SYSTEM ANALYZER

Rate My PC: AMD Ryzen 5 7500F + Intel Arc A580

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

92 / 100
ULTIMATE READY

Apex Performer

Top 8% 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
86%
VS
GPU
97%
PROCESSOR

AMD Ryzen 5 7500F

24,964 Benchmark Score
Top 14% 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

# Balance and Bottleneck

The AMD Ryzen 5 7500F paired with the Intel Arc A580 presents a configuration where the CPU holds a clear advantage in raw compute headroom relative to the GPU. The CPU sits at the 77th percentile among all processors, while the GPU occupies the 87th percentile among all graphics cards. This 10-point gap suggests the GPU is the more capable component in its respective field, meaning in graphics-heavy workloads, the Arc A580 will likely be the limiting factor. However, the CPU’s performance profile shows it can feed the GPU adequately in most scenarios.

Looking at the CPU’s thread scaling, the data reveals a strong scaling curve from 2 threads to 8 threads. The 3DMark scores progress from 1902 at 2 threads to 3621 at 4 threads, then 5372 at 8 threads, and finally 6379 at max threads. This represents a 235% improvement from 2 to 8 threads, indicating the six-core design scales efficiently with additional workload. The multi-threaded ceiling of 6379 at max threads versus 6376 at 16 threads shows the processor is essentially saturated by 16 threads, which aligns with its 6-core/12-thread configuration.

For gaming bottlenecks, the absence of measured FPS data for this exact combination means estimates must be derived from benchmark scores. The CPU’s single-thread performance of 974 in 3DMark single-thread and 3218 in Cinebench R23 single-core indicates strong per-core performance that should prevent CPU-bound scenarios at standard gaming resolutions. The GPU’s 12.29 TFLOPS FP32 throughput and 512.0 GB/s memory bandwidth provide ample pixel-pushing capability, but in CPU-light or GPU-heavy titles, the A580 will hit its limits first.

The combined percentile of 82 reflects a system where neither component severely drags down the other. The CPU’s 77th percentile position among all CPUs and the GPU’s 87th percentile among all GPUs suggest the graphics card is slightly more capable relative to its peers, making the GPU the primary bottleneck in graphics-intensive workloads while the CPU remains the constraint in heavily threaded productivity tasks that exceed 12 threads.

# Benchmark Performance

The Ryzen 5 7500F delivers a robust set of CPU benchmark results. In Cinebench R23, it scores 22799 multi-core and 3218 single-core. The multi-core result places it in a competitive position, with the average benchmark score of 24964 across all tests. The 3DMark suite shows 6376 at 16 threads and 974 single-thread, demonstrating consistent performance across synthetic workloads.

Geekbench results show 12362 multi-core and 2374 single-core. PassMark tests reveal particular strengths: integer math scores 79108, floating-point math reaches 47176, and extended instructions hit 22776. Data compression scores 305925, while data encryption achieves 17510. The multithread PassMark score of 26825 aligns with the overall CPU performance tier.

The CPU’s nearest rivals provide context for these numbers. The Intel Core i7-11850H averages 24935, just 0.1% behind the Ryzen 5 7500F’s 24964 average. The AMD Ryzen 5 8400F scores 25005, a 0.2% lead over the 7500F. The Intel Core i7-13620H trails by 0.2% at 24911, and the Intel Core 5 210H sits 0.4% behind at 24872. These deltas are all within rounding error, meaning the 7500F performs essentially identically to these competitors in aggregate.

The Intel Arc A580’s benchmark results are more limited but still informative. In 3DMark Steel Nomad DX12, it scores 2229. Geekbench OpenCL performance reaches 91657, while Vulkan scores 79381. The average benchmark score of 57756 places the GPU at the 87th percentile.

GPU rival comparisons show tight competition. The AMD Radeon RX 5600 OEM averages 58085, leading the A580 by 0.6%. The AMD Radeon RX 9070 GRE scores 57367, trailing by 0.7%. The Intel Arc A570M averages 58239, a 0.8% advantage, while the AMD Radeon RX 6950 XT reaches 58392, 1.1% ahead. These margins indicate the A580 performs within a narrow band of these alternatives, despite the RX 6950 XT being a higher-tier product in other respects.

The combined picture shows a system that performs at the 82nd percentile overall. The CPU’s 77th percentile and GPU’s 87th percentile combine to create a balanced mid-to-upper-tier desktop configuration. For productivity tasks that leverage multi-threading, the CPU’s Cinebench R23 multi-core score of 22799 indicates strong rendering capability. For gaming, the GPU’s 12.29 TFLOPS FP32 and 512.0 GB/s bandwidth suggest solid 1080p and capable 1440p performance, though exact figures require estimation given the lack of measured FPS data.

# GPU Analysis

The Intel Arc A580 employs the DG2-512 chip built on TSMC’s 6 nm process. The die contains 21,700 million transistors across a 406 mm² area, yielding a transistor density of 53.4 million per square millimeter. This is a substantial chip, reflecting Intel’s ambition in the discrete GPU market.

Memory configuration includes 8 GB of GDDR6 across a 256-bit bus, delivering 512.0 GB/s of bandwidth. The 2000 MHz memory clock translates to 16 Gbps effective. This bandwidth figure is substantial for the GPU’s performance class and supports high-resolution textures and moderate ray tracing workloads without severe memory throttling.

The GPU’s compute resources include 3072 shading units, 192 texture mapping units, and 96 raster operation units. Clock speeds run from a 1700 MHz base to a 2000 MHz boost. Pixel rate reaches 192.0 GPixel/s, and texture rate hits 384.0 GTexel/s. FP32 performance is rated at 12.29 TFLOPS, with FP16 at 24.58 TFLOPS via a 2:1 ratio. The 24 ray tracing cores provide hardware acceleration for RT workloads, though the GPU’s overall RT performance will be modest compared to higher-tier cards.

In 3DMark Steel Nomad DX12, the A580 scores 2229. This result, combined with the Geekbench OpenCL score of 91657 and Vulkan score of 79381, indicates the GPU handles compute and graphics workloads competently. The average benchmark score of 57756 places it at the 87th percentile among all GPUs.

Rival comparisons show the A580 trading blows with several AMD cards. The RX 5600 OEM leads by 0.6%, while the RX 9070 GRE trails by 0.7%. The Arc A570M leads by 0.8%, and the RX 6950 XT leads by 1.1%. These small deltas suggest the A580 delivers performance in line with these alternatives, despite architectural differences.

For rendering workloads, the 12.29 TFLOPS FP32 throughput provides solid compute capability for 3D rendering and video encoding tasks. The 8 GB VRAM is adequate for 1080p and moderate 1440p textures, though very high-resolution texture packs may exceed capacity. The 512.0 GB/s bandwidth helps mitigate VRAM limitations by moving data efficiently. The display outputs include one HDMI 2.1 and three DisplayPort 2.0 connections, supporting modern multi-monitor setups.

# Who Should Build It

This configuration targets users seeking a balanced mid-range desktop system. Gamers playing at 1080p or entry-level 1440p will find the combination suitable, with the GPU’s 87th percentile ranking providing smooth frame rates in most titles. The CPU’s strong single-thread performance (974 in 3DMark single-thread, 3218 in Cinebench R23 single-core) ensures gaming workloads are not CPU-limited.

Content creators working with video editing or 3D rendering will benefit from the CPU’s multi-threaded performance. The Cinebench R23 multi-core score of 22799 and Geekbench multi-core of 12362 indicate capable rendering throughput. The GPU’s 12.29 TFLOPS FP32 and 24.58 TFLOPS FP16 provide acceleration for GPU-accelerated effects and rendering.

Software developers will appreciate the CPU’s 6 cores and 12 threads for compilation tasks. The PassMark data encryption score of 17510 and extended instructions score of 22776 suggest strong performance for cryptographic workloads and modern instruction set utilization. The 65 W TDP keeps power requirements modest for development workstations.

Students and office workers building a general-purpose desktop will find the system responsive for productivity applications. The CPU’s PassMark single-thread score of 3841 ensures snappy application launches, while the GPU handles spreadsheet acceleration and light creative tasks. ECC memory support adds reliability for data-sensitive work.

Small business workstations requiring dependable performance for accounting, database, or point-of-sale applications will benefit from the CPU’s balanced performance profile. The 65 W TDP allows for compact cooling solutions, and the AM5 platform provides modern connectivity options.

# CPU Analysis

The AMD Ryzen 5 7500F is a 6-core, 12-thread processor based on the Zen 4 architecture, codenamed Raphael. It operates on AMD Socket AM5 and is built on TSMC’s 5 nm process node. The die contains 6,570 million transistors across a 71 mm² area, a remarkably dense implementation that contributes to the chip’s efficiency.

Base clock runs at 3.70 GHz with a boost clock of 5.00 GHz. The 65 W TDP keeps thermal requirements modest, making the processor suitable for air cooling solutions. The multiplier is unlocked, allowing overclocking headroom for enthusiasts. Memory support includes DDR5 with dual-channel configuration, providing 83.2 GB/s of memory bandwidth. ECC memory support is included, a feature valuable for workstation reliability.

Cache hierarchy includes 64 KB L1 per core, 1 MB L2 per core, and 32 MB shared L3 cache. This configuration provides solid cache capacity for gaming and productivity workloads. The PCIe Gen 5 interface with 24 lanes (CPU only) offers high-bandwidth connectivity for modern NVMe storage and GPUs.

Benchmark results demonstrate strong performance across the board. The Cinebench R23 multi-core score of 22799 reflects excellent multi-threaded throughput for a 6-core processor. Single-core performance of 3218 in the same test indicates strong per-thread capability. The 3DMark scores show efficient scaling from 1902 at 2 threads to 6379 at max threads, confirming the processor utilizes its thread count effectively.

PassMark results provide additional insight into workload-specific performance. Integer math scores 79108, floating-point math reaches 47176, and extended instructions hit 22776. The find prime numbers test scores 199, while random string sorting achieves 36191. Physics processing scores 1788, and data compression reaches 305925.

The processor’s average benchmark score of 24964 places it at the 77th percentile among all CPUs. Its nearest rivals demonstrate competitive positioning: the Intel Core i7-11850H averages 24935 (0.1% behind), the AMD Ryzen 5 8400F averages 25005 (0.2% ahead), the Intel Core i7-13620H averages 24911 (0.2% behind), and the Intel Core 5 210H averages 24872 (0.4% behind). These tight margins indicate the 7500F performs within a narrow band of these alternatives.

For real-world workloads, the 7500F’s single-thread performance excels in applications like web browsing, office productivity, and games that rely on fewer threads. The multi-threaded performance handles video encoding, 3D rendering, and software compilation efficiently. The 32 MB L3 cache provides ample shared cache for data-intensive workloads.

# Upgrade Path and Platform

The AMD Socket AM5 platform provides a clear upgrade path for this system. The Ryzen 5 7500F sits at the entry point of the 7000 series, meaning users can later upgrade to higher-tier AM5 processors without changing motherboards. The platform supports DDR5 memory, with the CPU providing dual-channel configuration and 83.2 GB/s bandwidth.

PCIe Gen 5 connectivity with 24 lanes (CPU only) offers high-bandwidth expansion options. This supports modern GPUs and NVMe storage at full bandwidth. The platform’s memory support includes ECC, adding reliability for workstation use cases.

The Intel Arc A580 requires a 450 W suggested PSU and draws 175 W TDP. The CPU’s 65 W TDP means total system power remains moderate. The GPU uses 2x 8-pin power connectors and occupies a dual-slot form factor. The PCIe 4.0 x16 bus interface provides adequate bandwidth for the GPU’s performance class.

A sensible next upgrade would be increasing GPU performance, as the CPU has headroom to support more powerful graphics cards. The CPU’s 77th percentile ranking indicates it can feed higher-tier GPUs in gaming workloads. Alternatively, upgrading to a higher-core-count AM5 processor would benefit multi-threaded productivity tasks, though the 7500F’s 12 threads handle most workloads competently.

Memory capacity can be expanded within the dual-channel configuration, and the 83.2 GB/s bandwidth provides a solid foundation for memory-intensive applications. The PCIe Gen 5 lanes support future storage devices with higher throughput. The 5 nm process node and 65 W TDP keep the CPU cool and efficient, allowing for compact system builds.

# Gaming Performance

No measured FPS rows exist for this exact CPU-GPU combination. The FACT PACK contains no measuredFps data, so all frame rate discussions here are estimated from the benchmark scores rather than direct measurements.

The GPU’s 87th percentile ranking among all GPUs suggests strong gaming capability. With 12.29 TFLOPS FP32 performance and 512.0 GB/s memory bandwidth, the Arc A580 should handle 1080p gaming at high settings in most titles, with playable performance at 1440p in less demanding games. The 8 GB VRAM provides adequate capacity for 1080p textures, though 1440p ultra textures may approach the limit.

The CPU’s single-thread performance of 974 in 3DMark and 3218 in Cinebench R23 single-core ensures gaming workloads are not CPU-bound at standard resolutions. The 6-core/12-thread configuration provides sufficient parallelism for modern game engines that utilize multiple threads.

For esports titles and competitive shooters, the combination of strong single-thread performance and capable GPU throughput should deliver high frame rates at 1080p. For AAA single-player games, the GPU will likely be the limiting factor, with settings adjustments needed to maintain smooth performance at higher resolutions.

Ray tracing performance will be modest given the 24 RT cores and mid-range positioning. The GPU supports DirectX 12 Ultimate (12_2), OpenGL 4.6, and Vulkan 1.4, providing modern API compatibility. Frame generation and upscaling technologies may help extend performance in supported titles, though specific implementation details are not covered in the benchmark data.

The combined percentile of 82 indicates this system should provide a satisfying gaming experience at 1080p and acceptable performance at 1440p, with frame rates varying by title and settings. Users seeking higher frame rates or 4K gaming would need a more powerful GPU, while those prioritizing high-refresh 1080p gaming will find this configuration well-suited.

# FAQ

Q: What is the CPU’s performance ranking among all processors?

The AMD Ryzen 5 7500F sits at the 77th percentile among all CPUs, with an average benchmark score of 24964.

Q: How does the Intel Arc A580 compare to its nearest rivals?

The A580’s average benchmark score of 57756 places it at the 87th percentile among all GPUs. It trails the AMD Radeon RX 5600 OEM by 0.6% and the Intel Arc A570M by 0.8%, while leading the AMD Radeon RX 9070 GRE by 0.7%.

Q: What memory bandwidth does the GPU provide?

The Intel Arc A580 has 8 GB of GDDR6 memory on a 256-bit bus, delivering 512.0 GB/s of bandwidth with a 2000 MHz memory clock (16 Gbps effective).

Q: Does the CPU support ECC memory?

Yes, the AMD Ryzen 5 7500F supports ECC memory, which is a useful feature for workstation reliability.

Q: What is the CPU’s boost clock and TDP?

The Ryzen 5 7500F has a base clock of 3.70 GHz, a boost clock of 5.00 GHz, and a TDP of 65 W.

Q: What PCIe generation does the CPU support?

The CPU supports PCIe Gen 5 with 24 lanes (CPU only), providing high-bandwidth connectivity for modern components.

Q: How much L3 cache does the CPU have?

The Ryzen 5 7500F has 32 MB of shared L3 cache, along with 64 KB L1 and 1 MB L2 per core.

# Usage Scenarios

High-Refresh Gaming: This system targets smooth 1080p gameplay with the GPU’s 87th percentile ranking and the CPU’s strong single-thread performance. The 12.29 TFLOPS FP32 throughput and 512.0 GB/s bandwidth support high frame rates in competitive titles, though the 8 GB VRAM limits ultra-texture settings at higher resolutions.

Streaming: The CPU’s 6 cores and 12 threads provide headroom for encoding while gaming. The Cinebench R23 multi-core score of 22799 indicates sufficient processing power for software encoding, while the GPU’s modern architecture supports hardware acceleration in supported applications.

Video Editing: The CPU’s multi-threaded performance (Cinebench R23 multi-core of 22799, Geekbench multi-core of 12362) handles timeline scrubbing and export tasks efficiently. The GPU’s 24.58 TFLOPS FP16 performance accelerates effects and color grading workloads.

3D Rendering: The CPU’s 12 threads and the GPU’s 12.29 TFLOPS FP32 provide a balanced rendering platform. The CPU’s 77th percentile ranking ensures solid CPU-based rendering, while the GPU accelerates viewport performance and GPU-renderer workflows.

Software Development: The 6-core/12-thread configuration compiles code efficiently, with PassMark integer math at 79108 and extended instructions at 22776 supporting modern workloads. The 65 W TDP keeps the system quiet during long build sessions.

Student and Office Work: The CPU’s single-thread score of 3841 in PassMark ensures responsive application performance, while the 32 MB L3 cache accelerates repetitive tasks. The platform’s ECC memory support and modest power requirements make it suitable for academic and office environments.