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Update README.md with new model card content

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  1. README.md +13 -10
README.md CHANGED
@@ -1,3 +1,6 @@
 
 
 
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  ### Model Overview
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  A RoBERTa encoder network.
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@@ -36,7 +39,7 @@ __Arguments__
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  ### Example Usage
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  ```python
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  import keras
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- import keras_nlp
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  import numpy as np
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  ```
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@@ -46,8 +49,8 @@ features = ["The quick brown fox jumped.", "I forgot my homework."]
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  labels = [0, 3]
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  # Pretrained classifier.
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- classifier = keras_nlp.models.RobertaClassifier.from_preset(
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- "${VARIATION_SLUG}",
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  num_classes=4,
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  )
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  classifier.fit(x=features, y=labels, batch_size=2)
@@ -74,8 +77,8 @@ features = {
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  labels = [0, 3]
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  # Pretrained classifier without preprocessing.
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- classifier = keras_nlp.models.RobertaClassifier.from_preset(
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- "${VARIATION_SLUG}",
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  num_classes=4,
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  preprocessor=None,
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  )
@@ -86,7 +89,7 @@ classifier.fit(x=features, y=labels, batch_size=2)
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  ```python
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  import keras
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- import keras_nlp
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  import numpy as np
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  ```
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@@ -96,8 +99,8 @@ features = ["The quick brown fox jumped.", "I forgot my homework."]
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  labels = [0, 3]
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  # Pretrained classifier.
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- classifier = keras_nlp.models.RobertaClassifier.from_preset(
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- "${VARIATION_SLUG}",
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  num_classes=4,
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  )
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  classifier.fit(x=features, y=labels, batch_size=2)
@@ -124,8 +127,8 @@ features = {
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  labels = [0, 3]
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  # Pretrained classifier without preprocessing.
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- classifier = keras_nlp.models.RobertaClassifier.from_preset(
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- "${VARIATION_SLUG}",
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  num_classes=4,
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  preprocessor=None,
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  )
 
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+ ---
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+ library_name: keras-hub
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+ ---
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  ### Model Overview
5
  A RoBERTa encoder network.
6
 
 
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  ### Example Usage
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  ```python
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  import keras
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+ import keras_hub
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  import numpy as np
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  ```
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  labels = [0, 3]
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  # Pretrained classifier.
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+ classifier = keras_hub.models.RobertaClassifier.from_preset(
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+ "roberta_base_en",
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  num_classes=4,
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  )
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  classifier.fit(x=features, y=labels, batch_size=2)
 
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  labels = [0, 3]
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  # Pretrained classifier without preprocessing.
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+ classifier = keras_hub.models.RobertaClassifier.from_preset(
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+ "roberta_base_en",
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  num_classes=4,
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  preprocessor=None,
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  )
 
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  ```python
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  import keras
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+ import keras_hub
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  import numpy as np
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  ```
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  labels = [0, 3]
100
 
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  # Pretrained classifier.
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+ classifier = keras_hub.models.RobertaClassifier.from_preset(
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+ "roberta_base_en",
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  num_classes=4,
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  )
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  classifier.fit(x=features, y=labels, batch_size=2)
 
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  labels = [0, 3]
128
 
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  # Pretrained classifier without preprocessing.
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+ classifier = keras_hub.models.RobertaClassifier.from_preset(
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+ "roberta_base_en",
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  num_classes=4,
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  preprocessor=None,
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  )