Network structure inspired by simplified models of biological neurons (brain cells). Neural networks are trained to "learn" by supervised and unsupervised techniques, and can be used to solve optimization problems, approximation problems, classify patterns, and combinations thereof.

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82 views

TensorFlow - regularization with L2 loss, how to apply to all weights, not just last one?

I am playing with a ANN which is part of Udacity DeepLearning course. I have an assignment which involves introducing generalization to the network with one hidden ReLU layer using L2 loss. I wonder ...
0
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0answers
16 views

Neural Network Neurons output numbers > 1

I have read that you calculate the output of a Neuron in a Neural Net by adding up all the inputs times their corresponding weights and then smoothing it with e.g. the Sigmoid Function. But what I ...
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0answers
12 views

which is the best performance metric for neural network

Which is the best performance metric for a neural network (convolutional network)? Here are a few performance metric 1) Average 2) F1 score and many more... Also please do let me know the reason for ...
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1answer
47 views

My single layer perceptrone is not working

Here is code. public class Adaline { private int _layer; public int Layer { get { return _layer; } } private int _epoch; public int Epoch { get { return _epoch; } } private double ...
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0answers
8 views

Selectively zero weights in TensorFlow?

Lets say I have an NxM weight variable weights and a constant NxM matrix of 1s and 0s mask. If a layer of my network is defined like this (with other layers similarly defined): masked_weights = mask*...
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0answers
14 views

Traceback (most recent call last):

Curious as to why I was receiving the following error: Traceback (most recent call last): File "Test.py", line 23, in <module> l1_delta = l1_error * nonlin(l1,True) ValueError: operands ...
1
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0answers
22 views

Gradient of FFT over variables fails

In Tensorflow, the following code fails with an error ValueError: Shapes (3, 32, 28, 28) and () are not compatible import tensorflow as tf filters = 32 width = 28 height = 28 channels = 3 x = tf....
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0answers
42 views

TensorFlow Predicts the same probabilities for all inputs

I have a model which I am using for image recognition. I am training the model to recognize three classes with between 1500-3000 images per class. I'm monitoring the cross-entropy and accuracy during ...
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0answers
21 views

Weakly supervised learning CNN not converging

I'm trying to modify my CNN code to a weakly supervised model to achieve learning without bounding boxes for the images. I'm using TensorFlow as framework. cost = tf.reduce_mean(tf.nn....
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1answer
21 views

Tensorflow max-margin loss training?

I want to train a neural network in tensorflow with a max-margin loss function using one negative sample per positive sample: max(0,1 -pos_score +neg_score) What I'm currently doing is this: The ...
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0answers
28 views

Bug in my implementation of backpropagation [duplicate]

I tried to realize backpropagation in Octave. The system must recognize hand written digits from 0 to 1. But it don't work correctly. After few learning iterations it predicts only one number. And I ...
0
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3answers
26 views

Can Neural Network be used to predict a set in a certain time stamps

I have a market transactions dataset including time stamps and goods as follow. John always buy milk and bread in Super Market. Besides that, he also buys some goods like the following: On Monday, ...
0
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0answers
13 views

VGG features extraction in certain format

I'm trying to get this repo to work. I followed the instruction and get the sample data using this script (taken from the same repo): #!/usr/bin/env sh # This script downloads the trained S2VT VGG (...
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3answers
23 views

Artificial Neural Network Back Propagation testing

I have developed a code for ANN BP to classify snore segments. I have 10 input features and 1 hidden layer with 10 neuron and one output neuron. I denoted 1 as no snore and 0 as snore segment. I have ...
0
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1answer
42 views

Adding information into a tensor in TensorFlow

Currently I have a neural network that convolutes and pools images. However, right before I make my densely connected layer, I want to add some information. Currently, I reshape my image to a flat ...
4
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2answers
101 views

Should the neurons in a neural network be asynchronous?

I am designing a neural network and am trying to determine if I should write it in such a way that each neuron is its own 'process' in Erlang, or if I should just go with C++ and run a network in one ...
4
votes
1answer
83 views

Why does simple 2-layer Neural Network cannot learn 0,0 sequence?

While going through the example of a tiny 2-layer neural network I noticed the result that I cannot explain. Imagine we have the following dataset with the corresponding labels: [0,1] -> [0] [0,...
1
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1answer
31 views

Multi-layer LSTM with more than one memory cells

I'm learning LSTM and I get confused about the conception of "layers" and "memory cells" about LSTM. To my understanding, a LSTM unit (consisting of a memory cell and several other gates) is a LSTM ...
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1answer
44 views

How to build Neural Network in Spark? [on hold]

The flow should be: Input -> Word2Vectors -> Output -> NeuralNetwork I have tried word2vec function of spark but I am confused with the format "MultilayerPerceptronClassifier" need as a input?
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0answers
36 views

What should be the format of input to MultilayerPerceptronClassifier function in MLlib Spark?

import org.apache.spark.ml.classification.MultilayerPerceptronClassifier import org.apache.spark.ml.evaluation.MulticlassClassificationEvaluator import org.apache.spark.mllib.util.MLUtils import org....
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2answers
26 views

Fully Convolution Networks with Varied inputs

I have a fully convolutional neural network, U-Net, which can be read below. https://arxiv.org/pdf/1505.04597.pdf I want to use it to do pixelwise classification of images. I have my training ...
0
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1answer
24 views

Count number of neurons and weights in a Caffe solution

I have a Caffe project I have acquired with a prototxt model description and a caffemodel tuned parameter file (about 16 Mb in size). Is there an easy way to find out how many neurons and weights ...
1
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1answer
34 views

Theano: Shape of a tensor variable inside a function

Say I have this theano function, which defines a layer of a neural network: def layer(W, x): b = np.array(np.ones(N)) # append 1 for intercept newx = T.concatenate([x, T.stack(b)], 0) ...
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0answers
11 views

ANN_MLP() not working with Opencv 3.1.0 Dev (python)

I have been working on Neural Networks Using OpenCV From the documentation I have learned that instead of cv2.ANN_MLP We have to use cv2.ml.ANN_MLP_create() But what I don't get is how do I give ...
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1answer
43 views

Material on modern artificial intelligence [on hold]

I thought that neural networks were, what is used most often for complex predictions and simulation on games and such. I have been wondering, if there were modern aproaches, that I don't know of, that ...
2
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0answers
29 views

Keras/Python equivalent of Matlab's genFunction in nn toolbox

I have coded a Neural Network with 3 hidden layers (using the Keras module in Python). Code for the net is below: # Create the model np.random.seed(1) # Just for reproducibility of results model = ...
2
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0answers
93 views

tensorflow 0.9 skflow model save and restore doesn't work

I have updated my tensorflow from 0.7 to 0.9 on python3.And now i can't restore my previous saved models with skflow(tensorflow.contrib.learn).Here is the sample code example that was worked on ...
1
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1answer
118 views

Train feedforward neural network

I have a feedforward neural network, his goal is to learn how to play to a game (in exemple, the connect 4). I would like to train my neural network by playing games against itself. My problem is, I ...
1
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1answer
51 views

How can a neural network learn a continuous rather than a discrete function?

what I'm trying to do is for a neural network to 'learn' the function f(x) = x^2. I'm basing this of the code here this source. The neural network is handcoded in c# if that helps (using doubles). ...
0
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0answers
14 views

Image Recognizer to return pixels of features?

Are there any image-recognition ML offerings that will return pixels along with their predictions. ML models uses features like eyes or ears to classify an image in a class say, human face. Are ...
0
votes
2answers
25 views

Cost function of Convolutional Neural Networ not serving intended purpose

So I have built a CNN and now I am trying to get the training of my network to work effectively despite my lack of a formal education on the topic. I have decided to use stochastic gradient descent ...
1
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0answers
36 views

caffe: how to design lmdb for bounding box regression

I am trying to import the SUN RGB-D dataset into lmdb format so that caffe can train for the bounding box regression. I see for imagenet conversion, there is a file putting the filename and the class ...
0
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0answers
42 views

Why does my cross-entropy loss function get huge if I use a network of many relus?

I have this loss function: loss_main = tf.reduce_mean( tf.nn.softmax_cross_entropy_with_logits(train_logits, train['labels']), name='loss_main', ...
0
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1answer
32 views

Why not optimize hyperparameters on train dataset?

When developing a neural net one typically partitions training data into Train, Test, and Holdout datasets (many people call these Train, Validation, and Test respectively. Same things, different ...
0
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0answers
48 views

Udacity Deep Learning Convolutional Neural Networks- TensorFlow

I have been working on Udacity's course on deep learning- which I must add is great! I am very happy with the assignments so far. But there are two lines of code, that I am not quite understanding. ...
1
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1answer
75 views

Theano vs Tensorflow for building Neural Networks for NLP tasks

I am trying to learn Theano and TensorFlow for building neural networks for NLP based tasks. Any suggestions as to when one should choose one over the other or what works better and when or is it just ...
1
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1answer
24 views

What are the most important steps in constructing neural netwoks for object detection? (NOT CLASSIFICATION)

I have been working with machine learning for a few months now. I have used caffe and darknet and will now start with theano. There are 2 major tasks in machine learning: 1. Detection and 2. ...
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votes
1answer
30 views

understanding “Deep MNIST for Experts”

I am trying to understand Deep MNIST for Experts. I have a quite clear idea of how Neural networks and deep learning works on a high level, but I struggle to understand the details. In the tutorial ...
0
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0answers
26 views

“Equalise” one data set into another data set using neural network

I have two non-linear curves as shown below: The Blue solid curve is the current sensor data I am getting with respect to time. The red dashed function is the data from the gold standard. Its more ...
0
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0answers
18 views

Amazon AMI with Caffe

I am looking for an Ubuntu AMI for AWS which has Caffe installed and works properly with GPU. There are some on caffe's Github page but they seem to be not working. Is there a recently tested AMI ...
1
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2answers
50 views

Neural network with 'tanh' as activation and 'cross-entropy' as cost function did not work

I have implemented a simple neural network. It works well with 'sigmoid + cross-entropy', 'sigmoid + quadratic cost', and 'tanh + quadratic cost', but it did not work with 'tanh + cross-entropy' (no ...
1
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1answer
26 views

formal definition of tensor in theano

I am trying to make char-rnn which predicts the next character regarding previous characters with Theano. So, there exists 4 notable tensors(or matrices). x: inputs shaped [timelength, inputsize] ...
0
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0answers
38 views

Predict wind data using neural network in python

I want to predict wind data using past wind data.So this this is my changed code.In my code prediction output is numeric values.So I can' understand how to change accuracy function in this code. This ...
1
vote
2answers
54 views

Finding the self-consistent solution to an equation

At the bottom of this question are a set of functions transcribed from a published neural-network model. When I call R, I get the following error: RuntimeError: maximum recursion depth exceeded ...
0
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0answers
43 views

Obtaining a prediction in Keras

I have successfully trained a simple model in Keras to classify images: model = Sequential() model.add(Convolution2D(32, 3, 3, border_mode='valid', input_shape=(img_channels, img_rows, img_cols), ...
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0answers
27 views

Matlab : Help in applying Least Mean Square learning algorithm in classifying features

I have inputs that were real valued. I then normalized them to a range [0,1] and binarized using the solution given in the earlier Question Proper way to scale feature data The features are from the ...
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0answers
10 views

Programming a NEAT Neural Network

I'm currently planning of making a neural network using the NEAT algorithm. I want it to play Pac-Man by reading positions of enemies, pacman, pellets etc. I had a base start on Sethbling's video (...
1
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1answer
25 views

Some simple questions regarding the training of CNNs

I read that when using CNNs, we should have approximately equal number of samples per class. I am doing binary classification, detecting pedestrians from background so the 2 classes are pedestrian and ...
0
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1answer
47 views

Caffe classifocation.cpp always returns 100% probability

I'm trying to use Caffe c++ classification example (here is the code) to classify image with handwritten digit (I train my model on MNIST database), but it always returns probabilities like [0, 0, 0,...
1
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1answer
18 views

Someone can explain to me the design of a Convolutional NN with tensorflow (hand written digits)? (input img : 28 x 28 | output : 10 (n_classes))

I'm trying to get started with CNN designs, i found this piece of code that I try to infer the design from (f.maps size, strides ....). What I've understoud is that we have : input --> Conv5-32 --> ...