Classification & Your Intranet: From Chaos to Control Susan Stearns Inmagic, Inc. ...
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Transcript of Classification & Your Intranet: From Chaos to Control Susan Stearns Inmagic, Inc. ...
Classification & Your Intranet: From Chaos to Control
Susan StearnsInmagic, [email protected] E204May, 2003
Look familiar??#$%&*
Why can’t I find anything on the Intranet?
How do we manage all the information we want to publish on the Intranet?
User Content Manager
• The issue:▶We know that we have documents in-house that
contain hugely valuable information
• The problem:▶How do users find the right information at the right
time?
• The answer:▶Automated spider and meta- classification software
that allow an enterprise to automatically build and maintain a completely searchable database of critical content.
Automated Spidering Software
• A spider that “crawls” specified in-house servers and Web sites
• Extracts content from most popular file types and formats – HTML, Text, MSOffice, PDF – even e-mail
• Content can be loaded into a database
Key features to look for in a spider
• Document types: Microsoft Office, PDF, other formats (IFilter compatible)
• Zip files and email folders can be crawled• Remote administration• Can be scheduled to run multiple times a day• Web crawling can be set up to “n” levels deep• Easy to create an XML transform to your
database design• Integrates with automated classification software
How a spider works
File system crawl
Database
Webcrawl
The Spider
Native document cache
Extracted text cache
XML load files
Content Manager can add value (e.g. add additional meta-tags, etc.)
Users can search and access “Gathered” content via a Web-browser
Meta-Classification
We Love Search: We Hate Search
• Search is ubiquitous but insufficient▶Only one slice into content▶Missing relationships across
information▶Few are skilled at searching
The search engine paradox: “Regardless of the product or a user's ability to use it, effective searches require the user to know the terms they need to use before they type them into the search engine.”
The Delphi Group
The Solution: Meta-Classification
• Enrich the content with meta-data
• Leverage XML and integrate content from multiple sources
• Extract other useful concepts
• Give users browse-able directories in addition to a search box
What is Meta-Classification?
• Automated meta-data extraction• Meta-data includes “subject
information” as well as names of people, company names, acronyms, key noun phrases
• Auto-classification of documents using a predefined taxonomy
• This meta-data can be mapped to a database along with the full-text of the document or a URL link
Why Meta-Classification?
• Creates structured information from unstructured data
• Allows local terminology to be reflected in searching
• Provides a browse-able directory
• Greatly enhances search through controlled vocabulary
How does it work?
• Spider/crawl the documents to create a corpus
• Automated software▶Identifies key words and phrases▶Maps them to known topics in
taxonomy▶Scores the topics and derives a
central theme▶Repeat for the sub-themes
Step 1: Identify words and phrases in the text
Microsoft NASDAQ:MSFT, which won a round in its antitrust fight against the government today, launched its Microsoft.Net initiative that could someday replace computer hardware with software. Via XML (extensible markup language), Microsoft.net will enable use of much larger computers accessible on the Internet for storage of programs, word processing files and other data.
Step 2:Map them to topics within the taxonomy
Government: governmentComputer Science: Internet, XMLHardware: computersStorage: data, storageApplication Files: programs, languageWord Processing Files: word processing filesSoftware Companies: MicrosoftMicrosoft: Microsoft.Net
Step 3: Determine themes
• End results of classification of this story are:▶Central Theme: Microsoft▶Sub-theme 1: Word Processing Files▶Sub-theme 2: Software Companies
• Microsoft is a good match for central theme
• Microsoft.Net would have been the best classification▶Original taxonomy didn’t know this topic▶Will be added to taxonomy
Customize the Taxonomy
• 1 million node taxonomy often too large
• Develop a custom taxonomy▶A subset of the large taxonomy▶Selected nodes to match business
needs▶A set of rules to aggregate from the
low level topics in the large taxonomy to the custom taxonomy
The Result
• Very large corpus of content can be classified in automated fashion
• Meta-data is used to create browse-able directories
• Meta-data is used for searching
• End user is given “clues” for finding the right information
Other features to consider
• Document summaries/abstracts
• Including external content▶Spidered from Web sites▶Integrated from licensed content
sources
• User submissions
• User ratings/reviews
To Control
Web Content
Meta Data:Captured centrally
User Interaction
Word Doc
Document Properties, Classification
Search and Browse
Content Collection(spider)
Context
(entity extraction/auto-classification)
Corporate Intranet
From Chaos
Thank You.