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Rule-Based Method for Entity Resolution
Abstract:
The objective of entity resolution (ER) is to identify records referring to the
same real-world entity. Traditional ER approaches identify records based
on pairwise similarity comparisons, which assumes that records referring
to the same entity are more similar to each other than otherwise. However,
this assumption does not always hold in practice and similarity
comparisons do not work well when such assumption breaks. We propose
a new class of rules which could describe the complex matching conditions
between records and entities. Based on this class of rules, we present the
rule-based entity resolution problem and develop an on-line approach for
ER. In this framework, by applying rules to each record, we identify which
entity the record refers to. Additionally, we propose an effective and
efficient rule discovery algorithm. We experimentally evaluated our rule-
based ER algorithm on real data sets. The experimental results show that
both our rule discovery algorithm and rule-based ER algorithm can achieve
high performance.
Existing System:
Traditional ER approaches obtain a result based on similarity
comparison among records, assuming that records referring to the same
entity are more similar to each other (compact set property). However,
such property may not hold so traditional ER approaches cannot identify
records correctly in some cases.
It is obvious that we are unable to get the correct ER result of the example
by applying similarity comparison between records. Similar to Jaccard,
other similarity functions, such as cosine similarity and TF-IDF, also have
the same problem. As similarity comparisons cannot be applied in this
case, we have the following observations.
Proposed System:
The syntax and semantics of the rules for ER are designed, and the
independence, consistency, completeness and validity of the rules are
defined and analyzed. An efficient rule discovery algorithm based on
training data is proposed and analyzed.
An efficient rule-based algorithm for solving entity resolution problem is
proposed and analyzed. A rule maintaining method is proposed when
entity information is changed. Experiments are performed on real data to
verify the effectiveness and efficiency of the proposed algorithms.
Hardware Requirements:
• System : Pentium IV 2.4 GHz.
• Hard Disk : 40 GB.
• Floppy Drive : 1.44 Mb.
• Monitor : 15 VGA Colour.
• Mouse : Logitech.
• RAM : 256 Mb.
Software Requirements:
• Operating system : - Windows XP.
• Front End : - JSP
• Back End : - SQL Server
Software Requirements:
• Operating system : - Windows XP.
• Front End : - .Net
• Back End : - SQL Server

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Rule based method for entity resolution

  • 1. Rule-Based Method for Entity Resolution Abstract: The objective of entity resolution (ER) is to identify records referring to the same real-world entity. Traditional ER approaches identify records based on pairwise similarity comparisons, which assumes that records referring to the same entity are more similar to each other than otherwise. However, this assumption does not always hold in practice and similarity comparisons do not work well when such assumption breaks. We propose a new class of rules which could describe the complex matching conditions between records and entities. Based on this class of rules, we present the rule-based entity resolution problem and develop an on-line approach for ER. In this framework, by applying rules to each record, we identify which entity the record refers to. Additionally, we propose an effective and efficient rule discovery algorithm. We experimentally evaluated our rule- based ER algorithm on real data sets. The experimental results show that both our rule discovery algorithm and rule-based ER algorithm can achieve high performance.
  • 2. Existing System: Traditional ER approaches obtain a result based on similarity comparison among records, assuming that records referring to the same entity are more similar to each other (compact set property). However, such property may not hold so traditional ER approaches cannot identify records correctly in some cases. It is obvious that we are unable to get the correct ER result of the example by applying similarity comparison between records. Similar to Jaccard, other similarity functions, such as cosine similarity and TF-IDF, also have the same problem. As similarity comparisons cannot be applied in this case, we have the following observations. Proposed System: The syntax and semantics of the rules for ER are designed, and the independence, consistency, completeness and validity of the rules are defined and analyzed. An efficient rule discovery algorithm based on training data is proposed and analyzed. An efficient rule-based algorithm for solving entity resolution problem is proposed and analyzed. A rule maintaining method is proposed when entity information is changed. Experiments are performed on real data to verify the effectiveness and efficiency of the proposed algorithms. Hardware Requirements:
  • 3. • System : Pentium IV 2.4 GHz. • Hard Disk : 40 GB. • Floppy Drive : 1.44 Mb. • Monitor : 15 VGA Colour. • Mouse : Logitech. • RAM : 256 Mb. Software Requirements: • Operating system : - Windows XP. • Front End : - JSP • Back End : - SQL Server Software Requirements: • Operating system : - Windows XP. • Front End : - .Net • Back End : - SQL Server