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PFEemp2024
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Parent(s):
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ADDED
@@ -0,0 +1,143 @@
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# dev files
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+
*.cache
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*.dev.py
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state_dict/
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TAD*/
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# Byte-compiled / optimized / DLL files
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7 |
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__pycache__/
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8 |
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*.py[cod]
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9 |
+
*$py.class
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10 |
+
*.pyc
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+
tests/
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12 |
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*.result.json
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.idea/
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+
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+
# Embedding
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+
glove.840B.300d.txt
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glove.42B.300d.txt
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18 |
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glove.twitter.27B.txt
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+
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# project main files
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21 |
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release_note.json
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22 |
+
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# C extensions
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24 |
+
*.so
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25 |
+
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26 |
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# Distribution / packaging
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27 |
+
.Python
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28 |
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build/
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29 |
+
develop-eggs/
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30 |
+
dist/
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31 |
+
downloads/
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+
eggs/
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33 |
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.eggs/
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lib64/
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parts/
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36 |
+
sdist/
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+
var/
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38 |
+
wheels/
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+
pip-wheel-metadata/
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share/python-wheels/
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41 |
+
*.egg-info/
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+
.installed.cfg
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*.egg
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+
MANIFEST
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+
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+
# PyInstaller
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+
# Usually these files are written by a python script from a template
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48 |
+
# before PyInstaller builds the exe, so as to inject date/other infos into it.
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*.manifest
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50 |
+
*.spec
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51 |
+
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52 |
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# Installer training_logs
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53 |
+
pip-log.txt
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54 |
+
pip-delete-this-directory.txt
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55 |
+
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# Unit test / coverage reports
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57 |
+
htmlcov/
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+
.tox/
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+
.nox/
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+
.coverage
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.coverage.*
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.cache
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nosetests.xml
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+
coverage.xml
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*.cover
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*.py,cover
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.hypothesis/
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.pytest_cache/
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# Translations
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*.mo
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*.pot
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+
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# Django stuff:
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75 |
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*.log
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local_settings.py
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db.sqlite3
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db.sqlite3-journal
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+
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# Flask stuff:
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instance/
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.webassets-cache
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+
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# Scrapy stuff:
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.scrapy
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+
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# Sphinx documentation
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docs/_build/
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# PyBuilder
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target/
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# Jupyter Notebook
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.ipynb_checkpoints
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# IPython
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profile_default/
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ipython_config.py
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# pyenv
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.python-version
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# pipenv
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# According to pypa/pipenv#598, it is recommended to include Pipfile.lock in version control.
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# However, in case of collaboration, if having platform-specific dependencies or dependencies
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# having no cross-platform support, pipenv may install dependencies that don't work, or not
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# install all needed dependencies.
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#Pipfile.lock
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+
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# celery beat schedule file
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celerybeat-schedule
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+
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# SageMath parsed files
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*.sage.py
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# Environments
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117 |
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.env
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.venv
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env/
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venv/
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ENV/
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env.bak/
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venv.bak/
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# Spyder project settings
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.spyderproject
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.spyproject
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+
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# Rope project settings
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.ropeproject
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# mkdocs documentation
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/site
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# mypy
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.mypy_cache/
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.dmypy.json
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dmypy.json
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# Pyre type checker
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.pyre/
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.DS_Store
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examples/.DS_Store
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utils.py
ADDED
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+
import random
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2 |
+
from difflib import Differ
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3 |
+
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4 |
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from textattack.attack_recipes import BAEGarg2019
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5 |
+
from textattack.datasets import Dataset
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6 |
+
from textattack.models.wrappers import HuggingFaceModelWrapper
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7 |
+
from findfile import find_files
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8 |
+
from flask import Flask
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9 |
+
from textattack import Attacker
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10 |
+
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11 |
+
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12 |
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class ModelWrapper(HuggingFaceModelWrapper):
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13 |
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def __init__(self, model):
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14 |
+
self.model = model # pipeline = pipeline
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15 |
+
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16 |
+
def __call__(self, text_inputs, **kwargs):
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17 |
+
outputs = []
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18 |
+
for text_input in text_inputs:
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19 |
+
raw_outputs = self.model.infer(text_input, print_result=False, **kwargs)
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20 |
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outputs.append(raw_outputs["probs"])
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return outputs
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+
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+
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class SentAttacker:
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25 |
+
def __init__(self, model, recipe_class=BAEGarg2019):
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model = model
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model_wrapper = ModelWrapper(model)
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28 |
+
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29 |
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recipe = recipe_class.build(model_wrapper)
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30 |
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# WordNet defaults to english. Set the default language to French ('fra')
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31 |
+
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# recipe.transformation.language = "en"
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33 |
+
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34 |
+
_dataset = [("", 0)]
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35 |
+
_dataset = Dataset(_dataset)
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36 |
+
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37 |
+
self.attacker = Attacker(recipe, _dataset)
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38 |
+
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39 |
+
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40 |
+
def diff_texts(text1, text2):
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41 |
+
d = Differ()
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42 |
+
return [
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43 |
+
(token[2:], token[0] if token[0] != " " else None)
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44 |
+
for token in d.compare(text1, text2)
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+
]
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46 |
+
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47 |
+
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48 |
+
def get_ensembled_tad_results(results):
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49 |
+
target_dict = {}
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50 |
+
for r in results:
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51 |
+
target_dict[r["label"]] = (
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52 |
+
target_dict.get(r["label"]) + 1 if r["label"] in target_dict else 1
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53 |
+
)
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54 |
+
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55 |
+
return dict(zip(target_dict.values(), target_dict.keys()))[
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56 |
+
max(target_dict.values())
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57 |
+
]
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58 |
+
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59 |
+
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60 |
+
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61 |
+
def get_sst2_example():
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62 |
+
filter_key_words = [
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63 |
+
".py",
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64 |
+
".md",
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65 |
+
"readme",
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66 |
+
"log",
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67 |
+
"result",
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68 |
+
"zip",
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69 |
+
".state_dict",
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70 |
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".model",
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71 |
+
".png",
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72 |
+
"acc_",
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73 |
+
"f1_",
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74 |
+
".origin",
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75 |
+
".adv",
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76 |
+
".csv",
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77 |
+
]
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78 |
+
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79 |
+
dataset_file = {"train": [], "test": [], "valid": []}
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80 |
+
dataset = "sst2"
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81 |
+
search_path = "./"
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82 |
+
task = "text_defense"
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83 |
+
dataset_file["test"] += find_files(
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84 |
+
search_path,
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85 |
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[dataset, "test", task],
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86 |
+
exclude_key=[".adv", ".org", ".defense", ".inference", "train."]
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87 |
+
+ filter_key_words,
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88 |
+
)
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89 |
+
|
90 |
+
for dat_type in ["test"]:
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91 |
+
data = []
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92 |
+
label_set = set()
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93 |
+
for data_file in dataset_file[dat_type]:
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94 |
+
with open(data_file, mode="r", encoding="utf8") as fin:
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95 |
+
lines = fin.readlines()
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96 |
+
for line in lines:
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97 |
+
text, label = line.split("$LABEL$")
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98 |
+
text = text.strip()
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99 |
+
label = int(label.strip())
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100 |
+
data.append((text, label))
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101 |
+
label_set.add(label)
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102 |
+
return random.choice(data)
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103 |
+
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104 |
+
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105 |
+
def get_agnews_example():
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106 |
+
filter_key_words = [
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107 |
+
".py",
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108 |
+
".md",
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109 |
+
"readme",
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110 |
+
"log",
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111 |
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"result",
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112 |
+
"zip",
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113 |
+
".state_dict",
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114 |
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".model",
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115 |
+
".png",
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116 |
+
"acc_",
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117 |
+
"f1_",
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118 |
+
".origin",
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119 |
+
".adv",
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120 |
+
".csv",
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121 |
+
]
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122 |
+
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123 |
+
dataset_file = {"train": [], "test": [], "valid": []}
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124 |
+
dataset = "agnews"
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125 |
+
search_path = "./"
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126 |
+
task = "text_defense"
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127 |
+
dataset_file["test"] += find_files(
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128 |
+
search_path,
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129 |
+
[dataset, "test", task],
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130 |
+
exclude_key=[".adv", ".org", ".defense", ".inference", "train."]
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131 |
+
+ filter_key_words,
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132 |
+
)
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133 |
+
for dat_type in ["test"]:
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134 |
+
data = []
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135 |
+
label_set = set()
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136 |
+
for data_file in dataset_file[dat_type]:
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137 |
+
with open(data_file, mode="r", encoding="utf8") as fin:
|
138 |
+
lines = fin.readlines()
|
139 |
+
for line in lines:
|
140 |
+
text, label = line.split("$LABEL$")
|
141 |
+
text = text.strip()
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142 |
+
label = int(label.strip())
|
143 |
+
data.append((text, label))
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144 |
+
label_set.add(label)
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145 |
+
return random.choice(data)
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146 |
+
|
147 |
+
|
148 |
+
def get_amazon_example():
|
149 |
+
filter_key_words = [
|
150 |
+
".py",
|
151 |
+
".md",
|
152 |
+
"readme",
|
153 |
+
"log",
|
154 |
+
"result",
|
155 |
+
"zip",
|
156 |
+
".state_dict",
|
157 |
+
".model",
|
158 |
+
".png",
|
159 |
+
"acc_",
|
160 |
+
"f1_",
|
161 |
+
".origin",
|
162 |
+
".adv",
|
163 |
+
".csv",
|
164 |
+
]
|
165 |
+
|
166 |
+
dataset_file = {"train": [], "test": [], "valid": []}
|
167 |
+
dataset = "amazon"
|
168 |
+
search_path = "./"
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169 |
+
task = "text_defense"
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170 |
+
dataset_file["test"] += find_files(
|
171 |
+
search_path,
|
172 |
+
[dataset, "test", task],
|
173 |
+
exclude_key=[".adv", ".org", ".defense", ".inference", "train."]
|
174 |
+
+ filter_key_words,
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175 |
+
)
|
176 |
+
|
177 |
+
for dat_type in ["test"]:
|
178 |
+
data = []
|
179 |
+
label_set = set()
|
180 |
+
for data_file in dataset_file[dat_type]:
|
181 |
+
with open(data_file, mode="r", encoding="utf8") as fin:
|
182 |
+
lines = fin.readlines()
|
183 |
+
for line in lines:
|
184 |
+
text, label = line.split("$LABEL$")
|
185 |
+
text = text.strip()
|
186 |
+
label = int(label.strip())
|
187 |
+
data.append((text, label))
|
188 |
+
label_set.add(label)
|
189 |
+
return random.choice(data)
|
190 |
+
|
191 |
+
|
192 |
+
def get_imdb_example():
|
193 |
+
filter_key_words = [
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194 |
+
".py",
|
195 |
+
".md",
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196 |
+
"readme",
|
197 |
+
"log",
|
198 |
+
"result",
|
199 |
+
"zip",
|
200 |
+
".state_dict",
|
201 |
+
".model",
|
202 |
+
".png",
|
203 |
+
"acc_",
|
204 |
+
"f1_",
|
205 |
+
".origin",
|
206 |
+
".adv",
|
207 |
+
".csv",
|
208 |
+
]
|
209 |
+
|
210 |
+
dataset_file = {"train": [], "test": [], "valid": []}
|
211 |
+
dataset = "imdb"
|
212 |
+
search_path = "./"
|
213 |
+
task = "text_defense"
|
214 |
+
dataset_file["test"] += find_files(
|
215 |
+
search_path,
|
216 |
+
[dataset, "test", task],
|
217 |
+
exclude_key=[".adv", ".org", ".defense", ".inference", "train."]
|
218 |
+
+ filter_key_words,
|
219 |
+
)
|
220 |
+
|
221 |
+
for dat_type in ["test"]:
|
222 |
+
data = []
|
223 |
+
label_set = set()
|
224 |
+
for data_file in dataset_file[dat_type]:
|
225 |
+
with open(data_file, mode="r", encoding="utf8") as fin:
|
226 |
+
lines = fin.readlines()
|
227 |
+
for line in lines:
|
228 |
+
text, label = line.split("$LABEL$")
|
229 |
+
text = text.strip()
|
230 |
+
label = int(label.strip())
|
231 |
+
data.append((text, label))
|
232 |
+
label_set.add(label)
|
233 |
+
return random.choice(data)
|
234 |
+
|