ARC

Intel Data Center GPU Max 1100

Intel graphics card specifications and benchmark scores

48 GB
VRAM
1550
MHz Boost
300W
TDP
8192
Bus Width
Ray Tracing XMX Cores

At a Glance

Intel
VRAM 48 GB
Boost Clock 1,550 MHz
Shaders 7,168
Bus Width 8192-bit
TDP 300W
Memory Type HBM2e
RT Cores 56
Architecture Generation 12.5
nm
Process 10 nm
Released Jan 2023

Intel Data Center GPU Max 1100 Specifications

GPU Core

Shader units and compute resources

The Intel Data Center GPU Max 1100 GPU core specifications define its raw processing power for graphics and compute workloads. Shading units (also called CUDA cores, stream processors, or execution units depending on manufacturer) handle the parallel calculations required for rendering. TMUs (Texture Mapping Units) process texture data, while ROPs (Render Output Units) handle final pixel output. Higher shader counts generally translate to better GPU benchmark performance, especially in demanding games and 3D applications.

Shading Units
7,168
Shaders
7,168
TMUs
448
Execution Units
448

Data Center GPU Max 1100 Clock Speeds

GPU and memory frequencies

Clock speeds directly impact the Data Center GPU Max 1100's performance in GPU benchmarks and real-world gaming. The base clock represents the minimum guaranteed frequency, while the boost clock indicates peak performance under optimal thermal conditions. Memory clock speed affects texture loading and frame buffer operations. The Data Center GPU Max 1100 by Intel dynamically adjusts frequencies based on workload, temperature, and power limits to maximize performance while maintaining stability.

Base Clock
1000 MHz
Base Clock
1,000 MHz
Boost Clock
1550 MHz
Boost Clock
1,550 MHz
Memory Clock
600 MHz 1200 Mbps effective
GDDR GDDR 6X 6X

Intel's Data Center GPU Max 1100 Memory

VRAM capacity and bandwidth

VRAM (Video RAM) is dedicated memory for storing textures, frame buffers, and shader data. The Data Center GPU Max 1100's memory capacity determines how well it handles high-resolution textures and multiple displays. Memory bandwidth, measured in GB/s, affects how quickly data moves between the GPU and VRAM. Higher bandwidth improves performance in memory-intensive scenarios like 4K gaming. The memory bus width and type (GDDR6, GDDR6X, HBM) significantly influence overall GPU benchmark scores.

Memory Size
48 GB
VRAM
49,152 MB
Memory Type
HBM2e
VRAM Type
HBM2e
Memory Bus
8192 bit
Bus Width
8192-bit
Bandwidth
1.23 TB/s

Data Center GPU Max 1100 by Intel Cache

On-chip cache hierarchy

On-chip cache provides ultra-fast data access for the Data Center GPU Max 1100, reducing the need to fetch data from slower VRAM. L1 and L2 caches store frequently accessed data close to the compute units. AMD's Infinity Cache (L3) dramatically increases effective bandwidth, improving GPU benchmark performance without requiring wider memory buses. Larger cache sizes help maintain high frame rates in memory-bound scenarios and reduce power consumption by minimizing VRAM accesses.

L1 Cache
64 KB (per EU)
L2 Cache
204 MB

Data Center GPU Max 1100 Theoretical Performance

Compute and fill rates

Theoretical performance metrics provide a baseline for comparing the Intel Data Center GPU Max 1100 against other graphics cards. FP32 (single-precision) performance, measured in TFLOPS, indicates compute capability for gaming and general GPU workloads. FP64 (double-precision) matters for scientific computing. Pixel and texture fill rates determine how quickly the GPU can render complex scenes. While real-world GPU benchmark results depend on many factors, these specifications help predict relative performance levels.

FP32 (Float)
22.22 TFLOPS
FP64 (Double)
22.22 TFLOPS (1:1)
FP16 (Half)
22.22 TFLOPS (1:1)
Pixel Rate
0 MPixel/s
Texture Rate
694.4 GTexel/s

Data Center GPU Max 1100 Ray Tracing & AI

Hardware acceleration features

The Intel Data Center GPU Max 1100 includes dedicated hardware for ray tracing and AI acceleration. RT cores handle real-time ray tracing calculations for realistic lighting, reflections, and shadows in supported games. Tensor cores (NVIDIA) or XMX cores (Intel) accelerate AI workloads including DLSS, FSR, and XeSS upscaling technologies. These features enable higher visual quality without proportional performance costs, making the Data Center GPU Max 1100 capable of delivering both stunning graphics and smooth frame rates in modern titles.

RT Cores
56
XMX Cores
448

Generation 12.5 Architecture & Process

Manufacturing and design details

The Intel Data Center GPU Max 1100 is built on Intel's Generation 12.5 architecture, which defines how the GPU processes graphics and compute workloads. The manufacturing process node affects power efficiency, thermal characteristics, and maximum clock speeds. Smaller process nodes pack more transistors into the same die area, enabling higher performance per watt. Understanding the architecture helps predict how the Data Center GPU Max 1100 will perform in GPU benchmarks compared to previous generations.

Architecture
Generation 12.5
GPU Name
Ponte Vecchio
Process Node
10 nm
Foundry
Intel
Transistors
100,000 million
Die Size
1280 mm²
Density
78.1M / mm²

Power & Thermal

TDP and power requirements

Power specifications for the Intel Data Center GPU Max 1100 determine PSU requirements and thermal management needs. TDP (Thermal Design Power) indicates the heat output under typical loads, guiding cooler selection. Power connector requirements ensure adequate power delivery for stable operation during demanding GPU benchmarks. The suggested PSU wattage accounts for the entire system, not just the graphics card. Efficient power delivery enables the Data Center GPU Max 1100 to maintain boost clocks without throttling.

TDP
300 W
TDP
300W
Power Connectors
1x 12-pin
Suggested PSU
700 W

Data Center GPU Max 1100 by Intel Physical & Connectivity

Dimensions and outputs

Physical dimensions of the Intel Data Center GPU Max 1100 are critical for case compatibility. Card length, height, and slot width determine whether it fits in your chassis. The PCIe interface version affects bandwidth for communication with the CPU. Display outputs define monitor connectivity options, with modern cards supporting multiple high-resolution displays simultaneously. Verify these specifications against your case and motherboard before purchasing to ensure a proper fit.

Slot Width
Dual-slot
Length
267 mm 10.5 inches
Bus Interface
PCIe 5.0 x16
Display Outputs
No outputs
Display Outputs
No outputs

Intel API Support

Graphics and compute APIs

API support determines which games and applications can fully utilize the Intel Data Center GPU Max 1100. DirectX 12 Ultimate enables advanced features like ray tracing and variable rate shading. Vulkan provides cross-platform graphics capabilities with low-level hardware access. OpenGL remains important for professional applications and older games. CUDA (NVIDIA) and OpenCL enable GPU compute for video editing, 3D rendering, and scientific applications. Higher API versions unlock newer graphical features in GPU benchmarks and games.

DirectX
12 (12_1)
DirectX
12 (12_1)
OpenGL
4.6
OpenGL
4.6
OpenCL
3.0
Shader Model
6.6

Data Center GPU Max 1100 Product Information

Release and pricing details

The Intel Data Center GPU Max 1100 is manufactured by Intel as part of their graphics card lineup. Release date and launch pricing provide context for comparing GPU benchmark results with competing products from the same era. Understanding the product lifecycle helps evaluate whether the Data Center GPU Max 1100 by Intel represents good value at current market prices. Predecessor and successor information aids in tracking generational improvements and planning future upgrades.

Manufacturer
Intel
Release Date
Jan 2023
Production
Active
Successor
H3C Graphics

About Intel Data Center GPU Max 1100

Intel Data Center GPU Max 1100 is a dual-slot, 300 W accelerator built on Intel’s Ponte Vecchio chip and Generation 12.5 architecture, fabricated on a 10 nm process with 100,000 million transistors on a 1280 mm² die. The data shows this part is positioned for compute-focused workloads rather than traditional rasterization, as evidenced by its zero pixel rate and absence of display outputs. Benchmark results indicate the GPU holds a 50th percentile ranking against all GPUs in the database, with an average benchmark score of zero, meaning it is not designed for or measured in standard gaming or consumer graphics tests. This analysis relies strictly on the provided facts, interpreting the hardware characteristics and positional data as presented.

Benchmark Performance

The Intel Data Center GPU Max 1100 does not report any individual benchmark scores in the available data, and its average benchmark score is listed as zero. This absence of measurable performance figures is itself informative: the GPU’s 50th percentile rank against all GPUs is a neutral placement, suggesting it is neither a top-tier performer nor a bottom-tier part in the database’s overall distribution, but the zero score indicates that it does not participate in the standard benchmark suite used for consumer or workstation GPUs. The FP32 compute throughput is rated at 22.22 TFLOPS, with FP16 also at 22.22 TFLOPS in a 1:1 ratio, which indicates balanced single-precision and half-precision compute capabilities. The texture rate is 694.4 GTexel/s, driven by 448 texture mapping units, while the pixel rate is 0 MPixel/s due to zero ROPs, confirming that this is a compute-first accelerator with no rasterization pipeline. Because there are no nearest rivals listed, no direct percentage deltas can be calculated or compared against competing products. The lack of benchmark entries means that any performance interpretation must be derived from the raw compute and memory specifications, which suggest a card optimized for data center tasks like AI inference or scientific simulation rather than frame rendering. The 22.22 TFLOPS FP32 figure places it in a range where it could handle moderate compute loads, but without comparative scores, absolute performance claims are unsupported. The 50th percentile rank, while not tied to a specific score, implies that in the broader GPU landscape, this part sits at the median in terms of overall capability as cataloged by the database, though its specialized nature likely skews that comparison. The zero pixel rate and lack of display outputs further reinforce that benchmark data for conventional graphics is irrelevant to this product’s intended use case.

Ray Tracing and Feature Set

The Intel Data Center GPU Max 1100 includes 56 ray tracing cores, which provides hardware-accelerated ray tracing capability, though the absence of benchmark scores means no performance level for ray tracing workloads can be quantified from the data. The GPU supports DirectX 12 (12_1) and OpenGL 4.6, indicating compatibility with modern graphics APIs, but Vulkan support is listed as null, so no claim about Vulkan functionality can be made. The tensor core count is not provided in the fact pack, so any discussion of AI acceleration must remain qualitative; however, the presence of ray tracing cores and the compute-oriented design suggest the hardware is equipped for advanced rendering and compute tasks. The FP16 throughput matching FP32 at 22.22 TFLOPS indicates that half-precision workloads, often used in machine learning, receive no extra throughput advantage in this architecture, which is notable for a data center part. The API support for DirectX 12_1 is the highest DirectX feature level listed, meaning the GPU can handle the feature set of that API version, but no higher version is specified. OpenGL 4.6 support allows for legacy or cross-platform compute and rendering applications. With no display outputs, the feature set is entirely focused on off-screen compute and rendering, which aligns with the zero pixel rate. Ray tracing cores at 56 units suggest a meaningful investment in hardware RT, but without performance data, the practical impact cannot be assessed. The lack of Vulkan support could limit some cross-platform deployment scenarios, but the primary use case for this card appears to be server-side processing where DirectX and OpenGL are adequate. The architectural choice of 1:1 FP32/FP16 rates is a differentiator from many competing accelerators that typically double FP16 throughput, and this fact should inform expectations for AI workloads.

How It Compares

The data provides no nearest rivals for the Intel Data Center GPU Max 1100, so no direct comparisons to specific competing GPUs can be made using percentage deltas or performance scores. In the absence of rival names, scores, or deltaPct values, the comparative analysis is limited to the GPU’s own specifications and its percentile ranking. The 50th percentile position against all GPUs suggests that, in the database’s overall distribution, this part is average, but this is a broad statement that does not account for the specialized nature of the hardware. Without rivals, it is impossible to state whether the Max 1100 is ahead or behind any particular product in compute, memory bandwidth, or feature set. The FP32 throughput of 22.22 TFLOPS and memory bandwidth of 1.23 TB/s are the only quantitative levers for positioning, but they cannot be contextualized without comparison points. The lack of benchmark scores further complicates any relative assessment, as performance data is the primary basis for comparative claims. Therefore, the only defensible conclusion is that the Max 1100 occupies a median position in the database, with its unique architecture and zero ROPs/pixel rate setting it apart from typical graphics cards. Future comparisons would require benchmark entries and rival data, which are not present in this fact pack.

FAQ

Q: What is the FP32 compute performance of the Intel Data Center GPU Max 1100?

A: The FP32 throughput is rated at 22.22 TFLOPS, and FP16 performance is also 22.22 TFLOPS in a 1:1 ratio.

Q: How much memory does the GPU have and what type is it?

A: It has 48 GB of HBM2e memory with an 8192-bit bus width and 1.23 TB/s of memory bandwidth.

Q: Does the GPU support ray tracing?

A: Yes, it includes 56 ray tracing cores, though no ray tracing performance benchmarks are available.

Q: What is the power consumption and PSU requirement?

A: The TDP is 300 W, and the suggested power supply is 700 W, with a single 12-pin power connector required.

Q: What display outputs does the card have?

A: It has no display outputs, making it a compute-only accelerator.

Q: What generation and architecture does this GPU use?

A: It is based on the Ponte Vecchio chip, Generation 12.5 architecture, and Intel’s 10 nm process node.

Who Should Consider It

The Intel Data Center GPU Max 1100 is suited for environments where compute throughput matters more than graphics output, given its zero pixel rate and lack of display connectors. With 22.22 TFLOPS of FP32 performance and matching FP16 throughput, this card could handle data center workloads like scientific simulation, financial modeling, or general-purpose compute tasks that rely on single-precision or half-precision arithmetic. The 48 GB of HBM2e memory with 1.23 TB/s bandwidth provides substantial memory capacity and speed, which is beneficial for large datasets that require high-bandwidth access, such as in-memory databases or large-scale data analytics. However, the absence of benchmark scores and nearest rivals means that specific performance targets cannot be guaranteed, so potential users should rely on the raw specifications to match their workload requirements. The 50th percentile ranking suggests it is not a top-tier compute part, so it may be more appropriate for mid-range compute tasks rather than current-generation AI training or high-end rendering. The 1:1 FP32/FP16 ratio indicates that users expecting a boost in half-precision workloads will not find it here, which could be a consideration for machine learning applications that often leverage FP16. The card’s dual-slot profile and 300 W TDP make it a standard size for server integration, and the PCIe 5.0 x16 interface ensures high-bandwidth communication with the host system. For workloads that require rasterization, this card is explicitly not suitable due to zero ROPs and no pixel output, so it should be paired with a separate GPU if display output is needed. Overall, the target audience is data center operators with compute-only pipelines that can utilize the specific memory and compute balance this card offers.

Power and Cooling

The Intel Data Center GPU Max 1100 has a TDP of 300 W, which dictates a suggested power supply of 700 W for a system containing this card. The power is delivered through a single 12-pin connector, which is a specific requirement that system integrators must account for in their power delivery design. The card occupies a dual-slot form factor, meaning it will take up two expansion slots in a chassis, which is standard for high-power accelerators. The 300 W TDP is a moderate power draw for a data center GPU, allowing for air cooling in many server configurations, but the exact cooling solution is not specified in the data. The PCIe 5.0 x16 interface provides both data transfer and supplementary power delivery, but the primary power comes from the 12-pin connector. The physical dimensions are 267 mm in length (10.5 inches), which is a standard full-length card size that fits most server chassis. The absence of a launch MSRP means no cost-related claims can be made, but the power and cooling requirements are clearly defined for system planning. The 700 W PSU recommendation includes headroom for the rest of the system, but the card itself draws 300 W under load. For cooling, the dual-slot design likely includes a robust heatsink and fan assembly, but no specific cooling capacity or noise figures are provided. The 12-pin connector is less common than 8-pin or 6-pin connectors, so adapters may be necessary in some power supplies, though this is not stated. The 300 W TDP is consistent with the compute capabilities listed, and the 700 W PSU suggestion aligns with typical system power budgets for a single high-end GPU.

Memory Subsystem

The memory subsystem is a defining feature of the Intel Data Center GPU Max 1100, comprising 48 GB of HBM2e memory on an 8192-bit bus, yielding a memory bandwidth of 1.23 TB/s. This is an exceptionally wide bus, which enables the high bandwidth necessary for data-intensive workloads. The HBM2e memory type is known for its high speed and low power consumption relative to GDDR variants, and with 48 GB capacity, it can accommodate large models or datasets that would exceed the memory of many consumer GPUs. The memory clock is listed at 600 MHz base with 1200 Mbps effective, which is the effective data rate used to calculate the 1.23 TB/s bandwidth. For high-resolution or large-scale compute tasks, the combination of 48 GB capacity and 1.23 TB/s bandwidth means that data can be moved quickly between the GPU and memory, reducing bottlenecks in processing. The 8192-bit bus width is a key differentiator, as it is significantly wider than typical consumer or even many professional GPUs, which typically use 256-bit to 512-bit buses. The bandwidth of 1.23 TB/s is a strong figure that supports sustained throughput in memory-bound operations. However, with a zero pixel rate, this memory is not used for frame buffer output but rather for compute data storage and retrieval. The 48 GB capacity is particularly relevant for workloads that require large working sets, such as training large neural networks or processing high-resolution scientific data. The memory subsystem’s specifications are among the most impressive aspects of this card, and they align with its data center positioning. The high bandwidth also supports the 22.22 TFLOPS compute throughput by ensuring that processing units are not starved for data. Overall, the memory subsystem is designed for capacity and speed, making it suitable for compute tasks that demand both.

Detailed benchmark scores and charts for the Intel Data Center GPU Max 1100 are below.

Benchmark Scores

No benchmark data available for this GPU.

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