Display memory: 8MB SDRAM VRAM

Display Resolution Number of Colors:

:

2D Display Modes: Resolutions, Colors and Maximum Refresh Rates (Hz)

Resolution

640x 480

800x 600

1024x 768

1152x 864

1280x 1024

1600x 1200

256 colors

200

200

150

120

100

85

 

 

 

 

 

 

 

65K colors

200

200

150

120

100

85

 

 

 

 

 

 

 

16.7M colors

200

200

150

120

100

75

 

 

 

 

 

 

 

 

 

 

Maximum 3D Resolution(Hz)

 

 

 

 

 

 

 

 

 

 

 

 

8MB

 

 

 

 

 

 

 

 

 

 

 

65K colors

1600x1200

 

 

 

 

 

 

 

 

 

 

16.7M colors

1280x1024

 

 

 

 

 

 

 

 

 

 

 

Optional Rear I/O Boards

RIO-3309C

NOTE: MIC-3358 does not support MIC-3960 storage carrier board

Mechanical and Environmental Specifications

Operating temperature: 0 ~ 55° C (32 ~ 131° F)

Storage Temperature: -20 ~ 80° C (-4 ~ 176° F)

Humidity (Non-operating):5~95%@60° C (non-condensing)

Max Power Consumption: +5V / 4.19A, +3.3V / 4.5A, +12V / 35mA

Board size: 233.35 x 160 mm (6U size), 1-slot (4 TE) wide

Weight: 0.8 kg (1.76 lb)

Shock: 20 G (operating); 50 G (Non-operating)

Random vibration: 1.5 Grms (operating), 2.0 Grms (Non-Operating)

5

Chapter1

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Image 13
Intel MIC-3358 user manual Optional Rear I/O Boards

MIC-3358 specifications

The Intel MIC-3358, also known as the Intel Many Integrated Core (MIC) architecture, represents a pivotal innovation in high-performance computing and parallel processing. This product is part of Intel's Xeon Phi family and was specifically designed to tackle demanding workloads, making it a popular choice for research institutions and industries requiring significant computational power.

One of the standout features of the MIC-3358 is its many-core architecture, which integrates numerous processor cores on a single chip. This allows for massively parallel processing capabilities, enabling the execution of multiple tasks simultaneously. With a total of 60 cores, the MIC-3358 can deliver exceptional performance for applications such as scientific simulations, data analytics, and machine learning.

The architecture of the MIC-3358 is notable for its x86 compatibility. Unlike traditional GPUs, the MIC-3358 can run standard x86 applications unmodified, ensuring seamless integration into existing workflows and simplifying development. This feature helps users leverage their existing software tools and libraries without requiring extensive porting or adaptation.

Another key technology is the incorporation of advanced memory architecture, featuring a high-bandwidth memory system. The MIC-3358 supports GDDR5 memory, enabling rapid data transfer rates that are crucial for performance-intensive applications. This, combined with an efficient memory architecture, helps overcome memory bandwidth limitations often encountered in high-performance computing.

The MIC-3358 also includes support for Intel's advanced vector extensions (AVX) and AVX-512, which enhance the processing of vector operations and allow for more efficient data handling. This makes the MIC-3358 particularly effective for workloads that involve large datasets and require complex mathematical computations.

Energy efficiency is another defining characteristic of the MIC-3358. Despite its high core count, the architecture is designed to deliver optimal performance per watt, making it suitable for large data centers where power consumption is a crucial factor.

In summary, the Intel MIC-3358 stands out due to its many-core architecture, x86 compatibility, high-bandwidth memory support, advanced vector instructions, and energy efficiency. These features collectively position it as a powerful solution for high-performance computing challenges, enabling a wide array of applications across various sectors. As the demand for computational resources continues to grow, the MIC-3358 remains a vital component in the landscape of advanced computing technologies.