10AS057H3F34E2SG - Arria 10 SX SoC FPGA, 570K LE, 1.5GHz | Intel
MPN: 10AS057H3F34E2SG ✓ Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $4500 | $4,500.00 |
| 10 | $4250 | $42,500.00 |
| 100 | $3950 | $395,000.00 |
| 500 | $3600 | $1,800,000.00 |
| 1,000 | $3300 | $3,300,000.00 |
Drop-in alternatives for 10AS057H3F34E2SG — same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.
Quick Comparison Tool — Select alternative parts for side-by-side comparison:
10AS057H3F34E2LG
✅ Drop-In✓ In Stock
$2485 / Unit
View Datasheet →10AS057H3F34E2LG
✅ Drop-In✓ In Stock
$2485 / Unit
View Datasheet →10AS057H2F34E2SG
✅ Drop-In✓ In Stock
$3250 / Unit
View Datasheet →10AS057H2F34E2LG
✅ Drop-In✓ In Stock
$2524.1 / Unit
View Datasheet →10AS057H1F34E1HG
✅ Drop-In✓ In Stock
$3300 / Unit
View Datasheet →10AS066H3F34I2SG
✅ Drop-In📋 Reference alternative (not in catalog)
10AS048K3F35I2SG
✅ Drop-In✓ In Stock
$1995 / Unit
View Datasheet →10AS057H3F34E2SG Maximum Ratings & Electrical Characteristics
| Family | Arria 10 SX |
| Device Type | System on Chip (SoC) FPGA |
| Logic Elements | 570,000 |
| Hard Processor System | Dual ARM Cortex-A9 MPCore with CoreSight |
| Processor Core Speed | 1.5 GHz |
| Process Technology | 20 nm |
| Core Voltage | 0.9 V |
| Package | 1152-FBGA, FC (35x35 mm) |
| Mounting Type | Surface Mount (flip-chip BGA) |
| Terminal Form | BALL |
| Number of Terminals | 1152 |
| Package Shape | Square Grid Array |
| Operating Temperature Grade | Industrial / Extended (per ordering code) |
| RoHS Status | Compliant |
| Lead Free | Yes |
10AS057H3F34E2SG square grid array Pin Configuration Guide
Complete pinout information for 10AS057H3F34E2SG (square grid array package). This digital IC includes GPIO, communication interfaces (UART, SPI, I2C), and power pins. Refer to the manufacturer datasheet for alternate pin functions and configuration options. Essential for embedded system design and PCB layout.
No detailed pinout data available for 10AS057H3F34E2SG.
Refer to the datasheet for full pin configuration.
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
10AS057H3F34E2SG is suitable for 6 applications: 5G Baseband and Radio Unit Processing, Software Defined Radio (SDR), Radar and Electronic Warfare Signal Processing, Industrial Machine Vision with Embedded Analytics, Medical Imaging Accelerators, Test and Measurement Instrumentation.
5G Baseband and Radio Unit Processing
The 10AS057H3F34E2SG is well matched to 5G baseband and radio unit designs because its 570K logic elements deliver the parallel throughput required for LDPC and Polar channel decoding, while the dual 1.5 GHz ARM Cortex-A9 cores execute Layer-2/3 protocol stacks. Integrated transceivers support CPRI and eCPRI fronthaul links, reducing external PHY count. The 1152-ball FC-FBGA package handles the high pin count of multi-antenna MIMO and provides the thermal headroom for sustained transceiver operation at full data rate, making it a strong fit for both baseband units (BBU) and remote radio heads (RRH).
Recommended
Software Defined Radio (SDR)
For software defined radio platforms, the 10AS057H3F34E2SG combines a deterministic ARM Cortex-A9 host running Linux or RTOS with parallel FPGA fabric for wideband DSP. The 570K logic elements accommodate digital down/up-conversion, channelization filters, and FFT pipelines for waveforms spanning HF through microwave. Tight AXI coupling between HPS and FPGA enables sample-stream sharing through shared DDR4, which is critical for low-latency modulation recognition and adaptive filtering. This makes the part a strong fit for tactical and commercial SDR deployments.
Recommended
Radar and Electronic Warfare Signal Processing
In radar and electronic warfare, the 10AS057H3F34E2SG's DSP blocks handle pulse compression, MTI filtering, and digital beamforming in real time. The dual ARM Cortex-A9 subsystem handles tracker and display tasks, offloading the FPGA to maximize signal-processing throughput. With 24 transceivers, the device interfaces directly to RF ADCs and DACs at multi-gigasample rates, enabling phased-array radar and EW receiver architectures. The 35x35 mm FC-FBGA package and industrial temperature grade (in the I-speed variant) suit defense and aerospace deployments.
Recommended
Industrial Machine Vision with Embedded Analytics
The 10AS057H3F34E2SG supports industrial machine vision by processing high-resolution camera streams through its FPGA fabric while running inference and control tasks on the ARM Cortex-A9 cores. Its parallel architecture accelerates convolutional neural networks, optical flow, and defect-detection algorithms at line rate. The HPS runs Linux plus a real-time OS such as RTEMS for deterministic actuator control, and the device's high-speed transceivers connect to GigE Vision, CoaXPress, or Camera Link interfaces. The 1152-ball BGA accommodates multi-camera fan-out with on-chip DMA.
Recommended
Medical Imaging Accelerators
For medical imaging equipment such as ultrasound, CT, and MRI reconstruction, the 10AS057H3F34E2SG delivers the parallel arithmetic throughput required by beamformers and back-projection algorithms. The FPGA fabric runs real-time DSP pipelines while the ARM Cortex-A9 cores manage patient interface, image post-processing, and DICOM networking. Its SoC integration reduces board area and BOM versus discrete CPU-plus-FPGA designs, which is critical for portable cart-based ultrasound and bedside monitors. The 20 nm process balances performance with the low leakage needed for medical thermal envelopes.
Recommended
Test and Measurement Instrumentation
The 10AS057H3F34E2SG is suited for high-end test and measurement instruments such as protocol analyzers, oscilloscopes, and signal generators. The FPGA fabric implements real-time trigger logic, decoders, and FFT analysis while the ARM cores run the user interface, automation, and remote-control stacks. The transceivers provide multi-gigabit serial links for industry-standard instrument I/O such as 10 GbE and PCIe Gen3. The 1152-ball FC-BGA integrates cleanly into instruments that already require large-format backplanes with high-density signal routing.
Recommended
Recommended Products Summary
Engineering reference data for 10AS057H3F34E2SG — comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | 10AS057H3F34E2LG | 10AS057H2F34E2SG | 10AS057H2F34E2LG | 10AS057H1F34E1HG | 10AS066H3F34I2SG |
|---|---|---|---|---|---|---|
| Brand | Intel | Intel | Intel | Intel | Intel | Intel |
| Package | 1152-FBGA, FC (35x35 mm) | 1152-FBGA, FC (35x35 mm) - same | 1152-FBGA, FC (35x35 mm) - same | 1152-FBGA, FC (35x35 mm) - same | 1152-FBGA, FC (35x35 mm) - same | 1152-FBGA, FC (35x35 mm) - same |
| Logic Elements | 570,000 | 570,000 | 570,000 | 570,000 | 570,000 | 660,000 |
| Speed Grade | H3 | H3 | H2 | H2 | H1 | H3 |
| Temperature Grade | E2 (Commercial) | E2 (Commercial) | E2 (Commercial) | E2 (Commercial) | E1 (Commercial) | I2 (Industrial) |
| Hard Processor System | Dual ARM Cortex-A9 MPCore | Dual ARM Cortex-A9 MPCore | Dual ARM Cortex-A9 MPCore | Dual ARM Cortex-A9 MPCore | Dual ARM Cortex-A9 MPCore | Dual ARM Cortex-A9 MPCore |
| Process Technology | 20 nm | 20 nm | 20 nm | 20 nm | 20 nm | 20 nm |
| Core Voltage | 0.9 V | 0.9 V | 0.9 V | 0.9 V | 0.9 V | 0.9 V |
| Approx. Unit Price (USD, qty 1) | 4,500 | [DATA_NEEDED] | [DATA_NEEDED] | [DATA_NEEDED] | [DATA_NEEDED] | [DATA_NEEDED] |
Key Differentiators
- Highest available speed grade (H3) for the Arria 10 SX 570K LE density (vs 10AS057H2F34E2SG)
- Balanced resource profile for cost-sensitive 5G and radar designs (vs 10AS066H3F34I2SG)
- Hard dual-core ARM Cortex-A9 MPCore subsystem (vs 10AX032E3F29E2SG)
Design Notes
The 1152-ball FC-FBGA requires a high-density PCB stack-up with microvia-in-pad technology. Use Intel's reference design layer-count and via-pattern guidance (typically 14+ layers for full signal escape without dog-bone fan-out). Match BGA pad diameters exactly to the Intel land-pattern recommendation to avoid solder joint defects, and route all HPS DDR4 signals with matched length and 100-ohm differential impedance as specified in the Arria 10 SX external memory interface guidelines.
At typical SoC FPGA workloads (FPGA fabric near 80% utilization, HPS at 1.5 GHz, transceivers at full data rate), junction-to-ambient thermal resistance (theta_JA) must be derated using Intel's published curves; expected dissipation is on the order of 15-25 W. Use a heatsink with thermal interface material, adequate forced-airflow, or a cold-plate solution; verify with the Intel Arria 10 SX power calculator early in the design to size your thermal solution before board layout freeze.
Sequence the power rails in the order specified by Intel: HPS core first, then FPGA core, then I/O and transceiver supplies. Use the recommended PMIC/controller such as the Intel Enpirion EM11x series with proper soft-start timing. Allow at least 100 ms between HPS and FPGA core ramps to prevent latch-up. Add bulk decoupling as close as possible to each supply pin, and verify in-rush current against your DC source capability.
Estimated: Configuring boot from QSPI or SD card requires correct BSEL/PSEL strap resistors sampled at HPS reset; wrong straps lead to 'no boot' failures that mimic silicon faults. Validate strap values against the Arria 10 SX HPS technical reference manual before PCB fab. Also confirm that the Quartus Prime pin-planner assignments include HPS-dedicated pins (not shared with FPGA fabric) to avoid tool-time errors.
Compliance Information
RoHS and REACH compliance stated by Intel/Altera product page. AEC-Q100 not applicable - this is an SoC FPGA, not an automotive-grade IC. Conflict-minerals compliance per Intel supply-chain policy.