Data Warehouse Implementations
Many organizations have difficulty in creating value out of their computerized
and archived data. This has many reasons:
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Data is stored in disparate operational systems, whereby it is difficult to
achieve good quality in databases, and data cannot be compared due to different
metadata structures and coding standards.
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Data is stored in old technological platforms whereby it is difficult to
retrieve and analyze it.
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Data in operational systems is too big, and these systems are optimized for
transaction processing. Analysis requiring big volumes of data is difficult to
perform, and such an activity degrades system performance and responsiveness
drastically.
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It is not possible to keep historical data in operational databases since big
size is enemy of performance, and old data gets deleted. However, access to
historical information is critical to identify business profitability and
customer trends. Identifying discontinuities (lost customers, product model
changes etc) is not possible without historical data.
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Even if data is easy to retrieve out of databases, users of data want to have
efficient analysis tools, and want to be independent of IT professionals.
Creation of a data warehouse, and creation of (departmental) data marts from
the data warehouses, if necessary, is very crucial for an organization in order
to create value from its data. This is also a first step towards more effective
management and strategic information systems like balanced scorecards, and
towards identification of business and customer value and trends which are
crucial to today's CRM implementations.
We help our customers realize increased value from their operational databases
by:
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Designing their data warehouse by identifying their critical business
transactions (facts), and identifying important attributes (dimensions) of
these transactions. We help our customers identify their important dimension
attributes (whether age is important for insurance premium setting, whether
temperature is important for the selling (hence stock levels) of beverages at a
supermarket etc.).
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Advising our customers for performance/availability/scalability/redundancy
during selection of required hardware and software, and managing the
implementation of these equipment.
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Creating complete software solutions to populate data warehouse initially, and
to regularly feed it with new transactions from operational systems.
Maintenance of summary fact tables (aggregates) is part of our solution.
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Advising our customers during selection of On-line Analytical Processing (OLAP)
tools and other reporting tools, in order for them to get the best benefit from
their data warehouse investments.
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Designing operational aspects of our customers' data warehouse shops, creating
procedures and standards that are necessary to run a data warehouse, and
training our customers' staff.
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Taking over the control of our customers' data warehousing operations based on
SLAs, if requested.
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