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Apriori Algorithm

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10 Aug 2012CPOL2 min read 578.9K   10.8K   149   149
Implementation of the Apriori algorithm in C#.

Image 1

Introduction

In data mining, Apriori is a classic algorithm for learning association rules. Apriori is designed to operate on databases containing transactions (for example, collections of items bought by customers, or details of a website frequentation).

Other algorithms are designed for finding association rules in data having no transactions (Winepi and Minepi), or having no timestamps (DNA sequencing).

Overview

The whole point of the algorithm (and data mining, in general) is to extract useful information from large amounts of data. For example, the information that a customer who purchases a keyboard also tends to buy a mouse at the same time is acquired from the association rule below:

Support: The percentage of task-relevant data transactions for which the pattern is true.

Support (Keyboard -> Mouse) = AprioriAlgorithm/eq_1.JPG

Confidence: The measure of certainty or trustworthiness associated with each discovered pattern.

Confidence (Keyboard -> Mouse) = AprioriAlgorithm/eq_2.JPG

The algorithm aims to find the rules which satisfy both a minimum support threshold and a minimum confidence threshold (Strong Rules).

  • Item: article in the basket.
  • Itemset: a group of items purchased together in a single transaction.

How Apriori Works

  1. Find all frequent itemsets:
    • Get frequent items:
      • Items whose occurrence in database is greater than or equal to the min.support threshold.
    • Get frequent itemsets:
      • Generate candidates from frequent items.
      • Prune the results to find the frequent itemsets.
  2. Generate strong association rules from frequent itemsets
    • Rules which satisfy the min.support and min.confidence threshold.

High Level Design

AprioriAlgorithm/1-Apriori_HLD_Big.JPG

Low Level Design

AprioriAlgorithm/Apriori_LLD.jpg 

Example 

A database has five transactions. Let the min sup = 50% and min con f = 80%.

AprioriAlgorithm/3-DB.JPG

Solution 

Step 1: Find all Frequent Itemsets

AprioriAlgorithm/4-Example.JPG

Frequent Itemsets

{A}   {B}   {C}   {E}   {A C}   {B C}   {B E}   {C E}   {B C E}

Step 2: Generate strong association rules from the frequent itemsets

AprioriAlgorithm/5-StrongRules.JPG

Lattice

Closed Itemset: support of all parents are not equal to the support of the itemset.

Maximal Itemset: all parents of that itemset must be infrequent.

Keep in mind:

AprioriAlgorithm/6-Set.JPG

AprioriAlgorithm/7-Lattice.JPG

Itemset {c} is closed as support of parents (supersets) {A C}:2, {B C}:2, {C D}:1, {C E}:2 not equal support of {c}:3.

And the same for {A C}, {B E} & {B C E}.

Itemset {A C} is maximal as all parents (supersets) {A B C}, {A C D}, {A C E} are infrequent.

And the same for {B C E}.

License

This article, along with any associated source code and files, is licensed under The Code Project Open License (CPOL)


Written By
Software Developer
Egypt Egypt
Enthusiastic programmer/researcher, passionate to learn new technologies, interested in problem solving, data structures, algorithms, AI, machine learning and nlp.

Amateur guitarist/ keyboardist, squash player.

Comments and Discussions

 
QuestionCan I have the C# code Pin
Member 1087192112-Jun-14 3:53
Member 1087192112-Jun-14 3:53 
AnswerRe: Can I have the C# code Pin
Omar Gameel Salem12-Jun-14 16:24
professionalOmar Gameel Salem12-Jun-14 16:24 
QuestionHelp me Pin
Virtual Scholar6-May-14 14:04
Virtual Scholar6-May-14 14:04 
QuestionMMAC algorithm Pin
Xuan Dung Phu Yen16-Mar-14 19:15
Xuan Dung Phu Yen16-Mar-14 19:15 
Questiondo you know? high-utility rule mining? Pin
hothi_vuong14-Mar-14 4:23
hothi_vuong14-Mar-14 4:23 
QuestionApriory Algo Implementation Pin
Member 106110551-Mar-14 0:56
Member 106110551-Mar-14 0:56 
Questionlimit to your code Pin
yogeshwarmisal27-Feb-14 19:32
yogeshwarmisal27-Feb-14 19:32 
AnswerRe: limit to your code Pin
Omar Gameel Salem27-Feb-14 21:11
professionalOmar Gameel Salem27-Feb-14 21:11 
Thank you

The code is meant to be for educational purpose rather than a production ready one.
I was planning on updating it so it handles strings like you suggests, but I don't have time right now Smile | :)
Questionhow this algo will take my sql server table rows as transaction? Pin
Mona198618-Jan-14 9:29
Mona198618-Jan-14 9:29 
QuestionApriori Pin
Member 1022814823-Aug-13 6:42
Member 1022814823-Aug-13 6:42 
Questionhelp Pin
milad199130-Jun-13 22:14
milad199130-Jun-13 22:14 
QuestionApriori variations Pin
Saira1119-Mar-13 3:27
Saira1119-Mar-13 3:27 
QuestionApriori algorithm Pin
Member 987030028-Feb-13 4:24
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AnswerRe: Apriori algorithm Pin
aspround18-Apr-13 5:49
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GeneralRe: Apriori algorithm Pin
Member 1065266925-Feb-15 20:22
Member 1065266925-Feb-15 20:22 
GeneralRe: Apriori algorithm Pin
Member 1248274724-Apr-16 22:18
Member 1248274724-Apr-16 22:18 
Questionplease need help Pin
azizhai12-Jan-13 18:24
azizhai12-Jan-13 18:24 
QuestionYou should add rate. Pin
jingjingtr9-Dec-12 2:40
jingjingtr9-Dec-12 2:40 
QuestionNew Version is only changed the UI? Pin
jingjingtr5-Dec-12 21:47
jingjingtr5-Dec-12 21:47 
AnswerRe: New Version is only changed the UI? Pin
Omar Gameel Salem5-Dec-12 21:53
professionalOmar Gameel Salem5-Dec-12 21:53 
GeneralRe: New Version is only changed the UI? Pin
jingjingtr5-Dec-12 23:29
jingjingtr5-Dec-12 23:29 
GeneralRe: New Version is only changed the UI? Pin
friday250f19-Dec-12 13:16
friday250f19-Dec-12 13:16 
QuestionError Pin
jingjingtr2-Dec-12 20:33
jingjingtr2-Dec-12 20:33 
AnswerRe: Error Pin
Omar Gameel Salem2-Dec-12 21:00
professionalOmar Gameel Salem2-Dec-12 21:00 
GeneralRe: Error Pin
jingjingtr3-Dec-12 14:51
jingjingtr3-Dec-12 14:51 

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