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IJRET: International Journal of Research in Engineering and Technology eISSN: 2319-1163 | pISSN: 2321-7308
_______________________________________________________________________________________
Volume: 04 Issue: 02 | Feb-2015, Available @ http://www.ijret.org 189
SALES ANALYSIS USING PRODUCT RATING IN DATA MINING
TECHNIQUES
Sushant Bhagwat1
, Vishnu Jethliya2
, Ankit Pandey3
, Lutful Islam4
1
Student, Computer, M.H Saboo Siddik College of Engineering, Maharashtra, India
2
Student, Computer, M.H Saboo Siddik College of Engineering, Maharashtra, India
3
Student, Computer, M.H Saboo Siddik College of Engineering, Maharashtra, India
4
Assistance Professor, Computer, M.H Saboo Siddik College of Engineering, Maharashtra, India
Abstract
In this paper a new product rating approach for mathematically and graphically analyzing sales of same type of products from
different manufactures and with most frequent combination of items is proposed. In product sales market there is no specific
rating for product of same type and combination of product purchasing pattern. By this we retrieve the best combination of
products with mathematically rating. By this rating and pattern we can make graphical representation of rating and combination
of product of same type to compare them with other . Data mining provide more abstract knowledge to analyze business
functionalities with retail product data. The purpose of product is to fulfill need of customer , based upon it there are different
company makes product of same type , by analyzing it mathematically best one can be calculated thing such as customer
satisfaction , product efficiency , popularity among them.
Keywords: Data Mining, Sales Report, Product rating, Threshold value.
--------------------------------------------------------------------***----------------------------------------------------------------------
1. INTRODUCTION
This system is useful tool for giving product rating within
same type of products e.g. Camera ( Sony , Canon etc) and
finding the product which are sold together using web
mining. Data mining of sales data gives frequent pattern of
same type of product sales. It is like market basket analysis
within same type of products and by representing this data
graphically we get easily and quickly view type of customer.
So we can target the customers which will increases sales
and profit of organization.
Knowing the rating of product that will attract more
customers to purchase product and make decision quickly to
buy products.
2. MULTIDATABASE
Multidatabase is collection of multiple databases. These
databases are from different location and sources. We
collect these data in the form of sales report. We use
multidatabase mining for knowledge discovery and make
decision according to improve sales .Consider eg. of
shopping mall,Big bazaar etc. There are thousands of data
transactions from different sources and locations, for this
purpose we use multi database.
3. DATA MINING METHODS
3.1 Problem Statement
Suppose a customer A enters into the shop and customer
sees product X,Y.Z. Customer buy product Y, because of
previous frequent buying of product Y by other customers.
But by this we can’t get the knowledge of behavior of
customer A from database.
3.2 Economical Issue
The Indian economy is rely on food and other basic product
consumerism services. As companies product are targeted
by end users the sales data will indicate the variation of food
services and automotive. Better the sale, Better the
economy. So in future there is no recession occurs. The
research is done on retail business and still are going on but
it is not enough to meet the goal of organization and others.
Some companies makes large production of particular based
on customer rating and sales rating.
We are using the following algorithm.
3.2.1 Apriori Algorithm
Apriori algorithm is used for finding frequent patterns in
database. It uses the database and association rule result to
generate patterns.
3.2. Association Rule
It is an important data mining model studied widely by the
database and data mining. Useful for finding frequent
patterns, associations, or casual structures among sets of
items. It searches for interesting relationships among items
in a given data set. To give ratings to the products following
rules are used i.e. finding the confidence level of product
from database.
1. Individual products purchased by total number of
customers.
2. Overall sales of each products.
3. By this get the product sold in increasing manner.
4. Association of pattern of product sold together.
IJRET: International Journal of Research in Engineering and Technology eISSN: 2319-1163 | pISSN: 2321-7308
_______________________________________________________________________________________
Volume: 04 Issue: 02 | Feb-2015, Available @ http://www.ijret.org 190
4. EXISTING SYSTEM
In existing system, the organization only has the production
report. In this report, we get the information about the
quantity of products that are sold on daily basis. But as new
customers come in market, they don’t have an idea of which
product to be picked from the collection of products of the
same type. Thus the customer picks random products and
after using it if person does not find it efficient and this is
the drawback of existing system.
5. PROPOSED SYSTEM
In our System, we takes the rating from the user and also
Generate rating from system by taking this further we
calculate the average mathematical rating for a particular
product.
We also see which product sales more in the particular
categories , by using above both behavior of customer and
sales report we can give recommendation to the future
customers and it will be very helpful to them for buying the
products.
The implementation of our project will be go through
several steps in which there are following entities
5.1 Entities
1. Admin:-Authenticate the user and manages the database.
2. User:- Purchase the product and give the rating.
3. Sales Report:- we get the information about profit or loss
of Company.
4. Product Report:-we get the information about the
behavior of purchasing a product and its rating.
5.2 Entities Working in System
The entities working shows how the information flowing in
system. This system consist of 4 level of system work
which show different functionality of system and we also
get to know about the output coming from the input data.
5.2.1 Admin and Users Relation
In this ,we have two entities namely admin and user. In
which admin manages the user, product and also manages
stores. User first have to register and then login in the
system. Afterwards he can view the products and if he have
interest then he can purchase the products.
5.2.2 Admin Management
In this process, admin manages the product, sales and
inventory tables . Admin can view Product report
monthly/yearly based upon the rating of customers.
5.2.3 Admin Manages Product
In this process, Admin can add or delete products from
product table. and also he can view the products and its
rating .
5.2.3 Admin Manages Sales
In this process, admin can do the work such as add sales
and he can view quantity of sales product purchased by the
customer and get the sales report.
6. CONCLUSION
In this project we provide Product Retail Rating Items
algorithm, to identify the products rating by preprocessing
the sales data with minimum threshold using Association
rule and rank the products. As an illustration, a sample
Apriori operation research problem with customized data
has been illustrated and solved based on the algorithm.
ACKNOWLEDGEMENTS
No project can be completed without the support of a lot of
people. Today when we are concluding our project work by
submitting this report we reflect upon all the times when we
needed support in various forms and we were lucky enough
to receive it. We would like to offer my heartfelt thanks and
gratitude to ER. LUTFUL ISLAM for being such a positive
influence around us. He has been a constant source of
encouragement and guidance through the entire semester.
His helping hand has been instrumental in our achievements.
He has also provided a calming influence over the course of
this hectic schedule and helped us remain in control over the
entire proceedings. Our foremost thanks to our project
partners and help of our well-wishers and colleagues. We
are grateful to all the Non-Teaching staff and all our friends
for giving us the helping hand.
REFERENCES
[1]. Building an Association Rules Framework to Improve
product Assortment Decisions “- Tom Brus etal,
Department of Economic Science, Limburg University
centre, Belgium , Data mining and Knowledge discovery ,
October 2003.
[2]. Data mining for Customer Loyalty” – Richard Bolire –
March 2009 – Direct Marketing.
[3]. Marketing Literature” – Van der sper & Urissen -1993.
[4]. analytics and data mining in retail industry – Groans’
blog.
[5]. Implementation benefit to business intelligence using
data mining techniques” – International Journal of
Computing and Business research – Harvinder singh.
[6]. Integrated solutions for retailers – Feb’2001 – by
Stephen Russel dephere. www.decision craft.com.
BIOGRAPHIES
Name: Mr. Sushant Bhagwat
Designation: Student
Department: Computer Engineering
Qualifications:B.E(comp)Pursuing
IJRET: International Journal of Research in Engineering and Technology eISSN: 2319-1163 | pISSN: 2321-7308
_______________________________________________________________________________________
Volume: 04 Issue: 02 | Feb-2015, Available @ http://www.ijret.org 191
Name: Mr. Vishnu Jethliya
Designation: Student
Department: Computer Engineering
Qualifications:B.E(Comp)Pursuing
Name: Mr. Ankit Pandey
Designation: Student
Department: Computer Engineering
Qualifications:B.E(Comp)Pursuing
Name: Mr. Md.Lutful Islam
Designation: Assistant Professor
Department: Computer Engineering
Qualifications:M.C.A,M.Tech(Comp)

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Sales analysis using product rating in data mining techniques

  • 1. IJRET: International Journal of Research in Engineering and Technology eISSN: 2319-1163 | pISSN: 2321-7308 _______________________________________________________________________________________ Volume: 04 Issue: 02 | Feb-2015, Available @ http://www.ijret.org 189 SALES ANALYSIS USING PRODUCT RATING IN DATA MINING TECHNIQUES Sushant Bhagwat1 , Vishnu Jethliya2 , Ankit Pandey3 , Lutful Islam4 1 Student, Computer, M.H Saboo Siddik College of Engineering, Maharashtra, India 2 Student, Computer, M.H Saboo Siddik College of Engineering, Maharashtra, India 3 Student, Computer, M.H Saboo Siddik College of Engineering, Maharashtra, India 4 Assistance Professor, Computer, M.H Saboo Siddik College of Engineering, Maharashtra, India Abstract In this paper a new product rating approach for mathematically and graphically analyzing sales of same type of products from different manufactures and with most frequent combination of items is proposed. In product sales market there is no specific rating for product of same type and combination of product purchasing pattern. By this we retrieve the best combination of products with mathematically rating. By this rating and pattern we can make graphical representation of rating and combination of product of same type to compare them with other . Data mining provide more abstract knowledge to analyze business functionalities with retail product data. The purpose of product is to fulfill need of customer , based upon it there are different company makes product of same type , by analyzing it mathematically best one can be calculated thing such as customer satisfaction , product efficiency , popularity among them. Keywords: Data Mining, Sales Report, Product rating, Threshold value. --------------------------------------------------------------------***---------------------------------------------------------------------- 1. INTRODUCTION This system is useful tool for giving product rating within same type of products e.g. Camera ( Sony , Canon etc) and finding the product which are sold together using web mining. Data mining of sales data gives frequent pattern of same type of product sales. It is like market basket analysis within same type of products and by representing this data graphically we get easily and quickly view type of customer. So we can target the customers which will increases sales and profit of organization. Knowing the rating of product that will attract more customers to purchase product and make decision quickly to buy products. 2. MULTIDATABASE Multidatabase is collection of multiple databases. These databases are from different location and sources. We collect these data in the form of sales report. We use multidatabase mining for knowledge discovery and make decision according to improve sales .Consider eg. of shopping mall,Big bazaar etc. There are thousands of data transactions from different sources and locations, for this purpose we use multi database. 3. DATA MINING METHODS 3.1 Problem Statement Suppose a customer A enters into the shop and customer sees product X,Y.Z. Customer buy product Y, because of previous frequent buying of product Y by other customers. But by this we can’t get the knowledge of behavior of customer A from database. 3.2 Economical Issue The Indian economy is rely on food and other basic product consumerism services. As companies product are targeted by end users the sales data will indicate the variation of food services and automotive. Better the sale, Better the economy. So in future there is no recession occurs. The research is done on retail business and still are going on but it is not enough to meet the goal of organization and others. Some companies makes large production of particular based on customer rating and sales rating. We are using the following algorithm. 3.2.1 Apriori Algorithm Apriori algorithm is used for finding frequent patterns in database. It uses the database and association rule result to generate patterns. 3.2. Association Rule It is an important data mining model studied widely by the database and data mining. Useful for finding frequent patterns, associations, or casual structures among sets of items. It searches for interesting relationships among items in a given data set. To give ratings to the products following rules are used i.e. finding the confidence level of product from database. 1. Individual products purchased by total number of customers. 2. Overall sales of each products. 3. By this get the product sold in increasing manner. 4. Association of pattern of product sold together.
  • 2. IJRET: International Journal of Research in Engineering and Technology eISSN: 2319-1163 | pISSN: 2321-7308 _______________________________________________________________________________________ Volume: 04 Issue: 02 | Feb-2015, Available @ http://www.ijret.org 190 4. EXISTING SYSTEM In existing system, the organization only has the production report. In this report, we get the information about the quantity of products that are sold on daily basis. But as new customers come in market, they don’t have an idea of which product to be picked from the collection of products of the same type. Thus the customer picks random products and after using it if person does not find it efficient and this is the drawback of existing system. 5. PROPOSED SYSTEM In our System, we takes the rating from the user and also Generate rating from system by taking this further we calculate the average mathematical rating for a particular product. We also see which product sales more in the particular categories , by using above both behavior of customer and sales report we can give recommendation to the future customers and it will be very helpful to them for buying the products. The implementation of our project will be go through several steps in which there are following entities 5.1 Entities 1. Admin:-Authenticate the user and manages the database. 2. User:- Purchase the product and give the rating. 3. Sales Report:- we get the information about profit or loss of Company. 4. Product Report:-we get the information about the behavior of purchasing a product and its rating. 5.2 Entities Working in System The entities working shows how the information flowing in system. This system consist of 4 level of system work which show different functionality of system and we also get to know about the output coming from the input data. 5.2.1 Admin and Users Relation In this ,we have two entities namely admin and user. In which admin manages the user, product and also manages stores. User first have to register and then login in the system. Afterwards he can view the products and if he have interest then he can purchase the products. 5.2.2 Admin Management In this process, admin manages the product, sales and inventory tables . Admin can view Product report monthly/yearly based upon the rating of customers. 5.2.3 Admin Manages Product In this process, Admin can add or delete products from product table. and also he can view the products and its rating . 5.2.3 Admin Manages Sales In this process, admin can do the work such as add sales and he can view quantity of sales product purchased by the customer and get the sales report. 6. CONCLUSION In this project we provide Product Retail Rating Items algorithm, to identify the products rating by preprocessing the sales data with minimum threshold using Association rule and rank the products. As an illustration, a sample Apriori operation research problem with customized data has been illustrated and solved based on the algorithm. ACKNOWLEDGEMENTS No project can be completed without the support of a lot of people. Today when we are concluding our project work by submitting this report we reflect upon all the times when we needed support in various forms and we were lucky enough to receive it. We would like to offer my heartfelt thanks and gratitude to ER. LUTFUL ISLAM for being such a positive influence around us. He has been a constant source of encouragement and guidance through the entire semester. His helping hand has been instrumental in our achievements. He has also provided a calming influence over the course of this hectic schedule and helped us remain in control over the entire proceedings. Our foremost thanks to our project partners and help of our well-wishers and colleagues. We are grateful to all the Non-Teaching staff and all our friends for giving us the helping hand. REFERENCES [1]. Building an Association Rules Framework to Improve product Assortment Decisions “- Tom Brus etal, Department of Economic Science, Limburg University centre, Belgium , Data mining and Knowledge discovery , October 2003. [2]. Data mining for Customer Loyalty” – Richard Bolire – March 2009 – Direct Marketing. [3]. Marketing Literature” – Van der sper & Urissen -1993. [4]. analytics and data mining in retail industry – Groans’ blog. [5]. Implementation benefit to business intelligence using data mining techniques” – International Journal of Computing and Business research – Harvinder singh. [6]. Integrated solutions for retailers – Feb’2001 – by Stephen Russel dephere. www.decision craft.com. BIOGRAPHIES Name: Mr. Sushant Bhagwat Designation: Student Department: Computer Engineering Qualifications:B.E(comp)Pursuing
  • 3. IJRET: International Journal of Research in Engineering and Technology eISSN: 2319-1163 | pISSN: 2321-7308 _______________________________________________________________________________________ Volume: 04 Issue: 02 | Feb-2015, Available @ http://www.ijret.org 191 Name: Mr. Vishnu Jethliya Designation: Student Department: Computer Engineering Qualifications:B.E(Comp)Pursuing Name: Mr. Ankit Pandey Designation: Student Department: Computer Engineering Qualifications:B.E(Comp)Pursuing Name: Mr. Md.Lutful Islam Designation: Assistant Professor Department: Computer Engineering Qualifications:M.C.A,M.Tech(Comp)