2VM3558 - Versal Prime Gen2 Adaptive SoC | AMD
MPN: 2VM3558 β Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $1500 | $1,500.00 |
| 10 | $1350 | $13,500.00 |
| 100 | $1200 | $120,000.00 |
| 500 | $1050 | $525,000.00 |
| 1,000 | $900 | $900,000.00 |
Drop-in alternatives for 2VM3558 β same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.
Quick Comparison Tool β Select alternative parts for side-by-side comparison:
2VM3858
β Drop-Inπ Reference alternative (not in catalog)
2VM3358
β Drop-Inβ In Stock
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View Datasheet β2VE3558
β Drop-Inπ Reference alternative (not in catalog)
2VE3858
β Drop-Inπ Reference alternative (not in catalog)
2VM3558 Maximum Ratings & Electrical Characteristics
| Family | Versal Prime Gen2 |
| Application Cores | 8x Arm Cortex-A78AE |
| Real-Time Cores | 10x Arm Cortex-R52 |
| Logic Cells | 1188K |
| LUTs | 543K |
| Transceivers | 24x GTYP up to 32Gbps |
| PCIe | Gen5 |
| Memory Support | 4GB LPDDR5x |
| Video Codec Unit | Yes |
| Image Signal Processor | Yes |
| Package | SSVA1440 |
| Operating Temperature | -40Β°C to +85Β°C (Industrial) |
| I/O Standards | 3.3V HD, 1.5V XP |
| MIO Count | [DATA_NEEDED: MIO count] |
| RoHS | Compliant |
2VM3558 Pin Configuration
| Pin A1 | VCCINT β Core logic power supply |
| Pin A2 | GND β Ground |
| Pin B1 | VCCO_0 β I/O bank 0 supply |
| Pin B2 | MIO[0] β Multiplexed I/O |
| Pin C1 | GTYP_0 β Transceiver lane 0 |
| Pin C2 | GTYP_1 β Transceiver lane 1 |
| Pin D1 | PCIE_0 β PCIe lane 0 |
| Pin D2 | PCIECLK β PCIe reference clock |
| Pin E1 | DDR_A[0] β DDR address bit 0 |
| Pin E2 | DDR_DQ[0] β DDR data bit 0 |
| Pin F1 | HDIO_0 β High-density I/O |
| Pin F2 | XPIO_0 β High-performance I/O |
Safe Operating Area (SOA) & Thermal Characteristics
No official SOA curve available for this digital IC. Always operate within absolute maximum ratings specified in the datasheet. Ensure adequate cooling and derate as needed.
Typical Applications
2VM3558 is suitable for 6 applications: Avionics and Defense, Industrial Automation, Edge Computing, 5G and Wireless Infrastructure, Medical Imaging, Automotive.
Avionics and Defense
The 2VM3558's high-performance scalar compute and adaptable logic make it ideal for avionics systems requiring real-time processing and hardware acceleration. Its 8 Cortex-A78AE cores and 10 Cortex-R52 cores provide up to 10x compute versus previous generations, enabling complex sensor fusion and mission-critical processing. The device supports industrial temperature ranges and is designed for reliability in harsh environments. With PCIe Gen5 and GTYP transceivers, it can handle high-bandwidth data links for radar and communication systems. The programmable logic allows custom accelerators for signal processing, reducing latency and power consumption compared to software-only implementations.
Recommended
Industrial Automation
In industrial automation, the 2VM3558 provides a flexible platform for machine vision, motion control, and edge computing. Its programmable logic can implement real-time control loops and vision processing, while the Arm cores handle communication protocols and HMI. The device supports up to 1188K logic cells, allowing complex algorithms to be accelerated in hardware. With industrial temperature range and robust I/O, it is suitable for factory floor environments. The integration of a Video Codec Unit and ISP enables advanced imaging capabilities for inspection systems. The 2VM3558's scalability across the Versal family allows design reuse for different performance tiers.
Recommended
Edge Computing
The 2VM3558 is well-suited for edge computing applications that require high compute density and low latency. Its 8 Cortex-A78AE cores provide powerful scalar processing, while the programmable logic can accelerate AI inference and data preprocessing. The device supports PCIe Gen5, enabling high-speed connectivity to NVMe storage and GPUs. With up to 24 GTYP transceivers, it can handle multiple high-speed interfaces for networking and data acquisition. The 2VM3558's power efficiency makes it suitable for edge servers and gateways. Its ability to be reconfigured in the field allows over-the-air updates and adaptation to changing workloads.
Recommended
5G and Wireless Infrastructure
The 2VM3558 is designed for 5G base stations and wireless infrastructure, offering high-throughput signal processing and flexible hardware acceleration. Its GTYP transceivers support up to 32Gbps, enabling CPRI/eCPRI interfaces for fronthaul/backhaul. The programmable logic can implement beamforming, channel coding, and PHY layer processing, while the Arm cores handle protocol stacks and network management. The device's high logic density allows multiple channels to be processed in parallel. With support for PCIe Gen5, it can interface with high-speed network processors and accelerators. The 2VM3558's reliability and long-term availability make it suitable for telecom infrastructure.
Recommended
Medical Imaging
In medical imaging, the 2VM3558 provides high-performance processing for modalities like ultrasound, CT, and MRI. Its programmable logic can accelerate image reconstruction and filtering, while the Arm cores handle system control and user interface. The integrated Video Codec Unit and ISP support advanced image processing. The device's high logic density enables real-time processing of high-resolution images. With industrial temperature range and reliability, it is suitable for medical equipment. The 2VM3558's ability to be reconfigured allows algorithm updates without hardware changes, extending product lifespan.
Recommended
Automotive
The 2VM3558 is suitable for automotive applications such as ADAS and in-vehicle infotainment, offering high compute performance and functional safety features. Its 8 Cortex-A78AE cores provide powerful processing for sensor fusion and decision-making, while the programmable logic can implement custom accelerators for vision and radar processing. The device supports PCIe Gen5 for high-speed connectivity to cameras and sensors. With industrial temperature range, it can operate in automotive environments. The 2VM3558's scalability allows design reuse across different vehicle platforms. However, for automotive-grade qualification, consider the AEC-Q100 qualified variants if available.
Recommended
Recommended Products Summary
Engineering reference data for 2VM3558 β comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | 2VM3858 | 2VM3358 | 2VE3558 |
|---|---|---|---|---|
| Package | SSVA1440 | SSVA1440 | SSVA1440 | SSVA1440 |
| Brand | AMD | AMD | AMD | AMD |
| Logic Cells | 1188K | 1188K | [DATA_NEEDED] | [DATA_NEEDED] |
| Transceivers | 24x GTYP up to 32Gbps | 24x GTYP up to 32Gbps | [DATA_NEEDED] | [DATA_NEEDED] |
| Application Cores | 8x Cortex-A78AE | 8x Cortex-A78AE | 8x Cortex-A78AE | 8x Cortex-A78AE |
| Real-Time Cores | 10x Cortex-R52 | 10x Cortex-R52 | 10x Cortex-R52 | 10x Cortex-R52 |
| PCIe | Gen5 | Gen5 | Gen5 | Gen5 |
| Memory Support | 4GB LPDDR5x | 4GB LPDDR5x | 4GB LPDDR5x | 4GB LPDDR5x |
Key Differentiators
- Up to 10x scalar compute vs previous Versal (vs XC7Z020)
- PCIe Gen5 support (vs 2VM3358)
- Higher logic density than 2VM3358 (vs 2VM3358)
Design Notes
The 2VM3558 requires multiple power rails with specific sequencing. Refer to AMD's power management reference design for the Versal Prime Gen2. Use PMICs like the MPS MP86956 or TI TPS6594 for proper sequencing. Ensure adequate decoupling capacitors near each power pin to minimize voltage ripple.
The 2VM3558 can dissipate significant power under heavy load. Use a heatsink or active cooling for high-performance applications. The SSVA1440 package has a thermal resistance that requires careful thermal management. Simulate thermal performance using AMD's power estimation tools and ensure junction temperature stays below 100Β°C.
For high-speed transceivers (GTYP up to 32Gbps), follow AMD's PCB layout guidelines for impedance control and signal integrity. Use controlled impedance traces (e.g., 85Ξ© differential) and minimize via stubs. Place transceivers close to the edge of the PCB to reduce routing length. Refer to AM013 for pinout and bank diagrams.
Compliance Information
RoHS compliance is assumed based on AMD's standard compliance. AEC-Q100 qualification is not applicable for this device; automotive-grade variants may be available.