SYSTEM ANALYZER

Rate My PC: AMD Ryzen 7 7435HS + Intel Arc A570M

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
87%
VS
GPU
97%
PROCESSOR

AMD Ryzen 7 7435HS

26,402 Benchmark Score
Top 13% Market Ranking
View Full Specs →
GRAPHICS CARD

Intel Arc A570M

58,239 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

The AMD Ryzen 7 7435HS and Intel Arc A570M pairing represents a mobile platform positioned for users who need strong multi-threaded CPU performance alongside high-end GPU compute capabilities. This combination places the system in the 83rd percentile overall, indicating a configuration that outperforms the vast majority of laptops in the benchmark database. The CPU is firmly in the upper tier of mobile processors, and the GPU, despite its mid-range designation, delivers compute scores that rival desktop-class discrete graphics cards.

FAQ

Q: How does the Ryzen 7 7435HS compare to its closest CPU rivals?

A: The data shows a near-perfect tie. The Ryzen 7 7435HS has an average benchmark score of 26402, which is just 0.2% below the AMD Ryzen 5 8640U and 0.3% below both the Intel Core i9-12900HK and Intel Core i7-1280P. It is 0.3% above the AMD Ryzen 5 7600.

Q: What is the GPU performance tier of the Arc A570M?

A: The Arc A570M sits at the 88th percentile among all GPUs. Its Geekbench OpenCL score of 58239 places it within 0.3% of the AMD Radeon RX 6950 XT and 0.3% ahead of the AMD Radeon RX 5600 OEM, showing it competes with high-end desktop cards in raw compute benchmarks.

Q: Is there measured gaming performance data for this specific combination?

A: No. The FACT PACK contains no measured FPS rows for this CPU and GPU pairing. All gaming performance discussion in this analysis is estimated from the individual benchmark scores of the components.

Q: What kind of memory and storage connectivity does the platform offer?

A: The CPU supports DDR5 memory through a dual-channel interface, providing a memory bandwidth of 76.8 GB/s. The CPU provides 20 PCIe Gen 4 lanes, and the GPU connects via a PCIe 4.0 x8 interface.

Q: What is the core and thread configuration of the CPU?

A: The AMD Ryzen 7 7435HS is an 8-core, 16-thread processor based on the Zen 3+ architecture, codenamed Rembrandt-R. It operates on a 6 nm process node from TSMC.

Q: What are the clock speeds and TDP of the CPU and GPU?

A: The CPU has a base clock of 3.10 GHz and a boost clock of 4.50 GHz, with a 45 W TDP. The GPU has a base clock of 900 MHz and a boost clock of 1300 MHz, with a 75 W TDP.

Q: Does the CPU have integrated graphics?

A: No, the FACT PACK lists the integratedGraphics field as null. This system relies entirely on the discrete Intel Arc A570M for graphical output.

Benchmark Performance

The combined benchmark data paints a clear picture of a system that excels in multi-threaded productivity while offering high-tier GPU compute performance. The CPU’s average benchmark score of 26402 places it at the 78th percentile of all CPUs, a strong result for a mobile part. This places it in direct competition with the Intel Core i9-12900HK, which scores 26469, and the AMD Ryzen 5 8640U, which scores 26462. The performance delta is negligible, all within 0.3%, making this a top-tier mobile processor for sustained workloads.

The GPU, the Intel Arc A570M, demonstrates remarkable compute capability. Its Geekbench OpenCL score of 58239 puts it at the 88th percentile of all GPUs, which is exceptionally high for a mobile part. The data shows it is only 0.3% slower than the AMD Radeon RX 6950 XT, a desktop flagship, and 0.5% slower than the NVIDIA P102-100. This indicates that in compute-heavy tasks like rendering, OpenCL-accelerated applications, and some physics simulations, the laptop will perform at a level comparable to high-end desktop systems.

The combined percentile of 83 suggests that this pairing is well-balanced, with no single component drastically dragging down the overall performance. The CPU is strong, but the GPU is the standout performer, holding a higher percentile than the processor. This indicates a system built for tasks that leverage parallel GPU processing, such as 3D rendering, video encoding, and scientific computing, rather than being solely CPU-bound. The lack of measured FPS data means the gaming picture is estimated, but the single-thread CPU score of 888 in 3dmark and the GPU’s high OpenCL score suggest a capable platform for modern titles.

Balance and Bottleneck

In this configuration, the Intel Arc A570M is the dominant component relative to its peers. With an 88th percentile GPU score against a 78th percentile CPU score, the system is heavily weighted toward GPU compute. This means that in workloads heavily reliant on parallel floating-point operations, such as 3D rendering with ray tracing or GPU-accelerated machine learning inference, the GPU will be the primary driver of performance.

The CPU is not a bottleneck in these scenarios, but it is the less exceptional component. In CPU-bound tasks like software compilation, data compression, or heavy multitasking, the CPU will define the performance ceiling. The CPU’s PassMark multithread score of 23393 and Cinebench R23 multicore score of 19873 show it is more than capable, but the GPU has more headroom relative to its competition.

For gaming, the balance is estimated to favor the GPU, as most modern titles are GPU-bound at higher resolutions. The CPU’s single-thread score of 888 in 3dmark and 2805 in Cinebench R23 are sufficient to feed the GPU in most scenarios, but the lack of measured FPS data prevents a definitive statement on bottlenecking. The data suggests that if a game is not GPU-limited, the CPU’s 16 threads and 4.50 GHz boost clock will handle the frame pacing without issue. The system is not perfectly balanced, but the imbalance is in the direction of the GPU, which is often preferable for content creators and gamers.

Who Should Build It

This laptop configuration is aimed at users who need the compute power of a high-end desktop GPU in a mobile form factor. The Arc A570M’s 88th percentile score makes it suitable for professionals who work with GPU-accelerated applications. This includes 3D artists using renderers that leverage OpenCL, video editors working with high-resolution timelines that use GPU effects, and researchers running simulations or data processing that can be offloaded to the GPU.

Gamers targeting high-refresh-rate 1080p or 1440p gaming would find this system appealing. The CPU’s 78th percentile performance ensures that game logic and physics are handled smoothly, while the GPU’s compute score suggests it can push high frame rates in esports titles and maintain playable frame rates in AAA games, though the exact FPS is unmeasured.

Software developers and students in computer science fields would benefit from the 8-core, 16-thread CPU. The PassMark data compression score of 310038 and integer math score of 85274 indicate the CPU is well-suited for compiling code and running virtual machines. Small business workstations that handle financial modeling, large spreadsheets, or database operations would also see a benefit from the multi-threaded CPU performance.

CPU Analysis

The AMD Ryzen 7 7435HS is a mobile processor based on the Zen 3+ architecture, known as Rembrandt-R. It is built on a 6 nm process at TSMC, with a die size of 210 mm². The CPU features 8 cores and 16 threads, a configuration that balances power consumption with multi-threaded throughput. The base clock is 3.10 GHz, boosting up to 4.50 GHz, and it operates within a 45 W TDP envelope.

The benchmark data shows a processor that scales well with thread count. The 3dmark score jumps from 1752 with 2 threads to 6915 with 16 threads, showing near-linear scaling. The Cinebench R23 multicore score of 19873 is strong for a 45 W part, and the single-core score of 2805 is competitive for the Zen 3+ architecture. The PassMark single-thread score of 3167 confirms that the CPU is not just a multi-core workhorse, but also responsive in lightly-threaded tasks.

For real workloads, this means the CPU can handle a range of tasks. The PassMark encryption score of 18648 and extended instructions score of 21690 show it is capable in security and scientific workloads that use AVX-512 or similar instruction sets. The L3 cache is 16 MB shared, with 512 KB of L2 and 64 KB of L1 per core, which is a standard configuration for this architecture. The memory bandwidth of 76.8 GB/s over dual-channel DDR5 ensures the cores are fed with data efficiently.

Usage Scenarios

High-refresh gaming: The estimated performance suggests this system can drive high refresh rates at 1080p in competitive titles. The CPU’s single-thread score of 888 in 3dmark is sufficient for high-FPS gaming, and the GPU’s 88th percentile score indicates it has the raw compute to render frames quickly. However, without measured FPS data, the exact frame rates are a projection.

Streaming: The 8-core, 16-thread CPU provides ample headroom for encoding a stream while gaming. The PassMark multithread score of 23393 shows the CPU can handle the extra load of x264 encoding, while the GPU could be used for hardware encoding to offload the CPU entirely.

Video editing: This is a strong scenario for this laptop. The GPU’s Geekbench OpenCL score of 58239 indicates it can accelerate effects, color grading, and rendering in software like DaVinci Resolve or Adobe Premiere Pro. The CPU’s Cinebench R23 multicore score of 19873 will handle timeline scrubbing and export tasks that are not GPU-accelerated.

3D rendering: The GPU is the star here. Its score is within 0.3% of the AMD Radeon RX 6950 XT, suggesting that GPU-based renderers like Blender’s Cycles (with OptiX or HIP) or OctaneRender will perform at near-desktop levels. The CPU’s 16 threads will assist in scene preparation and physics simulations.

Software development: The CPU’s high integer math score of 85274 and data compression score of 310038 make compilation and packaging tasks faster. The 16 threads allow for parallel builds, and the DDR5 memory bandwidth of 76.8 GB/s helps with large codebases and virtual machines.

Student and office work: This system is overkill for basic productivity, but the CPU’s 78th percentile performance ensures that even the most complex spreadsheets or database queries will be responsive. The PassMark single-thread score of 3167 means that the user interface and single-threaded office applications will feel snappy.

GPU Analysis

The Intel Arc A570M is a mobile graphics processor based on the Xe-HPG architecture, codenamed Alchemist. It uses the DG2-256 chip, built on a 6 nm process at TSMC. The GPU has 2048 shading units, 128 texture mapping units, and 64 raster operation units. It also features 16 dedicated ray tracing cores.

The memory subsystem consists of 8 GB of GDDR6 on a 128-bit bus, providing a bandwidth of 224.0 GB/s. This is a significant amount of memory for a mobile GPU, which is beneficial for high-resolution textures and large datasets. The memory clock is 1750 MHz, translating to 14 Gbps effective. The GPU has a base clock of 900 MHz and a boost clock of 1300 MHz, with a TDP of 75 W.

The compute performance is exceptional. The FP32 throughput is 5.325 TFLOPS, with FP16 reaching 10.65 TFLOPS. The pixel rate is 83.20 GPixel/s, and the texture rate is 166.4 GTexel/s. The Geekbench OpenCL score of 58239 places it at the 88th percentile, which is the standout metric for this GPU. It supports DirectX 12 Ultimate (12_2), OpenGL 4.6, and Vulkan 1.4, ensuring compatibility with modern APIs and features like hardware ray tracing and mesh shaders.

For rendering, this GPU is a powerhouse. Its OpenCL score rivals the AMD Radeon RX 6950 XT, meaning that GPU-accelerated rendering tasks will be completed in a fraction of the time compared to typical mobile GPUs. The 16 RT cores will also assist in ray-traced workloads, though the 5.325 TFLOPS FP32 performance is the primary driver in most renderers.

Upgrade Path and Platform

The platform is based on the AMD Socket FP7, which is a mobile-specific socket. This means the CPU is not upgradeable in the traditional sense; it is soldered to the motherboard. The memory support is DDR5, which is the current standard, and the dual-channel configuration provides a memory bandwidth of 76.8 GB/s. The CPU provides 20 PCIe Gen 4 lanes, and the GPU uses a PCIe 4.0 x8 interface, which is sufficient for the Arc A570M.

The GPU has a TDP of 75 W, and the CPU has a TDP of 45 W, for a combined 120 W of power draw for the core components. The FACT PACK does not list a suggested PSU, which is typical for a laptop, where the power supply is integrated into the system. Any future upgrade path would involve moving to a new laptop, as the socket and form factor are proprietary.

A sensible next upgrade for a user of this system would be to look for a laptop with a newer generation of both CPU and GPU, as this platform is at the end of its upgradeability. However, the current performance is high enough that a user would not need to upgrade for several years. The 8 GB of VRAM is a future-proofing consideration, but it is sufficient for current games and most professional workloads. The PCIe 4.0 x8 interface on the GPU is not a bottleneck, as the bandwidth is sufficient for the GPU’s memory and compute capabilities.

Build Overview

This is a laptop-class build, as indicated by the buildClass field. The pairing of the AMD Ryzen 7 7435HS and Intel Arc A570M creates a system that is stronger on the GPU side than the CPU side relative to their respective markets. The CPU is a solid 78th percentile performer, but the GPU is an exceptional 88th percentile performer. The combined percentile of 83 reflects this, showing a system that is well above average overall.

The CPU is a Zen 3+ part with 8 cores and 16 threads, which is a high core count for a mobile processor. The GPU is an Alchemist-based part with 2048 shading units and 16 RT cores, which is a full implementation of the DG2-256 chip. The system is designed for users who need high GPU compute performance in a mobile form factor. The lack of measured FPS data means gaming performance is estimated, but the compute scores suggest this is a high-end mobile workstation or a powerful gaming laptop, depending on the user’s priorities.