 | 31.914 | 746.927 | 1.142 | 21.671 | 291K |
| mlsum/ru | 78.909 | 1.194 | 0.246 | 62.141 | 948.079 | 1.012 | 11.976 | 27K |
| cnewsum | 20.183 | 0.000 | 0.000 | 16.834 | 438.271 | 1.109 | 21.926 | 304K |
Time: 3 days 20 hours
Epochs: 1080K steps = 10 (from 10)
GPUs: 4x NVIDIA A100-SXM4-40GB
eloss: 2.462 - 1.797
tloss: 17.322 - 1.578| ROUGE | ROUGE-1 | ROUGE-2 | ROUGE-L | ||||||
|---|---|---|---|---|---|---|---|---|---|
| Precision | Recall | Fscore | Precision | Recall | Fscore | Precision | Recall | Fscore | |
| cnc | 30.62 | 19.83 | 23.44 | 9.94 | 6.52 | 7.67 | 22.92 | 14.92 | 17.6 |
| sumeczech | 27.57 | 17.6 | 20.85 | 8.12 | 5.23 | 6.17 | 20.84 | 13.38 | 15.81 |
| cnndm | 43.83 | 37.73 | 39.34 | 20.81 | 17.82 | 18.6 | 31.8 | 27.42 | 28.55 |
| xsum | 41.63 | 30.54 | 34.56 | 16.13 | 11.76 | 13.33 | 33.65 | 24.74 | 27.97 |
| mlsum-tu- | 54.4 | 43.29 | 46.2 | 38.78 | 31.31 | 33.23 | 48.18 | 38.44 | 41 |
| mlsum-de | 47.94 | 44.14 | 45.11 | 36.42 | 35.24 | 35.42 | 44.43 | 41.42 | 42.16 |
| mlsum-fr | 35.26 | 25.96 | 28.98 | 16.72 | 12.35 | 13.75 | 28.06 | 20.75 | 23.12 |
| mlsum-es | 33.37 | 24.84 | 27.52 | 13.29 | 10.05 | 11.05 | 27.63 | 20.69 | 22.87 |
| mlsum-ru | 0.79 | 0.66 | 0.66 | 0.26 | 0.2 | 0.22 | 0.79 | 0.66 | 0.65 |
| cnewsum | 24.49 | 24.38 | 23.23 | 6.48 | 6.7 | 6.24 | 24.18 | 24.04 | 22.91 |
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