SYSTEM ANALYZER

Rate My PC: AMD Ryzen 7 5800XT + Intel Arc A750

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

90 / 100
ULTIMATE READY

Apex Performer

Top 10% 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
89%
VS
GPU
91%
PROCESSOR

AMD Ryzen 7 5800XT

29,879 Benchmark Score
Top 11% Market Ranking
View Full Specs →
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
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 7 5800XT and Intel Arc A750 pairing represents a desktop build centered on a proven eight-core platform and a modern mid-range graphics card. The CPU is a late addition to the long-running AM4 socket, while the GPU is Intel’s Alchemist-generation offering, now end-of-life but still actively supported by drivers. This combination targets 1080p and 1440p gaming, alongside productivity workloads that benefit from the CPU’s strong multi-threading and the GPU’s dedicated hardware features.

Upgrade Path and Platform

The AMD Ryzen 7 5800XT is built for the AMD Socket AM4, a platform that has been widely supported across multiple generations. The CPU uses the Zen 3 architecture, codenamed Vermeer, and is manufactured on TSMC’s 7 nm process. This is a desktop-class processor with a 105 W TDP, which is a modest figure for an eight-core part and leaves substantial headroom for cooling solutions. The platform supports DDR4 memory in a dual-channel configuration, providing a memory bandwidth of 51.2 GB/s, and includes ECC memory support, which is a relevant feature for workstation-class builds where data integrity is a priority. The CPU provides 20 PCIe Gen 4 lanes, which is sufficient for a modern graphics card and a fast NVMe SSD, though the GPU itself uses a PCIe 4.0 x16 interface.

The Intel Arc A750 requires a suggested PSU of 550 W, which is a reasonable figure for a system with a 105 W TDP CPU and a 225 W TDP GPU. The combined power draw is well within the range of a quality 550 W to 650 W power supply, leaving headroom for additional drives and peripherals. The GPU requires a 1x 6-pin and 1x 8-pin power connector, which is standard for this class of card. The motherboard choice is critical here — a B550 or X570 board with PCIe Gen 4 support will maximize the GPU’s bandwidth, though the card will function on older PCIe Gen 3 boards with a minor performance impact.

The upgrade path for this platform is straightforward but finite. AM4 is a mature socket, meaning the Ryzen 7 5800XT is near the top of the stack for this platform. A sensible next upgrade for users who need more CPU performance would be a higher-core-count AM4 part, but the 5800XT’s 81st percentile ranking among all CPUs suggests it is already a strong performer. For GPU upgrades, the PCIe 4.0 x16 slot is future-proof enough for the next generation of cards, and the 550 W PSU recommendation provides a baseline — users upgrading to a more power-hungry GPU should plan for a larger PSU, but the current pairing is well balanced.

Benchmark Performance

The benchmark data shows the Ryzen 7 5800XT performing at an 81st percentile rank among all CPUs, with an average benchmark score of 29879. This places it in the upper tier of desktop processors, competitive with recent mobile and desktop parts. The nearest rivals are the AMD Ryzen 7 7840H (avg score 29868, delta 0%), the AMD Ryzen 7 8845HS and Ryzen 7 7840HS (both avg score 29955, delta -0.3%), and the AMD Ryzen 5 9600X (avg score 29713, delta 0.6%). The delta percentages are negligible, indicating that the 5800XT performs within a hair of these newer and sometimes more expensive parts. In practice, this means the 5800XT offers desktop-class performance that matches the best of the mobile Ryzen 7 parts and the current-gen Ryzen 5.

The Intel Arc A750 sits at the 66th percentile among all GPUs, with an average benchmark score of 20582. Its nearest rivals are the Intel Arc B570 (avg score 20556, delta 0.1%), the NVIDIA GeForce RTX 3070 Mobile (avg score 20534, delta 0.2%), the AMD Radeon R9 M390X (avg score 20662, delta -0.4%), and the NVIDIA Quadro M4000M (avg score 20480, delta 0.5%). The performance is essentially identical to these parts, which is notable because the Arc A750 is a desktop card competing with mobile variants of higher-end GPUs. This suggests the A750 delivers solid 1080p and entry-level 1440p performance, though it is not a top-tier card.

The combined percentile for this build is 74, indicating a well-matched pair where neither component is drastically holding the other back. The CPU is clearly the stronger component relative to its peer group, but the GPU is sufficient to keep the system balanced for most workloads. The data shows a system that can handle modern games at high settings and productivity tasks with ease, though the GPU will be the limiting factor in GPU-bound scenarios.

CPU Analysis

The AMD Ryzen 7 5800XT is an eight-core, sixteen-thread processor based on the Zen 3 architecture. It has a base clock of 3.80 GHz and a boost clock of 4.80 GHz, which is a respectable frequency range for a desktop part. The cache hierarchy includes 64 KB of L1 per core, 512 KB of L2 per core, and 32 MB of shared L3 cache, which is a generous amount for gaming and productivity workloads. The CPU is manufactured on a 7 nm process from TSMC, with 4,150 million transistors on a 74 mm² die, making it a dense and efficient design.

Benchmark scores show strong multi-threaded performance. In Cinebench R23, the CPU scores 23794 multi-core and 3359 single-core. The multi-core score is particularly impressive, placing it well above the average for eight-core parts and within striking distance of newer 8-core mobile parts. The single-core score of 3359 is also strong, indicating good per-thread performance for games and lightly-threaded applications. In 3DMark, the CPU scores 7683 in the 16-thread test and 7680 in the max-threads test, showing that scaling is nearly perfect from 8 to 16 threads — a sign that the Zen 3 architecture is well-optimized for multi-threading.

The PassMark scores further illustrate the CPU’s capabilities. The multi-thread score of 28053 and the single-thread score of 3535 are both solid, but the more interesting figures are the specialized workloads: data compression scores 352002, floating point math scores 53808, and integer math scores 93942. These numbers indicate a CPU that is well-suited for video encoding, 3D rendering, and software compilation, where high multi-threaded throughput matters. The physics score of 1355 in PassMark suggests good gaming performance in physics-heavy titles, and the extended instructions score of 24270 confirms that the CPU handles AVX2 and similar workloads efficiently.

For real-world workloads, the 5800XT is a capable all-rounder. It can handle 4K video editing, 3D rendering, and software development without breaking a sweat. The 32 MB of L3 cache is a boon for gaming, as it reduces memory latency and improves frame pacing. The ECC memory support is a niche feature that will appeal to users building a small workstation where data integrity is paramount. The CPU’s performance in the 2-thread test (1879) and 4-thread test (3603) in 3DMark also shows that it is not just a multi-core monster — it has solid single-thread performance for older games and everyday tasks.

Gaming Performance

No measured FPS rows exist for this exact combination — the FACT PACK contains no measured FPS data. All frame rate discussion is therefore estimated from the benchmark scores. The Intel Arc A750’s 66th percentile rank and its average benchmark score of 20582 suggest it can handle 1080p gaming at high settings and 1440p gaming at medium to high settings, depending on the title. The GPU’s nearest rival, the Intel Arc B570, is a newer part, and the A750’s performance is nearly identical to the RTX 3070 Mobile, which is a known quantity for 1080p high-refresh gaming.

The CPU’s strong single-thread score of 3359 in Cinebench R23 and its 3DMark 2-thread score of 1879 indicate it will not be a bottleneck in most games, even at 1080p with a high-refresh-rate monitor. The GPU will be the limiting factor in most gaming scenarios. At 1080p, the A750 should deliver 60+ FPS in most modern titles at high settings, with esports titles reaching well beyond 144 FPS. At 1440p, the GPU will start to struggle in the most demanding AAA games, but it should still hold 60 FPS at medium settings.

The GPU’s DirectX 12 support is rated at 12 Ultimate, which includes hardware ray tracing. The 28 RT cores on the A750 will provide playable ray-traced performance at 1080p, though settings will need to be dialed back. The GPU’s Vulkan 1.4 support is also a plus for modern titles that use Vulkan. The 8 GB of GDDR6 memory on a 256-bit bus with 512.0 GB/s bandwidth is sufficient for 1080p and 1440p textures, but it may be a limitation in future titles that require more than 8 GB of VRAM at higher resolutions. Overall, the gaming picture is one of a balanced 1080p-focused system with headroom for 1440p in less demanding titles.

Who Should Build It

This build is aimed at a specific set of users: desktop enthusiasts who want a capable machine for 1080p and 1440p gaming without spending top dollar on the latest hardware. The CPU’s 81st percentile rank puts it in the upper echelon of processors, making it suitable for content creators who need fast multi-threaded performance for video editing, 3D rendering, and software development. The 8-core/16-thread configuration is ideal for streaming while gaming, as it has enough headroom to encode video without impacting frame rates.

The Intel Arc A750’s 66th percentile rank means it is a mid-range GPU, best suited for gamers who play at 1080p resolution. The GPU’s performance is nearly identical to the RTX 3070 Mobile, which is a well-regarded laptop GPU, but the desktop A750 has the advantage of a full 225 W TDP and dedicated power connectors. This makes it a good choice for budget-conscious builders who want to play the latest AAA titles at high settings, as well as for users who want to experiment with ray tracing at 1080p without buying a premium GPU.

The platform is also a strong candidate for small business workstations or student builds. The ECC memory support is a rare feature for a consumer CPU and could be a deciding factor for users who run long compute jobs or handle sensitive data. The CPU’s performance in PassMark data compression and encryption tests (352002 and 21461 respectively) makes it suitable for file servers or backup machines. The build’s combined percentile of 74 indicates a balanced system that will not embarrass itself in any workload, making it a versatile choice for users who want one machine for both work and play.

Usage Scenarios

High-Refresh Gaming: At 1080p, the CPU’s strong single-thread score of 3359 in Cinebench R23 will keep frames high, while the GPU’s 66th percentile rank ensures 100+ FPS in esports titles and 60+ FPS in AAA games. The 8 GB VRAM is sufficient for 1080p textures, and the GPU’s DirectX 12 Ultimate support enables ray tracing without a massive performance hit.

Streaming: The 8-core/16-thread CPU is the star here. With a Cinebench R23 multi-core score of 23794, the 5800XT can easily handle a game and a 1080p stream encode simultaneously. The GPU’s dedicated encode hardware offloads the stream, leaving the CPU free for gameplay and background tasks.

Video Editing: The CPU’s PassMark multi-thread score of 28053 and its data compression score of 352002 indicate fast export times in Premiere Pro or DaVinci Resolve. The GPU’s 17.20 TFLOPS FP32 performance accelerates effects and color grading. The 8 GB VRAM is adequate for 1080p and 4K timelines, though larger projects may require lowering preview quality.

3D Rendering: The CPU’s Cinebench R20 multi-core score of 9993 places it in the upper tier for CPU-based rendering. The GPU’s Vulkan support and 537.6 GTexel/s texture rate make it a competent OpenCL or Vulkan renderer, though it is not a top-tier GPU for this workload. The system will handle small to medium-sized scenes without issue.

Software Development: The CPU’s high integer math score of 93942 and its 16 threads make it excellent for compiling code. The ECC memory support is a plus for developers running long test suites or working with large datasets. The GPU’s compute score of 5368 in PassMark is sufficient for running CUDA-free machine learning workloads or Vulkan compute shaders.

Student and Office Work: The system is overpowered for basic office tasks, but the 81st percentile CPU rank means it will handle any spreadsheet, document, or browser workload with ease. The GPU’s G2D score of 732 ensures smooth 2D acceleration for multiple monitors. The ECC memory support is a bonus for students in engineering or data science programs who need reliable long-running computations.

FAQ

Q: Does the Intel Arc A750 support ray tracing?

A: Yes, the Arc A750 has 28 dedicated RT cores and supports DirectX 12 Ultimate, which includes hardware ray tracing. The 66th percentile GPU rank suggests playable ray-traced performance at 1080p, though settings will need adjustment.

Q: What is the combined performance tier of this build?

A: The build has a combined percentile of 74 among all CPU+GPU pairings. This places it in the upper-midrange tier, with the CPU at the 81st percentile and the GPU at the 66th percentile.

Q: Is the Ryzen 7 5800XT compatible with DDR4 memory?

A: Yes, the CPU supports DDR4 memory in a dual-channel configuration, with a memory bandwidth of 51.2 GB/s. It also supports ECC memory, which is unusual for a consumer desktop processor.

Q: How does the Arc A750 compare to the Intel Arc B570?

A: The Arc A750 has an average benchmark score of 20582, while the Arc B570 scores 20556, a delta of 0.1%. The two GPUs are effectively identical in performance, with the A750 being a previous-generation part.

Q: What power supply is recommended for this build?

A: The Intel Arc A750 has a suggested PSU of 550 W. The CPU has a 105 W TDP, so a quality 550 W unit is sufficient, though a 650 W unit provides more headroom for overclocking or additional drives.

Q: What is the CPU’s socket and platform?

A: The Ryzen 7 5800XT uses the AMD Socket AM4 platform. It provides 20 PCIe Gen 4 lanes from the CPU, which is enough for a modern GPU and an NVMe SSD.

Q: Is measured FPS data available for this exact combination?

A: No, the FACT PACK contains no measured FPS data for this CPU+GPU pairing. All frame rate expectations are estimated from the individual benchmark scores and percentile ranks.

Build Overview

This is a desktop-class build combining the AMD Ryzen 7 5800XT (an 8-core, 16-thread Zen 3 CPU) with the Intel Arc A750 (an Alchemist-generation GPU with 8 GB GDDR6 memory). The CPU is a late-release part for the AM4 platform, released in July 2024, while the GPU is an end-of-life product from 2022. The build’s combined percentile is 74, meaning it outperforms roughly three-quarters of all CPU+GPU pairings in the database.

The CPU is the stronger component, sitting at the 81st percentile among all CPUs, while the GPU sits at the 66th percentile among all GPUs. This means the system is CPU-forward, which is a good position for productivity workloads that scale with cores and threads. For gaming, the GPU will be the primary determinant of frame rate, and the 66th percentile rank indicates it is a solid mid-range part. The pairing makes sense for a builder who wants a machine that excels at multi-threaded tasks and can handle modern games at 1080p or 1440p with adjusted settings.

Balance and Bottleneck

The data shows a system where the CPU is the dominant component. The Ryzen 7 5800XT’s 81st percentile rank versus the GPU’s 66th percentile rank creates a 15-point gap, indicating the CPU has significantly more headroom than the GPU. In CPU-bound workloads — such as software compilation, 3D rendering, and video encoding — the CPU will be the primary driver of performance, and the GPU will have minimal impact. The CPU’s Cinebench R23 multi-core score of 23794 and PassMark multi-thread score of 28053 are strong indicators of its capability in these tasks.

In GPU-bound scenarios, primarily gaming, the Arc A750 will be the limiting factor. The GPU’s average benchmark score of 20582 and its 66th percentile rank mean it will cap frame rates in most titles, particularly at higher resolutions. The CPU’s high single-thread score of 3359 in Cinebench R23 and its 3DMark 2-thread score of 1879 mean it will not bottleneck the GPU at 1080p, but the GPU will still determine the overall frame rate ceiling. The performance delta between the GPU and its nearest rival, the Arc B570 (delta 0.1%), suggests that the A750 is at the fringes of its performance bracket.

The bottleneck analysis shows a balanced system with a slight CPU bias. For gaming, the GPU is the limiting factor, and users should expect to lower settings or resolution to achieve higher frame rates. For productivity, the CPU is the star, and the GPU’s compute capabilities (17.20 TFLOPS FP32) add acceleration for certain workloads but do not define the system’s character. The 8 GB VRAM on the GPU is another potential bottleneck for users who want to play at 1440p with high-resolution textures or use the GPU for machine learning workloads that require more memory. Overall, this is a system where the CPU punches above its weight class, and the GPU is a competent but not exceptional partner.