SYSTEM ANALYZER

Rate My PC: AMD Ryzen 9 9900X + Intel Arc A580

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

96 / 100
ULTIMATE READY

Apex Performer

Top 4% 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
95%
VS
GPU
97%
PROCESSOR

AMD Ryzen 9 9900X

57,498 Benchmark Score
Top 5% Market Ranking
View Full Specs →
GRAPHICS CARD

Intel Arc A580

57,756 Benchmark Score
Top 3% 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
View All Games →

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.

Compatible Games See what you can play Compare CPUs Find upgrades Compare GPUs Find upgrades

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

The AMD Ryzen 9 9900X and Intel Arc A580 pairing is a study in asymmetry. The CPU is a high-end, 12-core powerhouse that sits in the 92nd percentile of all processors, while the GPU is a capable mid-range card that lands in the 87th percentile of all GPUs. The combined system percentile is 90, placing it in the top tier of desktop builds. Benchmark results indicate a platform that excels in heavy multi-threaded productivity and CPU-bound tasks, but whose gaming and graphics performance will be defined by the Arc A580’s limits rather than the 9900X’s potential.

Balance and Bottleneck

The performance data shows a considerable imbalance between the two components. The Ryzen 9 9900X demonstrates exceptional processing power, with a multi-threaded score of 32,172 in Cinebench R23 and a Geekbench multi-core score of 22,174. In contrast, the Intel Arc A580’s top synthetic score is 91,657 in Geekbench OpenCL. This indicates that in nearly any gaming or GPU-accelerated workload, the Arc A580 will be the limiting factor. The CPU will have significant headroom, often sitting below full utilization while waiting for the GPU to complete its frame rendering tasks.

This bottleneck is most pronounced in gaming scenarios. The CPU’s single-thread performance is robust, scoring 2,253 in Cinebench R23 single-core and 1,286 in 3DMark single-thread. This ensures that the 9900X can handle the game logic and physics calculations of modern titles without breaking a sweat. However, the GPU’s rendering output, as indicated by its 3DMark Steel Nomad DX12 score of 2,229, will cap the frame rate. The system will be GPU-limited in almost all gaming situations, meaning that lowering resolution or graphical settings will yield diminishing returns until the CPU becomes the constraint at very low settings and high frame rates.

The bottleneck shifts, however, in non-gaming workloads. For tasks like video editing, 3D rendering, and software compilation, the CPU’s multi-threading capabilities become the primary driver of performance. The 9900X’s Passmark multi-thread score of 54,643 and its 3DMark max-threads score of 13,929 indicate that it can process massive parallel workloads efficiently. In these scenarios, the Arc A580’s compute capabilities, while not negligible, are secondary. The system’s performance is then dictated by the speed of the CPU and the system’s memory bandwidth of 89.6 GB/s. The balance is therefore workload-dependent: GPU-bound for gaming, CPU-bound for productivity.

Benchmark Performance

The Ryzen 9 9900X posts an average benchmark score of 57,498, placing it at the 92nd percentile. This score is nearly identical to its closest rival, the AMD EPYC 9015, which scores 57,555, a difference of just -0.1%. It is also 0.2% ahead of the AMD EPYC 7313 (57,399) and 1.1% ahead of the Intel Core i9-14900 (58,115). This positions the 9900X as a top-tier desktop processor, rivaling server-class chips in multi-threaded performance. Its single-core strength is confirmed by a Geekbench single-core score of 3,010 and a Passmark single-thread score of 4,672, ensuring excellent responsiveness in everyday tasks and lightly-threaded applications.

The Intel Arc A580’s average benchmark score is 57,756, placing it at the 87th percentile. This score is just 0.6% lower than the AMD Radeon RX 5600 OEM (58,085) and 0.8% lower than the Intel Arc A570M (58,239). Interestingly, it is 0.7% higher than the AMD Radeon RX 9070 GRE (57,367) and 1.1% higher than the AMD Radeon RX 6950 XT (58,392). The GPU’s synthetic performance in Geekbench OpenCL (91,657) and Vulkan (79,381) shows a strong compute foundation.

The combined picture is a system with a CPU that outperforms its direct rivals in its price segment, and a GPU that is competitive with, but not superior to, several other mid-range options. The data suggests that the 9900X provides enough headroom for a future GPU upgrade without becoming a bottleneck. The current system’s overall performance is a direct reflection of the Arc A580’s capabilities, which are respectable but not in the same class as the CPU.

GPU Analysis

The Intel Arc A580 is built on the Xe-HPG architecture and the DG2-512 chip, manufactured on a 6 nm process by TSMC. It features 8 GB of GDDR6 memory on a 256-bit bus, providing a substantial memory bandwidth of 512.0 GB/s. This bandwidth is essential for high-resolution textures and compute workloads, and it is a significant advantage for this class of GPU. The card operates at a base clock of 1700 MHz and a boost clock of 2000 MHz, with memory running at 2000 MHz (16 Gbps effective).

The GPU is equipped with 3,072 shading units, 192 texture mapping units (TMUs), and 96 render output units (ROPs). It also includes 24 ray tracing cores, which enable hardware-accelerated ray tracing in supported titles, a feature that enhances visual fidelity in games like Cyberpunk 2077 and Control. The card supports DirectX 12 Ultimate (12_2), OpenGL 4.6, and Vulkan 1.4, ensuring compatibility with the latest graphics APIs. Its peak performance is rated at 12.29 TFLOPS for FP32 and 24.58 TFLOPS for FP16 (2:1), with a pixel rate of 192.0 GPixel/s and a texture rate of 384.0 GTexel/s.

For rendering and content creation, the benchmark scores indicate a capable card. The Geekbench OpenCL score of 91,657 suggests strong compute performance for GPU-accelerated effects and rendering in applications like Blender or Adobe Premiere Pro. The 3DMark Steel Nomad DX12 score of 2,229, while not a direct measure of compute, reflects the card’s overall gaming and graphics capabilities. With 8 GB of VRAM, it is suitable for 1080p and entry-level 1440p gaming, though the limited memory may require texture quality reductions in the most demanding modern titles. The 24 RT cores provide a foundation for ray-traced lighting, but the overall performance level suggests that users will need to rely on upscaling technologies to maintain playable frame rates with ray tracing enabled. The GPU’s TDP is 175 W, and Intel recommends a 450 W power supply, which is a modest requirement for a system with this component.

Who Should Build It

This combination of an AMD Ryzen 9 9900X and Intel Arc A580 is best suited for users who prioritize CPU-heavy productivity tasks but also want a capable gaming system. The data shows that the 9900X is a top-tier processor, with a 92nd percentile ranking and multi-core scores that rival server CPUs. This makes the build ideal for content creators, video editors, and 3D artists who need the 12 cores and 24 threads to render scenes, encode video, and compile code quickly. The specific scores, such as 32,172 in Cinebench R23 multi-core and 54,643 in Passmark multi-thread, demonstrate that this CPU is a workhorse.

For gamers, the Arc A580 is a competent mid-range card that can handle 1080p and some 1440p gaming, but it is not a high-end solution. Given the CPU’s strength, this build is a sensible choice for a developer or student who needs a powerful workstation for software development or simulation, but also enjoys gaming in their spare time. The system’s 90th combined percentile indicates it outperforms the vast majority of desktop PCs. The ECC memory support of the CPU is a specific feature that appeals to professionals who require data integrity for long-running computations or file servers.

This is not a build for those seeking maximum gaming performance, as the GPU will hold back the CPU. Instead, it is a platform where the user can invest in a powerful CPU now and upgrade the GPU later without needing to change the motherboard or CPU. It is a smart choice for a small business workstation that needs to handle database management, financial modeling, and other multi-threaded tasks, while also being able to serve as a development machine with a discrete GPU for testing.

Usage Scenarios

High-Refresh Gaming: The Arc A580 is the limiting factor here. While the 9900X’s single-thread score of 2,253 in Cinebench R23 ensures the CPU can feed frames quickly, the GPU’s 3DMark Steel Nomad score of 2,229 suggests it is more suited for 1080p high-refresh gaming than 1440p. Users can expect high frame rates in esports titles at 1080p, but may need to lower settings in AAA games to achieve 144Hz or higher.

Streaming: The 9900X is exceptionally well-suited for streaming. Its 12 cores and 24 threads provide ample headroom to run a game, encode video via x264, and manage streaming software simultaneously. The CPU’s Passmark multi-thread score of 54,643 indicates that the overhead for encoding will be minimal, preventing the frame drops that can occur on lower-core-count CPUs.

Video Editing: This is a core strength of the system. The CPU’s Cinebench R23 multi-core score of 32,172 will accelerate timeline scrubbing, effects processing, and final exports in applications like DaVinci Resolve or Adobe Premiere Pro. The Arc A580’s 8 GB of VRAM and OpenCL score of 91,657 can also assist with GPU-accelerated effects, making this a balanced system for video work.

3D Rendering: The 9900X is a rendering monster. Its 3DMark max-threads score of 13,929 and Cinebench R23 multi-core score of 32,172 will significantly reduce render times in CPU-based renderers like V-Ray or Corona. While the GPU can assist with viewport performance and GPU-based renders, the CPU is the primary engine for final frame production.

Software Development: The high core count and thread count are excellent for compiling large codebases. The 9900X’s Geekbench multi-core score of 22,174 will speed up build times for C++ or Rust projects. The system’s support for ECC memory is a bonus for developers working on data-intensive applications where memory errors are unacceptable.

Student and Office Work: This system is overkill for basic office tasks, but the 9900X’s single-thread score of 3,010 in Geekbench ensures that spreadsheets, documents, and web browsing feel instantaneously responsive. Students in engineering or computer science will benefit from the CPU’s power for simulations and coding assignments, while the Arc A580 provides enough graphics horsepower for CAD or light 3D modeling.

Upgrade Path and Platform

The platform is built on the AMD Socket AM5, which is a modern and forward-looking socket. The 9900X supports DDR5 memory on a dual-channel bus, and the system’s memory bandwidth is rated at 89.6 GB/s. This is a critical performance feature, as DDR5 bandwidth is essential for feeding the 12-core Zen 5 CPU. The platform also provides PCIe Gen 5 with 24 lanes from the CPU, which means there is substantial bandwidth for the fastest NVMe SSDs and future expansion cards. The current Arc A580 uses a PCIe 4.0 x16 interface, so it will run at full bandwidth, but the slot is ready for a PCIe 5.0 GPU in the future.

The CPU has a TDP of 120 W, which is modest for a 12-core part and allows for a wide range of air and liquid coolers. The Arc A580, with a TDP of 175 W and a suggested PSU of 450 W, does not require a massive power supply. The data shows that the CPU’s performance is nearly identical to the AMD EPYC 9015 and EPYC 7313, indicating that the 9900X is a top-tier performer on this platform.

The most sensible next upgrade is the GPU. The CPU has a 92nd percentile ranking and an average benchmark score of 57,498, which is 1.1% higher than the Intel Core i9-14900. This means the 9900X will not bottleneck any current or near-future graphics card. Upgrading from the Arc A580 to a higher-end GPU would directly translate to higher gaming frame rates and faster GPU-accelerated rendering, as the CPU already has the headroom to support it. The power supply may need to be upgraded if the new GPU has a higher wattage requirement, but the platform itself is solid. The presence of ECC memory support is also a pro feature for workstation use, and the unlocked multiplier allows for overclocking to extract even more performance, though the stock performance is already strong.

CPU Analysis

The AMD Ryzen 9 9900X is a 12-core, 24-thread desktop processor based on the Zen 5 architecture, codenamed Granite Ridge. It is manufactured on a 4 nm process at TSMC, with a transistor count of 16,630 million spread across two chiplets, each with a die size of 70.6 mm². The CPU has a base clock of 4.40 GHz and a boost clock of 5.60 GHz, with a TDP of 120 W. It features a substantial cache hierarchy, including 80 KB of L1 cache per core, 1 MB of L2 cache per core, and 64 MB of shared L3 cache.

The benchmark data shows a processor that excels in both single-threaded and multi-threaded tasks. Its Cinebench R23 multi-core score of 32,172 is a strong indicator of its ability to handle heavy workloads like video rendering and scientific simulations. The Geekbench multi-core score of 22,174 corroborates this, while the single-core score of 3,010 and Cinebench R23 single-core score of 2,253 demonstrate its strength in everyday tasks and gaming. The Passmark results are also impressive, with a multi-thread score of 54,643 and an integer math score of 181,056, showing excellent raw processing power.

The 9900X’s performance places it in the 92nd percentile of all CPUs, with an average benchmark score of 57,498. Its nearest rivals are all server or high-end desktop parts: the AMD EPYC 9015 (57,555, -0.1%), AMD EPYC 7313 (57,399, +0.2%), Intel Core i9-14900 (58,115, -1.1%), and Intel Xeon Platinum 8260M (58,323, -1.4%). This indicates that the 9900X is not just a gaming CPU; it is a professional-grade computing powerhouse. The architecture’s efficiency is highlighted by its modest 120 W TDP, which allows for sustained performance without exotic cooling solutions. For real-world workloads, this means faster code compilation, quicker 3D scene renders, and smoother multitasking with multiple demanding applications open simultaneously.

FAQ

Q: What is the most likely bottleneck for this system in gaming?

A: The Intel Arc A580 is the primary bottleneck in gaming. The CPU’s single-thread score of 2,253 in Cinebench R23 is more than sufficient, but the GPU’s 3DMark Steel Nomad score of 2,229 will cap the frame rate.

Q: How does the Ryzen 9 9900X compare to the Intel Core i9-14900?

A: The Ryzen 9 9900X has an average benchmark score of 57,498, which is 1.1% lower than the Intel Core i9-14900’s score of 58,115. They are very closely matched, with the i9-14900 having a slight edge.

Q: Is the Arc A580’s memory bandwidth sufficient for its class?

A: Yes. The Arc A580 has a 256-bit memory bus and a bandwidth of 512.0 GB/s, which is a high figure for a mid-range GPU and supports high-resolution textures and compute workloads.

Q: Does this system support ECC memory?

A: Yes, the AMD Ryzen 9 9900X supports ECC memory, making this a suitable platform for workstation builds where data integrity is critical.

Q: What is the upgrade path for this system?

A: The most sensible upgrade is the graphics card. The 9900X, with a 92nd percentile ranking, has enough performance headroom to support a more powerful GPU without becoming a bottleneck. The AM5 platform also supports PCIe Gen 5, so future GPUs will be compatible.

Q: What is the CPU’s single-thread performance like for everyday tasks?

A: It is excellent. The CPU scores 3,010 in Geekbench single-core and 4,672 in Passmark single-thread, which ensures snappy responsiveness in web browsing, office applications, and lightly-threaded software.

Q: What are the CPU’s core and thread counts?

A: The Ryzen 9 9900X has 12 cores and 24 threads, based on the Zen 5 architecture, making it highly capable for parallel processing tasks like video editing and 3D rendering.

Gaming Performance

No measured FPS data exists for this exact CPU and GPU combination, so the following frame rate expectations are estimated from the benchmark scores. The data is not measured and should be treated as a qualitative guide. In gaming, the performance will be dictated by the Intel Arc A580’s capabilities. The CPU’s high single-thread score of 2,253 in Cinebench R23 ensures that the 9900X will not be a limiting factor in most games.

The Arc A580’s 3DMark Steel Nomad DX12 score of 2,229 and its 8 GB of VRAM suggest that it is a solid 1080p gaming card. At 1080p with ultra settings, users can expect playable frame rates in most modern AAA titles, likely averaging in the 60-80 FPS range, though more demanding games may dip lower. In esports titles like Counter-Strike 2 or Valorant, which are less GPU-intensive, the system should easily push frame rates well above 144 FPS at 1080p, taking advantage of the CPU’s excellent single-thread performance.

At 1440p, the GPU will be severely challenged. The 512.0 GB/s of memory bandwidth helps, but the overall compute power of 12.29 TFLOPS is not enough to maintain high frame rates in demanding games at high settings. Users would likely need to reduce settings to medium or high to achieve a smooth 60 FPS experience at this resolution. Ray tracing performance will be limited by the 24 RT cores, and users should expect to rely on upscaling technologies to play with ray tracing enabled. In summary, the estimated gaming performance is strong for 1080p and entry-level 1440p, but the system is not designed for high-refresh 1440p or 4K gaming.