SYSTEM ANALYZER

Rate My PC: Intel Core i9-14901E + Intel Arc A380E

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

83 / 100
HIGH-END

Power Build

Top 17% of systems. Excellent for 1440p Ultra or 4K High gaming.

1440p Ultra4K High

System Balance Analysis

CPU vs GPU performance ratio
Well Balanced
CPU
92%
VS
GPU
74%
PROCESSOR

Intel Core i9-14901E

37,911 Benchmark Score
Top 8% Market Ranking
View Full Specs →
GRAPHICS CARD

Intel Arc A380E

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
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Performance Insights

Tips to maximize your system

Strong Performance

Excellent for 1440p gaming. Most games will run at high/ultra settings smoothly.

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 Intel Core i9-14901E and Intel Arc A380E pairing presents a distinctive balance profile. The CPU sits at the 86th percentile among all processors, while the GPU lands at the 50th percentile among all graphics cards. This 36-percentile gap indicates a pronounced CPU-forward configuration where the processor's capabilities far outstrip the graphics subsystem's throughput. In gaming workloads, this means the Arc A380E will almost certainly be the limiting factor at any resolution, as the CPU has substantial headroom to feed frames well beyond what the GPU can render.

The combined percentile for this build is 68, which reflects the ceiling imposed by the weaker component. Benchmark data shows the i9-14901E achieving a Cinebench R23 multicore score of 25753 and a single-core score of 3635, placing it in direct competition with processors like the AMD Ryzen 7 9700X (deltaPct -0.1) and the AMD Ryzen AI 9 HX 370 (deltaPct 0). The GPU, with no benchmark scores listed and a 50th percentile standing, represents a mid-pack graphics solution that will constrain frame rates in graphically intensive scenarios.

For CPU-bound tasks such as data compression, the PassMark score of 288777 demonstrates exceptional throughput, while the GPU's 4.096 TFLOPS FP32 performance and 186.0 GB/s memory bandwidth suggest it can handle moderate graphical loads but will saturate quickly under high-detail settings. The bottleneck analysis is straightforward: compute-heavy and productivity workloads will leverage the CPU's full potential, while gaming and GPU-accelerated rendering will be capped by the Arc A380E's mid-range specifications. The 65W TDP of the CPU against the 75W TDP of the GPU further illustrates that neither component demands extreme power delivery, but the performance disparity remains the defining characteristic of this pairing.

# Benchmark Performance

The Intel Core i9-14901E delivers strong benchmark results across multiple testing methodologies. In Cinebench R23, the processor scores 25753 points in multicore testing and 3635 points in single-core testing. The Cinebench R20 results show 10816 points multicore and 1526 points single-core, while the older Cinebench R15 yields 2595 points multicore and 366 points single-core. These scores establish the CPU at the 86th percentile among all processors, with an average benchmark score of 37911.

The nearest rivals paint a precise competitive picture. The AMD Ryzen AI 9 HX 370 scores 37904 on average, a delta of 0 percent from the i9-14901E. The AMD Ryzen 7 9700X achieves 37943, which is 0.1 percent higher. The Intel Core 5 211E reaches 37829, a 0.2 percent deficit, and the AMD Ryzen AI Embedded P132 scores 37804, trailing by 0.3 percent. This clustering within a 0.3 percent band indicates the i9-14901E sits at parity with current mid-high range processors, neither leading nor lagging its direct competitors by any meaningful margin.

PassMark results reinforce this positioning. The processor scores 30298 in multithread testing and 4354 in single-thread testing. Integer math performance reaches 112736, while floating-point math achieves 81089. Data compression scores 288777, data encryption 18571, and extended instructions 17249. Physics simulation scores 3041, random string sorting 39138, and prime number finding 189. These figures collectively place the CPU in the upper tier of desktop processors, suitable for demanding productivity workloads.

The GPU presents a different picture. With no benchmark scores available and an average benchmark score of zero, the Arc A380E relies on its architectural specifications for evaluation. Its 50th percentile ranking among all GPUs indicates a median position in the graphics landscape. The combined picture is a system where CPU performance is excellent for its class, GPU performance is middle-of-the-road, and the overall 68th combined percentile reflects the GPU's moderating influence on the system's total capability.

# CPU Analysis

The Intel Core i9-14901E belongs to the Core 14th Gen series, built on the Raptor Lake architecture with the Raptor Lake-R codename. This is a desktop-class processor manufactured on Intel's 10 nm process node with a die size of 257 mm². The chip features 8 cores and 16 threads, operating at a base clock of 2.80 GHz and a boost clock of 5.60 GHz. The 65W TDP indicates efficient power consumption for the performance level delivered.

Cache allocation includes 80 KB of L1 cache per core, 2 MB of L2 cache per core, and 36 MB of shared L3 cache. Memory support extends to both DDR4 and DDR5 formats over a dual-channel memory bus, with ECC memory support included for reliability-sensitive applications. The processor provides PCIe Gen 5 connectivity with 16 lanes from the CPU, and integrated UHD Graphics 770 is available for basic display output. The socket is Intel Socket 1700, and the multiplier is locked, preventing overclocking.

The Cinebench R23 multicore score of 25753 translates to strong multi-threaded performance for rendering and compilation workloads. The single-core score of 3635 indicates excellent responsiveness for lightly-threaded applications. PassMark multithread results of 30298 and single-thread results of 4354 corroborate these findings. The data compression score of 288777 suggests rapid file archiving and data processing capabilities, while integer math at 112736 and floating-point math at 81089 demonstrate balanced arithmetic throughput.

Real-world implications are clear. The 8-core/16-thread configuration handles parallel workloads efficiently, and the high boost clock of 5.60 GHz ensures snappy single-threaded performance. The 36 MB L3 cache provides ample capacity for frequently accessed data, reducing memory latency penalties. The processor's position at the 86th percentile among all CPUs, with average benchmark score of 37911, places it in the upper echelon of available processors, competitive with the AMD Ryzen 7 9700X and AMD Ryzen AI 9 HX 370 as shown by the near-zero deltaPct values.

# Who Should Build It

The target audience for this Intel Core i9-14901E and Intel Arc A380E combination is defined by the performance characteristics of each component. Gamers playing at 1080p resolution will find the GPU sufficient for moderate settings, while the CPU ensures frame rates remain stable in CPU-intensive titles. The 50th percentile GPU ranking means users should expect mid-range graphical performance, suitable for esports titles and older AAA games rather than high-end releases at maximum settings.

Content creators working with video editing software will benefit from the CPU's Cinebench R23 multicore score of 25753, which accelerates rendering timelines and export processes. The PassMark data compression score of 288777 indicates efficient handling of large media files. However, GPU-accelerated effects and color grading may encounter limitations due to the Arc A380E's 6 GB GDDR6 memory and 186.0 GB/s bandwidth.

Software developers compiling large codebases will appreciate the 16 threads and 5.60 GHz boost clock, which reduce build times significantly. The ECC memory support adds reliability for long-running build processes and server-like workloads. Students working on engineering or data science projects can leverage the CPU's 86th percentile performance for simulations and analysis, while the GPU handles visualization tasks adequately.

Small business workstations running office productivity suites, database management, and financial modeling will find this configuration responsive and capable. The 65W CPU TDP and 75W GPU TDP keep cooling requirements modest, allowing for compact system builds. The single-slot GPU with no power connectors simplifies installation in space-constrained chassis. This pairing suits users who prioritize processor performance for professional tasks while accepting mid-range graphics capability for occasional gaming or light creative work.

# FAQ

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

A: The Intel Core i9-14901E ranks at the 86th percentile among all CPUs, with an average benchmark score of 37911.

Q: How does the CPU compare to the AMD Ryzen 7 9700X?

A: The AMD Ryzen 7 9700X has an average score of 37943, which is 0.1 percent higher than the i9-14901E's 37911, indicating near-identical performance.

Q: What are the GPU's memory specifications?

A: The Intel Arc A380E features 6 GB of GDDR6 memory on a 96-bit bus, with 186.0 GB/s bandwidth and 1937 MHz memory clock (15.5 Gbps effective).

Q: Does the CPU support ECC memory?

A: Yes, the Intel Core i9-14901E supports ECC memory and operates on a dual-channel memory bus supporting both DDR4 and DDR5.

Q: What is the GPU's architecture and process node?

A: The Intel Arc A380E uses the Xe-HPG architecture (Alchemist generation) manufactured on TSMC's 6 nm process with 7,200 million transistors.

Q: What is the combined percentile of this build?

A: The combined percentile for the CPU and GPU pairing is 68, reflecting the GPU's moderating influence on overall system performance.

Q: Is the CPU overclockable?

A: No, the multiplier is locked, preventing overclocking. The boost clock of 5.60 GHz is the maximum attainable frequency.

# Usage Scenarios

High-refresh gaming: At 1080p with competitive settings, the i9-14901E's single-core score of 3635 in Cinebench R23 ensures high frame rates in CPU-bound titles. The Arc A380E's 4.096 TFLOPS FP32 performance and 50th percentile GPU ranking suggest moderate graphical settings will be necessary to maintain high refresh rates, with the CPU providing ample headroom.

Streaming: The 16 threads and PassMark multithread score of 30298 allow simultaneous game encoding and broadcasting without significant performance degradation. The GPU's 8 RT cores and 1024 shading units handle encoding tasks, though the 6 GB memory capacity may limit encoding quality at higher resolutions.

Video editing: The Cinebench R23 multicore score of 25753 accelerates timeline rendering and export in editing software. The GPU's 186.0 GB/s bandwidth and 6 GB VRAM support real-time preview of effects, though complex projects with multiple 4K streams may strain the graphics subsystem.

3D rendering: CPU-based rendering engines will perform well, with the PassMark floating-point math score of 81089 indicating robust calculation throughput. GPU-accelerated rendering in applications like Blender will benefit from the Arc A380E's 1024 shading units and 64 texture mapping units, but render times will be longer than with higher-tier GPUs.

Software development: Compilation tasks leverage the CPU's 8 cores and 16 threads effectively, with the data compression score of 288777 indicating rapid build artifact processing. The 36 MB L3 cache reduces dependency on slower memory accesses during iterative builds.

Student and office work: The CPU's 86th percentile performance handles spreadsheet calculations, document processing, and research applications with ease. The GPU's 4x DisplayPort 2.0 outputs support multi-monitor setups for increased productivity, while the 65W CPU TDP and 75W GPU TDP keep power consumption modest for dorm rooms or small offices.

# Upgrade Path and Platform

The Intel Core i9-14901E uses the Intel Socket 1700 platform, which supports both DDR4 and DDR5 memory across a dual-channel memory bus. Users can choose between cost-effective DDR4 or higher-bandwidth DDR5 depending on motherboard selection. The processor provides PCIe Gen 5 with 16 lanes from the CPU, enabling fast connectivity for next-generation storage and expansion cards.

The GPU connects via PCIe 4.0 x8 interface, which is sufficient for the Arc A380E's bandwidth requirements. The suggested PSU for the GPU is 250W, which combined with the CPU's 65W TDP indicates a modest total system power draw. The GPU draws its power entirely from the PCIe slot, requiring no additional power connectors, simplifying installation and cable management.

A sensible next upgrade would be replacing the Arc A380E with a higher-tier GPU to balance the system. The CPU's 86th percentile performance and 5.60 GHz boost clock can support significantly more powerful graphics cards without becoming a bottleneck. The PCIe Gen 5 CPU lanes and dual-channel memory support provide a platform capable of accommodating future upgrades. The GPU's end-of-life production status suggests replacement may become necessary as software requirements advance, and the successor Battlemage architecture indicates Intel's ongoing graphics development.

Memory upgrades are straightforward, with support for both DDR4 and DDR5 allowing users to select the technology that matches their performance and budget requirements. The ECC memory support adds flexibility for workstation applications that require error correction. Storage expansion benefits from PCIe Gen 5 lanes, enabling the fastest NVMe SSDs available. The 65W CPU TDP leaves thermal headroom in most chassis, and the single-slot GPU allows additional expansion cards if needed.

# Build Overview

This is a desktop-class build combining the Intel Core i9-14901E processor with the Intel Arc A380E graphics card. The CPU represents the high end of Intel's Core 14th Gen lineup, with 8 cores and 16 threads capable of reaching 5.60 GHz boost clocks. The GPU is an entry-level Arc 3 product with 6 GB of GDDR6 memory and 1024 shading units, designed for mainstream gaming and productivity.

The combined percentile of 68 places this system in the upper-middle tier of overall performance. The CPU's 86th percentile ranking among all processors is the system's primary strength, while the GPU's 50th percentile ranking moderates the total capability. This configuration excels in CPU-intensive workloads such as software development, data analysis, and content creation, while gaming performance will be limited by the graphics card.

The 65W TDP of the CPU and 75W TDP of the GPU result in a combined thermal load of approximately 140W, allowing for quiet and efficient cooling solutions. The GPU's single-slot design and lack of power connectors make it suitable for compact builds. The CPU's support for both DDR4 and DDR5 memory provides flexibility in system configuration, and the ECC memory option extends its utility to reliability-critical applications.

This build targets users who require substantial processor performance for professional work but have modest graphics requirements. The Arc A380E provides adequate graphical capability for everyday use, office productivity, and light gaming, while the i9-14901E delivers exceptional performance for demanding computational tasks. The system represents a balanced approach for users prioritizing CPU performance within a constrained graphics budget.

# GPU Analysis

The Intel Arc A380E is built on the Xe-HPG architecture, representing the Alchemist generation of Intel's discrete graphics lineup. The chip, designated DG2-128, is manufactured on TSMC's 6 nm process with 7,200 million transistors on a 157 mm² die. This results in a transistor density of 45.9 million per square millimeter. The GPU is currently marked as end-of-life, with the successor architecture being Battlemage.

Memory configuration includes 6 GB of GDDR6 on a 96-bit bus, providing 186.0 GB/s of bandwidth. The memory clock operates at 1937 MHz with 15.5 Gbps effective speed. The GPU core runs at a fixed 2000 MHz for both base and boost clocks, simplifying power delivery and thermal management. The 75W TDP is modest, and the card requires no external power connectors, drawing power entirely from the PCIe slot.

Compute resources include 1024 shading units, 64 texture mapping units, and 32 raster operation units. The GPU features 8 ray tracing cores dedicated to hardware-accelerated ray tracing. Pixel rate reaches 64.00 GPixel/s, and texture rate achieves 128.0 GTexel/s. FP32 performance is 4.096 TFLOPS, with FP16 performance doubling to 8.192 TFLOPS at a 2:1 ratio. API support includes DirectX 12 Ultimate (12_2), OpenGL 4.6, and Vulkan 1.4.

The GPU ranks at the 50th percentile among all graphics cards, indicating median performance in the market. With no benchmark scores available, evaluation relies on architectural specifications. The 6 GB VRAM capacity is sufficient for 1080p gaming and moderate creative work, though texture-heavy applications may exceed this capacity. The 186.0 GB/s bandwidth supports smooth texture streaming and memory-intensive operations. Display output is provided through 4x DisplayPort 2.0 connections, enabling multi-monitor configurations with high refresh rates.

The 8 RT cores provide entry-level ray tracing capability, sufficient for games with light ray tracing effects but not for demanding path-traced scenes. The 1024 shading units deliver adequate rasterization performance for mainstream gaming at 1080p with medium to high settings. The single-slot design and 254 mm length allow installation in most cases, and the lack of power connectors simplifies cable routing.

# Gaming Performance

No measured FPS rows exist for this exact CPU and GPU combination in the FACT PACK. The data contains no measuredFps entries, so all frame rate figures discussed here are estimates derived from the benchmark scores and architectural specifications, not empirical test results.

Based on the GPU's 50th percentile ranking and 4.096 TFLOPS FP32 performance, 1080p gaming at medium settings is the realistic target. The 6 GB GDDR6 memory and 186.0 GB/s bandwidth support standard texture loads at this resolution. Esports titles such as competitive shooters and MOBAs will likely achieve high frame rates due to their modest graphical requirements, potentially exceeding 100 FPS with adjusted settings.

For AAA titles at 1080p with high settings, frame rates will likely range between 30-60 FPS depending on the game's optimization. The CPU's 5.60 GHz boost clock and 36 MB L3 cache ensure that frame times remain consistent, minimizing stutter even when the GPU is the limiting factor. At 1440p resolution, the GPU's memory bandwidth and shading unit count will struggle to maintain playable frame rates in demanding titles, likely requiring reduced settings to achieve 30-60 FPS.

Ray tracing performance is constrained by the 8 RT cores, suggesting that games with heavy ray tracing effects will see significant frame rate reductions. The 50th percentile GPU ranking indicates performance comparable to the median graphics card, placing this GPU in the entry-to-mid-range segment. The CPU's 86th percentile performance means that CPU-bound scenarios, such as open-world games with dense NPC populations, will not bottleneck the GPU, allowing the graphics card to operate at its full potential.

The 4x DisplayPort 2.0 outputs support high refresh rate monitors, and the GPU can drive 1080p displays at high refresh rates in less demanding titles. For the best gaming experience, users should target 1080p with medium settings and prioritize frame rate over visual fidelity. The lack of measured FPS data means these estimates carry uncertainty, and real-world performance may vary based on driver maturity and game-specific optimizations.