Intel cc2300, cc3300 manual Console Requirements Overview, Red Hat Linux 7.1 Requirements

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Intel Server Control Installation Guide

Red Hat Linux 7.1 Requirements

If you intend to manage a Linux file server, it must meet the following minimum requirements:

Linux Red Hat 7.1 or Red Hat Enterprise Linux AS 2.1 operating system running multiple- processor kernel

32 MB of RAM

60 MB of available disk space

Additional Requirements for DMI-SNMP Translation

Simple Network Management Protocol (SNMP) support must be installed if you want to integrate ISC with an SNMP-based management framework. On the managed server, you should consider the following issues when configuring SNMP:

Community string names for SNMP Get and Set operations

Community string names for sending traps

The destination address for the management console receiving the traps

On the management console, you should consider the following issues when configuring SNMP:

Compiling the MIBs into the SNMP management consoles

Integration of ISC traps into SNMP management consoles

Console Requirements Overview

ISC Console Software can integrate into an Enterprise System Management Console or it can be installed on a stand-alone console. The supported Enterprise System Management Consoles are:

1.H-P OpenViewNetwork Node Manager 6.1 for Windows NT

2.Intel® LANDesk® Server Manager 6.1

1. CA UnicenterTNG2.4 for Windows NT

Console System requirements may be different when using one of the supported management applications. Please refer to their installation requirements for additional information.

You can use the ISC stand-alone console to manage ISC-enabled servers without Enterprise System Management. The ISC Console is implemented as an ActiveXcontrol that runs within its own container or a third party container application (e.g., Microsoft Management Console, Internet Explorerv5.6, or Netscape Navigatorv6.0 with ActiveX plug-in).

Windows 2000 Console Requirements

Windows 2000 Advanced Server

Intel® Pentium® microprocessor or higher

At least 64 MB of RAM

At least 10 MB of available disk space

Microsoft Windows-compatible modem must be used if you connect to the server by modem

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Contents Document Release Date March Legal Information Contents Windows 2000 Requirements Intel Server ControlSystem Requirements Overview Red Hat Linux 7.1 Requirements Console Requirements OverviewAdditional Requirements for DMI-SNMP Translation Windows 2000 Console RequirementsService Partition Installation Service PartitionInstallation RequirementsBoot the Server from the Service Partition Configuring the Server for EMP Access Locally Booting the Server from the Service PartitionRemotely Booting the Server from the Service Partition Option Entry Configuring the Server for LAN AccessIntel Server Control Installation Guide Enabling LAN Events Using the Direct Platform Control DPC ConsoleUsing the Client System Setup Utility Cssu Compatibility and Upgrade Issues Installing Intel Server Control ISCManaged Server Preparation Linux Red HatWindows 2000 Advanced Server ISC Installation Procedure for Windows 2000 Advanced ServerInstalling Linux DMI Service Provider You should see filenames similar to the following Installing ISC Server InstrumentationLaunching Intel Server Control ISC Configuring the SNMP-DMI MapperLANDesk Server Manager Intel Server Control H-P Network Node ManagerCA-Unicenter TNG ISC ConsoleDirect Platform Control Console Management Plug-In HP Carrier Grade Server Functionality MatrixRemote Boot/Access Service Partition Remote Repair

cc2300, cc3300 specifications

Intel has long been a key player in the semiconductor industry, renowned for its innovative microprocessors and technological advancements. Among its array of products are the CC3300 and CC2300, which are designed specifically for Internet of Things (IoT) applications. These chips are part of Intel's commitment to driving intelligence and connectivity at the edge of networks.

The Intel CC3300 is a highly integrated System-on-Chip (SoC) that combines advanced processing capabilities with state-of-the-art wireless connectivity. Targeting various applications, including smart homes, industrial automation, and wearable devices, the CC3300 offers excellent performance while maintaining energy efficiency. Its architecture supports low-power modes that extend battery life, making it suitable for devices that operate with limited energy resources.

Key features of the CC3300 include robust security protocols, enabling the implementation of secure connections crucial for IoT applications. The chip incorporates hardware-based security features such as encryption engines and secure boot mechanisms that protect data integrity and user privacy. Furthermore, the CC3300 supports multiple protocols, including MQTT and HTTP, allowing developers to choose the best communication method for their needs.

On the other hand, the Intel CC2300, while designed with similar considerations for IoT, emphasizes ultra-low-power consumption and compact design. It excels in scenarios where space is at a premium and where maintaining long battery life is critical. This SoC integrates various peripherals that streamline connectivity options, including Bluetooth, Zigbee, and other short-range communications. The CC2300 is particularly suitable for applications in smart wearables and sensor networks, where size and energy efficiency are paramount.

Both the CC3300 and CC2300 utilize advanced manufacturing technologies, ensuring high reliability and performance. These chips are built on cutting-edge processes that enhance their operational capabilities while reducing the carbon footprint. Additionally, Intel’s dedicated software and development tools facilitate faster prototyping and deployment, empowering developers to bring their innovative ideas to fruition.

In summary, the Intel CC3300 and CC2300 microcontrollers are pioneering solutions for modern IoT applications. With their rich feature sets, energy-efficient designs, and robust security measures, these SoCs are well-positioned to foster the next wave of intelligent, connected devices. By leveraging these technologies, developers can create versatile solutions that enhance the connectivity and functionality of everyday devices, contributing to the broader vision of a smart, interconnected world.