Fix some typos in docs (#36502)
Co-authored-by: Matt <Rocketknight1@users.noreply.github.com>
This commit is contained in:
@@ -29,7 +29,7 @@ Keywords: inpainting, SD, Stable Diffusion
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## [flair](https://github.com/flairNLP/flair)
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## [flair](https://github.com/flairNLP/flair)
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FLAIR is a powerful PyTorch NLP framework, convering several important tasks: NER, sentiment-analysis, part-of-speech tagging, text and document embeddings, among other things.
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FLAIR is a powerful PyTorch NLP framework, covering several important tasks: NER, sentiment-analysis, part-of-speech tagging, text and document embeddings, among other things.
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Keywords: NLP, text embedding, document embedding, biomedical, NER, PoS, sentiment-analysis
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Keywords: NLP, text embedding, document embedding, biomedical, NER, PoS, sentiment-analysis
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@@ -136,7 +136,7 @@ if __name__ == "__main__":
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continue
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continue
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logger.debug(f"loading: {entry.name}")
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logger.debug(f"loading: {entry.name}")
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module = import_from_path(entry.name.split(".")[0], entry.path)
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module = import_from_path(entry.name.split(".")[0], entry.path)
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logger.info(f"runnning benchmarks in: {entry.name}")
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logger.info(f"running benchmarks in: {entry.name}")
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module.run_benchmark(logger, branch, commit_id, commit_msg)
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module.run_benchmark(logger, branch, commit_id, commit_msg)
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except ImportModuleException as e:
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except ImportModuleException as e:
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logger.error(e)
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logger.error(e)
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@@ -195,7 +195,7 @@ You have access to the following tools:
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To solve the task, you must plan forward to proceed in a series of steps, in a cycle of 'Thought:', 'Code:', and 'Observation:' sequences.
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To solve the task, you must plan forward to proceed in a series of steps, in a cycle of 'Thought:', 'Code:', and 'Observation:' sequences.
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At each step, in the 'Thought:' sequence, you should first explain your reasoning towards solving the task, then the tools that you want to use.
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At each step, in the 'Thought:' sequence, you should first explain your reasoning towards solving the task, then the tools that you want to use.
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Then in the 'Code:' sequence, you shold write the code in simple Python. The code sequence must end with '/End code' sequence.
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Then in the 'Code:' sequence, you should write the code in simple Python. The code sequence must end with '/End code' sequence.
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During each intermediate step, you can use 'print()' to save whatever important information you will then need.
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During each intermediate step, you can use 'print()' to save whatever important information you will then need.
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These print outputs will then be available in the 'Observation:' field, for using this information as input for the next step.
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These print outputs will then be available in the 'Observation:' field, for using this information as input for the next step.
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@@ -205,7 +205,7 @@ Here are a few examples using notional tools:
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---
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---
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{examples}
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{examples}
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Above example were using notional tools that might not exist for you. You only have acces to those tools:
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Above example were using notional tools that might not exist for you. You only have access to those tools:
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<<tool_names>>
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<<tool_names>>
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You also can perform computations in the python code you generate.
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You also can perform computations in the python code you generate.
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@@ -116,11 +116,11 @@ optimum-cli export onnx --model keras-io/transformers-qa distilbert_base_cased_s
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<Tip warning={true}>
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<Tip warning={true}>
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لم يعد يتم دعم `tranformers.onnx` يُرجى تصدير النماذج باستخدام 🤗 Optimum كما هو موضح أعلاه. سيتم إزالة هذا القسم في الإصدارات القادمة.
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لم يعد يتم دعم `transformers.onnx` يُرجى تصدير النماذج باستخدام 🤗 Optimum كما هو موضح أعلاه. سيتم إزالة هذا القسم في الإصدارات القادمة.
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</Tip>
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</Tip>
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لتصدير نموذج 🤗 Transformers إلى ONNX باستخدام `tranformers.onnx`، ثبّت التبعيات الإضافية:
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لتصدير نموذج 🤗 Transformers إلى ONNX باستخدام `transformers.onnx`، ثبّت التبعيات الإضافية:
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```bash
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```bash
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pip install transformers[onnx]
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pip install transformers[onnx]
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@@ -128,11 +128,11 @@ optimum-cli export onnx --model keras-io/transformers-qa distilbert_base_cased_s
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<Tip warning={true}>
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<Tip warning={true}>
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`tranformers.onnx` 不再进行维护,请如上所述,使用 🤗 Optimum 导出模型。这部分内容将在未来版本中删除。
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`transformers.onnx` 不再进行维护,请如上所述,使用 🤗 Optimum 导出模型。这部分内容将在未来版本中删除。
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</Tip>
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</Tip>
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要使用 `tranformers.onnx` 将 🤗 Transformers 模型导出为 ONNX,请安装额外的依赖项:
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要使用 `transformers.onnx` 将 🤗 Transformers 模型导出为 ONNX,请安装额外的依赖项:
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```bash
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```bash
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pip install transformers[onnx]
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pip install transformers[onnx]
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