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As enterprise networks become more distributed and complex, NetOps teams face increasing pressure to resolve issues quickly, often without the benefit of deep domain expertise. At the same time, many AI-driven monitoring solutions rely on sending limited datasets to the cloud, introducing latency, increasing cost, and restricting visibility.
TotalView AI takes a fundamentally different approach.
By operating entirely on-premises, TotalView AI analyzes a broader and richer set of network data—without the constraints of cloud ingestion limits or transport delays. This enables faster, more accurate insights while ensuring data never leaves the customer’s environment.
“AI is only as effective as the data behind it,” said Tim Titus, CTO at PathSolutions. “With TotalView AI, we’re not sampling or filtering data to fit cloud pipelines. We’re analyzing the complete dataset locally, which allows us to deliver precise, real-time root-cause analysis.”
TotalView AI is built on a core principle: better data leads to better outcomes. By keeping data collection and analysis on-premises, organizations gain several critical advantages:
Key capabilities of TotalView AI:
While many vendors are introducing AI features, most rely on partial or sampled data, limiting their effectiveness. TotalView AI is designed to work with a complete, high-fidelity view of the network, ensuring more accurate conclusions and fewer false positives.
“The challenge in network operations isn’t just too much data—it’s incomplete data and lack of correlation,” added Tim Titus. “TotalView AI addresses both by analyzing everything, in real time, right where the data lives.”
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