SYSTEM ANALYZER

Rate My PC: AMD Ryzen 7 5800 + Intel Arc B570

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

89 / 100
HIGH-END

Power Build

Top 11% of systems. Excellent for 1440p Ultra or 4K High gaming.

1440p Ultra4K High

System Balance Analysis

CPU vs GPU performance ratio
Well Balanced
CPU
88%
VS
GPU
91%
PROCESSOR

AMD Ryzen 7 5800

27,535 Benchmark Score
Top 12% 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

Strong Performance

Excellent for 1440p gaming. Most games will run at high/ultra settings smoothly.

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 7 5800 and Intel Arc B570 form a desktop pairing that targets the upper-midrange performance tier, with a combined percentile of 72. This combination leverages an 8-core, 16-thread Zen 3 processor with a 65 W TDP alongside a 10 GB Battlemage graphics card. The data indicates this is a balanced setup for 1440p gaming and productivity workloads, though the lack of measured frame rate data means all performance expectations must be derived from synthetic benchmark scores.

Who Should Build It

This configuration is suited for users seeking a desktop system with strong multi-threaded CPU performance and solid 1080p to 1440p graphics capabilities. The CPU’s 79th percentile ranking against all processors places it above the median, making it appropriate for gamers, content creators, and software developers who require responsive multitasking. The GPU’s 65th percentile ranking, while lower, still positions it ahead of the majority of discrete graphics cards, enabling high-detail gaming at mainstream resolutions.

The benchmark data points toward three primary audiences. First, gamers who prioritize frame rates over maximum visual fidelity at 1440p will find the Arc B570’s performance tier adequate for modern titles. Second, content creators working with CPU-bound tasks such as video encoding or 3D rendering will benefit from the Ryzen 7 5800’s 16 threads and high multi-core scores. Third, software developers compiling code or running virtual machines will appreciate the processor’s strong PassMark multithread score of 25823. The system is less ideal for enthusiasts seeking 4K gaming or extreme computational workloads, as the GPU’s 10 GB VRAM and the CPU’s 79th percentile fall short of top-tier components.

For students and small business workstations, this pairing offers a capable foundation. The CPU’s 3DMark single-thread score of 916 and PassMark single-thread score of 3393 indicate responsive everyday use, while the GPU’s 11.52 TFLOPS FP32 performance handles GPU-accelerated applications. However, users requiring maximum graphics performance in professional 3D applications may find the GPU’s 65th percentile insufficient for heavy rendering workloads.

GPU Analysis

The Intel Arc B570 is built on the Xe2-HPG architecture, codenamed Battlemage, and manufactured on TSMC’s 5 nm process. The chip contains 19,600 million transistors on a 272 mm² die, with a transistor density of 72.1M per mm². The GPU features 2304 shading units, 144 texture mapping units, and 80 raster output units, delivering pixel and texture rates of 200.0 GPixel/s and 360.0 GTexel/s, respectively.

Memory configuration consists of 10 GB of GDDR6 on a 160-bit bus, providing 380.0 GB/s of bandwidth. The memory clock runs at 2375 MHz with 19 Gbps effective transfer rate. This bandwidth figure is moderate for the GPU’s class, and the 10 GB capacity may become a limiting factor at very high resolutions or with heavy texture packs. The base and boost clocks are both fixed at 2500 MHz, a conservative approach that suggests consistent performance without thermal throttling under standard cooling.

Ray tracing hardware includes 18 RT cores, which support DirectX 12 Ultimate (12_2), Vulkan 1.4, and OpenGL 4.6. The FP32 throughput of 11.52 TFLOPS and FP16 throughput of 23.04 TFLOPS (2:1 ratio) indicate the GPU is capable of handling both rasterized and compute-heavy workloads. The 3DMark Steel Nomad DX12 score of 2649 places the card in a competitive position against similar mid-range options.

The nearest rivals provide context for the Arc B570’s performance. The NVIDIA GeForce RTX 3070 Mobile averages 20534, a 0.1% difference, while the Intel Arc A750 averages 20582, a -0.1% delta. This clustering indicates that the B570 performs within a narrow band of comparable products, making architectural differences and driver maturity more significant than raw score gaps. The power draw of 150 W TDP with a suggested 450 W PSU indicates efficient operation for the performance offered.

Benchmark Performance

The Ryzen 7 5800 delivers strong multi-threaded results across various benchmarks. In Cinebench R23, the processor scores 21953 in multi-core and 3099 in single-core, showing a 7x scaling between single-thread and fully-loaded scenarios. The 3DMark tests reveal progressive scaling: 1795 for 2 threads, 3443 for 4 threads, 5692 for 8 threads, and 7181 for 16 threads. The max threads score of 7138 is slightly lower than the 16-thread score, indicating diminishing returns beyond 16 threads. The Cinebench R20 results corroborate this, with 9220 multi-core and 1301 single-core scores.

The GPU’s PassMark G3D score of 14195 and 3DMark Steel Nomad score of 2649 establish its performance tier. The Geekbench OpenCL and Vulkan scores of 83514 and 96844, respectively, show strong compute capability, with Vulkan outperforming OpenCL by approximately 16%. The PassMark GPU compute score of 7281 further confirms the card’s compute-oriented design.

The combined picture shows a system where the CPU outperforms the GPU in relative terms. The processor’s 79th percentile versus the GPU’s 65th percentile creates a gap where the CPU is capable of feeding more powerful graphics cards. The average benchmark score for the CPU is 27535, while the GPU averages 20556. This 34% difference in raw benchmark scores suggests that the CPU will not be the primary bottleneck in most gaming scenarios.

Balance and Bottleneck

Benchmark data indicates this system’s bottleneck profile varies by workload type. In CPU-bound scenarios, the Ryzen 7 5800’s 79th percentile ensures strong performance, but the GPU’s 65th percentile will limit frame rates in graphics-intensive games. The CPU’s nearest rivals include the Intel Core i5-12600K and AMD Ryzen 7 5700X, both with average scores around 27578, showing that the 5800 sits within -0.2% of these alternatives. This means the CPU is not a performance outlier but rather a solid mid-range option.

For gaming at 1080p, the GPU is likely the limiting factor, as the CPU’s single-thread score of 916 in 3DMark and 3099 in Cinebench R23 are sufficient to drive high frame rates. At 1440p, the balance shifts further toward the GPU, where the 10 GB VRAM and 380.0 GB/s bandwidth become more relevant. The FPS scaling expectations, while not measured, would follow the GPU’s 65th percentile positioning, meaning frame rates will be lower than high-end cards but consistent with the mid-range segment.

In productivity workloads, the CPU’s multi-threaded dominance becomes apparent. The PassMark multithread score of 25823 and Cinebench R23 multi-core of 21953 indicate that the processor can handle sustained heavy loads without the GPU becoming a bottleneck. Conversely, GPU-accelerated rendering tasks will be limited by the Arc B570’s 11.52 TFLOPS FP32 throughput, which is competitive but not class-leading.

Gaming Performance

No measured FPS data exists for this exact CPU-GPU combination. The FACT PACK contains no measuredFps rows for this pairing, so all frame rate expectations are estimated from the benchmark scores and should be treated as approximations rather than precise figures.

Based on the GPU’s PassMark G3D score of 14195 and its 65th percentile ranking, this system is expected to handle esports titles and older games at high frame rates in 1080p. For demanding AAA titles, the 11.52 TFLOPS FP32 performance suggests playable frame rates at 1080p with high settings, but 1440p gaming will require adjustments to quality presets to maintain smooth performance. The 10 GB VRAM is sufficient for 1440p textures in most current games, though future titles may exceed this capacity.

The CPU’s 3DMark single-thread score of 916 and 2-thread score of 1795 indicate that the processor will not hold back frame rates in most scenarios. The 16-thread score of 7181 shows that the CPU can handle background tasks while gaming, reducing the likelihood of stutters from system overhead. For high-refresh-rate monitors at 1080p, the GPU’s 65th percentile may limit maximum FPS in competitive titles, while the CPU’s 79th percentile ensures consistent frame pacing.

Build Overview

This desktop build pairs the AMD Ryzen 7 5800, a Zen 3 architecture processor on the AM4 socket, with the Intel Arc B570, a Battlemage architecture graphics card. The CPU features 8 cores and 16 threads with a base clock of 3.40 GHz and boost clock of 4.60 GHz, while the GPU offers 2304 shading units and 10 GB of GDDR6 memory. The combined percentile of 72 places this system in the upper-midrange tier of desktop configurations.

The CPU’s 79th percentile and the GPU’s 65th percentile indicate that this is not a top-tier gaming machine, but rather a balanced system for users who need strong multi-threaded performance alongside competent graphics. The 65 W CPU TDP and 150 W GPU TDP suggest power efficiency is a priority, with a total system draw that is manageable for most power supplies. The Arc B570’s launch MSRP is 219 USD, positioning it as a mid-range graphics solution.

FAQ

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

A: The system achieves a combined percentile of 72, placing it in the upper-midrange tier of desktop configurations.

Q: How does the Ryzen 7 5800 compare to its nearest rivals?

A: The CPU has an average benchmark score of 27535, which is 0.1% ahead of the Intel Core Ultra 5 125H and -0.2% behind the Intel Core i5-12600K and AMD Ryzen 7 5700X.

Q: What is the GPU’s memory configuration?

A: The Intel Arc B570 features 10 GB of GDDR6 memory on a 160-bit bus, providing 380.0 GB/s of bandwidth at 2375 MHz (19 Gbps effective).

Q: Is the CPU or GPU the limiting factor in gaming performance?

A: The GPU’s 65th percentile is lower than the CPU’s 79th percentile, making the Arc B570 the primary bottleneck in graphics-intensive workloads.

Q: What is the power consumption of each component?

A: The CPU has a TDP of 65 W, while the GPU has a TDP of 150 W, with a suggested PSU rating of 450 W.

Q: Does this CPU support overclocking?

A: Yes, the Ryzen 7 5800 has an unlocked multiplier, allowing for manual overclocking within the motherboard’s power delivery capabilities.

Q: What is the GPU’s ray tracing capability?

A: The Arc B570 includes 18 RT cores and supports DirectX 12 Ultimate (12_2), indicating hardware-accelerated ray tracing support.

CPU Analysis

The AMD Ryzen 7 5800 is a desktop processor based on the Zen 3 architecture, codenamed Vermeer, manufactured on TSMC’s 7 nm process. The chip contains 4,150 million transistors on a 74 mm² die, with a TDP of 65 W. The 8 cores and 16 threads operate at a base clock of 3.40 GHz and boost clock of 4.60 GHz, with cache configuration of 64 KB L1 per core, 512 KB L2 per core, and 32 MB shared L3.

Memory support includes dual-channel DDR4 with a bandwidth of 51.2 GB/s and ECC capability, making it suitable for workstations. The processor provides 20 PCIe Gen 4 lanes from the CPU, supporting high-speed storage and graphics cards. The socket is AMD AM4, which offers broad platform compatibility with existing motherboards.

Benchmark results show the CPU’s strengths in multi-threaded workloads. The Cinebench R23 multi-core score of 21953 is approximately 7x the single-core score of 3099, indicating excellent scaling across cores. The PassMark data compression score of 316429 and encryption score of 20021 demonstrate strong performance in data-intensive tasks. The floating point math score of 51588 and integer math score of 92843 show balanced computational capability.

The 79th percentile ranking places this CPU ahead of the majority of processors, with nearest rivals including the Intel Core Ultra 5 125H and AMD Ryzen 5 7600X. The average benchmark score of 27535 compares favorably to these alternatives, with a 0.1% lead over the Core Ultra 5 125H and a -0.4% deficit to the Ryzen 5 7600X. The single-thread performance of 3393 in PassMark and 916 in 3DMark indicates that the CPU remains competitive in lightly-threaded applications.

Usage Scenarios

High-refresh gaming: The CPU’s 3DMark 2-thread score of 1795 ensures minimal bottleneck at high frame rates, but the GPU’s 65th percentile limits maximum FPS in competitive titles. Expect smooth 1080p gameplay with reduced settings to reach 144Hz.

Streaming: The 16 threads and Cinebench R23 multi-core score of 21953 provide headroom for encoding while gaming. The PassMark multithread score of 25823 indicates the CPU can handle simultaneous game and stream processing without significant frame drops.

Video editing: The CPU’s strong multi-threaded performance (3DMark max threads 7138) accelerates timeline rendering and export. The GPU’s 10 GB VRAM assists with GPU-accelerated effects, though the 11.52 TFLOPS FP32 throughput may limit complex effects.

3D rendering: The Cinebench R20 multi-core score of 9220 places this CPU in a capable position for CPU-based rendering. GPU rendering will be slower due to the Arc B570’s 65th percentile, making this a secondary workload for this system.

Software development: The 8 cores and 16 threads handle compilation tasks efficiently, with PassMark integer math of 92843 supporting fast code building. The ECC memory support adds reliability for long-running build processes.

Student and office work: The CPU’s single-thread score of 916 in 3DMark ensures responsive application usage, while the 65 W TDP keeps power consumption low. The GPU’s PassMark G2D score of 661 indicates adequate 2D performance for productivity applications.

Upgrade Path and Platform

The AMD AM4 socket provides a mature upgrade path, with the Ryzen 7 5800 supporting DDR4 memory and PCIe Gen 4. The 20 CPU PCIe lanes allow for one full-speed graphics card and multiple NVMe drives. The 65 W TDP leaves thermal headroom for future CPU upgrades, though the platform is at the end of its AM4 lifecycle.

For the GPU, the PCIe 4.0 x8 interface on the Arc B570 limits bandwidth compared to x16 slots, but the 380.0 GB/s memory bandwidth compensates in most workloads. A future GPU upgrade to a higher-tier card would be feasible, as the CPU’s 79th percentile can support more powerful graphics solutions. The 450 W suggested PSU provides headroom for a modest GPU upgrade, though higher-end cards would require a PSU change.

The 32 MB L3 cache and 8-core configuration remain relevant for current software, making the CPU a viable long-term component. The DDR4 memory support, while older than DDR5, offers lower latency and widespread availability. For users seeking maximum performance, a platform change to a newer socket would be necessary, but the current setup provides a balanced foundation without immediate upgrade pressure.