[TYPO] fix typo/format in quicktour.md (#25519)
* fix_all_language_quicktour * give up ! before bash command --------- Co-authored-by: lishukan <lishukan@dxy.cn>
This commit is contained in:
@@ -68,11 +68,13 @@ Installieren Sie die folgenden Abhängigkeiten, falls Sie dies nicht bereits get
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<frameworkcontent>
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<pt>
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```bash
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pip install torch
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```
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</pt>
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<tf>
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```bash
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pip install tensorflow
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```
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@@ -226,6 +228,7 @@ Genau wie die [`pipeline`] akzeptiert der Tokenizer eine Liste von Eingaben. Dar
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<frameworkcontent>
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<pt>
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```py
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>>> pt_batch = tokenizer(
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... ["We are very happy to show you the 🤗 Transformers library.", "We hope you don't hate it."],
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@@ -237,6 +240,7 @@ Genau wie die [`pipeline`] akzeptiert der Tokenizer eine Liste von Eingaben. Dar
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```
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</pt>
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<tf>
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```py
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>>> tf_batch = tokenizer(
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... ["We are very happy to show you the 🤗 Transformers library.", "We hope you don't hate it."],
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@@ -375,6 +379,7 @@ Ein besonders cooles 🤗 Transformers-Feature ist die Möglichkeit, ein Modell
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<frameworkcontent>
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<pt>
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```py
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>>> from transformers import AutoModel
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@@ -383,6 +388,7 @@ Ein besonders cooles 🤗 Transformers-Feature ist die Möglichkeit, ein Modell
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```
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</pt>
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<tf>
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```py
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>>> from transformers import TFAutoModel
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@@ -30,11 +30,13 @@ You'll also need to install your preferred machine learning framework:
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<frameworkcontent>
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<pt>
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```bash
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pip install torch
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```
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</pt>
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<tf>
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```bash
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pip install tensorflow
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```
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@@ -208,6 +210,7 @@ A tokenizer can also accept a list of inputs, and pad and truncate the text to r
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<frameworkcontent>
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<pt>
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```py
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>>> pt_batch = tokenizer(
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... ["We are very happy to show you the 🤗 Transformers library.", "We hope you don't hate it."],
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@@ -219,6 +222,7 @@ A tokenizer can also accept a list of inputs, and pad and truncate the text to r
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```
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</pt>
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<tf>
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```py
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>>> tf_batch = tokenizer(
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... ["We are very happy to show you the 🤗 Transformers library.", "We hope you don't hate it."],
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@@ -352,6 +356,7 @@ One particularly cool 🤗 Transformers feature is the ability to save a model a
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<frameworkcontent>
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<pt>
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```py
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>>> from transformers import AutoModel
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@@ -360,6 +365,7 @@ One particularly cool 🤗 Transformers feature is the ability to save a model a
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```
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</pt>
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<tf>
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```py
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>>> from transformers import TFAutoModel
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@@ -68,11 +68,13 @@ Instala las siguientes dependencias si aún no lo has hecho:
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<frameworkcontent>
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<pt>
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```bash
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pip install torch
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```
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</pt>
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<tf>
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```bash
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pip install tensorflow
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```
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@@ -224,6 +226,7 @@ Como con el [`pipeline`], el tokenizador aceptará una lista de inputs. Además,
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<frameworkcontent>
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<pt>
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```py
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>>> pt_batch = tokenizer(
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... ["We are very happy to show you the 🤗 Transformers library.", "We hope you don't hate it."],
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@@ -235,6 +238,7 @@ Como con el [`pipeline`], el tokenizador aceptará una lista de inputs. Además,
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```
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</pt>
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<tf>
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```py
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>>> tf_batch = tokenizer(
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... ["We are very happy to show you the 🤗 Transformers library.", "We hope you don't hate it."],
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@@ -377,6 +381,7 @@ Una característica particularmente interesante de 🤗 Transformers es la habil
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<frameworkcontent>
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<pt>
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```py
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>>> from transformers import AutoModel
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@@ -385,6 +390,7 @@ Una característica particularmente interesante de 🤗 Transformers es la habil
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```
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</pt>
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<tf>
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```py
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>>> from transformers import TFAutoModel
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@@ -30,11 +30,13 @@ Vous aurez aussi besoin d'installer votre bibliothèque d'apprentissage profond
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<frameworkcontent>
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<pt>
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```bash
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pip install torch
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```
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</pt>
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<tf>
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```bash
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pip install tensorflow
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```
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@@ -203,6 +205,7 @@ Un tokenizer peut également accepter une liste de textes, et remplir et tronque
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<frameworkcontent>
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<pt>
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```py
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>>> pt_batch = tokenizer(
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... ["We are very happy to show you the 🤗 Transformers library.", "We hope you don't hate it."],
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@@ -214,6 +217,7 @@ Un tokenizer peut également accepter une liste de textes, et remplir et tronque
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```
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</pt>
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<tf>
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```py
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>>> tf_batch = tokenizer(
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... ["We are very happy to show you the 🤗 Transformers library.", "We hope you don't hate it."],
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@@ -346,6 +350,7 @@ Une fonctionnalité particulièrement cool 🤗 Transformers est la possibilité
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<frameworkcontent>
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<pt>
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```py
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>>> from transformers import AutoModel
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@@ -354,6 +359,7 @@ Une fonctionnalité particulièrement cool 🤗 Transformers est la possibilité
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```
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</pt>
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<tf>
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```py
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>>> from transformers import TFAutoModel
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@@ -68,11 +68,13 @@ Installa le seguenti dipendenze se non lo hai già fatto:
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<frameworkcontent>
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<pt>
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```bash
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pip install torch
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```
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</pt>
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<tf>
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```bash
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pip install tensorflow
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```
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@@ -379,6 +381,7 @@ Una caratteristica particolarmente interessante di 🤗 Transformers è la sua a
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<frameworkcontent>
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<pt>
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```py
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>>> from transformers import AutoModel
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@@ -387,6 +390,7 @@ Una caratteristica particolarmente interessante di 🤗 Transformers è la sua a
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```
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</pt>
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<tf>
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```py
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>>> from transformers import TFAutoModel
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@@ -30,11 +30,13 @@ rendered properly in your Markdown viewer.
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<frameworkcontent>
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<pt>
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```bash
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pip install torch
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```
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</pt>
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<tf>
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```bash
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pip install tensorflow
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```
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@@ -210,6 +212,7 @@ label: NEGATIVE, with score: 0.5309
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<frameworkcontent>
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<pt>
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```py
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>>> pt_batch = tokenizer(
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... ["We are very happy to show you the 🤗 Transformers library.", "We hope you don't hate it."],
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@@ -221,6 +224,7 @@ label: NEGATIVE, with score: 0.5309
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```
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</pt>
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<tf>
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```py
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>>> tf_batch = tokenizer(
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... ["We are very happy to show you the 🤗 Transformers library.", "We hope you don't hate it."],
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@@ -353,6 +357,7 @@ tensor([[0.0021, 0.0018, 0.0115, 0.2121, 0.7725],
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<frameworkcontent>
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<pt>
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```py
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>>> from transformers import AutoModel
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@@ -361,6 +366,7 @@ tensor([[0.0021, 0.0018, 0.0115, 0.2121, 0.7725],
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```
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</pt>
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<tf>
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```py
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>>> from transformers import TFAutoModel
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@@ -228,6 +228,7 @@ Assim como o [`pipeline`], o tokenizer aceitará uma lista de entradas. Além di
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<frameworkcontent>
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<pt>
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```py
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>>> pt_batch = tokenizer(
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... ["We are very happy to show you the 🤗 transformers library.", "We hope you don't hate it."],
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@@ -239,6 +240,7 @@ Assim como o [`pipeline`], o tokenizer aceitará uma lista de entradas. Além di
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```
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</pt>
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<tf>
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```py
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>>> tf_batch = tokenizer(
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... ["We are very happy to show you the 🤗 Transformers library.", "We hope you don't hate it."],
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@@ -377,6 +379,7 @@ Um recurso particularmente interessante dos 🤗 Transformers é a capacidade de
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<frameworkcontent>
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<pt>
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```py
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>>> from transformers import AutoModel
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@@ -385,6 +388,7 @@ Um recurso particularmente interessante dos 🤗 Transformers é a capacidade de
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```
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</pt>
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<tf>
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```py
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>>> from transformers import TFAutoModel
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@@ -30,11 +30,13 @@ rendered properly in your Markdown viewer.
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<frameworkcontent>
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<pt>
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```bash
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pip install torch
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```
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</pt>
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<tf>
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```bash
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pip install tensorflow
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```
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@@ -203,6 +205,7 @@ label: NEGATIVE, with score: 0.5309
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<frameworkcontent>
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<pt>
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```py
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>>> pt_batch = tokenizer(
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... ["We are very happy to show you the 🤗 Transformers library.", "We hope you don't hate it."],
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@@ -214,6 +217,7 @@ label: NEGATIVE, with score: 0.5309
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```
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</pt>
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<tf>
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```py
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>>> tf_batch = tokenizer(
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... ["We are very happy to show you the 🤗 Transformers library.", "We hope you don't hate it."],
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@@ -347,6 +351,7 @@ tensor([[0.0021, 0.0018, 0.0115, 0.2121, 0.7725],
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<frameworkcontent>
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<pt>
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```py
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>>> from transformers import AutoModel
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@@ -355,6 +360,7 @@ tensor([[0.0021, 0.0018, 0.0115, 0.2121, 0.7725],
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```
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</pt>
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<tf>
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```py
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>>> from transformers import TFAutoModel
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