Update spacy pipeline to 3.5.2
Browse files- README.md +30 -30
- config.cfg +33 -46
- experimental_arc_labeler/model +2 -2
- experimental_arc_predicter/model +2 -2
- hu_core_news_trf_xl-any-py3-none-any.whl +2 -2
- meta.json +197 -212
- morphologizer/model +1 -1
- ner/model +2 -2
- senter/model +1 -1
- tagger/model +1 -1
- trainable_lemmatizer/model +2 -2
- transformer/model +2 -2
- vocab/strings.json +2 -2
README.md
CHANGED
@@ -14,72 +14,72 @@ model-index:
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metrics:
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15 |
- name: NER Precision
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type: precision
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-
value: 0.
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- name: NER Recall
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type: recall
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-
value: 0.
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- name: NER F Score
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type: f_score
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-
value: 0.
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- task:
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name: TAG
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type: token-classification
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metrics:
|
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- name: TAG (XPOS) Accuracy
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type: accuracy
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-
value: 0.
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- task:
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name: POS
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type: token-classification
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metrics:
|
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- name: POS (UPOS) Accuracy
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36 |
type: accuracy
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37 |
-
value: 0.
|
38 |
- task:
|
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name: MORPH
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type: token-classification
|
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metrics:
|
42 |
- name: Morph (UFeats) Accuracy
|
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type: accuracy
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44 |
-
value: 0.
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- task:
|
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name: LEMMA
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type: token-classification
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metrics:
|
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- name: Lemma Accuracy
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50 |
type: accuracy
|
51 |
-
value: 0.
|
52 |
- task:
|
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name: UNLABELED_DEPENDENCIES
|
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type: token-classification
|
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metrics:
|
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- name: Unlabeled Attachment Score (UAS)
|
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type: f_score
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-
value: 0.
|
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- task:
|
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name: LABELED_DEPENDENCIES
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type: token-classification
|
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metrics:
|
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- name: Labeled Attachment Score (LAS)
|
64 |
type: f_score
|
65 |
-
value: 0.
|
66 |
- task:
|
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name: SENTS
|
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type: token-classification
|
69 |
metrics:
|
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- name: Sentences F-Score
|
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type: f_score
|
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-
value: 0.
|
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---
|
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Hungarian transformer pipeline (XLM-RoBERTa) for HuSpaCy. Components: transformer, senter, tagger, morphologizer, lemmatizer, parser, ner
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|
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| Feature | Description |
|
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| --- | --- |
|
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| **Name** | `hu_core_news_trf_xl` |
|
79 |
-
| **Version** | `3.5.
|
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| **spaCy** | `>=3.5.0,<3.6.0` |
|
81 |
-
| **Default Pipeline** | `transformer`, `senter`, `tagger`, `morphologizer`, `lookup_lemmatizer`, `trainable_lemmatizer`, `
|
82 |
-
| **Components** | `transformer`, `senter`, `tagger`, `morphologizer`, `lookup_lemmatizer`, `trainable_lemmatizer`, `
|
83 |
| **Vectors** | 0 keys, 0 unique vectors (0 dimensions) |
|
84 |
| **Sources** | [UD Hungarian Szeged](https://universaldependencies.org/treebanks/hu_szeged/index.html) (Richárd Farkas, Katalin Simkó, Zsolt Szántó, Viktor Varga, Veronika Vincze (MTA-SZTE Research Group on Artificial Intelligence))<br />[NYTK-NerKor Corpus](https://github.com/nytud/NYTK-NerKor) (Eszter Simon, Noémi Vadász (Department of Language Technology and Applied Linguistics))<br />[hunNERwiki](http://hlt.sztaki.hu/resources/hunnerwiki.html) (Eszter Simon, Dávid Márk Nemeskey (HLT Group, Budapest University of Technology and Economics))<br />[Szeged NER Corpus](https://rgai.inf.u-szeged.hu/node/130) (György Szarvas, Richárd Farkas, László Felföldi, András Kocsor, János Csirik (MTA-SZTE Research Group on Artificial Intelligence))<br />[huBERT base model (cased)](https://huggingface.co/SZTAKI-HLT/hubert-base-cc) (Dávid Márk Nemeskey (SZTAKI-HLT)) |
|
85 |
| **License** | `cc-by-sa-4.0` |
|
@@ -108,20 +108,20 @@ Hungarian transformer pipeline (XLM-RoBERTa) for HuSpaCy. Components: transforme
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| `TOKEN_P` | 99.86 |
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| `TOKEN_R` | 99.93 |
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110 |
| `TOKEN_F` | 99.89 |
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-
| `SENTS_P` |
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112 |
-
| `SENTS_R` |
|
113 |
-
| `SENTS_F` |
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114 |
-
| `TAG_ACC` | 98.
|
115 |
-
| `POS_ACC` | 98.
|
116 |
-
| `MORPH_ACC` |
|
117 |
-
| `MORPH_MICRO_P` |
|
118 |
-
| `MORPH_MICRO_R` | 98.
|
119 |
-
| `MORPH_MICRO_F` | 98.
|
120 |
-
| `LEMMA_ACC` |
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121 |
-
| `BOUND_DEP_LAS` | 86.
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122 |
-
| `BOUND_DEP_UAS` |
|
123 |
-
| `DEP_UAS` |
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124 |
-
| `DEP_LAS` | 86.
|
125 |
-
| `ENTS_P` |
|
126 |
-
| `ENTS_R` | 91.
|
127 |
-
| `ENTS_F` | 91.
|
|
|
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metrics:
|
15 |
- name: NER Precision
|
16 |
type: precision
|
17 |
+
value: 0.9149982438
|
18 |
- name: NER Recall
|
19 |
type: recall
|
20 |
+
value: 0.9159634318
|
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- name: NER F Score
|
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type: f_score
|
23 |
+
value: 0.9154805834
|
24 |
- task:
|
25 |
name: TAG
|
26 |
type: token-classification
|
27 |
metrics:
|
28 |
- name: TAG (XPOS) Accuracy
|
29 |
type: accuracy
|
30 |
+
value: 0.981431853
|
31 |
- task:
|
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name: POS
|
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type: token-classification
|
34 |
metrics:
|
35 |
- name: POS (UPOS) Accuracy
|
36 |
type: accuracy
|
37 |
+
value: 0.980474732
|
38 |
- task:
|
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name: MORPH
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type: token-classification
|
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metrics:
|
42 |
- name: Morph (UFeats) Accuracy
|
43 |
type: accuracy
|
44 |
+
value: 0.9659264931
|
45 |
- task:
|
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name: LEMMA
|
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type: token-classification
|
48 |
metrics:
|
49 |
- name: Lemma Accuracy
|
50 |
type: accuracy
|
51 |
+
value: 0.9894746914
|
52 |
- task:
|
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name: UNLABELED_DEPENDENCIES
|
54 |
type: token-classification
|
55 |
metrics:
|
56 |
- name: Unlabeled Attachment Score (UAS)
|
57 |
type: f_score
|
58 |
+
value: 0.9112312772
|
59 |
- task:
|
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name: LABELED_DEPENDENCIES
|
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type: token-classification
|
62 |
metrics:
|
63 |
- name: Labeled Attachment Score (LAS)
|
64 |
type: f_score
|
65 |
+
value: 0.868695569
|
66 |
- task:
|
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name: SENTS
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type: token-classification
|
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metrics:
|
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- name: Sentences F-Score
|
71 |
type: f_score
|
72 |
+
value: 0.9933184855
|
73 |
---
|
74 |
Hungarian transformer pipeline (XLM-RoBERTa) for HuSpaCy. Components: transformer, senter, tagger, morphologizer, lemmatizer, parser, ner
|
75 |
|
76 |
| Feature | Description |
|
77 |
| --- | --- |
|
78 |
| **Name** | `hu_core_news_trf_xl` |
|
79 |
+
| **Version** | `3.5.2` |
|
80 |
| **spaCy** | `>=3.5.0,<3.6.0` |
|
81 |
+
| **Default Pipeline** | `transformer`, `senter`, `tagger`, `morphologizer`, `lookup_lemmatizer`, `trainable_lemmatizer`, `experimental_arc_predicter`, `experimental_arc_labeler`, `ner` |
|
82 |
+
| **Components** | `transformer`, `senter`, `tagger`, `morphologizer`, `lookup_lemmatizer`, `trainable_lemmatizer`, `experimental_arc_predicter`, `experimental_arc_labeler`, `ner` |
|
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| **Vectors** | 0 keys, 0 unique vectors (0 dimensions) |
|
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| **Sources** | [UD Hungarian Szeged](https://universaldependencies.org/treebanks/hu_szeged/index.html) (Richárd Farkas, Katalin Simkó, Zsolt Szántó, Viktor Varga, Veronika Vincze (MTA-SZTE Research Group on Artificial Intelligence))<br />[NYTK-NerKor Corpus](https://github.com/nytud/NYTK-NerKor) (Eszter Simon, Noémi Vadász (Department of Language Technology and Applied Linguistics))<br />[hunNERwiki](http://hlt.sztaki.hu/resources/hunnerwiki.html) (Eszter Simon, Dávid Márk Nemeskey (HLT Group, Budapest University of Technology and Economics))<br />[Szeged NER Corpus](https://rgai.inf.u-szeged.hu/node/130) (György Szarvas, Richárd Farkas, László Felföldi, András Kocsor, János Csirik (MTA-SZTE Research Group on Artificial Intelligence))<br />[huBERT base model (cased)](https://huggingface.co/SZTAKI-HLT/hubert-base-cc) (Dávid Márk Nemeskey (SZTAKI-HLT)) |
|
85 |
| **License** | `cc-by-sa-4.0` |
|
|
|
108 |
| `TOKEN_P` | 99.86 |
|
109 |
| `TOKEN_R` | 99.93 |
|
110 |
| `TOKEN_F` | 99.89 |
|
111 |
+
| `SENTS_P` | 99.33 |
|
112 |
+
| `SENTS_R` | 99.33 |
|
113 |
+
| `SENTS_F` | 99.33 |
|
114 |
+
| `TAG_ACC` | 98.14 |
|
115 |
+
| `POS_ACC` | 98.05 |
|
116 |
+
| `MORPH_ACC` | 96.59 |
|
117 |
+
| `MORPH_MICRO_P` | 98.78 |
|
118 |
+
| `MORPH_MICRO_R` | 98.36 |
|
119 |
+
| `MORPH_MICRO_F` | 98.57 |
|
120 |
+
| `LEMMA_ACC` | 98.95 |
|
121 |
+
| `BOUND_DEP_LAS` | 86.89 |
|
122 |
+
| `BOUND_DEP_UAS` | 91.16 |
|
123 |
+
| `DEP_UAS` | 91.12 |
|
124 |
+
| `DEP_LAS` | 86.87 |
|
125 |
+
| `ENTS_P` | 91.50 |
|
126 |
+
| `ENTS_R` | 91.60 |
|
127 |
+
| `ENTS_F` | 91.55 |
|
config.cfg
CHANGED
@@ -1,8 +1,8 @@
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[paths]
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-
tagger_model = "models/hu_core_news_trf_xl-tagger-3.5.
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-
parser_model = "models/hu_core_news_trf_xl-parser-3.5.
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-
ner_model = "models/hu_core_news_trf_xl-ner-3.5.
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-
lemmatizer_lookups = "models/hu_core_news_trf_xl-lookup-lemmatizer-3.5.
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train = null
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dev = null
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vectors = null
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@@ -14,7 +14,7 @@ gpu_allocator = null
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[nlp]
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lang = "hu"
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-
pipeline = ["transformer","senter","tagger","morphologizer","lookup_lemmatizer","trainable_lemmatizer","
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tokenizer = {"@tokenizers":"spacy.Tokenizer.v1"}
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disabled = []
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before_creation = null
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@@ -30,30 +30,17 @@ scorer = {"@scorers":"spacy-experimental.biaffine_parser_scorer.v1"}
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[components.experimental_arc_labeler.model]
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@architectures = "spacy-experimental.Bilinear.v1"
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-
hidden_width =
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-
mixed_precision =
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nO = null
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dropout = 0.1
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grad_scaler = null
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[components.experimental_arc_labeler.model.tok2vec]
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-
@architectures = "spacy-transformers.
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-
name = "xlm-roberta-large"
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-
mixed_precision = false
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-
pooling = {"@layers":"reduce_mean.v1"}
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grad_factor = 1.0
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-
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-
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-
@span_getters = "spacy-transformers.strided_spans.v1"
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-
window = 128
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-
stride = 96
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-
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-
[components.experimental_arc_labeler.model.tok2vec.grad_scaler_config]
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-
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-
[components.experimental_arc_labeler.model.tok2vec.tokenizer_config]
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-
use_fast = true
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-
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-
[components.experimental_arc_labeler.model.tok2vec.transformer_config]
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[components.experimental_arc_predicter]
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factory = "experimental_arc_predicter"
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@@ -61,33 +48,17 @@ scorer = {"@scorers":"spacy-experimental.biaffine_parser_scorer.v1"}
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[components.experimental_arc_predicter.model]
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@architectures = "spacy-experimental.PairwiseBilinear.v1"
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-
hidden_width =
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nO = 1
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mixed_precision = false
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dropout = 0.1
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grad_scaler = null
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[components.experimental_arc_predicter.model.tok2vec]
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-
@architectures = "spacy-transformers.
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-
name = "xlm-roberta-large"
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-
mixed_precision = false
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-
pooling = {"@layers":"reduce_mean.v1"}
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grad_factor = 1.0
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-
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-
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-
@span_getters = "spacy-transformers.strided_spans.v1"
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-
window = 128
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-
stride = 96
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-
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-
[components.experimental_arc_predicter.model.tok2vec.grad_scaler_config]
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-
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-
[components.experimental_arc_predicter.model.tok2vec.tokenizer_config]
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-
use_fast = true
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-
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-
[components.experimental_arc_predicter.model.tok2vec.transformer_config]
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-
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-
[components.lemma_smoother]
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-
factory = "hu.lemma_smoother"
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[components.lookup_lemmatizer]
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factory = "hu.lookup_lemmatizer"
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@@ -145,6 +116,7 @@ stride = 96
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[components.ner.model.tok2vec.tokenizer_config]
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use_fast = true
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[components.ner.model.tok2vec.transformer_config]
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@@ -193,10 +165,24 @@ top_k = 3
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nO = null
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[components.trainable_lemmatizer.model.tok2vec]
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-
@architectures = "spacy-transformers.
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-
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-
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pooling = {"@layers":"reduce_mean.v1"}
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[components.transformer]
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factory = "transformer"
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[components.transformer.model.tokenizer_config]
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use_fast = true
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[components.transformer.model.transformer_config]
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[paths]
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+
tagger_model = "models/hu_core_news_trf_xl-tagger-3.5.2/model-best"
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+
parser_model = "models/hu_core_news_trf_xl-parser-3.5.2/model-best"
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ner_model = "models/hu_core_news_trf_xl-ner-3.5.2/model-best"
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+
lemmatizer_lookups = "models/hu_core_news_trf_xl-lookup-lemmatizer-3.5.2"
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train = null
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dev = null
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vectors = null
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[nlp]
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lang = "hu"
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+
pipeline = ["transformer","senter","tagger","morphologizer","lookup_lemmatizer","trainable_lemmatizer","experimental_arc_predicter","experimental_arc_labeler","ner"]
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tokenizer = {"@tokenizers":"spacy.Tokenizer.v1"}
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disabled = []
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before_creation = null
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[components.experimental_arc_labeler.model]
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@architectures = "spacy-experimental.Bilinear.v1"
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hidden_width = 256
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mixed_precision = true
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nO = null
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dropout = 0.1
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grad_scaler = null
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[components.experimental_arc_labeler.model.tok2vec]
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+
@architectures = "spacy-transformers.TransformerListener.v1"
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grad_factor = 1.0
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upstream = "transformer"
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pooling = {"@layers":"reduce_mean.v1"}
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[components.experimental_arc_predicter]
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factory = "experimental_arc_predicter"
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[components.experimental_arc_predicter.model]
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@architectures = "spacy-experimental.PairwiseBilinear.v1"
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hidden_width = 64
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nO = 1
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mixed_precision = false
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dropout = 0.1
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grad_scaler = null
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[components.experimental_arc_predicter.model.tok2vec]
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+
@architectures = "spacy-transformers.TransformerListener.v1"
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grad_factor = 1.0
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upstream = "transformer"
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pooling = {"@layers":"reduce_mean.v1"}
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[components.lookup_lemmatizer]
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factory = "hu.lookup_lemmatizer"
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[components.ner.model.tok2vec.tokenizer_config]
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use_fast = true
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+
model_max_length = 512
|
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[components.ner.model.tok2vec.transformer_config]
|
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nO = null
|
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|
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[components.trainable_lemmatizer.model.tok2vec]
|
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+
@architectures = "spacy-transformers.Tok2VecTransformer.v3"
|
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+
name = "xlm-roberta-large"
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+
mixed_precision = false
|
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pooling = {"@layers":"reduce_mean.v1"}
|
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+
grad_factor = 1.0
|
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+
|
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+
[components.trainable_lemmatizer.model.tok2vec.get_spans]
|
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+
@span_getters = "spacy-transformers.strided_spans.v1"
|
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+
window = 128
|
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+
stride = 96
|
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+
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+
[components.trainable_lemmatizer.model.tok2vec.grad_scaler_config]
|
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+
|
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+
[components.trainable_lemmatizer.model.tok2vec.tokenizer_config]
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+
use_fast = true
|
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+
model_max_length = 512
|
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+
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[components.trainable_lemmatizer.model.tok2vec.transformer_config]
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[components.transformer]
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factory = "transformer"
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|
204 |
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