work on what_is_it func;
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@ -1,10 +1,9 @@
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import torch
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import torch
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import pytorch_lightning as pl
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import pytorch_lightning as pl
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import torch.nn as nn
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import torch.nn as nn
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from torch.optim import SGD, Adam, lr_scheduler
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from torch.optim import Adam
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import torch.nn.functional as F
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import torch.nn.functional as F
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from torch.utils.data import DataLoader
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from common.constants import BATCH_SIZE, LEARNING_RATE
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from common.constants import DEVICE, BATCH_SIZE, NUM_EPOCHS, LEARNING_RATE, SETUP_PHOTOS, ID_TO_CLASS
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class NeuralNetwork(pl.LightningModule):
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class NeuralNetwork(pl.LightningModule):
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@ -100,7 +100,7 @@ def what_is_it(img_path, show_img=False):
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plt.imshow(plt.imread(img_path))
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plt.imshow(plt.imread(img_path))
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plt.show()
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plt.show()
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image = SETUP_PHOTOS(image).unsqueeze(0)
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image = SETUP_PHOTOS(image).unsqueeze(0)
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model = NeuralNetwork.load_from_checkpoint('./lightning_logs/version_0/checkpoints/epoch=4-step=405.ckpt')
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model = NeuralNetwork.load_from_checkpoint('D:/DEV/UAM/WMICraft/algorithms/neural_network/lightning_logs/version_3/checkpoints/epoch=8-step=810.ckpt')
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with torch.no_grad():
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with torch.no_grad():
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model.eval()
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model.eval()
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@ -108,18 +108,18 @@ def what_is_it(img_path, show_img=False):
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return ID_TO_CLASS[idx]
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return ID_TO_CLASS[idx]
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CNN = NeuralNetwork()
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# CNN = NeuralNetwork()
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common.helpers.createCSV()
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# common.helpers.createCSV()
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#trainer = pl.Trainer(accelerator='gpu', devices=1, callbacks=[EarlyStopping('val_loss')], max_epochs=NUM_EPOCHS)
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#trainer = pl.Trainer(accelerator='gpu', devices=1, callbacks=[EarlyStopping('val_loss')], max_epochs=NUM_EPOCHS)
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trainer = pl.Trainer(accelerator='gpu', devices=1, auto_lr_find=True, max_epochs=NUM_EPOCHS)
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# trainer = pl.Trainer(accelerator='cpu', devices=1, auto_lr_find=True, max_epochs=NUM_EPOCHS)
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#
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trainset = WaterSandTreeGrass('./data/train_csv_file.csv', transform=SETUP_PHOTOS)
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# trainset = WaterSandTreeGrass('./data/train_csv_file.csv', transform=SETUP_PHOTOS)
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testset = WaterSandTreeGrass('./data/test_csv_file.csv', transform=SETUP_PHOTOS)
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# testset = WaterSandTreeGrass('./data/test_csv_file.csv', transform=SETUP_PHOTOS)
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train_loader = DataLoader(trainset, batch_size=BATCH_SIZE, shuffle=True)
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# train_loader = DataLoader(trainset, batch_size=BATCH_SIZE, shuffle=True)
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test_loader = DataLoader(testset, batch_size=BATCH_SIZE)
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# test_loader = DataLoader(testset, batch_size=BATCH_SIZE)
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#
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trainer.fit(CNN, train_loader, test_loader)
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# trainer.fit(CNN, train_loader, test_loader)
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#trainer.tune(CNN, train_loader, test_loader)
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#trainer.tune(CNN, train_loader, test_loader)
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#check_accuracy_tiles()
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#check_accuracy_tiles()
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#print(what_is_it('../../resources/textures/sand.png', True))
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#print(what_is_it('../../resources/textures/sand.png', True))
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@ -33,7 +33,7 @@ class Level:
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def create_map(self):
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def create_map(self):
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print("Create map")
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print("Create map")
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print(what_is_it('../../resources/textures/grass1.png'))
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print(what_is_it('D:/DEV/UAM/WMICraft/resources/textures/t2.jpg'))
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# self.generate_map()
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# self.generate_map()
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# self.setup_base_tiles()
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# self.setup_base_tiles()
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# self.setup_objects()
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# self.setup_objects()
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