AMD FirePro W4000
AMD graphics card specifications and benchmark scores
At a Glance
AMDAMD FirePro W4000 Specifications
GPU Core
Shader units and compute resources
The AMD FirePro W4000 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.
FirePro W4000 Clock Speeds
GPU and memory frequencies
Clock speeds directly impact the FirePro W4000'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 FirePro W4000 by AMD dynamically adjusts frequencies based on workload, temperature, and power limits to maximize performance while maintaining stability.
AMD's FirePro W4000 Memory
VRAM capacity and bandwidth
VRAM (Video RAM) is dedicated memory for storing textures, frame buffers, and shader data. The FirePro W4000'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.
FirePro W4000 by AMD Cache
On-chip cache hierarchy
On-chip cache provides ultra-fast data access for the FirePro W4000, 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.
FirePro W4000 Theoretical Performance
Compute and fill rates
Theoretical performance metrics provide a baseline for comparing the AMD FirePro W4000 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.
GCN 1.0 Architecture & Process
Manufacturing and design details
The AMD FirePro W4000 is built on AMD's GCN 1.0 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 FirePro W4000 will perform in GPU benchmarks compared to previous generations.
Power & Thermal
TDP and power requirements
Power specifications for the AMD FirePro W4000 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 FirePro W4000 to maintain boost clocks without throttling.
FirePro W4000 by AMD Physical & Connectivity
Dimensions and outputs
Physical dimensions of the AMD FirePro W4000 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.
AMD API Support
Graphics and compute APIs
API support determines which games and applications can fully utilize the AMD FirePro W4000. 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.
FirePro W4000 Product Information
Release and pricing details
The AMD FirePro W4000 is manufactured by AMD 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 FirePro W4000 by AMD represents good value at current market prices. Predecessor and successor information aids in tracking generational improvements and planning future upgrades.
About AMD FirePro W4000
The AMD FirePro W4000 is a professional workstation graphics card built for a specific era of CAD and content-creation workloads. It is an end-of-life product based on the GCN 1.0 architecture, fabricated on a 28 nm process at TSMC. This database entry places it at the 50th percentile of all GPUs, indicating it sits squarely in the middle of the performance spectrum—a capable but not current-generation solution for its time.
Power and Cooling
The FirePro W4000 has a maximum board power draw of 75 W. This is a low figure that makes the card exceptionally easy to integrate into a wide range of systems. Because of this modest power requirement, the suggested power supply unit rating is a mere 250 W. This means the card can be dropped into pre-existing office or workstation towers without requiring a PSU upgrade, provided the existing unit is of reasonable quality and not already heavily loaded by other components.
The board does not require any auxiliary power connectors. It draws all of its power directly from the PCIe 3.0 x16 slot. This is a significant convenience factor, as it eliminates the need for 6-pin or 8-pin PCIe power cables, which are not always present in older or entry-level power supplies. The cooling solution is a single-slot design, which is a major advantage for systems with limited physical space or for users who need to populate multiple expansion slots. The card's physical dimensions are 183 mm in length (7.2 inches) and 111 mm in height (4.4 inches), making it a compact board that will fit in most standard ATX and even some smaller form factor cases.
From a thermal perspective, a 75 W TDP is easily managed by a passive or low-profile active cooler. The data does not specify a cooler type, but the power envelope strongly suggests that the card will run quiet and cool under typical workstation loads, which is a desirable trait in an office environment. The absence of power connectors and the low TDP also mean that cable management is simpler and airflow requirements are less stringent than with higher-end boards.
Who Should Consider It
The FirePro W4000's performance profile, defined by its 50th percentile rank, targets a specific user base. Based on the architectural data, this card is best suited for users working at 1080p resolution with moderate settings in professional applications. It is not a card for high-refresh-rate gaming or for rendering complex 3D scenes at 4K resolution.
The 2 GB VRAM capacity is a limiting factor for modern, texture-heavy workloads. Users should consider this card if their primary tasks involve 2D CAD drafting, light 3D modeling with simple geometry, or GPU-accelerated video encoding for short clips. It is also a viable option for multi-monitor productivity setups that require multiple display outputs, as it features 1x DVI and 2x DisplayPort 1.2 outputs.
For users working with large assemblies, complex simulations, or high-resolution textures, this card will likely become a bottleneck. The benchmark data shows no specific scores, but the 50th percentile ranking and the hardware specifications indicate a performance level appropriate for entry-level professional work, not demanding high-end tasks. If the software in question recommends more than 2 GB of VRAM or significant FP32 compute power, this card should be avoided.
Benchmark Performance
The FirePro W4000 has no specific benchmark scores recorded in its entry. However, its position at the 50th percentile of all GPUs provides a general reference point. This indicates that in a broad spectrum of GPU tests, it performs better than half of the tracked devices and worse than the other half. This is a solid mid-pack result, signifying a card that was competent for its generation but has since been surpassed by many newer products.
The compute capabilities are defined by its GCN 1.0 architecture. The card features 768 shading units, 48 texture mapping units, and 32 raster operation units. These translate to a pixel fill rate of 26.40 GPixel/s and a texture fill rate of 39.60 GTexel/s. The FP32 (single-precision) performance is rated at 1,267.2 GFLOPS. This level of compute is relevant for viewport manipulation in CAD software and for certain GPU-accelerated effects, but it is not in the field of high-performance computing or deep learning.
The card supports DirectX 12 (11_1), OpenGL 4.6, and Vulkan 1.2.170. The DirectX support is limited to the 11_1 feature level, which means it does not support all of the advanced features of DirectX 12. However, the OpenGL and Vulkan support is more modern, which is beneficial for professional software that often leans on these APIs. The benchmark results indicate a card that is functional for its intended professional use, but the lack of recorded scores means that exact performance comparisons against rivals must be inferred from the hardware specifications and the overall percentile rank.
How It Compares
The database entry for the FirePro W4000 lists no nearest rivals. This absence of comparative data means that a direct deltaPct analysis against specific competing models is not possible from the provided information. However, the 50th percentile rank provides a general context for its position in the market.
Without specific rival scores, the comparison must be qualitative. The card's predecessor is the FirePro Terascale series, which it succeeds with a newer GCN architecture. The successor is the Radeon Pro Polaris generation, which represents a significant architectural leap forward. Compared to its successor, the W4000 will naturally fall behind in raw compute and memory bandwidth due to the generational gap.
The lack of nearest rivals in the data suggests that the card occupies a unique position in the tracked database, or that its performance metrics are not closely matched by other entries. This is common for professional workstation cards, which are optimized for specific software certifications rather than raw gaming or compute performance. The data indicates that the W4000 is a standalone entry in its performance tier, and users should rely on its absolute specifications and percentile rank to gauge its suitability for their tasks.
Memory Subsystem
The FirePro W4000 is equipped with 2 GB of GDDR5 memory. This is connected via a 256-bit memory bus, which is a substantial bus width for this class of card. The memory clock is 800 MHz, with an effective data rate of 3.2 Gbps. These specifications combine to produce a memory bandwidth of 102.4 GB/s.
This bandwidth figure is adequate for the card's intended 1080p professional workloads. It allows for smooth viewport manipulation and moderate texture streaming. However, the 2 GB capacity is the primary limitation. At high resolutions like 1440p or 4K, the VRAM will fill quickly, forcing the driver to swap data to system memory, which will cause significant performance degradation. Users should strictly limit their work to 1080p or below and keep texture quality settings at medium or low to avoid hitting this ceiling.
For the era in which it was released, a 256-bit bus was a strong feature, providing a good balance between cost and performance. The 102.4 GB/s bandwidth is sufficient to feed the 768 shading units without causing a major bottleneck in most professional scenarios. The memory subsystem is well-matched to the compute capabilities of the GPU core, ensuring that data can flow efficiently for the tasks the card was designed to handle. Pushing beyond its limits will expose the bandwidth and capacity constraints quickly.
FAQ
Q: What is the power consumption of the AMD FirePro W4000?
A: The card has a TDP of 75 W. AMD suggests a power supply of 250 W for a system using this card.
Q: Does the FirePro W4000 require a power connector?
A: No. It has no power connectors and draws all required power from the PCIe 3.0 x16 slot.
Q: What is the maximum memory bandwidth of this card?
A: The 2 GB GDDR5 memory operates at 3.2 Gbps effective across a 256-bit bus, delivering a total bandwidth of 102.4 GB/s.
Q: What display outputs are available on the FirePro W4000?
A: The card provides 1x DVI and 2x DisplayPort 1.2 outputs, supporting multi-monitor setups.
Q: What is the physical size of the card?
A: It is a single-slot card with a length of 183 mm (7.2 inches) and a height of 111 mm (4.4 inches).
Q: Which APIs are supported by this GPU?
A: It supports DirectX 12 (11_1), OpenGL 4.6, and Vulkan 1.2.170.
Detailed benchmark scores and charts for the AMD FirePro W4000 are below.
Benchmark Scores
No benchmark data available for this GPU.
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