SYSTEM ANALYZER

Rate My PC: AMD Ryzen 5 7500F + Intel Arc A770

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 A770

68,809 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

# FAQ

Q: What are the core specifications of the AMD Ryzen 5 7500F?

A: The Ryzen 5 7500F is a 6-core, 12-thread desktop processor based on the Zen 4 architecture (Raphael), built on TSMC's 5 nm process. It has a base clock of 3.70 GHz and a boost clock of 5.00 GHz, with a TDP of 65 W.

Q: What is the memory and PCIe support of the Ryzen 5 7500F?

A: The processor supports dual-channel DDR5 memory with a bandwidth of 83.2 GB/s and ECC memory. It provides 24 PCIe Gen 5 lanes from the CPU, and it is socketed on AMD Socket AM5.

Q: How does the Ryzen 5 7500F compare to its nearest rival, the Intel Core i7-13620H?

A: The Ryzen 5 7500F has an average benchmark score of 24964, which is 0.2% higher than the Intel Core i7-13620H's score of 24911. This indicates nearly identical overall performance between the two processors.

Q: What is the memory configuration of the Intel Arc A770?

A: The Intel Arc A770 features 16 GB of GDDR6 memory on a 256-bit bus, delivering a bandwidth of 512.0 GB/s. The memory operates at 2000 MHz with 16 Gbps effective speed.

Q: What are the key architectural features of the Intel Arc A770?

A: The Arc A770 is based on the Xe-HPG architecture (DG2-512 chip) on a 6 nm process. It has 4096 shading units, 256 TMUs, 128 ROPs, and 32 ray tracing cores. It supports DirectX 12 Ultimate (12_2), OpenGL 4.6, and Vulkan 1.4.

Q: What is the combined performance percentile of the Ryzen 5 7500F and Arc A770 pairing?

A: The combined percentile of this CPU-GPU pairing is 84, placing it in the top tier of desktop configurations. The CPU alone sits at the 77th percentile among all CPUs, while the GPU sits at the 90th percentile among all GPUs.

Q: What power supply is recommended for the Intel Arc A770?

A: The suggested PSU for the Arc A770 is 550 W. The GPU itself has a TDP of 225 W and requires one 6-pin and one 8-pin power connector.

# Benchmark Performance

The AMD Ryzen 5 7500F and Intel Arc A770 pairing delivers a combined performance percentile of 84, indicating a strong desktop configuration that outperforms the vast majority of systems. The CPU's average benchmark score of 24964 places it at the 77th percentile among all CPUs, while the GPU's average benchmark score of 68809 places it significantly higher at the 90th percentile among all GPUs. This asymmetry—where the GPU outranks the CPU by 13 percentile points—shapes the character of the entire build.

In CPU-centric workloads, the Ryzen 5 7500F shows a well-rounded profile. Its Cinebench R23 multi-core score of 22799 and single-core score of 3218 are strong indicators of balanced performance. The Geekbench multi-core score of 12362 and single-core score of 2374 reinforce this picture. In 3DMark threaded tests, the CPU scales predictably: 1902 with 2 threads, 3621 with 4 threads, 5372 with 8 threads, and 6376 with 16 threads, with a max-thread score of 6379. This scaling pattern shows that the processor gains meaningful performance up to 8 threads and then plateaus, consistent with a 6-core/12-thread design where the additional logical threads provide diminishing returns.

On the GPU side, the Arc A770's benchmark results are more limited but still revealing. Its 3DMark Steel Nomad DX12 score of 2969 is a modern workload indicator, while Geekbench OpenCL and Vulkan scores of 109175 and 94284, respectively, show strong compute capability. The GPU's average benchmark score of 68809 places it just 0.3% behind the NVIDIA CMP 90HX (score 69000) and 0.4% ahead of the AMD Radeon Instinct MI25 (score 68562). This positioning in the 90th percentile means the Arc A770 competes with high-end workstation and mining-class GPUs from previous generations.

The combined picture is one of a configuration where the GPU is the dominant component in terms of relative standing. The CPU is competent but not exceptional—its nearest rivals include the Intel Core i7-11850H (deltaPct 0.1), the AMD Ryzen 5 8400F (deltaPct -0.2), and the Intel Core i7-13620H (deltaPct 0.2), all within a 0.4% band of performance. This means the Ryzen 5 7500F sits in a tightly contested mid-range CPU segment, while the Arc A770 reaches into higher-tier GPU territory.

# CPU Analysis

The AMD Ryzen 5 7500F is a 6-core, 12-thread desktop processor built on the Zen 4 architecture, codenamed Raphael, and fabricated on TSMC's 5 nm process. It has a base clock of 3.70 GHz and a boost clock of 5.00 GHz, with a TDP of 65 W. The chip contains 6,570 million transistors on a 71 mm² die, which is a remarkably small die for a desktop processor, reflecting the density of the 5 nm node.

The cache hierarchy is substantial: 64 KB of L1 per core, 1 MB of L2 per core, and 32 MB of shared L3 cache. This is a standard configuration for the Zen 4 generation, providing adequate bandwidth for the six cores. The memory controller supports dual-channel DDR5 with a theoretical bandwidth of 83.2 GB/s, and ECC memory is supported—a feature that appeals to workstation and content-creation users who require data integrity.

Benchmark results show a processor that performs well in both lightly threaded and fully threaded workloads. The Cinebench R23 multi-core score of 22799 is robust for a 65 W part, while the single-core score of 3218 indicates strong per-thread performance. The PassMark multi-thread score of 26825 and single-thread score of 3841 corroborate this balance. In specialized workloads, the CPU achieves a PassMark data compression score of 305925, a floating-point math score of 47176, and an integer math score of 79108. The extended instructions score of 22776 suggests good SIMD throughput, and the encryption score of 17510 is respectable for a mid-range desktop part.

The 3DMark threaded results reveal the scaling characteristics of the processor. The jump from 1902 (2 threads) to 3621 (4 threads) represents an 90.3% improvement, and from 3621 to 5372 (8 threads) is another 48.4% gain. However, from 8 threads to 16 threads, the increase is only 18.7%, and the max-thread score of 6379 is nearly identical to the 16-thread score of 6376. This indicates that the processor's real-world multi-threaded performance is effectively capped by its 6 physical cores, with SMT providing marginal additional throughput.

Relative to its nearest rivals, the Ryzen 5 7500F is effectively tied with the Intel Core i7-11850H (deltaPct 0.1), the AMD Ryzen 5 8400F (deltaPct -0.2), and the Intel Core i7-13620H (deltaPct 0.2). This group of processors represents the upper-mid-range of CPU performance, and the 7500F's position within this cluster means that users will not see significant differences in CPU-bound tasks when comparing these parts.

# Balance and Bottleneck

The benchmark data indicates a configuration where the GPU is the stronger component relative to its peers. The Arc A770 sits at the 90th percentile among GPUs, while the Ryzen 5 7500F sits at the 77th percentile among CPUs. This 13-point gap suggests that in most gaming and GPU-accelerated workloads, the GPU will be the limiting factor, which is generally the desirable balance for a gaming system—the CPU has enough headroom to feed the GPU without becoming a bottleneck.

However, the CPU's scaling pattern in the 3DMark threaded tests suggests that in CPU-heavy scenarios, the 6-core/12-thread design will eventually become the constraint. The plateau between 8-thread (5372) and max-thread (6379) scores means that applications using more than 8 threads will not see proportional gains. For gaming specifically, most modern titles use fewer than 8 threads, so the CPU's single-thread score of 974 in 3DMark and 3218 in Cinebench R23 will be the primary determinants of performance.

The GPU's FP32 throughput of 19.66 TFLOPS and its 512.0 GB/s memory bandwidth are substantial, meaning that at lower resolutions (1080p), the CPU may become the limiting factor in high-refresh-rate scenarios where frame rates exceed the CPU's ability to submit draw calls. Conversely, at higher resolutions (1440p and 4K), the GPU's rendering load increases, and the Arc A770's 90th-percentile standing will dominate the performance picture.

The memory bandwidth of the system is another consideration. The CPU's dual-channel DDR5 interface provides 83.2 GB/s, while the GPU has its own dedicated 512.0 GB/s GDDR6 bandwidth. This separation means that the CPU and GPU do not compete for memory bandwidth, which is a healthy design. The PCIe Gen 5 interface from the CPU (24 lanes) and the GPU's PCIe 4.0 x16 bus interface are both more than adequate for data transfer between the two components.

# Usage Scenarios

High-refresh gaming: The Arc A770's 90th-percentile GPU standing and 19.66 TFLOPS FP32 performance make it well-suited for high-refresh 1080p and 1440p gaming. The Ryzen 5 7500F's single-thread score of 3218 in Cinebench R23 ensures that the CPU can keep up with frame rates in most titles, though the CPU's 6-core limit may be a factor in the most demanding simulation games.

Streaming: The CPU's 12 threads provide enough headroom for software encoding at moderate bitrates, but the GPU's Xe-HPG architecture with 32 ray tracing cores and DirectX 12 Ultimate support enables hardware-accelerated encoding and streaming features. The 16 GB GDDR6 frame buffer is ample for simultaneous gaming and encoding workloads.

Video editing: The CPU's Cinebench R23 multi-core score of 22799 and the GPU's Geekbench OpenCL score of 109175 combine to handle video editing timelines with multiple streams. The 16 GB VRAM is particularly advantageous for 4K editing and effects-heavy projects, as it reduces the need to offload frames to system memory.

3D rendering: The CPU's PassMark floating-point math score of 47176 and the GPU's 39.32 TFLOPS FP16 throughput (2:1 ratio) indicate strong compute capability for GPU-accelerated renderers. The 32 ray tracing cores on the Arc A770 provide hardware acceleration for ray-traced rendering workloads, though the GPU's end-of-life production status means driver optimization may not continue to improve.

Software development: The CPU's 6 cores and 12 threads, combined with a single-thread score of 3841 in PassMark, are sufficient for compilation tasks, which are often single-threaded or lightly threaded. The 32 MB L3 cache helps with code and data locality, and ECC memory support is beneficial for long-running build servers or development workstations where memory errors are a concern.

Student and office work: This configuration is significantly over-powered for typical office tasks, but the 65 W CPU TDP and 225 W GPU TDP mean the system is reasonably power-efficient. The CPU's PassMark data compression score of 305925 and random string sorting score of 36191 indicate fast file operations, and the 16 GB VRAM is irrelevant for office workloads but does not hinder them either.

# Upgrade Path and Platform

The Ryzen 5 7500F is socketed on AMD Socket AM5, which is the current desktop platform from AMD. The processor supports dual-channel DDR5 memory with ECC capability, and the CPU provides 24 PCIe Gen 5 lanes. This platform is designed for longevity, as AM5 is expected to support future Ryzen generations.

The Intel Arc A770 uses a PCIe 4.0 x16 bus interface, which is fully compatible with the CPU's PCIe Gen 5 lanes (backward compatible). The GPU has a TDP of 225 W and requires a 550 W suggested PSU, along with one 6-pin and one 8-pin power connector. This leaves headroom for additional components in the system, but a user upgrading to a higher-tier GPU would need to check PSU capacity.

The CPU's TDP of 65 W is modest, allowing for a capable air cooler rather than a large liquid cooling solution. The 5 nm process ensures efficient power delivery, and the unlocked multiplier means the processor can be overclocked if the user has adequate cooling.

A sensible next upgrade for this platform would be a higher-core-count AM5 processor, as the socket and memory support are already in place. The DDR5 memory and PCIe Gen 5 lanes provide future-proofing, and the 550 W PSU suggestion leaves room for a higher-TDP GPU in the future, though the 6-pin and 8-pin connector configuration may need adapters or a new PSU for GPUs requiring more power.

# GPU Analysis

The Intel Arc A770 is based on the Xe-HPG architecture with the DG2-512 chip, fabricated on TSMC's 6 nm process. It contains 21,700 million transistors on a 406 mm² die, with a transistor density of 53.4 million per mm². The GPU has a base clock of 2100 MHz and a boost clock of 2400 MHz, with memory operating at 2000 MHz (16 Gbps effective).

The memory subsystem is a highlight: 16 GB of GDDR6 on a 256-bit bus, delivering 512.0 GB/s of bandwidth. This is a large frame buffer for the GPU's class, and it provides ample capacity for high-resolution textures and compute workloads. The GPU has 4096 shading units, 256 TMUs, and 128 ROPs, with a pixel rate of 307.2 GPixel/s and a texture rate of 614.4 GTexel/s.

Compute performance is listed at 19.66 TFLOPS for FP32 and 39.32 TFLOPS for FP16 (2:1 ratio). The 32 ray tracing cores provide hardware acceleration for ray-traced workloads, and the GPU supports DirectX 12 Ultimate (12_2), OpenGL 4.6, and Vulkan 1.4. Display outputs include one HDMI 2.1 and three DisplayPort 2.0 connections.

The GPU's average benchmark score of 68809 places it at the 90th percentile among all GPUs. Its nearest rivals are the NVIDIA CMP 90HX (deltaPct -0.3), AMD Radeon Instinct MI25 (deltaPct 0.4), AMD Radeon Pro WX 8200 (deltaPct -1.5), and NVIDIA Quadro P6000 (deltaPct -1.7). This grouping includes professional and mining-oriented cards, indicating that the Arc A770's compute capability is competitive with enterprise-class hardware from previous generations.

The Geekbench OpenCL score of 109175 and Vulkan score of 94284 demonstrate strong cross-API compute performance. The 3DMark Steel Nomad DX12 score of 2969 is a more modern gaming-oriented metric, and while there is no direct rival score listed for this specific test, the GPU's overall 90th-percentile standing suggests it performs well in DX12 titles. The GPU is marked as end-of-life, with Battlemage as its successor, so driver support may not receive the same level of ongoing optimization as current-generation parts.

# Build Overview

This build pairs the AMD Ryzen 5 7500F desktop processor with the Intel Arc A770 GPU, creating a desktop-class configuration with a combined percentile of 84. The CPU is a 6-core, 12-thread Zen 4 part with a 65 W TDP, while the GPU is a 225 W, 16 GB GDDR6 card based on the Xe-HPG architecture.

The overall tier of this build, based on the combined 84th percentile, places it in the upper range of desktop configurations. The GPU is the standout component at the 90th percentile, while the CPU at the 77th percentile is solidly mid-range. This means the build is well-suited for GPU-intensive workloads such as gaming at high resolutions, video editing, and 3D rendering, where the Arc A770's large frame buffer and compute throughput are fully utilized.

The CPU's 65 W TDP and the GPU's 225 W TDP, with a suggested PSU of 550 W, indicate a system that is power-efficient relative to its performance class. The combination of a 5 nm CPU and a 6 nm GPU means both components are fabricated on relatively modern processes, contributing to thermal and power efficiency.

# Who Should Build It

The primary audience for this configuration is gamers targeting 1440p or 4K resolutions with high or ultra settings. The Arc A770's 90th-percentile GPU standing and 16 GB VRAM make it capable of handling large textures and high-resolution rendering, while the Ryzen 5 7500F's single-thread performance (3218 in Cinebench R23) ensures that frame rates are not CPU-limited in most titles.

Content creators working with video editing or 3D rendering will find the combination of the CPU's 12 threads and the GPU's compute capability (19.66 TFLOPS FP32, 39.32 TFLOPS FP16) beneficial. The 16 GB frame buffer is particularly valuable for GPU-accelerated rendering, as it allows larger scenes to fit in VRAM without spilling to system memory.

Software developers and students will appreciate the ECC memory support and the 65 W CPU TDP, which keeps the system quiet and cool in an office or dorm environment. The 6 cores and 12 threads are adequate for compilation and virtual machines, though heavy parallel builds may benefit from a higher-core-count processor.

Small business workstations that require reliable performance for productivity applications, data processing, and light compute tasks will find this build to be a capable choice. The CPU's PassMark data compression score of 305925 and integer math score of 79108 indicate fast transaction processing, and the GPU's compute capability can accelerate tasks like database queries or financial modeling that offload to the GPU.

# Gaming Performance

No measured FPS data exists for the exact combination of the AMD Ryzen 5 7500F and Intel Arc A770. Therefore, all frame rate figures discussed here are estimated from the benchmark scores and should be treated as projections rather than measured results.

Based on the CPU's 77th-percentile standing and the GPU's 90th-percentile standing, this configuration is expected to deliver high frame rates at 1080p and 1440p resolutions in most modern titles. The CPU's single-thread score of 3218 in Cinebench R23 indicates strong per-core performance, which is critical for maintaining high frame rates in games that are not heavily multi-threaded.

At 1080p with ultra settings, the GPU's 19.66 TFLOPS FP32 performance and 512.0 GB/s memory bandwidth should be sufficient for frame rates well above 60 FPS in most titles, with the CPU providing enough headroom to avoid bottlenecking. However, in CPU-intensive games that utilize more than 6 cores, the processor's scaling plateau between 8-thread and max-thread scores may become a limiting factor.

At 1440p ultra, the GPU will be the primary determinant of performance, and its 90th-percentile standing suggests it will deliver playable frame rates in the 60-100 FPS range for most titles, depending on the game's optimization. The 16 GB VRAM is a significant advantage at this resolution, as it prevents texture pop-in and stuttering in games with large asset loads.

At 4K ultra, the Arc A770 may struggle to maintain 60 FPS in the most demanding titles, given that its performance is competitive with the NVIDIA Quadro P6000 and AMD Radeon Pro WX 8200—cards that are not designed primarily for high-refresh gaming. Users targeting 4K should expect to adjust settings to high or medium for smoother frame rates. These are estimates based on the benchmark scores and relative GPU positioning, and actual gaming performance will vary by title and driver optimization.