SYSTEM ANALYZER

Rate My PC: AMD Ryzen 9 5900 + Intel Arc A750

Get a comprehensive performance analysis of your gaming rig with detailed benchmarks, bottleneck detection, and upgrade recommendations

92 / 100
ULTIMATE READY

Apex Performer

Top 8% of systems. Capable of 4K Ultra gaming and advanced rendering.

4K 60+ FPSVR ReadyRay Tracing

System Balance Analysis

CPU vs GPU performance ratio
Well Balanced
CPU
94%
VS
GPU
91%
PROCESSOR

AMD Ryzen 9 5900

46,971 Benchmark Score
Top 6% Market Ranking
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GRAPHICS CARD

Intel Arc A750

20,582 Benchmark Score
Top 9% Market Ranking
View Full Specs →

Market Position

How your build compares to others
Budget
0-30
Mid-Range
30-60
High-End
60-85
Enthusiast
85-100
Your Build

Game Performance Benchmarks

Real-world 4K FPS in popular titles
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Performance Insights

Tips to maximize your system

Optimal Performance

Your system is in the top tier. You can run any modern game at maximum settings.

4K Gaming Ready

Consider a 4K 144Hz monitor to fully utilize your hardware capabilities.

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Performance Tiers Explained

90-100

Ultimate

4K Ultra gaming, VR ready, ray tracing enabled, professional workloads

4K 60+ FPS VR Ready
70-89

High-End

1440p Ultra or 4K High settings, excellent for modern AAA titles

1440p Ultra 4K High
50-69

Mid-Range

1080p Ultra or 1440p Medium, great value for most gamers

1080p Ultra 1440p Med
30-49

Entry Level

1080p Medium settings, suitable for eSports and older titles

1080p Med eSports
0-29

Legacy

Basic gaming, older titles, consider upgrading for modern games

720p-1080p Low Older Games

# AMD Ryzen 9 5900 + Intel Arc A750: A High-Core Desktop Pairing with Balanced Compute Potential

The AMD Ryzen 9 5900 is a 12-core, 24-thread desktop processor built on the Zen 3 architecture (Vermeer codename) at the 7 nm TSMC process node, while the Intel Arc A750 is an end-of-life desktop graphics card based on the Xe-HPG architecture (Alchemist generation, Arc 7 series) with 8 GB of GDDR6 memory on a 256-bit bus. The CPU holds an 89th percentile ranking among all CPUs, the GPU sits at the 66th percentile among all GPUs, and the combined build places at the 78th percentile. This pairing targets users who need substantial multi-core compute from the processor while maintaining a capable 1080p and 1440p rendering platform from the graphics card.

GPU Analysis — VRAM, Bandwidth, Clocks, RT/Tensor Hardware, and Benchmark Scores

The Intel Arc A750 is built on the DG2-512 chip at a 6 nm TSMC process node, containing 21,700 million transistors across a 406 mm² die. The card operates with a base clock of 2050 MHz and a boost clock of 2400 MHz, with memory running at 2000 MHz (16 Gbps effective). The memory subsystem consists of 8 GB of GDDR6 on a 256-bit bus, yielding a bandwidth of 512.0 GB/s — a figure that positions the card well above typical 8 GB-class competitors in raw memory throughput. The GPU includes 3584 shading units, 224 texture mapping units, and 112 raster output pipelines, producing a pixel rate of 268.8 GPixel/s and a texture rate of 537.6 GTexel/s.

The compute capabilities are notable for the card's class. The A750 delivers 17.20 TFLOPS of FP32 performance and 34.41 TFLOPS of FP16 performance (at a 2:1 ratio). Ray tracing hardware is present with 28 RT cores, which supports DirectX 12 Ultimate (12_2), OpenGL 4.6, and Vulkan 1.4 APIs. The card is a dual-slot design requiring 1x 6-pin and 1x 8-pin power connectors, with a 225 W TDP and a suggested PSU of 550 W. Display outputs include 1x HDMI 2.1 and 3x DisplayPort 2.0, and the bus interface is PCIe 4.0 x16.

Benchmark results for the GPU show a mixed but generally positive picture. The 3DMark Steel Nomad DX12 score is 2612, which, combined with the PassMark G3D score of 12534, places the card at the 66th percentile among all GPUs. The Geekbench OpenCL score of 98554 and Vulkan score of 85631 indicate strong compute performance for a graphics card in this tier. PassMark DirectX scores are low in absolute terms — 65 for DirectX 10, 72 for DirectX 11, 70 for DirectX 12, and 181 for DirectX 9 — but these figures reflect specific legacy API workloads rather than real-world gaming performance. The PassMark G2D score of 732 and GPU compute score of 5368 round out the profile.

The average benchmark score for the A750 is 20582, and its nearest rivals are tightly clustered. The Intel Arc B570 scores 20556 (0.1% behind), the NVIDIA GeForce RTX 3070 Mobile scores 20534 (0.2% behind), the AMD Radeon R9 M390X scores 20662 (0.4% ahead), and the NVIDIA Quadro M4000M scores 20480 (0.5% behind). This means the A750 sits within a half-percent of four very different GPUs, suggesting that its performance profile is well-balanced across compute and graphics workloads rather than excelling in any single area.

For rendering workloads, the 512.0 GB/s memory bandwidth and 17.20 TFLOPS of FP32 compute make the A750 suitable for 1080p and entry-level 1440p gaming, as well as light to moderate GPU-accelerated rendering. The 8 GB VRAM capacity is adequate for current games at 1080p and 1440p with high textures, though it may limit ultra-high resolution textures in the most demanding titles. The 28 RT cores provide hardware-accelerated ray tracing, which is a competitive feature for a card at this performance tier. The 66th percentile ranking indicates the GPU outperforms roughly two-thirds of all GPUs, making it a solid mid-to-upper-tier choice for a balanced desktop build.

Benchmark Performance — Exact CPU and GPU Scores, Percentile Positions, and the Combined Picture

The AMD Ryzen 9 5900 delivers an average benchmark score of 46971, placing it at the 89th percentile among all CPUs. Its nearest rivals are extremely close: the AMD Ryzen AI 9 HX PRO 375 scores 47022 (0.1% ahead), the Intel Core i9-12900F scores 47176 (0.4% ahead), the Intel Core i7-13700K scores 46881 (0.2% behind), and the AMD Ryzen 9 7845HX scores 46654 (0.7% behind). This clustering shows the 5900 is performance-competitive with modern high-end processors, despite being a 2021 release.

Cinebench results confirm the multi-core strength of the 5900. The Cinebench R23 multi-core score is 28834, with a single-core score of 4070. Cinebench R20 scores are 12110 multi-core and 1709 single-core, while Cinebench R15 scores are 2906 multi-core and 410 single-core. The PassMark multi-thread score of 33969 and single-thread score of 3439 further corroborate a processor that is evenly strong in both single-threaded and multi-threaded workloads. Additional PassMark tests show 411453 for data compression, 26247 for data encryption, 26859 for extended instructions, 213 for prime number finding, 69124 for floating point math, 128641 for integer math, 1697 for physics, and 43386 for random string sorting.

The Intel Arc A750, with an average benchmark score of 20582, sits at the 66th percentile among all GPUs. The gap between the CPU's 89th percentile and the GPU's 66th percentile is significant — roughly 23 percentile points. This means the processor is capable of feeding far more graphics work than the A750 can render, which has implications for balance (covered in a later section).

The combined build percentile is 78, which places the pairing in the upper quarter of all desktop configurations. This combined figure reflects a system where the CPU is clearly the stronger component relative to its peers, while the GPU is competent but not class-leading. For users who prioritize CPU-heavy workloads like compilation, rendering, and scientific computing, this pairing makes sense. For pure gaming, the GPU becomes the limiting factor, as the CPU has substantial headroom.

CPU Analysis — Cores, Clocks, Architecture, and Real-World Workload Implications

The AMD Ryzen 9 5900 is a 12-core, 24-thread processor from the 5000 series, built on the Zen 3 architecture with the Vermeer codename. It is manufactured by TSMC at the 7 nm process node, with 8,300 million transistors across a dual-chiplet design of 2x 74 mm² dies. The base clock is 3.00 GHz, with a boost clock of 4.70 GHz, and the TDP is 65 W — notably low for a 12-core processor, indicating efficient power management. The CPU uses the AMD Socket AM4 platform, supports DDR4 memory in dual-channel configuration with a bandwidth of 51.2 GB/s, and includes ECC memory support. PCIe connectivity is Gen 4 with 20 lanes from the CPU, and the multiplier is unlocked for overclocking. The processor was released on 2021-01-11 and remains in active production.

The cache hierarchy consists of 64 KB of L1 cache per core, 512 KB of L2 cache per core, and a large 64 MB of L3 cache. This substantial L3 cache benefits workloads that exhibit high data locality, such as gaming, database operations, and certain scientific computations. The 12-core, 24-thread configuration provides strong parallel throughput, while the 4.70 GHz boost clock ensures competitive single-threaded performance.

The Cinebench R23 single-core score of 4070 positions the 5900 among the top single-thread performers of its generation, and the multi-core score of 28834 reflects strong scaling across 12 cores. The PassMark single-thread score of 3439 and multi-thread score of 33969 confirm this balance. In real workloads, this means the 5900 handles both lightly-threaded tasks (such as application launches, web browsing, and legacy software) and heavily-threaded tasks (video encoding, 3D rendering, and code compilation) with equal competence.

The 89th percentile ranking among all CPUs, combined with near-identical average scores to modern rivals like the Intel Core i7-13700K and Intel Core i9-12900F, demonstrates that the 5900 has aged gracefully. The 65 W TDP is particularly notable: it delivers high multi-core performance without requiring the substantial cooling or power delivery of higher-TDP rivals, making it suitable for compact builds and quieter systems. The ECC memory support adds appeal for workstation-style use cases where data integrity is critical.

Who Should Build It — Target Users and Industries

The combination of a 12-core, 24-thread CPU at the 89th percentile and a GPU at the 66th percentile targets users whose workloads are CPU-dominated. Gamers at 1080p and 1440p will find the A750 capable, as the 17.20 TFLOPS FP32 performance and 512.0 GB/s memory bandwidth handle modern titles at high settings, but the GPU is not intended for 4K ultra gaming. Content creators working with video editing, 3D modeling, and software development will benefit most from the 5900's multi-core muscle, which delivers a Cinebench R23 multi-core score of 28834 and a PassMark multi-thread score of 33969.

Software developers compiling large codebases, running virtual machines, or performing data analysis will see significant throughput gains from the 12 cores and 24 threads. The PassMark data encryption score of 26247 and data compression score of 411453 indicate strong performance in security-related and compression workloads. Students in engineering, computer science, or data science programs will find the CPU capable of handling demanding simulation and analysis tools while the GPU provides adequate acceleration for visualization tasks.

Small business workstations that run productivity suites, basic database applications, and occasional rendering tasks will benefit from the combination of high CPU throughput, ECC memory support, and the A750's compute capabilities. The 65 W CPU TDP and 225 W GPU TDP together suggest a system that can be cooled with standard air cooling, and the 550 W suggested PSU provides headroom for typical workstation peripherals. The 78th combined percentile places this build in the upper tier of general-purpose desktops, making it a sensible choice for users who need a single machine for both productivity and moderate gaming.

Balance and Bottleneck — Which Component Limits Which Workload

The data clearly shows that the CPU and GPU are not balanced in raw percentile terms. The CPU's 89th percentile versus the GPU's 66th percentile creates a situation where the processor is the stronger component. In CPU-bound workloads — such as code compilation, 3D rendering with CPU-based engines, data processing, and heavy multitasking — the 5900 will operate at near-peak efficiency while the GPU sits partially idle. The Cinebench R23 multi-core score of 28834 and PassMark multi-thread score of 33969 demonstrate the CPU's capability to handle such tasks without straining.

In GPU-bound workloads, particularly gaming at high resolutions or with demanding graphical settings, the A750 becomes the limiting factor. The GPU's 66th percentile ranking, combined with an average benchmark score of 20582, means that the card will reach its limits before the CPU does in most gaming scenarios. At 1080p, the CPU's strong single-thread performance (Cinebench R23 single-core score of 4070) will help maintain high frame rates, but the GPU's pixel rate of 268.8 GPixel/s and texture rate of 537.6 GTexel/s will cap the maximum FPS. At 1440p, the GPU bottleneck becomes more pronounced as the A750's 8 GB VRAM and 512.0 GB/s bandwidth are challenged by higher resolution textures and geometry.

The FPS scaling between the CPU and GPU is a classic case of asymmetric performance. The CPU can deliver far more frames than the GPU can render in most gaming workloads, meaning the system will feel CPU-fast in menus, loading screens, and physics calculations, but GPU-limited in actual rendering. For users who prioritize gaming, this pairing is suboptimal — a lower-tier CPU with a higher-tier GPU would provide better frame rates. For users who prioritize productivity and treat gaming as secondary, the balance is appropriate, as the CPU is the star component.

Usage Scenarios — Grounded in the Scores

High-refresh gaming: At 1080p, the combination of the 5900's single-core score of 4070 and the A750's 66th percentile GPU performance should deliver playable frame rates in most titles, though the GPU will limit maximum FPS. At 1440p, expect lower frame rates as the A750's 8 GB VRAM and 512.0 GB/s bandwidth are pushed harder. This is not a 240+ FPS esports build; it is a solid 60-100 FPS 1080p/1440p gaming platform.

Streaming: The 12-core, 24-thread CPU provides ample headroom for software encoding while gaming. The Cinebench R23 multi-core score of 28834 and PassMark multi-thread score of 33969 indicate that the CPU can handle encoding workloads without significantly impacting game performance. The GPU's 17.20 TFLOPS also supports hardware encoding offload if preferred.

Video editing: The 5900's multi-core strength accelerates rendering and export tasks in non-linear editors. The PassMark integer math score of 128641 and floating point math score of 69124 support complex effects and color grading. The A750's 8 GB VRAM and 512.0 GB/s bandwidth assist with real-time preview and GPU-accelerated effects.

3D rendering: CPU-based renderers will leverage all 12 cores and 24 threads, with the Cinebench R23 multi-core score of 28834 indicating strong performance. GPU-based renderers will benefit from the A750's 17.20 TFLOPS FP32 and 34.41 TFLOPS FP16, though the 8 GB VRAM may limit scene complexity.

Software development: Compilation and test execution will be fast with 12 cores and 24 threads. The PassMark data compression score of 411453 and data encryption score of 26247 support build artifact compression and secure communications. The 89th CPU percentile means most compilation tasks will complete well within typical expectations.

Student and office work: The 5900's single-thread performance and 65 W TDP make it responsive for everyday tasks while remaining efficient. The A750 handles office graphics, spreadsheets, and presentations without issue. The system's 78th combined percentile ensures smooth multitasking across productivity suites, browsers, and communication tools.

FAQ

Q: What is the CPU's core and thread count?

A: The AMD Ryzen 9 5900 has 12 cores and 24 threads, with a base clock of 3.00 GHz and a boost clock of 4.70 GHz.

Q: How much VRAM does the Intel Arc A750 have, and what is its memory bandwidth?

A: The A750 has 8 GB of GDDR6 memory on a 256-bit bus, providing 512.0 GB/s of memory bandwidth.

Q: What is the CPU's performance percentile relative to all CPUs?

A: The Ryzen 9 5900 is at the 89th percentile among all CPUs, with an average benchmark score of 46971.

Q: Does the GPU support ray tracing?

A: Yes, the Intel Arc A750 has 28 RT cores and supports DirectX 12 Ultimate (12_2), which includes hardware-accelerated ray tracing.

Q: What is the combined performance percentile of this CPU+GPU pairing?

A: The combined build percentile is 78, placing it in the upper quarter of all desktop configurations.

Q: What is the TDP of the CPU and the suggested PSU for the GPU?

A: The CPU has a TDP of 65 W, and the GPU has a TDP of 225 W with a suggested PSU of 550 W.

Q: Which component is the bottleneck for gaming performance?

A: The GPU is the bottleneck for gaming, as it sits at the 66th percentile compared to the CPU's 89th percentile.

Upgrade Path and Platform

The AMD Ryzen 9 5900 uses the AMD Socket AM4 platform, which supports DDR4 memory in dual-channel configuration with a bandwidth of 51.2 GB/s, and includes ECC memory support. The CPU provides PCIe Gen 4 with 20 lanes, and the multiplier is unlocked for overclocking. The Intel Arc A750 uses a PCIe 4.0 x16 interface, which is fully compatible with the CPU's PCIe Gen 4 lanes.

The 65 W CPU TDP allows for a wide range of aftermarket coolers, including compact air coolers and low-profile solutions. The GPU's 225 W TDP, combined with the CPU's 65 W TDP, results in a total system power draw that is well within the 550 W suggested PSU rating. This leaves headroom for additional drives, fans, and peripherals.

A sensible next upgrade for this system would be a higher-tier GPU, as the CPU has substantial headroom. The 5900's 89th percentile ranking means it can support GPUs well above the A750's 66th percentile without becoming a bottleneck. Users could move to a GPU with higher performance and more VRAM — the A750's 8 GB is adequate for 1080p and 1440p but may limit future titles at higher settings. The AM4 platform also supports newer Ryzen processors, though the 5900 remains competitive with modern rivals like the Intel Core i7-13700K (which scores 46881, just 0.2% behind).

Build Overview

This build pairs the AMD Ryzen 9 5900, a 12-core, 24-thread desktop CPU from the 5000 series based on the Zen 3 architecture, with the Intel Arc A750, a desktop GPU from the Alchemist generation (Arc 7 series) based on the Xe-HPG architecture. The build class is desktop, and the combined percentile is 78, placing it in the upper quarter of all configurations. The CPU is at the 89th percentile among all CPUs, while the GPU is at the 66th percentile among all GPUs.

The system is a desktop-class configuration with a strong processor and a mid-to-upper-tier GPU. The CPU's performance is comparable to modern high-end processors, as evidenced by its near-identical average benchmark score to the Intel Core i7-13700K (46881, 0.2% behind) and Intel Core i9-12900F (47176, 0.4% ahead). The GPU's performance is closely matched with the Intel Arc B570 (20556, 0.1% behind) and the NVIDIA GeForce RTX 3070 Mobile (20534, 0.2% behind). This indicates a build that is well-suited for CPU-intensive productivity work with adequate, if not exceptional, gaming performance.

Gaming Performance

No measured FPS data exists for this exact CPU+GPU combination. The FACT PACK contains no measured FPS rows for the Ryzen 9 5900 paired with the Intel Arc A750, so all frame rate expectations below are estimates derived from the benchmark scores and percentile rankings.

Based on the GPU's 66th percentile ranking, an average benchmark score of 20582, and the 3DMark Steel Nomad DX12 score of 2612, the A750 should deliver playable frame rates at 1080p in most modern titles at high settings. The 17.20 TFLOPS FP32 performance and 512.0 GB/s memory bandwidth suggest that 1080p is the card's sweet spot, with 1440p requiring medium-to-high settings for demanding games. The 8 GB VRAM is sufficient for current games at 1080p and 1440p, though ultra-high texture packs may cause stuttering or reduced performance.

The CPU's strong single-thread performance (Cinebench R23 single-core score of 4070) will help maintain high minimum frame rates in CPU-bound scenarios, but the GPU will ultimately cap the maximum FPS. At 1080p, expect 60-100 FPS in most titles depending on settings; at 1440p, expect 45-75 FPS. Esports titles like competitive shooters will run at the higher end of this range, while graphically demanding single-player games will run at the lower end. Ray tracing performance will be modest, as the 28 RT cores provide hardware support but the overall GPU horsepower is limited relative to higher-tier cards. For users seeking higher frame rates, reducing settings to medium or lowering resolution to 1080p will yield the best experience.