834 resultados para business intelligence


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Sustainable development support, balanced scorecard development and business process modeling are viewed from the position of systemology. Extensional, intentional and potential properties of a system are considered as necessary to satisfy functional requirements of a meta-system. The correspondence between extensional, intentional and potential properties of a system and sustainable, unsustainable, crisis and catastrophic states of a system is determined. The inaccessibility cause of the system mission is uncovered. The correspondence between extensional, intentional and potential properties of a system and balanced scorecard perspectives is showed. The IDEF0 function modeling method is checked against balanced scorecard perspectives. The correspondence between balanced scorecard perspectives and IDEF0 notations is considered.

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With advances in science and technology, computing and business intelligence (BI) systems are steadily becoming more complex with an increasing variety of heterogeneous software and hardware components. They are thus becoming progressively more difficult to monitor, manage and maintain. Traditional approaches to system management have largely relied on domain experts through a knowledge acquisition process that translates domain knowledge into operating rules and policies. It is widely acknowledged as a cumbersome, labor intensive, and error prone process, besides being difficult to keep up with the rapidly changing environments. In addition, many traditional business systems deliver primarily pre-defined historic metrics for a long-term strategic or mid-term tactical analysis, and lack the necessary flexibility to support evolving metrics or data collection for real-time operational analysis. There is thus a pressing need for automatic and efficient approaches to monitor and manage complex computing and BI systems. To realize the goal of autonomic management and enable self-management capabilities, we propose to mine system historical log data generated by computing and BI systems, and automatically extract actionable patterns from this data. This dissertation focuses on the development of different data mining techniques to extract actionable patterns from various types of log data in computing and BI systems. Four key problems—Log data categorization and event summarization, Leading indicator identification , Pattern prioritization by exploring the link structures , and Tensor model for three-way log data are studied. Case studies and comprehensive experiments on real application scenarios and datasets are conducted to show the effectiveness of our proposed approaches.

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“La Business Intelligence per il monitoraggio delle vendite: il caso Ducati Motor Holding”. L’obiettivo di questa tesi è quello di illustrare cos’è la Business Intelligence e di mostrare i cambiamenti verificatisi in Ducati Motor Holding, in seguito alla sua adozione, in termini di realizzazione di report e dashboard per il monitoraggio delle vendite. L’elaborato inizia con una panoramica generale sulla storia e gli utilizzi della Business Intelligence nella quale vengono toccati i principali fondamenti teorici: Data Warehouse, data mining, analisi what-if, rappresentazione multidimensionale dei dati, costruzione del team di BI eccetera. Si proseguirà mediante un focus sui Big Data convogliando l’attenzione sul loro utilizzo e utilità nel settore dell’automotive (inteso nella sua accezione più generica e cioè non solo come mercato delle auto, ma anche delle moto), portando in questo modo ad un naturale collegamento con la realtà Ducati. Si apre così una breve overview sull’azienda descrivendone la storia, la struttura commerciale attraverso la quale vengono gestite le vendite e la gamma dei prodotti. Dal quarto capitolo si entra nel vivo dell’argomento: la Business Intelligence in Ducati. Si inizia descrivendo le fasi che hanno fino ad ora caratterizzato il progetto di Business Analytics (il cui obiettivo è per l'appunto introdurre la BI i azienda) per poi concentrarsi, a livello prima teorico e poi pratico, sul reporting sales e cioè sulla reportistica basata sul monitoraggio delle vendite.

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La importancia del proceso de toma de decisiones en la determinación del éxito de las compañías; genera la necesidad de contar con una fuente de información confiable que permita la generación de conocimiento oportuno y a disposición de quien lo necesita. El propósito de esta investigación es establecer un marco de referencia de la utilización de Business Intelligence como soporte de las decisiones tácticas, estratégicas y operacionales en las empresas. Iniciando con la descripción de la evolución de los sistemas de información utilizados en el proceso de toma de decisiones, impulsada por los diferentes cambios tecnológicos que han marcado el camino del establecimiento de Business Intelligence como una solución integral para los desafíos que se presentan a diario relacionados con la búsqueda de generación de valor mediante la implementación de decisiones óptimas. Luego se describe la arquitectura de un sistema de inteligencia de negocios en la cual se define elementos básicos para el correcto funcionamiento, como lo son: almacenamiento de datos, funciones empresariales, sistemas de gestión y las interfaces de usuario. Además de describir el proceso y alcance de su correcta implementación, y poder así obtener los beneficios que estos sistemas ofrecen. La metodología desarrollada en la investigación fue descriptiva, y se fundamentó en identificar el grado de utilización de Business Intelligence por los tomadores de decisiones, representados por egresados y graduados de la Maestría en Administración Financiera de la Universidad de El Salvador en el período 2006-2015.

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Making sense of an organization overwhelmed with data becomes a problem for decision makers at all levels of business planning and operation. Although scholars have suggested several technological solutions such as business intelligence as being useful in helping busy executives to make decisions, we still know little about assisting business stakeholders in the process of understanding their organizational complexity before such decisions could even be formulated. In this paper, we investigate the opportunities in using BI technologies to make sense of a business environment. We analyze the views and opinions of developers, analysts, consultants, and users of business intelligence, who are experienced in using the technology beyond decision making to support organizational sensemaking. Our results highlight the need for creating and maintaining individual; and organizational identity and enacting this identity on the business and its environment.

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This paper presents an integrated framework that comprises an automatic weighting method for assessing data quality (DQ) of the framework so as to better support the business intelligence (BI) usage. Specifically, we utilize business process modeling (BPM) notation and information product map and frame them into a hierarchical mapping structure. Furthermore, we develop and demonstrate an automatic weight-assignment method for evaluating critical dimensions (i.e., completeness and accuracy) of DQ of the integrated framework. Through a design science paradigm, the effectiveness of the framework and the associated DQ weighting method has been rigorously validated by faculty management users of a university. The framework together with the DQ weighting method builds user confidence by enhancing the traceability of a BI product. The automatic DQ weight assignment also provides better time efficiency because the weight of each data attribute is determined automatically based on its usage on the BI dashboard.

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I Big Data stanno guidando una rivoluzione globale. In tutti i settori, pubblici o privati, e le industrie quali Vendita al dettaglio, Sanità, Media e Trasporti, i Big Data stanno influenzando la vita di miliardi di persone. L’impatto dei Big Data è sostanziale, ma così discreto da passare inosservato alla maggior parte delle persone. Le applicazioni di Business Intelligence e Advanced Analytics vogliono studiare e trarre informazioni dai Big Data. Si studia il passaggio dalla prima alla seconda, mettendo in evidenza aspetti simili e differenze.

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Morteza’s thesis investigated the opportunities in using BI technologies to make sense of a business environment. The results of his research highlighted the need for creating and maintaining an identity for Business Intelligence at both individual and organizational level and enacting this identity on the business and its environment.

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O objecto de estudo desta tese de mestrado surgiu da necessidade de dar resposta a uma proposta para uma solução de business intelligence a pedido de um cliente da empresa onde até à data me encontro a desempenhar funções de analista programador júnior. O projecto consistiu na realização de um sistema de monitorização de eventos e análise de operações, portanto um sistema integrado de gestão de frotas com módulo de business intelligence. Durante o decurso deste projecto foi necessário analisar metodologias de desenvolvimento, aprender novas linguagens, ferramentas, como C#, JasperReport, visual studio, Microsoft SQL Server entre outros. ABSTRACT: Business Intelligence applied to fleet management systems - Technologies and Methodologies Analysis. The object of study of this master's thesis was the necessity of responding to a proposal for a business intelligence solution at the request of a client company where so far I find the duties of junior programmer. The project consisted of a system event monitoring and analysis of operations, so an integrated fleet management with integrated business intelligence. During the course of this project was necessary to analyze development methodologies, learn new languages, tools such as C #, JasperReports, visual studio, Microsoft Sql Server and others.

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The global business environment is witnessing tough times, and this situation has significant implications on how organizations manage their processes and resources. Accounting information system (AIS) plays a critical role in this situation to ensure appropriate processing of financial transactions and availability to relevant information for decision-making. We suggest the need for a dynamic AIS environment for today’s turbulent business environment. This environment is possible with a dynamic AIS, complementary business intelligence systems, and technical human capability. Data collected through a field survey suggests that the dynamic AIS environment contributes to an organization’s accounting functions of processing transactions, providing information for decision making, and ensuring an appropriate control environment. These accounting processes contribute to the firm-level performance of the organization. From these outcomes, one can infer that a dynamic AIS environment contributes to organizational performance in today’s challenging business environment.

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Heterogeneous health data is a critical issue when managing health information for quality decision making processes. In this paper we examine the efficient aggregation of lifestyle information through a data warehousing architecture lens. We present a proof of concept for a clinical data warehouse architecture that enables evidence based decision making processes by integrating and organising disparate data silos in support of healthcare services improvement paradigms.

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Information visualization is a process of constructing a visual presentation of abstract quantitative data. The characteristics of visual perception enable humans to recognize patterns, trends and anomalies inherent in the data with little effort in a visual display. Such properties of the data are likely to be missed in a purely text-based presentation. Visualizations are therefore widely used in contemporary business decision support systems. Visual user interfaces called dashboards are tools for reporting the status of a company and its business environment to facilitate business intelligence (BI) and performance management activities. In this study, we examine the research on the principles of human visual perception and information visualization as well as the application of visualization in a business decision support system. A review of current BI software products reveals that the visualizations included in them are often quite ineffective in communicating important information. Based on the principles of visual perception and information visualization, we summarize a set of design guidelines for creating effective visual reporting interfaces.

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Im Rahmen der Globalisierung und des daraus resultierenden Wettbewerbs ist es für ein Unternehmen von zentraler Bedeutung, Wissen über die Wettbewerbssituation zu erhalten. Nicht nur zur Erschließung neuer Märkte, sondern auch zur Sicherung der Unternehmensexistenz ist eine Wettbewerbsanalyse unabdingbar. Konkurrenz- bzw. Wettbewerbsforschung wird überwiegend als „Competitive Intelligence“ bezeichnet. In diesem Sinne beschäftigt sich die vorliegende Bachelorarbeit mit einem Bereich von Competitive Intelligence. Nach der theoretischen Einführung in das Thema werden die Ergebnisse von neun Experteninterviews sowie einer schriftlichen Expertenbefragung innerhalb des Unternehmens erläutert. Die Experteninterviews und -befragungen zum Thema Competitive Intelligence dienten zur Entwicklung eines neuen Wettbewerbsanalysekonzeptes. Die Experteninterviews zeigten, dass in dem Unternehmen kein einheitliches Wettbewerbsanalysesystem existiert und Analysen lediglich ab hoc getätigt werden. Zusätzlich wird ein Länderranking vorgestellt, das zur Analyse europäischer Länder für das Unternehmen entwickelt wurde. Die Ergebnisse zeigten, dass Dänemark und Italien für eine Ausweitung der Exportgeschäfte bedeutend sind. Der neu entwickelte Mitbewerberbewertungsbogen wurde auf Grundlage dieser Ergebnisse für Dänemark und Italien getestet.

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Die nachhaltige Verschiebung der Wachstumsmärkte in Richtung Emerging Markets (und hier insbesondere in die BRIC-Staaten) infolge der Wirtschaftskrise 2008/2009 hat die bereits weit reichend konsolidierte Nutzfahrzeugindustrie der Triadenmärkte in Nordamerika, Europa und Japan vor eine Vielzahl von Herausforderungen gestellt. Strategische Ziele wie die Festigung und Steigerung von Absatzvolumina sowie eine bessere Ausbalancierung von zyklischen Marktentwicklungen, die die Ertragssicherung und eine weitestgehend kontinuierliche Auslastung existenter Kapazitäten sicherstellen soll, sind in Zukunft ohne eine Marktbearbeitung in den ex-Triade Wachstumsmärkten kaum noch erreichbar. Dies verlangt eine Auseinandersetzung der betroffenen Unternehmen mit dem veränderten unternehmerischen Umfeld. Es gilt neue, bisher größtenteils unbekannte Märkte zu erobern und sich dabei neuen – teilweise ebenfalls wenig bekannten - Wettbewerbern und deren teilweise durchaus unkonventionellen Strategien zu stellen. Die Triade-Unternehmen sehen sich dabei Informationsdefiziten und einer zunehmenden Gesamtkomplexität ausgesetzt, die zu für sie zu nachteiligen und ungünstigen nformationsasymmetrien führen können. Die Auswirkungen, dieser Situation unangepasst gegenüberzutreten wären deutlich unsicherheits- und risikobehaftetere Marktbearbeitungsstrategien bzw. im Extremfall die Absenz von Internationalisierungsaktivitäten in den betroffenen Unternehmen. Die Competitive Intelligence als Instrument zur unternehmerischen Umfeldanalyse kann unterstützen diese negativen Informationsasymmetrien zu beseitigen aber auch für das Unternehmen günstige Informationsasymmetrien in Form von Informationsvorsprüngen generieren, aus denen sich Wettbewerbsvorteile ableiten lassen. Dieser Kontext Competitive Intelligence zur Beseitigung von Informationsdefiziten bzw. Schaffung von bewussten, opportunistischen Informationsasymmetrien zur erfolgreichen Expansion durch Internationalisierungsstrategien in den Emerging Markets wird im Rahmen dieses Arbeitspapieres durch die Verbindung von wissenschaftstheoretischen und praktischen Implikationen näher beleuchtet. Die sich aus dem beschriebenen praktischen Anwendungsbeispiel Competitive intelligence für afrikanische Marktbearbeitung ergebenden Erkenntnisse der erfolgreichen Anwendung von Competitive Intelligence als Entscheidungshilfe für Internationalisierungsstrategien sind wie folgt angelegt: - Erweiterung der Status-quo, häufig Stammmarkt-zentristisch angelegten Betrachtungsweisen von Märkten und Wettbewerbern in Hinblick auf das reale Marktgeschehen oder Potentialmärkte - bias-freie Clusterung von Märkten bzw. Wettbewerbern, oder Verzicht auf den Versuch der Simplifizierung durch Clusterbildung - differenzierte Datenerhebungsverfahren wie lokale vs. zentrale / primäre vs. sekundäre Datenerhebung für inhomogene, unterentwickelte oder sich entwickelnde Märkte - Identifizierung und Hinzuziehung von Experten mit dem entscheidenden Wissensvorsprung für den zu bearbeitenden Informationsbedarf - Überprüfung der Informationen durch Datentriangulation