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  • Digg it UP - Decision Support Systems, Part 1 - Detailed Business Performance Capture

    Tips For Getting Your Business Project Underway
    You just recently found out that you have been selected by your company to be the Project Officer for an upcoming major project. This project will generate much success for your business if it is executed properly. That is great but where do you even get started? Certainly, one of the most difficult parts about project management is just getting the darn thing underway. Procrastination, difficulty in finding the right organizational structur
    ards. Detailed facts are produced in a multidimensional data structure (also called data mart), like:
    • Detailed financial facts (revenue, expenses)
    • Detailed production facts (e.g. production activity performance)
    • Customer facts (e.g. number of contacts, number of complaints)
    • Customer churn data
    • Product quality facts
    • New product introduction facts,
    and presented in reports. A static performance capture takes place.

    Even though many on-line transa

    Construction Estimating In Building Has Benefits For You
    If you are just starting out in construction, the process of bidding may be a little confusing. When you are drawing up an estimate, you are basically calculating the total expense of the project you want to bid on. It is important that you remember to include all expenses and allow for unforeseen expenses that may crop up. When you estimate a job, you need to stay as close to the estimate as possible.This is very important because if you
    A simple analysis of the functionality of a decision support system, is presented. In an effort to analyze the performance of a Business, and develop strategy for the future positioning in a competitive environment, the dimension of time is crucial (this is why all data warehouse systems have a time dimension and maintain historical data). In this article series, we describe three functionality categories of decision support systems:part 1. Detailed capture of performancepart 2. Performance analysis part 3. Modeling and prediction Categories are presented in an increasing complexity and business value sequence. They do not necessarily represent maturity levels, since each category is developed and matured as it is enriched with new capabilities and adopted to the dynamically changing informational and analytical Business needs. DSS systems may be developed for other purposes, apart from performance management. A very common example is the development of a customer intelligence system, in which the aim is to build customer insight in order to adopt products and services accordingly.

    1. Detailed capture of business performance A basic management principle is the following: ‘you cannot manage what you cannot quantify and measure’. Within this framework, each Business aims to develop infrastructures which shall enable it, to capture detailed measurements of the current business process performance and gradually build detailed historical performance data. ‘How successful the Business was’ for a given time interval, is captured. Business performance is captured in a detailed mode for all ‘dimensions’ involved (indicatively): Business processes and activities, Products marketed, Customer touch points employed, Geography, Customer segments, Business Units involved. Data analysis that takes place at the ‘business performance capture’ level, is usually predefined. Predefined Key performance indicators (KPIs) are regularly calculated and presented in business intelligence dashboards. Detailed facts are produced in a multidimensional data structure (also called data mart), like:

    • Detailed financial facts (revenue, expenses)
    • Detailed production facts (e.g. production activity performance)
    • Customer facts (e.g. number of contacts, number of complaints)
    • Customer churn data
    • Product quality facts
    • New product introduction facts,
    and presented in reports. A static performance capture takes place.

    Even though many on-line transac

    Tales of Terrible Jobs: Part I
    If these jobs aren’t reason enough to start your own business and work for yourself I don’t know what is…“During my first year of school I was pretty desperate for cash, my buddy told me that there was a mink farm near his home that needed some help. I went down there and before I knew it I was working in a 200’ long metal shack with nearly 1000 mink in 105 degree heat scraping mink crap off of wire cages. [How much did you get paid?]
    ance analysis part 3. Modeling and prediction Categories are presented in an increasing complexity and business value sequence. They do not necessarily represent maturity levels, since each category is developed and matured as it is enriched with new capabilities and adopted to the dynamically changing informational and analytical Business needs. DSS systems may be developed for other purposes, apart from performance management. A very common example is the development of a customer intelligence system, in which the aim is to build customer insight in order to adopt products and services accordingly.

    1. Detailed capture of business performance A basic management principle is the following: ‘you cannot manage what you cannot quantify and measure’. Within this framework, each Business aims to develop infrastructures which shall enable it, to capture detailed measurements of the current business process performance and gradually build detailed historical performance data. ‘How successful the Business was’ for a given time interval, is captured. Business performance is captured in a detailed mode for all ‘dimensions’ involved (indicatively): Business processes and activities, Products marketed, Customer touch points employed, Geography, Customer segments, Business Units involved. Data analysis that takes place at the ‘business performance capture’ level, is usually predefined. Predefined Key performance indicators (KPIs) are regularly calculated and presented in business intelligence dashboards. Detailed facts are produced in a multidimensional data structure (also called data mart), like:

    • Detailed financial facts (revenue, expenses)
    • Detailed production facts (e.g. production activity performance)
    • Customer facts (e.g. number of contacts, number of complaints)
    • Customer churn data
    • Product quality facts
    • New product introduction facts,
    and presented in reports. A static performance capture takes place.

    Even though many on-line transa

    What Triggers Entrepreneurship?
    It is proposed that the process of entrepreneurship initiation has its foundations in person, intuition, society and culture. It is much more holistic than simply an economic function and represents a composite of material and immaterial, pragmatism and idealism. The essence is the application of creative processes and the acceptance of a risk-bearing function, directed at bringing about change of both economic and social nature. Ideally, but no
    , in which the aim is to build customer insight in order to adopt products and services accordingly.

    1. Detailed capture of business performance A basic management principle is the following: ‘you cannot manage what you cannot quantify and measure’. Within this framework, each Business aims to develop infrastructures which shall enable it, to capture detailed measurements of the current business process performance and gradually build detailed historical performance data. ‘How successful the Business was’ for a given time interval, is captured. Business performance is captured in a detailed mode for all ‘dimensions’ involved (indicatively): Business processes and activities, Products marketed, Customer touch points employed, Geography, Customer segments, Business Units involved. Data analysis that takes place at the ‘business performance capture’ level, is usually predefined. Predefined Key performance indicators (KPIs) are regularly calculated and presented in business intelligence dashboards. Detailed facts are produced in a multidimensional data structure (also called data mart), like:

    • Detailed financial facts (revenue, expenses)
    • Detailed production facts (e.g. production activity performance)
    • Customer facts (e.g. number of contacts, number of complaints)
    • Customer churn data
    • Product quality facts
    • New product introduction facts,
    and presented in reports. A static performance capture takes place.

    Even though many on-line transa

    Business Opportunity Leads
    Business opportunity leads are very important to the growth of all types of businesses. Building your business implies obtaining the right business opportunity leads. But most of the time, it is hard to find the right leads for the business. The best business opportunity leads will cost you a large amount of money.Purchasing leads from a lead generating company is one way to obtain business opportunity leads. This kind of lead is consider
    w successful the Business was’ for a given time interval, is captured. Business performance is captured in a detailed mode for all ‘dimensions’ involved (indicatively): Business processes and activities, Products marketed, Customer touch points employed, Geography, Customer segments, Business Units involved. Data analysis that takes place at the ‘business performance capture’ level, is usually predefined. Predefined Key performance indicators (KPIs) are regularly calculated and presented in business intelligence dashboards. Detailed facts are produced in a multidimensional data structure (also called data mart), like:
    • Detailed financial facts (revenue, expenses)
    • Detailed production facts (e.g. production activity performance)
    • Customer facts (e.g. number of contacts, number of complaints)
    • Customer churn data
    • Product quality facts
    • New product introduction facts,
    and presented in reports. A static performance capture takes place.

    Even though many on-line transa

    So You Want to Be an Interior Designer
    Interior design seems to be all the rage these days. If you don’t believe me, just turn on the television. Designers tackling small spaces, kitchen remodels and even designer reality shows. Have you watched one of these programs and thought you could do that? It takes more preparation and work than you see in a hour or half hour show.Interior designers have stiff competition from each other. Homeowners will shop around until they find the
    ards. Detailed facts are produced in a multidimensional data structure (also called data mart), like:
    • Detailed financial facts (revenue, expenses)
    • Detailed production facts (e.g. production activity performance)
    • Customer facts (e.g. number of contacts, number of complaints)
    • Customer churn data
    • Product quality facts
    • New product introduction facts,
    and presented in reports. A static performance capture takes place.

    Even though many on-line transaction processing (OLTP) systems enable the direct production of reports, this approach does not assure:

    • a sufficient level of detail in the facts captured
    • the ability to perform time series analysis (no historical data available)
    • the option to evaluate data in a differentiated view, by ‘highlighting’ certain dimensions of the business process and hiding others
    • the integrity, clarity and accuracy of facts and the single version of truth
    • the ability to produce complex reports, without overloading the operational system.
    The set of KPIs and reports, is expected to be enriched as new informational needs are identified and new reporting capability is developed (either based on the operational systems, or on external data sources).

    The development of a DSS system should follow an iterative method. The data model implemented should allow the gradual expansion of the DSS.

    Copyright 2006 – Kostis Panayotakis

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