Questions tagged [pytorch]

PyTorch is a deep learning framework that implements a dynamic computational graph, which allows you to change the way your neural network behaves on the fly and capable of performing backward automatic differentiation.

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Dataloader : Training GAN with my own data through pytorch

Here is a link for pytorch DCGAN https://pytorch.org/tutorials/beginner/dcgan_faces_tutorial.html I want to know I just have some pictures and all of these pics are based in a folder. but the ...
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How to interpret MSE in classification question?

I'm working on a GNN project associate with molecule classification. The project is to classify if the atom in the molecule will initiate a certain reaction. e.g. A molecule can be represented as [0,1,...
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Ensuring that optimization does not find the trivial solution by setting weights to 0

I am trying to train a neural network which takes as input an initial hidden state (call it s_t0) at time 0 and returns an transformation of s_t0 as s_t1. The goal of optimization is to ensure the ...
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How to extract intermediate feature of pertained model as output without triggering mismatch of input argument numbers in forward function?

I am new to Pytorch, and I obtained a pertained model only (without model definition in python), and I can load it using command: mnet=torch.hub.load(...) which was successful, and I can pass input ...
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What is the substitute for numpy.random.choice statement for tensors?

I am trying to implement a learning algorithm that has the following block of code to select the action with a probability distribution and using np.random.choice : states.append(state) probs = self....
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Can you control the outputs when converting pytorch to CoreML?

❓Question I'm trying to convert a pytorch model to coreml. The model was based on yolov5. Here is a netron view our our exported coreml model. Currently, the architecture has 3 outputs. You can see ...
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How to convert this simple Keras model to PyTorch?

The Keras model I tried to convert is #input is 10^7 samples of 64 bits each inp = Input(shape=(64,)); x = Reshape((4, 16))(inp); x = Permute((2,1))(x); conv0 = Conv1D(25, kernel_size=...
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How to convert a pytorch Tensor to a numpy array without using detach()?

I am trying to implement an algorithm and I am facing an error in the following block of code : def get_action(self, state): state = torch.from_numpy(state).float().unsqueeze(0) probs =...
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How do I proceed to load a ga_instance as “.pkl” format in PyGad?

I have been trying to load the PyGad trained instance in another file, in order to make some prediction. But I have been having some problems in the loading process. After the training phase, I saved ...
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Use PyTorch to speed up linear least squares optimization with bounds?

I'm using scipy.optimize.lsq_linear to run some linear least squares optimizations and all is well, but a little slow. My A matrix is typically about 100 x 10,000 in size and sparse (sparsity usually ...
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How to prepare and use the sub-directories Names as Labels for a CNN?

I have dataset contains of train, val and test sets. I want to use the subdirectories name as labels. For more info. please this What I missing here, using ImageFolder to get the full folder name as ...
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can't transfer numpy array into a pytorch tensor

I'm trying to build an ai to recognize hand-written digits. I'm trying to expend the dataset by shifting the images to all directions by one or two pixels, and to make this process faster I'm using ...
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Load pytorch model from .pts file

I am wondering if someone can explain how to load a pytorch model saved with the .pts extension and extract the weights from the file? More specifically, I am able to load the model using: model = ...
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How the rewards are incorporated into the learning process?

Actually, I have an environment in which I am trying to learn the system dynamics using baseline3 library. Since my example is quite big, I am using the following example to clarify the problem I ...
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Pytorch Add Custom Backward pass for nn.Module Function

I am re-implementing the Invertible Residual Networks architecture. class iResNetBlock(nn.Module): def __init__(self, input_size, hidden_size): self.bottleneck = nn.Sequential( ...
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How can I pass the gradient of a tensor as a parameter in the loss function in PyTorch?

I am trying to implement a neural network in PyTorch to solve an ordinary differential equation (ODE). The network architecture is straight-forward. It is just a feed-forward neural network with n ...
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Why doesn't torch see сuda?

i have problem with torch and cuda. torch.version.__version__ gives "1.5.1+cu101" torch.version.cuda gives "10.1" torch.backends.cudnn.version() gives "7603" But torch....
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using nn.Sparselinear in pytorch

Hi I am implementing sparsely connected neural network using the following code 'This is the part of the code that has the problem' from torchvision import datasets, transforms import torch import ...
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Is there a library that implements image regularization loss on the output of a Pytorch model?

I am doing some sparse CT denoising with UNets right now, where the input is a sparse reconstruction and the output (hopefully) has the streak artifacts removed. I'm computing the loss of the network ...
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“Numpy not Available” After installing Pytorch XLA

I am just getting started with using TPUs on kaggle with Pytorch and install it as follows - !pip3 install mkl !curl https://raw.githubusercontent.com/pytorch/xla/master/contrib/scripts/env-setup.py -...
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Visualizing the texture map in PyTorch3D

I was going through the following wonderful Colab Notebook, PyTorch3D · A library for deep learning with 3D data This colab Notebook only has the code without the outputs. My personal copy of this ...
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Does pytorch Dataset.__getitem__ have to return a dict? [duplicate]

EDIT: This is not about the general __getitem__ method but the usage of __getitem__ in the Pytorch Dataset-subclass I'm trying to implement the usage of Pytorchs Dataset-class. The guide e.g here is ...
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Does dissecting a Pytorch model lower memory usage?

Suppose I have a Pytorch autoencoder model defined as: class ae(torch.nn.Module): def __init__(self, z_dim, n_channel=3, size_=8): super(ae, self).__init__() self.encoder = Encoder() ...
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Can I add new data on a Fine-Tuned Wav2Vec2 Model?

I finetuned a Wav2Vec2 pretrained model with commonvoice dataset. I created my custom dataset, can I add new data on a already FineTuned model?
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Tracing Tensor Sizes in TorchScript

I'm exporting a PyTorch model via TorchScript tracing, but I'm facing issues. Specifically, I have to perform some operations on tensor sizes, but the JIT compilers hardcodes the variable shapes as ...
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How to use torch.utils.tensorboard.SummaryWriter from the last interrupted events

As in this picture, if I want to add scalar from events.out.tfevents, but not create a new one. How can I set the params int this code: SummaryWriter(self, log_dir=None, comment='', purge_step=None, ...
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How can I efficiently solve a quaduatic equation system via pytorch?

I need to solve a non-linear equation system shown below: def trySolveEquation(V, L): #The equation to solve is: #{ (V . Ct) ^ 2 = 1 #{ (L + u) . Ct = 0 #C and u are the ...
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difference between initializing bias by nn.init.constant and (bias=1) in pytorch

I'm making a code for AlexNet and i'm confused with how to initialize the weights what is the difference between: for layer in self.cnnnet: if isinstance(layer, nn.Conv2d): ...
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Seq2SeqTrainer not working for a list of inputs: TypeError: can't convert np.ndarray of type numpy.object_

I am trying to use a Transformer2Transformer model on multiple-choice qa dataset using Seq2SeqTrainer. My whole code is given in colab. input: (Question, option1), (Question, option2), ... target: ...
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Use Adam optimizer for LSTM network vs LBGFS

I have modified pytorch tutorial on LSTM (sine-wave prediction: given [0:N] sine-values -> [N:2N] values) to use Adam optimizer instead of LBFGS optimizer. However, the model does not train well ...
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OpenCV conflicts with Pytorch crop transformation

I'm building CV app using OpenCV 4.5.1 and torchvision 0.9.1. When I apply this transform test_transform = transforms.Compose([ landmarks.CenterCrop((512, 512)), landmarks.ToTensor() ]) to the ...
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Pytorch uses more memory on the first training batch

On the very first call to the forward pass of my model there is far less memory available (200mb) than what is normally available (12gb). Every forward pass after that seems to have the correct amount....
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PyTorch - Import dataset with images as labels

I have a dataset containing images as inputs and labels/targets as images as well. The structure in the folder is as follows: > DATASET/ > ---TRAIN/ > ------image_xx.png > ------label_xx....
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Clear part of CUDA memory in Pytorch and Jupyter Notebook without resetting the kernel?

I'm investigating the largest batch_size that doesn't cause a CUDA out of memory error. However, everytime this happens, I need to reset the Jupyter Notebook Kernel and re-run all previous code. Is ...
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Implementing Backprop for custom loss functions

I have a neural network Network that has a vector output. Instead of using a typical loss function, I would like to implement my own loss function that is a method in some class. This looks something ...
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How to include edge weights in the Pytorch Geometric SageConv layer?

I built a custom graph dataset according to the instructions given here. My graph is a complete graph, every node has a feature vector and every edge has a feature vector. I'm using the SageConv layer ...
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Can make regression with PyTorch

I'm trying to do a non linear regression with PyTorch with this code import os; os.environ["KMP_DUPLICATE_LIB_OK"]="TRUE" import torch import torch.nn as nn import torch.nn....
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Can we have inputs that is more than 1D in Pytorch (e.g word-embedding)

Say I have some text and I want to classify them into three groups food, sports, science. If I have a sentence I dont like to each mushrooms we can use wordembedding (say 100 dimensions) to create a ...
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Weight of layer as a result of dot operation in PyTorch

I’m trying to implement a network in which the weights of the layers are calculated as a result of a tensor operation. This is the code I have for a single layer and is repeated for all conv and fc ...
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How to change the value of a torch tensor with requires_grad=True so that the backpropogation can start again?

a=torch.tensor([1,2],dtype=dtype,requires_grad=True) b=a[0]*a[1] b.backward() print(a.grad) but when I use a+=1 and want to give a another value and do another round of backpropogation, it shows that ...
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How can i build pytorch from the source on M1 Mac?

I tried to build pytroch from the source file as right now we can't install pytroch directly using pip. So i ran few commands which are mentioned below: git clone https://github.com/pytorch/pytorch....
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3answers
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Convert one-hot encoded dimension into the index of possition of 1

I have a tensor of three dimensions [batch_size, sequence_length, number_of_tokens]. The last dimension is one-hot encoded. I want to receive a tensor of two dimensions, where sequence_length consists ...
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Pytorch on GCP: Machine type is not available on this endpoint

I'm new to GCP so pardon for prehaps asking/missing something obvious here. I'm trying to deploy and create a version resource on GCP with a custom pytorch model. Everything have been working fine ...
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The training loss fluctuates violently, and validation loss has dropped normally. What are the reasons and solutions?

As shown in the figure, orange line is training loss and blue line is validation loss. The training process uses pytorch DDP.
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Predict a value using known weights, biases and neural network structure [closed]

Let's say that I know the structure of a neural network with its activation functions. I also know the weights and biases for every node. how do I use this information to make a single prediction ...
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Do we need a ignore_index in F.cross_entropy or a padding_idx in nn.Embedding for padded sequnce in NLP?

I know they two can be used to handle the padded sentence. However, which one I should use or both of them for my seq2seq model?
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What are benefits of TF over PyTorch? [closed]

I find using and debugging my code in PyTorch to be very easy as compare to TF. Also PyTorch is quite fast. (Although I have very limited experience with both). But I see that many recent publications ...
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Loading a dataframe of audio files with segmented index into a pytorch tensor

I'm new to pytorch, and I'm trying to prepare an input for an LSTM model of shape (nb_samples, timesteps, features). I have a dataframe of features where the index of the dataframe is composed of the (...
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1answer
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torchvision.transforms.RandomRotation fill argument not working

I am working on tensors and want to rotate them with torchvision.transforms.RandomRotation and use the fill option. import torch import torchvision img1 = torch.rand((1, 16, 16)) img2 = torchvision....
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issue with calculating accuracy

i'm using Torch Metrics to try to calculate the accuracy of my model. But i'm getting this error. I tried using .to(device="cuda:0") but I got a cuda initialization error. I also tried using ...

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