Open iT ComputeAnalyzer™ Description
ComputeAnalyzer™ tracks CPU, memory, and I/O consumption in GRID computing settings, including LSF, PBS Professional, Open PBS, Sun Grid Engine, and TORQUE.
Key Advantages of the Product:
✅ Delivers a comprehensive view of resource utilization trends
✅ Facilitates precise and adaptable financial planning and chargeback processes
✅ Supports the optimization of system resource performance
Applications of ComputeAnalyzer include:
✅ Return on Investment Assessment
✅ Organization-wide Resource Monitoring
✅ Negotiations with Vendors
Open iT ComputeAnalyzer™ Alternatives
Compute Engine (IaaS), a platform from Google that allows organizations to create and manage cloud-based virtual machines, is an infrastructure as a services (IaaS).
Computing infrastructure in predefined sizes or custom machine shapes to accelerate cloud transformation. General purpose machines (E2, N1,N2,N2D) offer a good compromise between price and performance. Compute optimized machines (C2) offer high-end performance vCPUs for compute-intensive workloads. Memory optimized (M2) systems offer the highest amount of memory and are ideal for in-memory database applications. Accelerator optimized machines (A2) are based on A100 GPUs, and are designed for high-demanding applications. Integrate Compute services with other Google Cloud Services, such as AI/ML or data analytics. Reservations can help you ensure that your applications will have the capacity needed as they scale. You can save money by running Compute using the sustained-use discount, and you can even save more when you use the committed-use discount.
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Most enterprises can report what AI cost them. Far fewer can say which team owns it, whether it was approved, or what it returned.
FinOpsly closes that gap. The platform governs AI spend on the same cost model that carries the cloud, data platform and SaaS an AI workload consumes, so a business unit sees the full cost of an AI initiative instead of four disconnected bills.
Capabilities include:
Cost estimation before deployment. Model an architecture and get a priced workload across model APIs, GPU capacity, warehouse consumption and storage, with the assumptions on screen. Weigh model choices against consumption you have actually measured.
Attribution that holds up in a chargeback cycle. Spend resolves to owners, teams, applications, business units and customers through hierarchies nine or more levels deep. Tagging is standardized across providers, keys and resources are labeled in bulk from plain-language rules, and whatever remains unattributed is published as a number, not absorbed.
Guardrails that act. Set budgets by project, team or API key. Catch anomalies with root cause and route them to whoever owns the resource. Surface waste that provider tooling misses, using FinOpsly's own detection models. Plan commitments across AWS, Azure and Google Cloud. Park idle compute on approved schedules, reversibly.
Financial results you can defend. Automated chargeback in a single cycle. Savings measured as what reached run-rate against a no-action baseline. Unit economics down to cost per call, per active user and per customer served.
For technology and finance leaders accountable for what AI spend returns.
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Business LOG
Over 11,000 companies have installed Business LOG, making it the most popular tool for log management. Available in On-Premise or SaaS versions, with Agent Methods and Log Collector Agent less. Business LOG offers complete log analysis, reports, alerts, a powerful search engine, and flexible log storage.
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SAS Grid Manager
SAS Grid Manager empowers organizations to excel in their competitive landscape by enhancing computing capabilities, efficiently addressing peak demands in a cost-effective manner through a versatile, centrally governed grid computing framework. This system allows IT departments to adaptively meet service level agreements by reallocating computing resources to handle high-demand workloads or shifting business requirements, all while maintaining centralized control over policies, programs, queues, and job prioritization for various users and applications. In a grid setup that incorporates multiple servers, tasks can be executed on the most suitable resource available, ensuring that if one server encounters an issue, tasks can seamlessly transition to an alternative server without delay. IT personnel can carry out maintenance on designated servers or augment computing resources without causing interruptions to ongoing analytics tasks or business operations. Additionally, SAS Grid Manager enhances support for a range of analytics environments by efficiently managing jobs not only in SAS but also in other programming languages, which fosters rapid execution of analytical processes. This capability significantly boosts productivity while ensuring that analytics workflows remain uninterrupted, further solidifying an organization’s operational efficiency.
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Pricing
Pricing Starts At:
Contact Vendor
Pricing Information:
Custom quotes based on compute nodes/workstations monitored and deployment scope
Integrations
Company Details
Company:
Open iT, Inc.
Year Founded:
1999
Headquarters:
United States
Website:
openit.com/products/computeanalyzer/
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Online Support
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