# Tagged Questions

63 views

### Does KNeighborsClassifier compare lists with different sizes?

I have to use Scikit Lean's KNeighborsClassifier to compare time series using an user defined function in Python. knn = ...
16 views

### Creating classification features from wavelet transformed time series

I'm interested in using a wavelet transform, Haar for example, to create classification variables from time series data to use in logistic regression. Simple example. Let's say I'm trying to ...
36 views

### Time series forecasting with support vector regression

I'm trying to perform a simple time series prediction using support vector regression. I am trying to understand the answer provided here. I adapted Tom's code to reflect the answer provided: ...
52 views

### What is a proper Learning Technique for the given data sample

I am working in matlab. I have data samples of two unrelated variables at 256 time-steps. Their plots with their value on Y - axis and time-steps on X-axis is as below. Typical Plot for the first ...
20 views

### Modeling Biological/Ecological Time series data

I have to model/learn the growth of bacteria. Keeping in mind that the weather parameters of previous days also contribute, this problem is modelling/learning in time series data. Day# ; ...
55 views

### Echo State Networks (ESNs) - N Point Ahead Time Series Prediction - Mackey-Glass17 vs My own Time Series

My question is related to predicting 3 minutes ahead i.e. 180 points ahead. Because I compressed my time series data as taking the mean of every 2 points as one, I have to predict (N=90) step-ahead ...
75 views

### how to analyse and predict(machine learning) a time series data set using scikit-learn for python

i got data-set like this http://i57.tinypic.com/2604w0n.png i need to analyse and predict the status column. This is just 2 entrees from the training data set. In this data set there is heart rate ...
27 views

### working with irregularities in time series

I am doing a time series analysis and came across what is called "Classical Decomposition" wherein you decompose the signal into trend, seasonality, cyclicity and noise. I have got some ...
43 views

### How do i scale neural network output?

I am using a neural network with Resilient Propagation for time-series prediction. My activation function is the hyperbolic tangent activation function for all layers. My network's input is normalized ...
43 views

### Is it possible to do adaptive learning(online learning) in Recurrent Neural Networks?

Is it possible to do adaptive learning(online learning) in Recurrent Neural Networks for(newelm)? The weight won't update itself and I didn't see any improvement. If yes, how it is possible, which ...
84 views

### Comprehensive machine-learning java library with time-series support [closed]

Can you suggest a a comprehensive machine-learning java library with good time-series support that fulfills the following characteristics: open source code (even if not free for commercial use) ...
1k views

### How to predict time series in scikit-learn?

Scikit-learn utilizes a very convenient approach based on fit and predict methods. I have already time-series data in the format suited for fit and predict. For example I have the following Xs: ...
876 views

### Time Series Ahead Prediction in Neural Network (N Point Ahead Prediction) Large Scale Iterative Training

(N=90) Point ahead Prediction using Neural Network: I am trying to predict 3 minutes ahead i.e. 180 points ahead. Because I compressed my time series data as taking the mean of every 2 points as one, ...
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### Error in neurons[[i]] %*% weights[[i]] : non-conformable arguments when compute the testData in neural network [duplicate]

I am using neural network to predict a time series value, which my training data shown below: output input1 input2 input3 input4 input5 1.5550 1.5500 1.5606 1.5604 1.5514 1.5543 1.5500 ...
2k views

### Hidden Markov Model for multiple observed variables

I am trying to use a hidden Markov model (HMM) for a problem where I have M different observed variables (Yti) and a single hidden variable (Xt) at each time point, t. For clarity, let us assume all ...
2k views

### Request for example: Recurrent neural network for predicting next value in a sequence

Can anyone give me a practicale example of a recurrent neural network in (pybrain) python in order to predict the next value of a sequence ? (I've read the pybrain documentation and there is no clear ...
4k views

### Matlab: neural network time series prediction?

Background: I am trying to use MATLAB's Neural Network toolbox to predict future values of data. I run it from the GUI, but I have also included the output code below. Problem: My predicted values ...
1k views

### What machine learning algorithm is appropriate for predicting one time-series from another?

You are a plane tracking an enemy ship that travels across the ocean, so you have collected a series of (x,y,time) coordinates of the ship. You know that a hidden submarine travels with the ship to ...
1k views

### Time series analysis with seasonality. Any such statistical/machine learning java library available? [closed]

I need a forecasting model that will use time series as well as seasonality. Example, to predict Feb 2013 data, I will use Jan 2013 data and Feb 2012 data. I was trying to assess ...
316 views

### Time-based sliding window

I am looking for materials to properly write c++ class for time-based sliding window. I am doing machine learning on times series using discriminative algorithm (svm) and I need to make prediction on ...
90 views

### Popular Items suggestion - Time Sensitive Data - Data Mining

I am a newbee in the field of data mining. I am working on very interesting Data Minign problem. Data description is as follows: Data is time sensitive. Item attributes are dependent on time factor ...
167 views

### Converting images to time series

I'm experimenting using reservoir computing techniques to classify images, but I'm not sure how to convert an arbitrary image to a time series. I found this approach but it doesn't seem to be general ...
663 views

### What is the state-of-the-art in unsupervised learning on temporal data?

I'm looking for an overview of the state-of-the-art methods that find temporal patterns (of arbitrary length) in temporal data and are unsupervised (no labels). In other words, given a ...
5k views

### Pattern recognition in time series

By processing a time series graph, I Would like to detect patterns that look similar to this: Using a sample time series as an example, I would like to be able to detect the patterns as marked ...
176 views

### algorithm for detecting position in an unknown cycle (timeseries)

Let's say you want to predict the next time the boat will visit as a probability. You start taking observations at an arbitrary position in the boat cycle. When you make an observation you can only ...
949 views

### How to use SGD for time series analysis

Is it possible to use stochastic gradient descent for time-series analysis? My initial idea, given a series of (t, v) pairs where I want an SGD regressor to predict the v associated with t+1, would ...
851 views

### Multi Step Prediction Neural Networks

I have been working with the matlab neural network toolkit. Here I am using the NARX network. I have a dataset consisting of prices of an object as well as the quantity of the object purchased over a ...
904 views

### Detecting rare incidents from multivariate time series intervals

Given a time series of sensor state intervals, how do I implement a classifier which learns from supervised training data to detect an incident based on a sequence of state intervals? To simplify the ...