Splunk’s annual gathering, this year called .conf 2015, in late September hosted almost 4,000 Splunk customers, partners and employees. It is one of the fastest-growing user conferences in the technology industry. The area dedicated to Splunk partners has grown from a handful of booths a few years ago to a vast showroom floor many times larger. While the conference’s main announcement was the release of Splunk Enterprise 6.3, its flagship platform, the progress the company is making in the...
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Topics:
Big Data,
Predictive Analytics,
Machine Learning,
IT Analytics & Performance,
Operational Performance,
Plunk,
Analytics,
Business Analytics,
Business Intelligence,
Business Performance,
Cloud Computing,
Information Management,
Internet of Things,
Operational Intelligence,
Data,
Information Optimization
The concept and implementation of what is called big data are no longer new, and many organizations, especially larger ones, view it as a way to manage and understand the flood of data they receive. Our benchmark research on big data analytics shows that business intelligence (BI) is the most common type of system to which organizations deliver big data. However, BI systems aren’t a good fit for analyzing big data. They were built to provide interactive analysis of structured data sources using...
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Topics:
Big Data,
Predictive Analytics,
Software as a Service,
IT Analytics & Performance,
Operational Performance,
Analytics,
Business Analytics,
Business Intelligence,
Business Performance,
Cloud Computing,
Information Management,
Operational Intelligence,
Data,
Information Optimization
One of the key findings in our latest benchmark research into predictive analytics is that companies are incorporating predictive analytics into their operational systems more often than was the case three years ago. The research found that companies are less inclined to purchase stand-alone predictive analytics tools (29% vs 44% three years ago) and more inclined to purchase predictive analytics built into business intelligence systems (23% vs 20%), applications (12% vs 8%), databases (9% vs...
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Topics:
Big Data,
Microsoft,
Predictive Analytics,
SAS,
Social Media,
alteryx,
Customer Performance,
Operational Performance,
Analytics,
Business Analytics,
Business Intelligence,
Business Performance,
Operational Intelligence,
Oracle,
Information Optimization,
SPSS,
Rapidminer
Our benchmark research into predictive analytics shows that lack of resources, including budget and skills, is the number-one business barrier to the effective deployment and use of predictive analytics; awareness – that is, an understanding of how to apply predictive analytics to business problems – is second. In order to secure resources and address awareness problems a business case needs to be created and communicated clearly wherever appropriate across the organization. A business case...
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Topics:
Big Data,
Microsoft,
Predictive Analytics,
SAS,
Social Media,
alteryx,
Customer Performance,
Operational Performance,
Analytics,
Business Analytics,
Business Intelligence,
Operational Intelligence,
Oracle,
Information Optimization,
SPSS,
Rapidminer
Our recently completed benchmark research on data and analytics in the cloud shows that analytics deployed in cloud-based systems is gaining widespread adoption. Almost half (48%) of participating organizations are using cloud-based analytics, another 19 percent said they plan to begin using it within 12 months, and 31 percent said they will begin to use cloud-based analytics but do not know when. Participants in various areas of the organization said they use cloud-based analytics, but...
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Topics:
Big Data,
Software as a Service,
Operational Performance Management (OPM),
Analytics,
Business Analytics,
Business Collaboration,
Business Intelligence,
Customer & Contact Center,
Operational Intelligence,
Business Performance Management (BPM),
Data,
Information Optimization
Our research into next-generation predictive analytics shows that along with not having enough skilled resources, which I discussed in my previous analysis, the inability to readily access and integrate data is a primary reason for dissatisfaction with predictive analytics (in 62% of participating organizations). Furthermore, this area consumes the most time in the predictive analytics process: The research finds that preparing data for analysis (40%) and accessing data (22%) are the parts of...
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Topics:
Big Data,
Microsoft,
Predictive Analytics,
alteryx,
Customer Performance,
Operational Performance,
Analytics,
Business Analytics,
Business Intelligence,
Business Performance,
Operational Intelligence,
Oracle,
Information Optimization
The Performance Index analysis we performed as part of our next-generation predictive analytics benchmark research shows that only one in four organizations, those functioning at the highest Innovative level of performance, can use predictive analytics to compete effectively against others that use this technology less well. We analyze performance in detail in four dimensions (People, Process, Information and Technology), and for predictive analytics we find that organizations perform best in...
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Topics:
Big Data,
Microsoft,
Predictive Analytics,
alteryx,
Operational Performance Management (OPM),
Customer Performance,
Analytics,
Business Analytics,
Business Intelligence,
Business Performance,
Location Intelligence,
Oracle,
Information Optimization
Our benchmark research into big data analytics shows that marketing in the form of cross-selling and upselling (38%) and customer understanding (32%) are the top use cases for big data analytics. Related to these uses, organizations today spend billions of dollars on programs seeking customer loyalty and satisfaction. A powerful metric that impacts this spending is net promoter score (NPS), which attempts to connect brand promotion with revenue. NPS has proven to be a popular metric among major...
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Topics:
Big Data,
Customer Performance,
Business Analytics,
Business Performance,
Operational Intelligence,
Information Optimization
Data is an essential ingredient for every aspect of business, and those that use it well are likely to gain advantages over competitors that do not. Our benchmark research on information optimization reveals a variety of drivers for deploying information, most commonly analytics, information access, decision-making, process improvements and customer experience and satisfaction. To accomplish any of these purposes requires that data be prepared through a sequence of steps: accessing, searching,...
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Topics:
Big Data,
Sales Performance,
Supply Chain Performance,
Customer Performance,
Operational Performance,
Analytics,
Business Analytics,
Business Collaboration,
Business Intelligence,
Business Mobility,
Business Performance,
Cloud Computing,
Data Preparation,
Financial Performance,
Information Applications,
Information Management,
Location Intelligence,
Operational Intelligence,
Workforce Performance,
Information Optimization
Big data has become a big deal as the technology industry has invested tens of billions of dollars to create the next generation of databases and data processing. After the accompanying flood of new categories and marketing terminology from vendors, most in the IT community are now beginning to understand the potential of big data. Ventana Research thoroughly covered the evolving state of the big data and information optimization sector in 2014 and will continue this research in 2015 and...
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Topics:
Big Data,
MapR,
Predictive Analytics,
Sales Performance,
SAP,
Supply Chain Performance,
Human Capital,
Marketing,
Mulesoft,
Paxata,
SnapLogic,
Splunk,
Customer Performance,
Operational Performance,
Business Analytics,
Business Intelligence,
Business Performance,
Cloud Computing,
Cloudera,
Financial Performance,
Hortonworks,
IBM,
Informatica,
Information Management,
Operational Intelligence,
Oracle,
Datawatch,
Dell Boomi,
Information Optimization,
Savi,
Sumo Logic,
Tamr,
Trifacta,
Strata+Hadoop