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Original file line number Diff line number Diff line change
Expand Up @@ -9,7 +9,7 @@
- Make a virtual environment and activate it (suggested, can be skipped)
- Get the code on your machine
- Clone the repo `git clone https://github.com/Python-World/Python_and_the_Web.git`
- Move to this directory `cd Python_and_the_Web/Scripts/API/Random_Joke`
- Move to this directory `cd Python_and_the_Web/Scripts/API/Random Joke`
- Install requirements `pip install -r requirements.txt`
- Run it! `python joke.py` (on linux it's possible to run it with `./joke.py` too but you'll need to `chroot +x joke.py`)

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8 changes: 0 additions & 8 deletions Scripts/API/simple_api_requests/README.md

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28 changes: 0 additions & 28 deletions Scripts/API/simple_api_requests/main.py

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2 changes: 0 additions & 2 deletions Scripts/API/simple_api_requests/requirements.txt

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2 changes: 1 addition & 1 deletion Scripts/API/wikipedia/README.md
Original file line number Diff line number Diff line change
Expand Up @@ -10,7 +10,7 @@ This script helps to fetch data from wikipedia API and provides it in a structur
3. OR you can use the parser by calling method ``` get_all_wiki(query) ```

### Screenshot/GIF showing the sample use of the script
![Alt Screenshot](https://github.com/MNISAR/Python_and_the_Web/blob/master/Scripts/API/wikipedia/output.png "output")
![Alt Screenshot](https://github.com/MNISAR/Python_and_the_Web/blob/master/Scripts/API/Wikipedia/output.png "output")

## *Author Name*
[MNISAR](https://www.github.com/MNISAR)
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Original file line number Diff line number Diff line change
Expand Up @@ -14,7 +14,13 @@
"outputs": [],
"source": [
"from tensorflow.keras.models import Sequential\n",
"from tensorflow.keras.layers import Conv2D, MaxPooling2D, Dropout, Flatten, Dense\n",
"from tensorflow.keras.layers import (\n",
" Conv2D,\n",
" MaxPooling2D,\n",
" Dropout,\n",
" Flatten,\n",
" Dense,\n",
")\n",
"from tensorflow.keras.metrics import categorical_crossentropy\n",
"from tensorflow.keras.preprocessing.image import ImageDataGenerator"
]
Expand Down Expand Up @@ -42,11 +48,13 @@
"metadata": {},
"outputs": [],
"source": [
"train_data_generator = ImageDataGenerator(rescale=1./255,\n",
" rotation_range=20,\n",
" shear_range=0.2,\n",
" zoom_range=0.2,\n",
" horizontal_flip=True)"
"train_data_generator = ImageDataGenerator(\n",
" rescale=1.0 / 255,\n",
" rotation_range=20,\n",
" shear_range=0.2,\n",
" zoom_range=0.2,\n",
" horizontal_flip=True,\n",
")"
]
},
{
Expand All @@ -55,7 +63,7 @@
"metadata": {},
"outputs": [],
"source": [
"test_data_generator = ImageDataGenerator(rescale=1./255)"
"test_data_generator = ImageDataGenerator(rescale=1.0 / 255)"
]
},
{
Expand All @@ -72,11 +80,13 @@
}
],
"source": [
"training_data = train_data_generator.flow_from_directory(directory=train_data_path, \n",
" target_size=(48, 48),\n",
" color_mode='grayscale',\n",
" class_mode='categorical',\n",
" batch_size=64)"
"training_data = train_data_generator.flow_from_directory(\n",
" directory=train_data_path,\n",
" target_size=(48, 48),\n",
" color_mode=\"grayscale\",\n",
" class_mode=\"categorical\",\n",
" batch_size=64,\n",
")"
]
},
{
Expand All @@ -93,11 +103,13 @@
}
],
"source": [
"testing_data = test_data_generator.flow_from_directory(directory=test_data_path, \n",
" target_size=(48, 48),\n",
" color_mode='grayscale',\n",
" class_mode='categorical',\n",
" batch_size=64)"
"testing_data = test_data_generator.flow_from_directory(\n",
" directory=test_data_path,\n",
" target_size=(48, 48),\n",
" color_mode=\"grayscale\",\n",
" class_mode=\"categorical\",\n",
" batch_size=64,\n",
")"
]
},
{
Expand Down Expand Up @@ -142,17 +154,19 @@
"metadata": {},
"outputs": [],
"source": [
"model.add(Conv2D(32, 3, input_shape=(48, 48, 1), activation='relu', padding='same'))\n",
"model.add(\n",
" Conv2D(32, 3, input_shape=(48, 48, 1), activation=\"relu\", padding=\"same\")\n",
")\n",
"model.add(MaxPooling2D((2, 2), strides=2))\n",
"model.add(Conv2D(64, 3, activation='relu', padding='same'))\n",
"model.add(Conv2D(64, 3, activation=\"relu\", padding=\"same\"))\n",
"model.add(Dropout(0.2))\n",
"model.add(MaxPooling2D((2, 2), strides=2))\n",
"model.add(Conv2D(64, 3, activation='relu', padding='same'))\n",
"model.add(Conv2D(64, 3, activation=\"relu\", padding=\"same\"))\n",
"model.add(Dropout(0.2))\n",
"model.add(MaxPooling2D((2, 2), strides=2))\n",
"model.add(Conv2D(128, 3, activation='relu', padding='same'))\n",
"model.add(Conv2D(128, 3, activation=\"relu\", padding=\"same\"))\n",
"model.add(Flatten())\n",
"model.add(Dense(4, activation='softmax'))"
"model.add(Dense(4, activation=\"softmax\"))"
]
},
{
Expand Down Expand Up @@ -214,7 +228,9 @@
"metadata": {},
"outputs": [],
"source": [
"model.compile(optimizer='adam', loss='categorical_crossentropy', metrics=['accuracy'])"
"model.compile(\n",
" optimizer=\"adam\", loss=\"categorical_crossentropy\", metrics=[\"accuracy\"]\n",
")"
]
},
{
Expand Down Expand Up @@ -868,8 +884,14 @@
}
],
"source": [
"model.fit_generator(training_data, validation_data=testing_data, epochs=300, steps_per_epoch=len(training_data), \n",
" validation_steps=len(testing_data), verbose=1)"
"model.fit_generator(\n",
" training_data,\n",
" validation_data=testing_data,\n",
" epochs=300,\n",
" steps_per_epoch=len(training_data),\n",
" validation_steps=len(testing_data),\n",
" verbose=1,\n",
")"
]
},
{
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