Nearest neighbors are points (or other objects) in close proximity to a given location in some multi-dimensional space, e.g. a plane. Finding such neighbors lies at the core of several algorithms for various applications.

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finding the subset with the nearest value to the target if the algorithm find no subset that has the exact sum using stack

private static Stack<Integer> temp = new Stack<Integer>(); public void populateSubset(int[] DATA, int fromIndex, int endIndex, int target) { if (sumInStack == target) { check ...
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Probability density estimation using k-nearest neighbour algorithm in MATLAB

I've written a code to calculate the pdf of a univariate data set(IRIS FLOWER data set Sepal Length only) and I'm facing a few difficulties in the code.What can be improved in this code and is there a ...
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46 views

How Locality Sensitive Hashing (LSH) works?

I've read already this question, but unfortunately it didn't help. What I don't understand is what we do once we understood which bucket assign to our high-dimensional space query vector q: suppose ...
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23 views

The Inverted Multi-Index

I am trying to understand The Inverted Multi-Index, from this paper, which has also a smaller version here. For that purpose, I constructed a toy example and would like someone to verify or/and share ...
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3answers
253 views

Calculating vector distance for classification with mixed features

I'm doing a project comparing the effectiveness of various classification algorithms, but I'm stuck on a frustrating point. The data may be found here: http://archive.ics.uci.edu/ml/datasets/Adult The ...
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Using a weighted metric for Unsupervised NN

I'd like to calculate the NN according to a set of different value, each of them with different relevancy. I'd previously used scikit-learn to do this task, but without relevancy. This is my current ...
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Nearest neighbors in high-dimensional data?

I have asked a question a few days back on how to find the nearest neighbors for a given vector. My vector is now 21 dimensions and before I proceed further, because I am not from the domain of ...
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19 views

Why we need a coarse quantizer?

In Product Quantization for Nearest Neighbor Search, when it comes to section IV.A, it says they they will use a coarse quantizer too (which they way I feel it, is just a really smaller product ...
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24 views

k* reproduction values?

I am reading about Product Quantization, from section II.A page 3 of PQ for NNS, that says: ..all subquantizers have the same finite number k* of reproduction values. In that case the number of ...
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31 views

Java: find in 2d array all adjacent elements with the same value, starting from a given element

I'm working on a program which contains a 2-dimensional 16x32 char array. What I want to do is, starting from a given element in this array, find all the elements that share the same value (in my case ...
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29 views

What is the best way to find the nearest scatter plot point (circle) relative to a given coordinate set?

Let's say I have 16 circles in an 2 x 8 grid: svg = d3.select(body).append('svg').attr('height,h).attr('width',w); svg.selectAll('.centroids') .data(d3.range(0,16)) .enter() ....
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Nearest neighbour fails on simple dataset

I've created an implementation of nearest neighbour to solve the traveling salesman problem on a dataset of 8 nodes, and my result doesn't match the expected result I've been given. I do not know if ...
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Nearest Neighbour when all vertices lead to all other verticies

I'm trying to solve a traveling salesman problem with the nearest neighbour algorithm. Given my problem statement, I'm trying to figure out if a brute force approach is just as efficient (big O wise) ...
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2answers
43 views

How to find closest points between two convex hull in MATLAB?

In part of an Artificial Neural Network matlab code, I want to find nearest points of two convex polygons. I saw dsearchn(X,T,XI) command's description here, but that finds closest points between ...
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2answers
45 views

Nearest Neighbor (distance between coordinate pairs)

I have 2 data sets of cells (each set has multiple rows (individual cells) with x,y coordinates as columns) I want to find the smallest distance for every cell in data set A to any cell in data set B. ...
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Unable to figure out the ground truth databased in calculating the mean Average Precision Recall using Matlab

Assuming that I have a dataset of the following size: train = 500,000 * 960 %number of training samples (vector) each of 960 length B_base = 1000000*960 %number of base samples (vector) each of ...
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68 views

What happens in the case of nearest neighbour interpolation OpenGL centre of pixels

What happens when a nearest neighbour interpolation occurs where the pixel for which the nearest neighbour interpolation is being calculated in texture is at the same distance from two neighbouring ...
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Finding 1st order neighbors using shapefile polygons

I am looking a efficient way to find the 1st order neighbors of a given polygon. My data are in shapefile format. My first idea was to calculate the x and y coordinates of the polygons' centroids in ...
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369 views

Example data set for the k-Nearest Neighbors algorithm?

What is an example of a data set one would use with the k-Nearest Neighbors algorithm? I understand the concept but I am unsure about what kind of data one would use for the x, y coordinates. Can ...
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kNN with big sparse matrices in Python

I have two large sparse matrices: In [3]: trainX Out[3]: <6034195x755258 sparse matrix of type '<type 'numpy.float64'>' with 286674296 stored elements in Compressed Sparse Row ...
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2answers
385 views

efficient implementation of neighbor difference calculation in matlab

I have 2D image data and I would like to compute the absolute difference between neighboring pixels. Each pixel has 8 neighbors (up down, left right, and the diagonals), and I need to record the ...
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2answers
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List of n first Neighbors from a 3d Array R

Lets say we have a 3d array: my.array <- array(1:27, dim=c(3,3,3)) I would like to create a list of the n first neighbors. Example: Lets get my.array[2,2,2]=14, so the first neighbors of 14 is: ...
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Finding near by lat long from database

I have a relational db storing location in lat and long format. Based on a current given point, I have to find the locations from the db that are within "x" kms from the given location. Any pointers ...
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27 views

How to calculate nearest point to a linestring in PostGIS?

I'm following this question to calculate POI nearest a road(linestring). I'm able to calculate nearest points in the linestring but I'm not able to find the distance from the POI to nearest point(...
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63 views

Matlab : Conceptual difficulty in How to create multiple hash tables in Locality sensitive Hashing

The key idea of Locality sensitive hashing (LSH) is that neighbor points, v are more likely mapped to the same bucket but points far from each other are more likely mapped to different buckets. In ...
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70 views

approximate nearest neighbors time complexity

I'm reading this paper Product quantization for nearest neighbor search. On the last row of table II page 5 it gives the complexity given in this table for searching the k smallest elements ...
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How to understand Locality Sensitive Hashing?

I noticed that LSH seems a good way to find similar items with high-dimension properties. After reading the paper http://www.slaney.org/malcolm/yahoo/Slaney2008-LSHTutorial.pdf, I'm still confused ...
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LSH implementation in python 3 with Euclidean distance and seeing all neighbors in LSHForest

I am looking for an efficient implementation of LSH in python 3 that uses Euclidean distance. There is the "in-python" LSHForest implementation, but it uses cosine distances. Also, even using this ...
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Efficient way of find neighbours of coordinates, dependent on direction - Matlab

I would like to find the 4 nearest neighbours for a dataset roughly 2000 X,Y coordinates in X and Y direction with varying distance between the points along the Y axis and along the X-axis. For ...
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sklearn kneighbours memory error python

I am working on a Windows 7 8gb RAM. This is the vectorizer I am using to vectorize a free text column in my 52MB training dataset vec = CountVectorizer(analyzer='word',stop_words='english',...
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30 views

How to solve nearest neighbor through the R-nearest neighbor?

Citing the E2LSH manual (it's not important that's about this specific library, this quote should be true for NN problem in general): E 2LSH can be also used to solve the nearest neighbor problem, ...
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Matlab - Flag points using nearest neighbour search

I have the following problem and I am a bit clueless how to tackle it as my programming skills are very elementary ( I am an engineer, so please dont bite my head off). Problem I have a point ...
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Matlab : Confusion regarding application of k-nearest neighbor search in information retrieval

I am following the code given in the paper Sparse Projections for High-Dimensional Binary Codes by Yan Xia et. al Link to paper. The first link mentioned in the footer on Page 4 is the link for ...
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Retrieve k-nearest spheres within a limited range

I would like to know if I am missing any acceleration structure that is designed for retrieving k-nearest spheres within a range. The context of my question is molecular visualization, specifically, ...
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insert into vantage-point tree

Given a large collection of 64 bit integers, my goal is to find the integer with the smallest Hamming distance from a new integer, after which new the integer will be inserted in the collection. For ...
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80 views

Pandas: Approximate join on one column, exact match on other columns

I have two pandas dataframes I want to join/merge exactly on a number of columns (say 3) and approximately, i.e nearest neighbour, on one (date) column. I also want to return the difference (days) ...
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K Nearest Neighbor

As part of my final project for a 1 year software development course i am required to implement a knn project which predicts the outcome of football matches in an android app. I built a mysql database ...
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KD tree, slow tree construction

I am trying to build KD Tree (static case). We assume points are sorted on both x and y coordinates. For even depth of recursion the set is split into two subsets with a vertical line going through ...
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72 views

Search in locality sensitive hashing

I'm trying to understand the section 5. of this paper about LSH, in particular how to bucket the generated hashes. Quoting the linked paper: Given bit vectors consisting of d bits each, we choose ...
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28 views

Classification using Approximate Nearest Neighbors in Scikit-Learn

I have a labeled dataset having a 46D featureset and around 5000 samples that I want to classify using Approximate Nearest Neighbors. Since I'm familiar with Scikit-Learn, I want to utilize it to ...
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25 views

What is the length of sliding window in dimensionality reduction

I am interested in dimensionality reduction using hashing technique. For document and image hashing, where the feature vector is represented as a binary string, how does one determine the length of ...
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Is LSH about transforming vectors to binary vectors for hamming distance?

I read some paper about LSH and I know that is used for solving the approximated k-NN problem. We can divide the algorithm in two parts: Given a vector in D dimensions (where D is big) of any value, ...
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1answer
79 views

How to find the the order of discrete point-set effieciently?

I have a series of discrete point on a plane, However, their order is scattered. Here is an instance: To connect them with a smooth curve, I wrote a findSmoothBoundary() to achieve the smooth ...
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LATERAL JOIN not using trigram index

I want to do some basic geocoding of addresses using Postgres. I have an address table that has around 1 million raw address strings: => \d addresses Table "public.addresses" Column | Type | ...
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How to bucket locality-sensitive hashes?

I already have the algorithm to produce locality-sensitive hashes, but how should I bucket them to take advantage of their characteristics(i.e. similar elements have near hashes(with the hamming ...
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Digit recognition in Matlab using kNN [duplicate]

I'm trying to recognize digits in Matlab using k-NN algorithm (can't use built in fitcknn function, etc.). I've got the algorithm, examples and other functions to test it, but it doesn't work. Don't ...
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What is the ε (epsilon) parameter in Locality Sensitive Hashing (LSH)?

I've read the original paper about Locality Sensitive Hashing. The complexity is in function of the parameter ε, but I don't understand what it is. Can you explain its meaning please?
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Nearest Neighbor without outliers in 2d point cloud

I am trying to find correspondances between a point (let say a detection) in a point cloud at time t and another point in a point cloud at time T != t to estimate the motion of the point (speed and ...
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Locality Sensitivy Hashing in OpenCV for image processing

This is my first image processing application, so please be kind with this filthy peasant. THE APPLICATION: I want to implement a fast application (performance are crucial even over accuracy) where ...