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				https://github.com/explosion/spaCy.git
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			70 lines
		
	
	
		
			1.4 KiB
		
	
	
	
		
			INI
		
	
	
	
	
	
			
		
		
	
	
			70 lines
		
	
	
		
			1.4 KiB
		
	
	
	
		
			INI
		
	
	
	
	
	
| [training]
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| use_gpu = -1
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| limit = 0
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| dropout = 0.2
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| patience = 10000
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| eval_frequency = 200
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| scores = ["ents_f"]
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| score_weights = {"ents_f": 1}
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| orth_variant_level = 0.0
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| gold_preproc = true
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| max_length = 0
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| batch_size = 25
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| seed = 0
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| accumulate_gradient = 2
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| discard_oversize = false
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| 
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| [training.optimizer]
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| @optimizers = "Adam.v1"
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| learn_rate = 0.001
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| beta1 = 0.9
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| beta2 = 0.999
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| 
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| [nlp]
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| lang = "en"
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| vectors = null
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| 
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| [nlp.pipeline.tok2vec]
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| factory = "tok2vec"
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| 
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| [nlp.pipeline.tok2vec.model]
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| @architectures = "spacy.Tok2Vec.v1"
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| 
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| [nlp.pipeline.tok2vec.model.extract]
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| @architectures = "spacy.CharacterEmbed.v1"
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| width = 96
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| nM = 64
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| nC = 8
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| rows = 2000
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| columns = ["ID", "NORM", "PREFIX", "SUFFIX", "SHAPE", "ORTH"]
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| dropout = null
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| 
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| [nlp.pipeline.tok2vec.model.extract.features]
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| @architectures = "spacy.Doc2Feats.v1"
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| columns = ${nlp.pipeline.tok2vec.model.extract:columns}
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| 
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| [nlp.pipeline.tok2vec.model.embed]
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| @architectures = "spacy.LayerNormalizedMaxout.v1"
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| width = ${nlp.pipeline.tok2vec.model.extract:width}
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| maxout_pieces = 4
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| 
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| [nlp.pipeline.tok2vec.model.encode]
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| @architectures = "spacy.MaxoutWindowEncoder.v1"
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| width = ${nlp.pipeline.tok2vec.model.extract:width}
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| window_size = 1
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| maxout_pieces = 2
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| depth = 2
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| 
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| [nlp.pipeline.ner]
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| factory = "ner"
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| 
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| [nlp.pipeline.ner.model]
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| @architectures = "spacy.TransitionBasedParser.v1"
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| nr_feature_tokens = 6
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| hidden_width = 64
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| maxout_pieces = 2
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| 
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| [nlp.pipeline.ner.model.tok2vec]
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| @architectures = "spacy.Tok2VecTensors.v1"
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| width = ${nlp.pipeline.tok2vec.model.extract:width}
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