SYSTEM ANALYZER

Rate My PC: Intel Core i5-14600KF + Intel Arc A770

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

96 / 100
ULTIMATE READY

Apex Performer

Top 4% 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
94%
VS
GPU
97%
PROCESSOR

Intel Core i5-14600KF

49,394 Benchmark Score
Top 6% 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

The Intel Core i5-14600KF and Intel Arc A770 pairing represents a high-tier desktop configuration, placing in the 90th percentile overall. The CPU, a 14-core Raptor Lake-S part, and the GPU, an Alchemist-generation Arc 7 product, are both positioned near the top of their respective performance hierarchies. However, the relationship between these two components is not symmetrical; the data suggests a specific dynamic where the GPU’s performance ceiling is more likely to define the experience in graphically intensive tasks, while the CPU’s substantial multi-threading capability provides a wide berth for other computational workloads. This analysis examines the balance, benchmark results, and practical implications of this specific configuration.

Balance and Bottleneck

The benchmark data indicates a system where the CPU is the dominant computational resource, but the GPU is the limiting factor in graphics-bound scenarios. The Intel Core i5-14600KF achieves an average benchmark score of 49394, placing it in the 90th percentile of all CPUs. Its nearest rivals, such as the AMD Ryzen 9 7900 with a score of 49228, are separated by a mere 0.3%, indicating that the i5-14600KF is operating at the very top of the desktop CPU landscape. This high level of CPU performance means that in a typical gaming workload, the processor is unlikely to be the primary constraint.

Conversely, the Intel Arc A770, while also in the 90th percentile of all GPUs, demonstrates a performance profile that is more closely matched with other high-end graphics cards. Its average benchmark score of 68809 is comparable to the NVIDIA CMP 90HX, which scores 69000, a difference of -0.3%. This suggests that the GPU is a capable performer, but its performance ceiling is more finite than the CPU’s. In a balanced system, the component with the lower relative ceiling in a specific task becomes the bottleneck. For this pairing, that component is the GPU in gaming and other graphics-intensive applications.

The balance is further illustrated by the CPU's multi-threaded performance. With a Cinebench R23 multi-core score of 32544, the i5-14600KF provides substantial headroom for background tasks, streaming, or content creation workloads running concurrently with a game. This means that even if the Arc A770 is fully utilized at 100%, the CPU is not likely to introduce frame drops or stuttering due to a lack of processing power. The bottleneck, therefore, is not a matter of the CPU being too slow, but rather the GPU’s absolute performance defining the maximum frame rate. The system is CPU-heavy in terms of raw compute potential, but GPU-bound in terms of graphical output.

Benchmark Performance

The combined performance picture is one of high-tier capability across both processing and graphics. The CPU’s individual scores are consistently strong. In Cinebench R23, the multi-core score of 32544 underscores its ability to handle heavily threaded workloads, while the single-core score of 4594 indicates excellent responsiveness for lightly threaded tasks. The Geekbench results further this narrative, with a multi-core score of 17085 and a single-core score of 2445. These figures place the CPU in the 90th percentile, a position reinforced by its nearest rivals being within a 1% performance delta.

For the GPU, the 3DMark Steel Nomad DX12 score of 2969 and a Geekbench OpenCL score of 109175 point to solid DirectX 12 and compute performance. The GPU’s percentile ranking of 90 mirrors the CPU, suggesting that both components are similarly positioned within their respective markets. The Arc A770’s nearest rival, the NVIDIA CMP 90HX, is only -0.3% different in average score, showing that this Intel GPU is competitive with other high-end options from a raw performance standpoint.

However, the lack of measured FPS data for this specific combination means that synthetic benchmark scores must be used as the primary indicator of real-world gaming performance. The data available shows a system where the CPU is unlikely to be a limiting factor, and the GPU’s 90th percentile ranking suggests it can handle demanding graphical loads, but the exact frame rates are estimates. The CPU’s Passmark multi-thread score of 38697 and the GPU’s FP32 performance of 19.66 TFLOPS provide a basis for these estimates, indicating a system capable of high-refresh-rate gaming at 1440p and entry-level 4K, though the latter will depend heavily on the specific game and settings.

Usage Scenarios

High-Refresh Gaming: The combination is well-suited for high-refresh-rate gaming at 1440p. The CPU’s strong single-core performance, evidenced by a Passmark single-thread score of 4273, ensures high minimum frame rates, while the GPU’s 90th percentile position provides sufficient raw power to push frame rates into the 100+ FPS range in many titles. At 4K resolution, the GPU’s performance ceiling will be the limiting factor, and users should expect lower frame rates, possibly requiring adjustments to graphical settings to maintain high refresh rates. The data suggests a sweet spot at 1440p.

Streaming: The 14-core, 20-thread configuration of the i5-14600KF is a significant asset for streaming. The CPU can handle the encoding workload without compromising gaming performance, as its multi-core headroom is substantial. While the Arc A770’s AV1 encoding capabilities are not detailed in the data, the CPU's robust multi-threading ensures that a software-based encoding approach is also viable, providing flexibility for streamers who do not wish to rely on the GPU’s encoder.

Video Editing: Video editing workloads benefit from both the CPU and GPU. The i5-14600KF’s Cinebench R23 multi-core score of 32544 will accelerate timeline rendering and effect processing. The Arc A770, with its 16 GB of VRAM and 512.0 GB/s of memory bandwidth, is well-equipped to handle large video buffers and GPU-accelerated effects, making this a potent combination for 4K video editing projects.

3D Rendering: In 3D rendering, the CPU takes the lead role. The i5-14600KF’s high multi-core score is directly applicable to CPU-based render engines, where it will perform admirably. The GPU can also contribute via GPU-accelerated renderers, and its FP32 throughput of 19.66 TFLOPS, while not class-leading, is respectable and will speed up viewport previews and final renders in supported applications.

Software Development: The CPU’s architecture is ideal for software development. The high single-core performance accelerates compilation of smaller projects and general IDE responsiveness, while the multi-core capabilities drastically reduce build times for larger codebases. The Passmark data encryption score of 27608 and data compression score of 485140 also suggest strong performance in tasks involving cryptography and data handling, which are common in backend and systems programming.

Student and Office Work: This configuration is overkill for standard student and office workloads, but it will handle them with absolute ease. The CPU’s single-core performance ensures snappy application launches and fluid multitasking. The GPU’s capabilities are largely unused in this scenario, but the 16 GB of VRAM ensures that even future, more demanding productivity applications will run without issue. This is a system that will not feel outdated for these tasks for many years.

Who Should Build It

This build is targeted at users who demand high performance in both productivity and gaming. It is an excellent choice for a gamer who primarily plays at 1440p and wants to ensure their system has enough CPU headroom for streaming or recording gameplay simultaneously. The 90th percentile CPU ranking ensures that this platform will not become a bottleneck for several generations of GPU upgrades.

Content creators, particularly video editors and 3D artists, will find the combination of the i5-14600KF’s multi-core power and the Arc A770’s large VRAM pool to be a compelling package. The 16 GB of VRAM is particularly useful for rendering complex scenes or working with high-resolution textures, where memory capacity can be a limiting factor on other GPUs in this class.

For software developers, the CPU’s performance in compilation and data processing tasks makes this a highly productive workstation. The ECC memory support is a notable feature for long-running tasks where data integrity is paramount. Small business workstations that require occasional high-performance computing, such as running complex simulations or rendering marketing materials, would also benefit from this system’s capability, though the dedicated GPU is more oriented towards content creation than general office tasks.

FAQ

Q: What is the overall performance tier of this CPU and GPU combination?

A: The combined percentile for this desktop build is 90, placing it in the top 10% of all systems based on the aggregate benchmark data.

Q: How does the Intel Core i5-14600KF compare to its closest rival, the AMD Ryzen 9 7900?

A: The i5-14600KF has an average benchmark score of 49394, which is 0.3% higher than the AMD Ryzen 9 7900’s score of 49228, indicating they are near-identical in overall performance.

Q: What is the GPU’s memory configuration and does it have ray tracing hardware?

A: The Intel Arc A770 features 16 GB of GDDR6 memory on a 256-bit bus, providing 512.0 GB/s of bandwidth. It also includes 32 dedicated ray tracing cores.

Q: What is the suggested power supply wattage for this GPU?

A: The suggested PSU for the Intel Arc A770 is 550 W.

Q: What is the CPU’s launch MSRP?

A: The launch MSRP for the Intel Core i5-14600KF is $294.

Q: Is the CPU overclockable?

A: Yes, the multiplier is unlocked for the Intel Core i5-14600KF, allowing for overclocking on compatible motherboards.

Q: What is the performance delta between the Arc A770 and the NVIDIA CMP 90HX?

A: The Arc A770 has an average benchmark score of 68809, which is -0.3% different from the NVIDIA CMP 90HX’s score of 69000, making them extremely close in performance.

Gaming Performance

No measured FPS rows exist for this exact combination in the data. All frame rate figures presented here are estimates derived from the synthetic benchmark scores of the CPU and GPU. The CPU’s high single-core performance and the GPU’s 90th percentile ranking suggest a system capable of high-refresh-rate gaming. At 1440p, the Arc A770’s 19.66 TFLOPS of FP32 compute and 512.0 GB/s memory bandwidth should be sufficient to deliver high frame rates in most modern titles. The 16 GB VRAM buffer is also beneficial for high-resolution textures.

At 4K resolution, the GPU’s computational throughput will become the primary constraint. Users should expect playable but lower frame rates compared to 1440p, and may need to reduce graphical settings to achieve smooth performance. The CPU’s performance headroom means that the experience will be consistent, with minimal frame pacing issues, but the absolute FPS will be dictated by the Arc A770. Estimates suggest this is a strong 1440p gaming system, with 4K being a secondary, less consistent option.

CPU Analysis

The Intel Core i5-14600KF is a 14-core, 20-thread desktop processor based on the Raptor Lake architecture, specifically the Raptor Lake-R refresh. It has a base clock of 3.50 GHz and a boost clock of 5.30 GHz. The CPU is manufactured on Intel’s 10 nm process node and utilizes a 257 mm² die. Its cache hierarchy includes 80 KB of L1 cache per core, 2 MB of L2 cache per core, and a shared 24 MB L3 cache.

This specification translates to exceptional real-world performance. The Cinebench R23 multi-core score of 32544 demonstrates that it can handle heavily threaded tasks such as video rendering and 3D modeling with ease. The single-core score of 4594 ensures that everyday tasks and gaming remain highly responsive. The Passmark integer math score of 125982 and floating-point math score of 93048 further illustrate its arithmetic processing capability, which is critical for scientific computing and financial modeling. The CPU supports both DDR4 and DDR5 memory, allowing for flexible platform choices, and includes ECC memory support for enhanced data reliability. Its 90th percentile ranking places it in the same league as the AMD Ryzen 9 7900, which is a compelling testament to its value in a high-end desktop build.

Upgrade Path and Platform

The Intel Core i5-14600KF uses the Intel Socket 1700 platform. This socket supports DDR4 and DDR5 memory, providing builders with a choice between cost-effective DDR4 or higher-bandwidth DDR5. The CPU provides 16 PCIe Gen 5 lanes, ensuring compatibility with the fastest available SSDs and future GPUs. The platform is mature, with a wide selection of motherboards available in the market.

The GPU, an Intel Arc A770 with a TDP of 225 W, requires a suggested PSU of 550 W. This leaves ample headroom for the 125 W TDP CPU and other components, making the build power-efficient and not overly demanding on the power supply. The GPU uses a PCIe 4.0 x16 interface and requires a 1x 6-pin and 1x 8-pin power connector. A sensible next upgrade would be to the CPU’s successor on a new socket, but given the high 90th percentile of the current CPU, it will remain relevant for several years. For the GPU, which is end-of-life, a future upgrade would provide a significant boost in graphical performance, while the current CPU would likely be able to keep pace with a more powerful graphics card without becoming a bottleneck.

Build Overview

This build is a desktop-class configuration pairing the Intel Core i5-14600KF with the Intel Arc A770. It represents a high-tier system, as evidenced by its combined 90th percentile ranking. The CPU is a top-tier performer, holding its own against high-core-count rivals. The GPU is also a high-tier component, but its performance is more aligned with the upper-midrange to high-end segment of the market. The combination creates a system that is powerful for a wide range of tasks, from gaming to content creation, with the CPU providing a robust foundation for years to come. The overall tier is firmly in the enthusiast category, suitable for users who require maximum performance in their workflows.

GPU Analysis

The Intel Arc A770 is built on the Xe-HPG architecture and is part of the Alchemist generation. The GPU chip, DG2-512, is manufactured by TSMC on a 6 nm process and contains a substantial 21,700 million transistors on a 406 mm² die. It is equipped with 16 GB of GDDR6 memory on a 256-bit bus, yielding a memory bandwidth of 512.0 GB/s. The GPU operates at a base clock of 2100 MHz and a boost clock of 2400 MHz, with memory running at an effective speed of 16 Gbps.

In terms of compute, the Arc A770 features 4096 shading units, 256 texture mapping units, and 128 render output units. It also includes 32 dedicated ray tracing cores. Its peak FP32 performance is 19.66 TFLOPS, with FP16 performance rated at 39.32 TFLOPS (2:1). The pixel rate is 307.2 GPixel/s, and the texture rate is 614.4 GTexel/s. These specifications indicate a GPU that is well-suited for high-resolution rasterization and capable of hardware-accelerated ray tracing. The 16 GB VRAM is a significant advantage for modern games and content creation applications. The GPU’s 90th percentile ranking and its competitive performance against the NVIDIA CMP 90HX, with a -0.3% delta, confirm that it is a serious contender in the high-performance graphics market, despite its end-of-life production status. It supports DirectX 12 Ultimate, Vulkan 1.4, and OpenGL 4.6.