SYSTEM ANALYZER

Rate My PC: AMD Ryzen 9 7900 + Intel Arc B570

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

93 / 100
ULTIMATE READY

Apex Performer

Top 7% 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 7900

49,228 Benchmark Score
Top 6% Market Ranking
View Full Specs →
GRAPHICS CARD

Intel Arc B570

20,556 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
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 7900 paired with the Intel Arc B570 represents a desktop build centered on a high-core-count CPU with a capable mid-range GPU, targeting users who prioritize multi-threaded productivity alongside solid 1080p gaming. The combination sits in the 78th percentile overall, indicating a system that outperforms the majority of desktop configurations, though the GPU is the clear limiting factor for graphics-intensive workloads. This analysis relies exclusively on the provided benchmark data; no measured FPS rows exist for this exact CPU-GPU combination, so all gaming performance figures are estimates derived from the processor’s and graphics card’s synthetic scores.

FAQ

Q: How does the AMD Ryzen 9 7900 compare to its closest rivals in overall CPU performance?

A: The Ryzen 9 7900 has an average benchmark score of 49,228, placing it in the 90th percentile of all CPUs. It is virtually tied with the AMD Ryzen 7 PRO 5755G, which scores 49,196 (0.1% slower), and the Intel Core i5-14600KF, which scores 49,394 (0.3% faster). It also outperforms the Intel Core Ultra 5 245 (48,995, 0.5% faster for the rival) and the Intel Xeon Gold 5318H (48,698, 1.1% slower for the rival).

Q: What is the Intel Arc B570’s standing relative to other GPUs based on benchmark scores?

A: The Intel Arc B570 achieves an average benchmark score of 20,556, which places it in the 65th percentile of all GPUs. Its performance is nearly identical to the NVIDIA GeForce RTX 3070 Mobile (20,534, 0.1% slower) and the Intel Arc A750 (20,582, 0.1% faster), showing it competes with those cards despite being a desktop part.

Q: Does the Ryzen 9 7900 support overclocking?

A: Yes, the Ryzen 9 7900 has an unlocked multiplier, allowing for overclocking. This is supported by the AMD Socket AM5 platform and the Zen 4 architecture, giving users flexibility to push the 3.70 GHz base clock toward the 5.40 GHz boost clock.

Q: What kind of memory and storage expansion does this platform offer?

A: The CPU supports dual-channel DDR5 memory with a bandwidth of 83.2 GB/s and includes ECC memory support. For storage and expansion, the processor provides PCIe Gen 5 with 24 lanes, enabling high-speed NVMe SSDs and graphics cards, though the Intel Arc B570 itself uses a PCIe 4.0 x8 interface.

Q: How much power does the GPU require, and what PSU is recommended?

A: The Intel Arc B570 has a TDP of 150 W and requires a single 8-pin power connector. Intel recommends a 450 W power supply for a system using this GPU, which is a modest requirement for a desktop build.

Q: What is the single-threaded performance of the Ryzen 9 7900?

A: The CPU scores 1,069 in 3DMark single-thread, 315 in Cinebench R15 single-core, 1,966 in Cinebench R23 single-core, 2,495 in Geekbench single-core, and 4,130 in Passmark single-thread. These scores indicate strong per-core capability, crucial for tasks that rely on a few threads, such as everyday responsiveness and older games.

Q: Is there integrated graphics on this CPU?

A: Yes, the AMD Ryzen 9 7900 includes integrated Radeon Graphics. This is useful for basic display output and troubleshooting, but for gaming and heavy GPU workloads, the discrete Intel Arc B570 is the primary rendering device.

Upgrade Path and Platform

The AMD Ryzen 9 7900 is built for the AMD Socket AM5 platform, which represents a modern foundation for a desktop system. The platform’s key feature is support for DDR5 memory, with the CPU’s dual-channel memory bus providing 83.2 GB/s of bandwidth. This is a significant advantage over older DDR4 platforms, offering higher data transfer rates that benefit both CPU-intensive tasks and overall system responsiveness. ECC memory support is also present, which can be a consideration for professionals seeking data integrity in workstation builds.

The CPU provides 24 PCIe Gen 5 lanes, which is an ample amount for connecting a high-end graphics card and one or more NVMe SSDs. However, the Intel Arc B570 in this build operates on a PCIe 4.0 x8 interface, which is a step down from the CPU’s native Gen 5 support. This means the GPU is not fully utilizing the platform’s bandwidth potential, but in practice, the x8 link is sufficient for the GPU’s performance class. The PCIe Gen 5 lanes remain available for future storage upgrades or other expansion cards, making the platform forward-looking.

The power supply headroom for this system is dictated by the GPU’s 150 W TDP and the CPU’s 65 W TDP. Intel suggests a 450 W PSU for the Arc B570, which leaves ample room for the Ryzen 9 7900’s low power draw, even under load. This is a conservative estimate, and a quality 450 W or higher unit should be sufficient for a typical build. The GPU requires a single 8-pin power connector, which is standard on most modern power supplies.

For a sensible next upgrade, the data suggests that the platform can support more powerful GPUs without changing the CPU. The Ryzen 9 7900’s 90th percentile standing and high multi-threaded scores indicate it has headroom to drive a faster graphics card than the Arc B570. Users could consider a GPU with a higher percentile rank to reduce the bottleneck, or they could add more DDR5 memory to further improve system performance. The AM5 socket also supports future CPU upgrades within the same generation, but given the 7900’s strength, the CPU is unlikely to be the first component needing replacement.

CPU Analysis

The AMD Ryzen 9 7900 is a 12-core, 24-thread processor based on the Zen 4 architecture, codenamed Raphael. It is manufactured on a 5 nm process at TSMC, with 13,140 million transistors spread across a dual-die design measuring 2x 71 mm². The CPU has a base clock of 3.70 GHz and a boost clock of 5.40 GHz, with a TDP of just 65 W, which is notably low for a 12-core part. The cache hierarchy includes 64 KB of L1 per core, 1 MB of L2 per core, and a 64 MB shared L3 cache, providing a large pool of fast memory for workloads that benefit from shared data.

Benchmark results show that the Ryzen 9 7900 excels in multi-threaded scenarios. In Cinebench R23, it scores 24,776 in multi-core, which is a strong result for a 65 W processor, and 1,966 in single-core. The Geekbench multi-core score of 17,726 further reinforces its capability in parallel workloads, while the single-core score of 2,495 indicates strong per-thread performance. The 3DMark results show a clear scaling trend: 2,067 for 2 threads, 3,994 for 4 threads, 7,454 for 8 threads, 10,056 for 16 threads, and 10,953 for max threads. This scaling demonstrates that the CPU efficiently utilizes its 24 threads, with a nearly linear increase from 8 to 16 threads, making it well-suited for rendering, encoding, and compilation tasks that can use all available cores.

The Passmark scores provide insight into specific workload characteristics. The multi-thread score is 48,347, with integer math at 164,075 and floating-point math at 97,943, showing strong arithmetic performance. Data compression scores 577,847, while encryption is at 34,708, indicating the CPU handles compression-heavy tasks like file archiving very well. Extended instructions (e.g., AVX-512) score 42,253, which is beneficial for scientific and engineering applications. The low TDP is a standout feature; it delivers approximately 90% of the performance of its higher-power rivals while consuming far less energy, as evidenced by its average score of 49,228 being within 0.3% of the Intel Core i5-14600KF.

For real workloads, the Ryzen 9 7900 is a versatile powerhouse. Its 12 cores and 24 threads make it ideal for video editing, 3D rendering, and software compilation, where the high multi-core scores translate to faster completion times. The strong single-thread performance also ensures that less parallel tasks, such as web browsing and office productivity, feel snappy. The 64 MB L3 cache helps in gaming by reducing memory latency, though the GPU will often be the limiting factor in that scenario.

Balance and Bottleneck

In this build, the balance between CPU and GPU is asymmetric. The CPU is a high-end, 90th-percentile part, while the GPU is a mid-range, 65th-percentile component. This creates a scenario where the CPU is capable of feeding far more data to the GPU than the GPU can process in many workloads. The data indicates that the Ryzen 9 7900’s multi-threaded scores (e.g., 24,776 in Cinebench R23) are significantly higher than what the Arc B570 can utilize for graphics rendering, meaning the GPU will often be the primary bottleneck in gaming and GPU-accelerated tasks.

The bottleneck manifests differently across workload types. In CPU-bound tasks like video encoding, 3D rendering, or data compression, the Ryzen 9 7900’s 48,347 Passmark multi-thread score will drive performance, and the GPU has minimal influence. Conversely, in GPU-bound tasks like gaming at high resolutions or 3D rendering with ray tracing, the Arc B570’s 65th percentile standing will limit frame rates or render times, leaving the CPU underutilized. The GPU’s Passmark G3D score of 14,195 and 3DMark Steel Nomad score of 2,649 are representative of its mid-range capability, which will not fully stress the CPU’s potential.

The CPU’s 65 W TDP also contributes to the balance picture. It allows for efficient cooling and lower system power draw, but it does not imply a performance compromise in multi-threaded tasks, as the benchmark scores show. The platform’s PCIe Gen 5 support from the CPU is not fully leveraged by the GPU’s PCIe 4.0 x8 interface, but this does not cause a significant bottleneck; the x8 bandwidth is adequate for the GPU’s performance level. The primary bottleneck is the GPU’s shading and rasterization throughput, not the bus interface.

Evidence from the percentile scores clarifies the relationship. The combined percentile is 78, which is lower than the CPU’s individual 90th percentile but higher than the GPU’s 65th percentile. This suggests that the overall system performance is pulled down by the GPU, confirming that the Arc B570 is the limiting component for graphics-intensive tasks. For users who prioritize gaming, upgrading the GPU would yield the largest performance gain, while the CPU can remain in place for future upgrades without becoming a bottleneck.

Gaming Performance

No measured FPS rows exist for this exact CPU-GPU combination in the FACT PACK. Therefore, all gaming performance figures are estimates derived from the synthetic benchmark scores. The Intel Arc B570’s performance, as indicated by its 65th percentile rank and average score of 20,556, suggests it is a solid 1080p gaming card, but it will not deliver high-refresh-rate performance at higher resolutions in demanding titles.

The GPU’s raw compute capabilities—11.52 TFLOPS FP32, 200.0 GPixel/s pixel rate, and 360.0 GTexel/s texture rate—point to a card that can handle modern games at 1080p with high settings. Its 10 GB of GDDR6 memory on a 160-bit bus provides 380.0 GB/s of bandwidth, which is sufficient for 1080p textures but may be a limitation at 1440p with large texture packs. The 18 ray tracing cores support DirectX 12 Ultimate, but the overall RT performance is expected to be modest given the 65th percentile standing.

The Ryzen 9 7900’s strong single-thread scores (e.g., 1,966 in Cinebench R23) ensure that the CPU will not bottleneck the GPU in most games, even at lower resolutions where CPU load is higher. The 3DMark 8-thread score of 7,454 is particularly relevant for gaming, as most titles use 4 to 8 threads, and this score indicates the CPU can keep up with the GPU’s frame output. However, the GPU’s Passmark DirectX 12 score of 72 and DirectX 11 score of 118 are moderate, suggesting that frame rates will be consistent but not exceptional.

In esports titles like Fortnite or CS:GO, which are less demanding, the Arc B570 should deliver high frame rates at 1080p, likely exceeding 100 FPS, but this is an estimate. In AAA games at 1080p with ultra settings, frame rates are expected to be in the 60-90 FPS range for most titles. At 1440p, the GPU will likely struggle to maintain 60 FPS in the most demanding games, requiring settings reductions. The lack of measured data makes precise figures impossible, but the GPU’s mid-range percentile suggests a 1080p-focused gaming experience.

Who Should Build It

This build is best suited for users who need a powerful multi-threaded CPU for productivity but are gaming at 1080p with moderate graphical demands. The Ryzen 9 7900’s 90th percentile CPU performance makes it an excellent choice for content creators, video editors, and software developers who rely on CPU-intensive tasks like rendering, encoding, and compiling. The 12 cores and 24 threads, combined with a high Cinebench R23 multi-core score of 24,776, mean that video editing timelines will render quickly, and 3D modeling software will respond smoothly.

Gamers at 1080p who play less demanding titles will find this build adequate, as the Arc B570’s 65th percentile GPU performance provides a playable experience, though not at the highest refresh rates. The CPU’s strong single-thread performance ensures no CPU-related stutters, but the GPU will cap frame rates in more demanding games. This is not a build for 1440p high-refresh-rate gaming or 4K gaming, as the GPU lacks the raw power.

Students and small business workstations will benefit from the CPU’s efficiency and performance. The 65 W TDP allows for a compact, quiet system that can handle office tasks, data analysis, and light programming with ease. The ECC memory support is a plus for those running long computations where data integrity is critical. The platform’s longevity, with DDR5 and PCIe Gen 5, makes it a future-proof investment for users who may upgrade the GPU later.

Benchmark Performance

The CPU benchmarks for the AMD Ryzen 9 7900 are consistently strong. In 3DMark, it scores 10,056 for 16 threads and 10,953 for max threads, with a single-thread score of 1,069. Cinebench R23 results show 24,776 multi-core and 1,966 single-core, while Geekbench scores 17,726 multi-core and 2,495 single-core. Passmark tests yield a multi-thread score of 48,347 and a single-thread score of 4,130, with notable sub-scores in integer math (164,075), floating-point math (97,943), and data compression (577,847). These results place the CPU in the 90th percentile of all CPUs, with an average benchmark score of 49,228.

The GPU benchmarks for the Intel Arc B570 show a mid-range profile. It scores 2,649 in 3DMark Steel Nomad (DX12), 83,514 in Geekbench OpenCL, and 96,844 in Geekbench Vulkan. Passmark results include a G3D score of 14,195, a G2D score of 661, and a GPU compute score of 7,281. The DirectX 11 score of 118 is its strongest legacy API result, while DirectX 12 (72) and DirectX 10 (65) are lower. The GPU’s average benchmark score is 20,556, placing it in the 65th percentile of all GPUs.

The combined picture shows a system where the CPU is a top-tier performer and the GPU is a competent but not exceptional part. The CPU is 25 percentage points higher in percentile ranking than the GPU, indicating a significant performance gap. The combined percentile of 78 reflects this imbalance, with the CPU driving the overall score upward but the GPU holding it back from the 90th percentile range. The nearest rivals for the CPU are all within 1.1% of its average score, showing it is a competitive high-end part, while the GPU’s nearest rivals are within 0.5%, indicating it is a solid mid-range option.

Build Overview

This build pairs the AMD Ryzen 9 7900, a 12-core, 24-thread desktop processor, with the Intel Arc B570, a desktop graphics card based on the Xe2-HPG architecture. The build class is desktop, and the CPU is part of the 7000 series, using the Zen 4 architecture on the AMD Socket AM5 platform. The GPU is a dual-slot card with a 150 W TDP, requiring a 450 W power supply and a single 8-pin connector.

The overall tier of this build is defined by its 78th combined percentile. This places it above the majority of desktop systems, but below the top 20% of configurations where both CPU and GPU are high-end. The CPU’s 90th percentile rank makes it a high-tier component, suitable for demanding productivity tasks, while the GPU’s 65th percentile rank is solidly mid-tier, suitable for 1080p gaming. The pairing is a common one: a powerful CPU with a mid-range GPU, which is ideal for users who spend more time in CPU-bound applications than GPU-bound games.

The GPU’s specifications include 10 GB of GDDR6 memory, 2,304 shading units, 144 TMUs, and 80 ROPs, with a boost clock of 2500 MHz. It supports DirectX 12 Ultimate, Vulkan 1.4, and OpenGL 4.6, and has 18 ray tracing cores. The CPU’s specifications include 64 MB of L3 cache, dual-channel DDR5 memory support, and 24 PCIe Gen 5 lanes. This combination provides a balanced platform for a mainstream desktop build, with the CPU offering headroom for future GPU upgrades.

Usage Scenarios

High-refresh gaming: The Intel Arc B570’s 65th percentile GPU performance is adequate for 1080p gaming, but it will not consistently hit high refresh rates in demanding titles. The CPU’s 3DMark 8-thread score of 7,454 ensures it can handle the frame pacing, but the GPU’s Passmark DirectX 12 score of 72 limits frame rates. Expect 60-90 FPS in most AAA games at 1080p ultra, with higher frames in esports titles.

Streaming: The Ryzen 9 7900’s 24 threads are ideal for streaming, as the CPU can handle encoding via x264 without impacting game performance. The Passmark multi-thread score of 48,347 indicates ample headroom for both gaming and encoding simultaneously. The GPU’s performance is sufficient for 1080p streaming, but the CPU is the workhorse here.

Video editing: Video editing software like Premiere Pro will leverage the CPU’s 12 cores and 24 threads, with Cinebench R23 multi-core score of 24,776 providing fast export times. The GPU’s 10 GB memory and 11.52 TFLOPS FP32 can accelerate effects and rendering. This is a strong scenario for this build, with the CPU excelling and the GPU providing adequate support.

3D rendering: In CPU-based renderers like Blender Cycles, the Ryzen 9 7900’s high multi-thread performance (Geekbench multi-core 17,726) will significantly reduce render times. The GPU can assist with GPU-accelerated rendering, but its 65th percentile rank means it is not a primary renderer. The 64 MB L3 cache helps with complex scenes.

Software development: Developers will benefit from the CPU’s multi-threaded compilation speeds, with Passmark integer math at 164,075 indicating fast code builds. The strong single-thread score (4,130 Passmark) ensures responsive IDE performance. The 24 PCIe Gen 5 lanes allow for fast NVMe storage for large repositories.

Student and office work: This build is overkill for basic tasks, but the 65 W TDP makes it an efficient workstation. The CPU’s single-thread performance (Geekbench 2,495) ensures snappy office applications, and the ECC memory support is a bonus for data integrity. The integrated Radeon Graphics can handle display output if the discrete GPU is not needed.