SYSTEM ANALYZER

Rate My PC: Intel Core i7-14700KF + Intel Arc A310E

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

85 / 100
HIGH-END

Power Build

Top 15% of systems. Excellent for 1440p Ultra or 4K High gaming.

1440p Ultra4K High

System Balance Analysis

CPU vs GPU performance ratio
GPU Bottleneck
CPU
96%
VS
GPU
74%

Your GPU is limiting system performance. Consider upgrading to a more powerful graphics card to better utilize your CPU.

PROCESSOR

Intel Core i7-14700KF

70,163 Benchmark Score
Top 4% Market Ranking
View Full Specs →
GRAPHICS CARD

Intel Arc A310E

0 Benchmark Score
Top 26% 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.

Bottleneck Detected

GPU Bottleneck - Upgrading the weaker component will improve overall performance.

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

# CPU Analysis

The Intel Core i7-14700KF is a 20-core, 28-thread desktop processor built on the Raptor Lake architecture, specifically the Raptor Lake-R refresh. It operates at a 3.40 GHz base clock and boosts up to 5.60 GHz, with a 125W TDP. The chip is manufactured on Intel's 10 nm process with a die size of 257 mm². Cache configuration includes 80 KB of L1 per core, 2 MB of L2 per core, and 33 MB of shared L3 cache. It supports both DDR4 and DDR5 memory in a dual-channel configuration, includes ECC memory support, and provides PCIe Gen 5 with 16 lanes from the CPU. The multiplier is unlocked, making it suitable for overclocking.

Benchmark results place this CPU in the 94th percentile among all processors, indicating top-tier performance. In Cinebench R23, it scores 44,167 points in multicore and 6,235 in single-core. These numbers are substantial: the multicore score reflects heavy rendering and compilation workloads, while the single-core score indicates strong responsiveness in lightly-threaded applications. Geekbench scores of 21,462 multicore and 2,578 single-core reinforce this picture.

The PassMark suite provides additional insight into specialized workloads. Data encryption scores 40,046, extended instructions hit 40,660, and floating-point math reaches 134,393. Integer math is even stronger at 183,056, while multithread performance sits at 52,425. Single-thread performance is 4,480. Data compression is particularly impressive at 694,963, suggesting strong performance in archival and file-handling tasks. Find prime numbers scores 212, which is lower relative to other metrics but reflects the specific nature of that test.

Comparing to nearest rivals, the i7-14700KF's average benchmark score of 70,163 puts it 0.2% ahead of the AMD Ryzen 7 9700F (69,996), 0.4% ahead of the AMD Ryzen 9 7940HX (69,875), and 0.9% ahead of the AMD Ryzen 9 7950X (69,515). It trails the Intel Core Ultra 7 265K (70,879) by 1%. These deltas are small, indicating that the i7-14700KF sits in a highly competitive performance band where differences between top chips are marginal. The data suggests that real-world differences between these processors will be minimal in most workloads, though the i7-14700KF's specific cache layout and high boost clock may favor certain tasks.

The 10 nm process node, while not the most advanced available, is mature and well-characterized. The 125W TDP is moderate for a 20-core part, and the unlocked multiplier allows enthusiasts to push performance further. With 28 threads, the CPU handles heavily parallel workloads with ease, and the single-core boost of 5.60 GHz ensures snappy performance in everyday tasks.

FAQ

Q: How does the Intel Core i7-14700KF compare to the AMD Ryzen 9 7950X?

A: The i7-14700KF has an average benchmark score of 70,163, which is 0.9% higher than the Ryzen 9 7950X's 69,515. This places the Intel chip slightly ahead in aggregate performance, though the difference is small enough to be within run-to-run variance.

Q: What is the CPU's percentile ranking among all processors?

A: The i7-14700KF ranks in the 94th percentile of all CPUs, meaning it outperforms approximately 94% of processors in the benchmark database. This places it firmly in the high-end desktop segment.

Q: Does the CPU support ECC memory?

A: Yes, the i7-14700KF supports ECC memory. It also supports both DDR4 and DDR5 memory types in a dual-channel configuration, giving builders flexibility in platform choices.

Q: What is the launch MSRP of the Intel Core i7-14700KF?

A: The launch MSRP is $384. This was set at the time of its release.

Q: How does the CPU perform in single-threaded workloads?

A: The CPU scores 6,235 in Cinebench R23 single-core and 4,480 in PassMark single-thread. The 5.60 GHz boost clock contributes to strong single-thread performance, which benefits everyday applications and lightly-threaded games.

Q: What is the CPU's power consumption?

A: The TDP is 125W. This is the thermal design power, indicating the cooling solution required for sustained operation at base clocks.

Q: Is the CPU multiplier unlocked?

A: Yes, the multiplier is unlocked. Users can adjust it to overclock the processor, provided adequate cooling is available.

Usage Scenarios

High-Refresh Gaming: The i7-14700KF's single-core performance is strong, with a Cinebench R23 single-core score of 6,235 and a Geekbench single-core score of 2,578. These results indicate the CPU can keep up with fast-paced gaming workloads, though the paired GPU's capabilities will ultimately determine frame rates.

Streaming: The 20-core, 28-thread configuration provides ample headroom for encoding and streaming tasks alongside gaming. The PassMark multithread score of 52,425 suggests the CPU can handle simultaneous game rendering and video encoding without significant frame drops.

Video Editing: Cinebench R23 multicore score of 44,167 and Geekbench multicore of 21,462 indicate strong performance in video editing applications that utilize multiple cores for effects, transitions, and rendering. The data compression score of 694,963 also suggests fast export and file handling.

3D Rendering: The multicore performance is well-suited for 3D rendering workloads. A Cinebench R23 multicore score of 44,167 puts this CPU in the upper echelon for render tasks, with the 28 threads providing significant parallel processing capability.

Software Development: Compilation tasks benefit from the high integer math score of 183,056 and multithread performance of 52,425. The extended instructions score of 40,660 indicates strong SIMD processing, which is useful for modern code generation and optimization.

Student and Office Work: Single-thread performance of 4,480 in PassMark and 6,235 in Cinebench R23 single-core ensures snappy response in document editing, web browsing, and spreadsheet applications. The CPU's high percentile ranking (94th) means it will handle these tasks with ease, though it may be overkill for basic productivity.

Who Should Build It

The Intel Core i7-14700KF targets enthusiasts and professionals who need high multicore throughput. Gamers at 1080p or 1440p who want to pair a high-end CPU with a capable GPU will benefit from the single-core performance and 28 threads. Content creators working in video editing, 3D rendering, or large-scale data processing will find the Cinebench R23 multicore score of 44,167 and PassMark multithread score of 52,425 advantageous.

Software developers compiling large codebases will appreciate the integer math score of 183,056 and the 20-core, 28-thread layout for parallel builds. Students in computer science or engineering fields may find the CPU useful for running simulations and development environments, though the 94th percentile performance exceeds typical student needs.

Small business workstations handling virtualization, database operations, or moderate rendering tasks can leverage the CPU's data encryption score of 40,046 and data compression score of 694,963 for efficient operation. The ECC memory support adds reliability for professional workloads where data integrity is critical.

The 125W TDP makes this CPU feasible for high-end air or liquid cooling solutions. Builders looking for a desktop platform with PCIe Gen 5 support and both DDR4 and DDR5 memory options have flexibility in component selection.

Benchmark Performance

The CPU's average benchmark score is 70,163, placing it in the 94th percentile of all CPUs. The combined system percentile (CPU + GPU) is 72, reflecting the GPU's more modest standing.

Specific CPU benchmark scores include Cinebench R15 multicore at 4,452 and single-core at 628, Cinebench R20 multicore at 18,550 and single-core at 2,618, and Cinebench R23 multicore at 44,167 and single-core at 6,235. Geekbench multicore is 21,462 and single-core is 2,578.

PassMark results show data compression at 694,963, data encryption at 40,046, extended instructions at 40,660, find prime numbers at 212, floating-point math at 134,393, integer math at 183,056, multithread at 52,425, physics at 2,961, random string sorting at 74,723, and single-thread at 4,480.

The GPU, an Intel Arc A310E, has no benchmark scores in the data pack. Its percentile ranking is 50, indicating average performance relative to all GPUs. The combined picture is a top-tier CPU paired with a mid-range GPU, resulting in a system where CPU performance far exceeds GPU capabilities in most workloads.

Upgrade Path and Platform

The Intel Core i7-14700KF uses the Intel Socket 1700 platform. It supports both DDR4 and DDR5 memory in dual-channel configuration, allowing builders to choose between cost-effective DDR4 or higher-bandwidth DDR5. ECC memory support is included for professional applications.

PCIe Gen 5 with 16 lanes from the CPU provides high-bandwidth connectivity for modern GPUs and NVMe storage. The platform's flexibility means users can upgrade memory, storage, and GPUs without changing the motherboard.

The GPU, Intel Arc A310E, uses PCIe 4.0 x8 interface. It has a TDP of 75W and a suggested PSU of 250W. The system's power requirements are modest, with the CPU at 125W and the GPU at 75W, leaving headroom for additional components.

A sensible next upgrade path would be a more powerful GPU, as the current Arc A310E (50th percentile) significantly underperforms the CPU (94th percentile). The PCIe 4.0 x8 interface of the GPU supports modern graphics cards, and the CPU's 16 PCIe Gen 5 lanes can accommodate high-end GPUs without bottleneck.

Memory upgrades from DDR4 to DDR5 could improve bandwidth-sensitive workloads, though the CPU's dual-channel support means both configurations are viable. The unlocked multiplier allows CPU overclocking for additional performance, provided adequate cooling is installed.

Balance and Bottleneck

The system exhibits a significant performance imbalance between CPU and GPU. The CPU sits in the 94th percentile while the GPU is in the 50th percentile. This means the GPU is the limiting factor in most graphics-intensive workloads, including gaming and GPU-accelerated rendering.

In gaming scenarios, the CPU's single-core performance (Cinebench R23 single-core: 6,235) is more than sufficient for high frame rates, but the Arc A310E's mid-range standing will cap FPS well below what the CPU could support. The GPU's 4 GB VRAM and 64-bit memory bus further constrain performance at higher resolutions and detail settings.

For non-graphics workloads like video encoding, data compression, or software compilation, the CPU dominates and the GPU's limitations are irrelevant. The PassMark multithread score of 52,425 indicates the CPU handles these tasks with ease.

The bottleneck shifts depending on workload: GPU-bound for gaming and graphics rendering, CPU-bound for productivity and compute tasks. Builders should consider whether the GPU meets their minimum requirements, as upgrading it would provide the most significant system-wide performance improvement.

Build Overview

This is a desktop build pairing the Intel Core i7-14700KF (20 cores, 28 threads, 5.60 GHz boost) with the Intel Arc A310E (4 GB GDDR6, 64-bit bus, 124.0 GB/s bandwidth). The combined system percentile is 72, reflecting the high CPU performance and mid-range GPU.

The CPU is a 14th-generation Raptor Lake refresh part, manufactured on Intel's 10 nm process. It supports DDR4 and DDR5 memory, has 33 MB of shared L3 cache, and features PCIe Gen 5. The GPU uses the Xe-HPG architecture (Alchemist generation) on TSMC's 6 nm process, with 768 shading units, 32 TMUs, 16 ROPs, and 6 ray tracing cores. The GPU is single-slot, consumes 75W, and requires no external power connectors, with a suggested PSU of 250W.

The combination represents a workstation-oriented system where CPU compute is the primary focus. The GPU provides basic graphics capability and hardware acceleration for media workloads, but it is not designed for high-end gaming or GPU-intensive rendering. The overall tier is upper-midrange, driven almost entirely by CPU performance.

Gaming Performance

No measured FPS data exists for this exact CPU-GPU combination. The FACT PACK contains no measured FPS rows, so all gaming performance figures are estimates derived from the benchmark scores.

The CPU's gaming potential is high, with strong single-core performance indicated by Cinebench R23 single-core score of 6,235 and PassMark single-thread score of 4,480. The 28 threads provide ample support for modern games that utilize multiple cores. However, the GPU's 50th percentile ranking and specifications (4 GB GDDR6, 64-bit bus, 124.0 GB/s bandwidth) suggest it will be the limiting factor.

The Arc A310E's 3.072 TFLOPS FP32 performance and 16 ROPs indicate modest rasterization capability. At 1080p with low-to-medium settings, the GPU may deliver playable frame rates in less demanding titles, but high-refresh gaming or ultra settings are likely beyond its capabilities. The 4 GB VRAM will also limit texture quality and resolution.

The system's overall gaming performance should be considered GPU-bound. The CPU will not bottleneck in most scenarios, but the GPU's mid-range standing means frame rates will be moderate. For a more balanced gaming experience, a higher-performance GPU would be required. These are estimates, not measured results.

GPU Analysis

The Intel Arc A310E is a 4 GB GDDR6 graphics card with a 64-bit memory bus and 124.0 GB/s bandwidth. It is based on the DG2-128 chip using the Xe-HPG architecture, part of the Alchemist generation. The GPU is manufactured on TSMC's 6 nm process with 7,200 million transistors on a 157 mm² die.

Clock speeds are fixed at 2000 MHz for both base and boost, with memory running at 1937 MHz (15.5 Gbps effective). The GPU has 768 shading units, 32 TMUs, and 16 ROPs, with 6 ray tracing cores. Pixel rate is 32.00 GPixel/s, texture rate is 64.00 GTexel/s, and FP32 performance is 3.072 TFLOPS. FP16 performance is 6.144 TFLOPS with a 2:1 ratio.

The GPU supports DirectX 12 Ultimate (12_2), OpenGL 4.6, and Vulkan 1.4. It features 4x mini-DisplayPort 2.0 outputs and connects via PCIe 4.0 x8. The card is single-slot, measures 168 mm in length, and requires no external power connectors, with a 75W TDP and 250W suggested PSU.

The Arc A310E sits in the 50th percentile of all GPUs, indicating average performance. With 3.072 TFLOPS FP32, it handles basic graphics tasks and light gaming, but the 64-bit memory bus and 4 GB VRAM limit its capability in modern AAA titles. The 6 ray tracing cores provide entry-level RT support, though performance will be constrained by the overall GPU throughput.

The GPU has no benchmark scores in the FACT PACK, so its performance characterization relies on architectural specifications and percentile ranking. It is an entry-level graphics solution appropriate for office use, media playback, and light gaming, rather than demanding 3D rendering or high-refresh gaming.