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adam learning rate unintentionally becomes 0.01 after some epochs with pytorch lightning

I'm using pytorch lightning version 2.2.1 and set up the optimizer like this: def configure_optimizers(self): optimizer = torch.optim.Adam(self.parameters(), ...
TuemmlerTanne11's user avatar
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Yolov8 Hyperparameter tunning [closed]

I tried to improve the mAP result in my model. Can you help me in tunning the hyperparameters in yolov8 How can I tune the hyperparameters in Yolov8? Is there any way to tune it with Python code in ...
user22053286's user avatar
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How to print learning rate per epoch with pytorch lightning?

I am having a problem with printing (logging) learning rate per epoch in pytorch lightning (PL). TensorFlow logs the learning rate at default. As PL guide suggested, I wrote the following code: class ...
Tae-Sung Shin's user avatar
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tfjs: Adam learning rate decay

How do I train a Tensorflow model using Adam optimizer that decays learning rate during the trining with Tensorflow.JS! (not python) I cannot find that the library provides an exponential decay ...
Oleg Khalidov's user avatar
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PyTorch Lightning's ReduceLRonPlateau not working properly

I have been trying to write a lightning module using both a warmup and an annealing function ReduceLROnPlateau and something really odd is happening. If the program reduces the learning rate, the ...
GZinn's user avatar
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Finetuning LLM such as LLaMA2 to single task rather than multi task

I am trying to fine tune vicuna 7b with a single task (training dataset size = 28k). When doing multi-task tuning, i only trained the model for 1 to 3 epochs and did not check the validation loss. ...
Rok Young Jang's user avatar
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why accelerate need Multiply accelerator.num_processes

in this web https://huggingface.co/docs/accelerate/v0.24.0/en/concept_guides/performance#learning-rates we can see this: Learning Rates As noted in multiple sources[1][2], the learning rate should be ...
TuoMin's user avatar
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using reduceLRplateau, adam,LRwarmup using in pytorch lightning

I am trying to implement mobilnetv2 in imagenet2012. my model is exactly defaul, and used learning rate warmup and reduceLRplateau as lr scheduler, and adam. but i am having fluctuated learning rate ...
danny lee's user avatar
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1 answer
135 views

Unusual Learning Rate Finder Curve: Loss Lowest at Smallest Learning Rate

I'm using PyTorch Lightning's LR Finder but am getting an atypical curve. The loss starts at its lowest point when the learning rate is at its smallest, increases until it plateaus, and then exhibits ...
keving's user avatar
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Pytorch Lightning Learning Rate Tuners Giving unexpected results

I'm trying to find an optimal learning rate using python pl.tuner.Tuner but results aren't as expected The model I am running is a linear classifier on top of a BertForSequenceClassification Automodel ...
Toby 's user avatar
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Update TensorFlow optimizer to allow retaking interrupted training

My model is an implementation of TensorFlow, and since it might take a long time to train, I am trying to implement a way to retake it when training has been interrupted, but I haven't been able to ...
Denny Ceccon's user avatar
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Tensorboard is only showing end learning rate for polynomial decay learning rate with Adam optimizer?

I recently started using Tensorboard to monitor my machine learning project. I use the Adam optimizer with a decaying learning rate: early_stop = keras.callbacks.EarlyStopping(monitor='val_loss', ...
Jenna's user avatar
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Why do we multiply learning rate by gradient accumulation steps in PyTorch?

Loss functions in pytorch use "mean" reduction. So it means that the model gradient will have roughly the same magnitude given any batch size. It makes sense that you want to scale the ...
offchan's user avatar
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Getting rid of the clutter of `.lr_find_` in pytorch lightning?

When using the Lightning’s built-in LR finder: # Create a Tuner tuner = Tuner(trainer) # finds learning rate automatically # sets hparams.lr or hparams.learning_rate to that learning rate tuner....
Gabi Gubu's user avatar
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how MultiStepLR works in PyTorch

I'm new to PyTorch and am working on a toy example to understand how weight decay works in learning rate passed into the optimizer. When I use MultiStepLR , I was expecting to decrease the learning ...
whitepanda's user avatar
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Using different learning rates for different variables in TensorFlow

Is it possible to set different learning rates for different variables in the same layer in TensorFlow? For example, in a dense layer, how can you set a learning rate of 0.001 for the kernel while ...
mehini's user avatar
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ReduceLRonPlateau keeps decreasing LR across multiple models

I'm using ReduceLROnPlateau for multiple experiments, but I'm getting lower and lower initial learning rate for each conjsecutive modewl run. from tensorflow.keras.callbacks import ReduceLROnPlateau ...
Mateusz Dorobek's user avatar
2 votes
1 answer
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Get current learning rate when using ReduceLROnPlateau

I am using ReduceLROnPlateau to modify the learning rate during training of a PyTorch mode. ReduceLROnPlateau does not inherit from LRScheduler and does not implement the get_last_lr method which is ...
Anil's user avatar
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How to set learning rate 0.2 when training transformer with Noam decay?

I am training small transformer encoder - transformer decoder translation model using small datasets. Size of my dataset is less than 200k. When training transformer with low resource datasets, below ...
user14096975's user avatar
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Argument must be a string or a number, not 'ExponentialDecay'

I am on Tensorflow 2.4.0, and tried to perform Exponential decay on the learning rate as follows: learning_rate_scheduler = tf.keras.optimizers.schedules.ExponentialDecay(initial_learning_rate=0.1, ...
mad's user avatar
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What exactly is meant by param_groups in pytorch?

I would like to update learning rates corresponding to each weight matrix and each bias in pytorch during training. The answers here and here and many other answers I found online talk about doing ...
Toonia's user avatar
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3 votes
1 answer
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How to use OneCycleLR?

I want to train on CIFAR-10, suppose for 200 epochs. This is my optimizer: optimizer = optim.Adam([x for x in model.parameters() if x.requires_grad], lr=0.001) I want to use OneCycleLR as scheduler. ...
CasellaJr's user avatar
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Why do I need a very high learning rate for this model to converge?

I have a simple model in tensorflow which is being trained on the first 1000 images in the MNIST datset. From my previous experience the learning rates which I used were of the order of around 0.001, ...
finlay morrison's user avatar
2 votes
1 answer
864 views

StableBaslines3 - Can I adaptively decrease learning rate?

I am working in the StableBaselines3 package. I know that I can make learning rate schedule by inputting a function to the "learning_rate" argument. However, what I want to be able to do is ...
Vladimir Belik's user avatar
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152 views

How to change config file to start fine tuning?

I am working on word detection and using MMOCR’s ‘DBNetpp’ detection model, please refer [2202.10304] Real-Time Scene Text Detection with Differentiable Binarization and Adaptive Scale Fusion. I want ...
aarya's user avatar
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1 answer
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Re-setting learning rate while training in Pytorch

I am training a model using Learning Rate Scheduler in Pytorch to decrease the value of learning rate. By using learning rate scheduler, I reduced learning rate from 0.0001 to 1e-5, and save all the ...
killermama98's user avatar
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1 answer
1k views

How to get the actual learning rate in PyTorch?

I'm trying to find the appropriate learning rate for my Neural Network using PyTorch. I've implemented the torch.optim.lr_scheduler.CyclicLR to get the learning rate. But I'm unable to figure out what ...
Snehangsu's user avatar
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The Nadam optimizer does not support tf.keras.optimizers.LearningRateSchedules as the learning rate

this is my first question here. I'm playing with tensorflow.keras, doing some CNNs, and I would like to know if anyone understands why this conflict arises, thanks. from tensorflow.keras.optimizers ...
Davi6202's user avatar
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409 views

How to understand loss-learning rate (log scale) plot using learner.lr_plot in ktrain package?

I am using ktrain package to classify text. My experiment is shown as: lr_find and lr_plot are functions in ktrain. They can be used to highlight the best learning rate, which is shown as the red dot ...
Feng Chen's user avatar
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3 votes
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487 views

How to create a dynamic learning rate per neuron in PyTorch?

I know it's possible to have a learning rate per layer (link). I also found how to dynamically change the learning rate (changing it in the middle of training dynamically without a scheduler) (link). ...
Axo's user avatar
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1 answer
178 views

Recurrent Neural Network - Fail to apply learning rate reduction

I am building a RNN model using Tensorflow Keras, and I want to reduce learning rate whenever an validation accuracy does not increase. However, I have received an error message indicating container ...
Vincentmak's user avatar
1 vote
0 answers
174 views

Is there any way to gradually increase learning rate using TFOD API?

I am training CenterNet models using Tensorflow Object Detection API. I need to find better learning rate range. I used learning rate finder with Keras models before but I couldn't find any way to ...
Ahmet Mert Saygu's user avatar
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1 answer
459 views

learner.recorder.plot() raises attribute errror for "plot"

I'm new to neural network, I'm using fast.ai to train a Cifar10 dataset using residual neural network. After running learner.lr_find(), I tried plotting it using learner.recorder.plot(), But then it ...
Syre Musk's user avatar
1 vote
0 answers
127 views

How to use variable learning rate that decreases with loss using pytorch-geometric?

I have the following code snippet from PyTorch geometric example. I want to use a learning rate that decreases as the loss value during training decreases. I tried using scheduler but that didn't work ...
Astra Uvarova - Saturn's star's user avatar
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The Loss number of both train set and validation set both went down at the begining and then went up again

I try to use the siamese network which combines with two resnet networks (Pretrained) to solve the few shot problem. The loss function is contrassive loss and the optimizer is Adam with 0.001 learning ...
user17182657's user avatar
1 vote
0 answers
246 views

What does the global step for the learning rate decay do?

I am following this tutorial: https://cloud.google.com/architecture/clv-prediction-with-offline-training-train#introduction and I am rewriting some of the code on Google Colab. They are using the ...
timmy's user avatar
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0 votes
1 answer
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Loss seems to be proportional with learning rate in Keras

I'm training a simple neural network with a single Dense layer on the MNIST dataset in Keras. This is the code: model = Sequential() model.add(Input(shape=(28, 28))) model.add(Flatten()) model.add(...
Moaz Ashraf's user avatar
1 vote
1 answer
2k views

Plotting learning rate vs Loss

I am trying to find the best learning rate by multiplying the learning rate by a constant factor and them training the model on the the varying learning rates .I need to choose the learning rate at ...
Adarsh Singh's user avatar
1 vote
0 answers
551 views

Is there a way to schedule the learning rate based on step and epoch in Keras

I know about Keras learning rate scheduler, and tf.keras.optimizers.schedules.InverseTimeDecay, but they only take the current epoch or only current step as argument, what I would like is for my ...
Corentin Salomon's user avatar
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72 views

Whether keras model.fit() validate calling optimizer?

I write a cosineannealingLRScheduler: class CosineAnnealingLRScheduler(optimizers.schedules.LearningRateSchedule): def __init__(self, epochs, train_step, lr_max, lr_min, warmth_rate=0.2): super(...
Foot Runist's user avatar
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2 answers
1k views

Change learning rate based on iteration

I am trying to write a custom learning rate scheduler for SGD in Keras, which change the learning rate base on iteration. However, the LearningRateScheduler CallBack only accepts a function which ...
Casey Werner's user avatar
8 votes
1 answer
3k views

tf.Keras learning rate schedules—pass to optimizer or callbacks?

I just wanted to set up a learning rate schedule for my first CNN and I found there are various ways of doing so: One can include the schedule in callbacks using tf.keras.callbacks....
Manuel Popp's user avatar
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3 votes
1 answer
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How can I set a minimum learning rate in lr_scheduler LambdaLR?

I'm using LambdaLR as a learning rate function: import torch import torch.nn as nn import matplotlib.pyplot as plt model = torch.nn.Linear(2, 1) optimizer = torch.optim.SGD(model.parameters(), lr=0....
Penguin's user avatar
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1 answer
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Get Learning Rate from <tensorflow.python.keras.optimizer_v2.learning_rate_schedule.CosineDecay> Object

How can I get the value of the learning rate updated at each on_train_batch_begin? lr_decayed_fn = tf.keras.experimental.CosineDecay(initial_lr, decay_steps) model.compile(optimizer=tf.keras....
SimoX's user avatar
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1 vote
0 answers
930 views

how to print learning rate every epoch where functional learning rate scheduler is used?

I have used custom learning rate scheduler. Code is as follows(Same of https://www.tensorflow.org/tutorials/text/transformer#optimizer). class CustomSchedule(tf.keras.optimizers.schedules....
Atanu Mandal's user avatar
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1 answer
234 views

Keras : load pic classification model which has learning rate scheduler but raise value error 'unsupported type (<class 'dict'>) to a Tensor.'

I cut the code because it is quite durity, Here is code for learning rate scheduler and the model use that optimizer. initial_learning_rate = 0.001 lr_schedule = tf.keras.optimizers.schedules....
Ha yeong Yoon's user avatar
1 vote
1 answer
489 views

How to resolve 'RuntimeError: Trying to eval in EAGER mode' while using a custom learning rate?

I am working on using a custom learning rate scheduler and I am running into the error RuntimeError: Trying to eval in EAGER mode while I am trying to do so. I have made a function for calculating the ...
Ravish Jha's user avatar
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1 answer
39 views

Pytorch1.6 What is the actual learning rate during training?

I'd like to know the actual learning rate during training, here is my code. learning_rate = 0.001 optimizer = torch.optim.Adam(net.parameters(), lr=learning_rate) scheduler = torch.optim.lr_scheduler....
wwxiaokucha's user avatar
1 vote
2 answers
609 views

What is the behaviour when resuming the training, when learning rate decay is used, in TensorFlow/Keras?

I am having difficulty understanding how the training will be resumed when the model is loaded from disk when a scheduler like the one below is used. learning_rate_scheduler = tensorflow.keras....
sreagm's user avatar
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1 answer
2k views

Darknet yolo v4 - how to get current learning rate?

When I train yolo v4 with Darknet, few times a second I get a list of variables. Is there an easy way to make Darknet binary also print learning rate? If everything fails I will make changes in https:/...
Huxwell's user avatar
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