SYSTEM ANALYZER

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

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 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

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 A750 form a classic desktop pairing that targets the sweet spot of 1080p and 1440p gaming while offering substantial compute capability for creative workloads. Based on the database records, this combination sits at the 73rd percentile overall, placing it above the majority of all tracked system configurations. The CPU holds the 79th percentile among all processors, while the GPU holds the 66th percentile among all graphics cards, indicating a balanced pairing where the processor slightly outpaces the graphics solution in relative standing. It is important to note that no measured FPS rows exist for this exact combination; the FACT PACK contains no measuredFps data, so all performance expectations must be framed as estimates derived from the individual benchmark scores of each component.

Upgrade Path and Platform

The AMD Ryzen 7 5800 is built on the Zen 3 architecture with the Vermeer codename, housed on the AMD Socket AM4 platform. This socket has one of the longest lifespans in modern desktop computing, meaning users building today have a clear path forward without necessarily replacing the motherboard. The CPU supports DDR4 memory via a dual-channel memory bus, delivering a memory bandwidth of 51.2 GB/s. ECC memory support is present, which is a relevant feature for workstation users who require data integrity over raw speed. The platform provides PCIe Gen 4 with 20 lanes from the CPU, ensuring that modern GPUs and NVMe storage devices can operate at full bandwidth without bottlenecking the interface.

The Intel Arc A750 uses a PCIe 4.0 x16 bus interface, which pairs perfectly with the CPU's PCIe Gen 4 support, allowing the GPU to communicate with the processor at maximum theoretical bandwidth. The GPU has a TDP of 225 W and the suggested PSU for the system is 550 W. The CPU, by contrast, has a modest TDP of 65 W, meaning the total system power draw is dominated by the graphics card. This leaves substantial headroom for additional components such as multiple storage drives, fans, and RGB lighting on a quality 550 W power supply, though users planning heavy overclocking or many peripherals might consider a higher-wattage unit for peace of mind.

The multiplier is unlocked on the Ryzen 7 5800, allowing enthusiasts to push the base clock of 3.40 GHz higher, though the boost clock already reaches 4.60 GHz out of the box. Since the CPU has a low 65 W TDP, there is thermal headroom for overclocking with a capable air cooler, and the AM4 platform supports a wide range of coolers from budget tower coolers to high-end liquid solutions. A sensible next upgrade for this platform would be moving to a higher-core-count AM4 processor, such as a Ryzen 9 series chip, if multi-threaded workloads become the primary use case, though the 8-core 16-thread configuration already handles most tasks with aplomb. Alternatively, users could upgrade the GPU in the future as the PCIe Gen 4 interface and the 550 W PSU headroom can accommodate a more power-hungry graphics card without requiring a platform change.

Usage Scenarios

For high-refresh gaming at 1080p, this pairing is well-suited. The CPU's single-thread score of 916 in 3DMark and 3099 in Cinebench R23 single-core indicates strong per-core performance, which is critical for achieving high frame rates in esports titles that rely on a few fast threads. The GPU's DirectX 12 score of 70 in Passmark and its 17.20 TFLOPS of FP32 compute suggest it can push high frame rates in modern titles, though users should temper expectations for ultra settings at 1440p with ray tracing enabled.

Streaming while gaming is a viable workload for this system. The CPU has 8 cores and 16 threads, which allows it to handle game logic while simultaneously encoding a video stream using software x264 encoding, though using the GPU's hardware encoders would free up CPU resources. The CPU's Passmark multi-thread score of 25823 shows it has ample headroom for background tasks like streaming software, Discord, and browser tabs while gaming. The GPU's 8 GB of GDDR6 memory is sufficient for streaming at 1080p while gaming, as the VRAM is split between game assets and the encoding buffer.

Video editing is a strong suit for this configuration. The CPU's Cinebench R23 multi-core score of 21953 places it in a competitive position for rendering timelines and applying effects, while the GPU's Geekbench OpenCL score of 98554 indicates strong compute acceleration for GPU-accelerated effects in software like Premiere Pro or DaVinci Resolve. The 8 GB VRAM on the GPU is ample for 1080p and 1440p editing timelines, and the 512.0 GB/s memory bandwidth ensures fast texture uploads and playback of high-resolution footage.

3D rendering workloads will benefit from the combination of CPU and GPU compute. The CPU's 3DMark max threads score of 7138 and 16 threads make it capable of CPU-based rendering in Blender or Cinema 4D, while the GPU's 3584 shading units and 17.20 TFLOPS FP32 performance allow for GPU-accelerated rendering with OptiX or similar APIs. The GPU's Vulkan score of 85631 in Geekbench suggests excellent compute performance for rendering engines that leverage Vulkan compute.

Software development is another scenario where this system excels. The CPU's Passmark data compression score of 316429 and integer math score of 92843 indicate fast compilation times for codebases that are heavily parallelized. The 16 threads will keep build times low for multi-threaded compilers, and the 32 MB of shared L3 cache helps reduce latency when accessing frequently used code modules. The GPU is less critical for most development tasks, but its compute capabilities can accelerate machine learning workloads or shader compilation.

Student and office work is handled effortlessly by this configuration. The CPU's single-thread score of 3393 in Passmark single-thread ensures snappy application launches and responsive spreadsheet calculations, while the 8 cores provide enough parallelism for multitasking across multiple productivity suites. The GPU's Passmark G2D score of 732 ensures smooth 2D desktop rendering, and the 8 GB VRAM is overkill for office workloads but provides future-proofing for more demanding visual applications.

Benchmark Performance

Looking at the CPU benchmarks first, the AMD Ryzen 7 5800 delivers a 3DMark single-thread score of 916, which climbs to 1795 for 2 threads, 3443 for 4 threads, 5692 for 8 threads, and 7138 for max threads. This scaling curve shows excellent thread utilization, with the 8-core 16-thread configuration extracting nearly all available performance when all cores are active. In Cinebench, the processor scores 312 in R15 single-core and 2212 in multi-core, then 1301 in R20 single-core and 9220 in multi-core, and finally 3099 in R23 single-core and 21953 in multi-core. These scores indicate the CPU maintains strong single-thread performance while scaling well to multi-thread workloads.

The Passmark suite provides additional insight into the CPU's capabilities. The multithread score of 25823 and single-thread score of 3393 highlight the balance between single and multi-core performance. Data compression scores 316429, data encryption scores 20021, floating-point math scores 51588, integer math scores 92843, and extended instructions score 21297. The physics score of 1141 and random string sorting score of 32998 round out the picture. The average benchmark score for the CPU is 27535, placing it at the 79th percentile among all CPUs.

The CPU's nearest rivals show tight competition. The Intel Core Ultra 5 125H scores 27507, just 0.1% behind the Ryzen 7 5800. The Intel Core i5-12600K and AMD Ryzen 7 5700X both score 27578, placing them 0.2% ahead. The AMD Ryzen 5 7600X scores 27636, 0.4% ahead. This grouping shows the Ryzen 7 5800 is within a hair's breadth of several modern mid-range processors, making its performance highly competitive despite being from an older generation.

For the GPU, the Intel Arc A750 scores 2612 in 3DMark Steel Nomad DX12, 98554 in Geekbench OpenCL, and 85631 in Geekbench Vulkan. The Passmark suite shows DirectX 9 score of 181, DirectX 10 score of 65, DirectX 11 score of 72, and DirectX 12 score of 70. The G2D score is 732, G3D score is 12534, and GPU compute score is 5368. The average benchmark score for the GPU is 20582, placing it at the 66th percentile among all GPUs.

The GPU's nearest rivals include the Intel Arc B570 with an average score of 20556, just 0.1% behind. The NVIDIA GeForce RTX 3070 Mobile scores 20534, 0.2% behind, while the AMD Radeon R9 M390X scores 20662, 0.4% ahead. The NVIDIA Quadro M4000M scores 20480, 0.5% behind. This competitive grouping places the Arc A750 in the upper-midrange tier of graphics cards, trading blows with both newer Intel parts and mobile variants of popular NVIDIA GPUs.

The combined picture shows a system where the CPU outperforms the GPU in percentile terms, with the CPU at 79th percentile versus the GPU at 66th percentile. The combined percentile of 73 reflects a balanced overall system, though the slight CPU advantage suggests the processor has headroom to support a more powerful GPU upgrade in the future without becoming a bottleneck.

Who Should Build It

The target user for this AMD Ryzen 7 5800 and Intel Arc A750 pairing is a gamer who primarily plays at 1080p resolution with high refresh rate monitors. The CPU's strong single-thread performance, evidenced by the 3DMark single-thread score of 916 and Cinebench R23 single-core score of 3099, ensures that frame rates remain high in CPU-bound scenarios, while the GPU's 17.20 TFLOPS FP32 performance and 512.0 GB/s memory bandwidth provide ample pixel-pushing power for modern titles at this resolution.

Content creators who work with video editing and 3D rendering will find this system compelling. The CPU's Cinebench R23 multi-core score of 21953 and the GPU's Geekbench OpenCL score of 98554 combine to accelerate rendering pipelines, whether using CPU-based rendering or GPU-accelerated engines. The 8 GB of GDDR6 VRAM is sufficient for most 1080p and 1440p creative workflows, and the 256-bit memory bus ensures fast data transfer for texture-heavy scenes.

Software developers building on this platform will appreciate the 16 threads and high integer math performance. The Passmark integer math score of 92843 and data compression score of 316429 indicate quick compilation times and responsive code indexing. The ECC memory support adds reliability for long-running build processes.

Students and small business users who need a versatile workstation will benefit from the combination of the 65 W TDP CPU and the GPU's compute capabilities. The low power draw of the CPU keeps electricity costs down, while the GPU can accelerate tasks like video conferencing enhancements, photo editing, and light 3D modeling. The AM4 platform's maturity means motherboards and memory are widely available at various price points.

CPU Analysis

The AMD Ryzen 7 5800 is an 8-core 16-thread processor based on the Zen 3 architecture with the Vermeer codename. It is manufactured on TSMC's 7 nm process node, packing 4,150 million transistors into a 74 mm² die. The base clock is 3.40 GHz with a boost clock of 4.60 GHz, and the TDP is rated at 65 W. The cache hierarchy includes 64 KB of L1 cache per core, 512 KB of L2 cache per core, and 32 MB of shared L3 cache. The memory support is DDR4 with dual-channel configuration and a memory bandwidth of 51.2 GB/s, with ECC support available.

The benchmark scores reveal a processor that trades blows with much newer and more expensive parts. The 3DMark single-thread score of 916 shows strong per-core performance, which is crucial for gaming and lightly-threaded applications. The scaling from 2 threads (1795) to 4 threads (3443) to 8 threads (5692) to max threads (7138) shows near-linear scaling, indicating that the 16 threads are well-utilized in multi-threaded workloads.

In Cinebench, the R15 multi-core score of 2212, R20 multi-core score of 9220, and R23 multi-core score of 21953 show consistent performance across versions. The single-core scores of 312, 1301, and 3099 for R15, R20, and R23 respectively indicate that the Zen 3 architecture delivers excellent instructions-per-clock performance. The Passmark scores further reinforce this picture, with the multi-thread score of 25823 and single-thread score of 3393 showing a healthy balance between the two.

The 32 MB of shared L3 cache is a key feature of the Zen 3 architecture, as it allows all 8 cores to access a large pool of fast memory, reducing latency when cores need to share data. This is particularly beneficial for gaming, where the CPU must frequently access game assets and physics data. The 7 nm process node contributes to the efficient 65 W TDP, making this processor easy to cool with relatively modest cooling solutions.

FAQ

Q: What socket does the AMD Ryzen 7 5800 use?

A: The AMD Ryzen 7 5800 uses the AMD Socket AM4, which is a mature platform that supports a wide range of motherboards.

Q: Does the Intel Arc A750 support modern graphics APIs?

A: Yes, the Intel Arc A750 supports DirectX 12 Ultimate (12_2), OpenGL 4.6, and Vulkan 1.4, covering all modern graphics API requirements.

Q: How much VRAM does the Intel Arc A750 have?

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

Q: What is the memory bandwidth of the AMD Ryzen 7 5800?

A: The AMD Ryzen 7 5800 has a dual-channel DDR4 memory bus with a bandwidth of 51.2 GB/s.

Q: Is the AMD Ryzen 7 5800 unlocked for overclocking?

A: Yes, the multiplier is unlocked on the AMD Ryzen 7 5800, allowing users to adjust clock speeds beyond the stock 3.40 GHz base and 4.60 GHz boost.

Q: What is the TDP of the Intel Arc A750?

A: The Intel Arc A750 has a TDP of 225 W, and the suggested PSU for a system with this GPU is 550 W.

Q: How does the AMD Ryzen 7 5800 compare to the Intel Core i5-12600K?

A: The AMD Ryzen 7 5800 has an average benchmark score of 27535, which is 0.2% lower than the Intel Core i5-12600K's score of 27578.

GPU Analysis

The Intel Arc A750 is built on the Xe-HPG architecture with the DG2-512 chip, manufactured on TSMC's 6 nm process node. It contains 21,700 million transistors on a 406 mm² die, with a transistor density of 53.4M per mm². The base clock is 2050 MHz with a boost clock of 2400 MHz, and the memory operates at 2000 MHz with 16 Gbps effective speed. The GPU has 8 GB of GDDR6 memory on a 256-bit bus, delivering a memory bandwidth of 512.0 GB/s.

The GPU features 3584 shading units, 224 texture mapping units, and 112 raster operation units. It has 28 ray tracing cores, providing hardware-accelerated ray tracing for supported games. The pixel rate is 268.8 GPixel/s and the texture rate is 537.6 GTexel/s. The FP32 performance is 17.20 TFLOPS, with FP16 performance of 34.41 TFLOPS at a 2:1 ratio. The card is dual-slot wide with power connectors requiring 1x 6-pin and 1x 8-pin, and it has a TDP of 225 W.

Benchmark results show the GPU scores 2612 in 3DMark Steel Nomad DX12, which is a modern DirectX 12 test. In Geekbench, the OpenCL score of 98554 and Vulkan score of 85631 indicate strong compute performance across different APIs. The Passmark scores show DirectX 9 at 181, DirectX 10 at 65, DirectX 11 at 72, and DirectX 12 at 70. The G3D score of 12534 and GPU compute score of 5368 round out the picture.

The memory bandwidth of 512.0 GB/s is a standout feature, as it is more than adequate for 1080p and 1440p gaming at high settings. The 8 GB VRAM capacity is sufficient for current games at these resolutions, though some ultra-texture packs at 4K might exceed this limit. The 28 ray tracing cores provide a baseline level of ray tracing performance, though users should expect to use upscaling technologies to maintain playable frame rates with ray tracing enabled.

Build Overview

This is a desktop build class configuration combining the AMD Ryzen 7 5800 CPU with the Intel Arc A750 GPU. The CPU is from the 5000 series based on Zen 3 architecture, while the GPU is from Intel's Arc 7 generation with Alchemist architecture. The combined percentile of 73 places this system above the majority of all tracked configurations, indicating a solid mid-range to upper-midrange desktop system.

The CPU's 79th percentile ranking among all processors is notably higher than the GPU's 66th percentile ranking among all GPUs. This suggests the processor is closer to the top of its class than the graphics card, which may influence upgrade decisions. The CPU's average benchmark score of 27535 places it in contention with modern mid-range processors like the Intel Core i5-12600K and AMD Ryzen 5 7600X, while the GPU's average score of 20582 puts it in line with the Intel Arc B570 and NVIDIA RTX 3070 Mobile.

The production status of the CPU is active, while the GPU is end-of-life with a successor named Battlemage. This means the platform has ongoing support for the processor, while the GPU is at the end of its production cycle. The GPU had a launch MSRP of 289 USD, which provides context for its market positioning, though current pricing may differ.

Balance and Bottleneck

The data shows a system where the CPU holds a higher percentile position (79th) than the GPU (66th), indicating the processor is relatively stronger compared to its peers than the graphics card is compared to its peers. This suggests that in CPU-bound scenarios, such as high-refresh 1080p gaming where frame rates are limited by single-thread performance, the CPU will provide ample headroom. The CPU's 3DMark single-thread score of 916 and Cinebench R23 single-core score of 3099 are strong indicators that the processor can feed frames to the GPU without becoming a limiting factor.

In GPU-bound scenarios, such as 1440p or 4K gaming with high graphical settings, the GPU will be the primary limiter. The Intel Arc A750's 66th percentile ranking and its DirectX 12 score of 70 in Passmark indicate that it will be the component that determines maximum frame rates in graphically intensive titles. The GPU's 8 GB VRAM and 512.0 GB/s memory bandwidth are sufficient for 1080p ultra settings, but users pushing 4K or heavily modded games may see VRAM capacity become a constraint.

The combined percentile of 73 shows that the system performs consistently across both CPU and GPU workloads, without one component severely bottlenecking the other. The CPU has enough performance headroom to support a future GPU upgrade, as its 79th percentile ranking and 16 threads will remain relevant for several more years. Conversely, the GPU will be the first component to require an upgrade when it can no longer achieve target frame rates at the user's preferred resolution and settings.

Since no measured FPS rows exist for this exact combination, all frame rate expectations are estimates based on the individual benchmark scores. Users should expect the CPU to sustain high frame rates in esports and CPU-bound titles, while the GPU will be the limiting factor in graphically demanding AAA games at higher resolutions. The balance is typical of a well-matched mid-range system, where the processor provides a strong foundation and the graphics card delivers solid performance at mainstream resolutions.