SYSTEM ANALYZER

Rate My PC: Intel Core i5-14600 + Intel Arc B770

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

84 / 100
HIGH-END

Power Build

Top 16% of systems. Excellent for 1440p Ultra or 4K High gaming.

1440p Ultra4K High

System Balance Analysis

CPU vs GPU performance ratio
Well Balanced
CPU
93%
VS
GPU
74%
PROCESSOR

Intel Core i5-14600

44,889 Benchmark Score
Top 7% Market Ranking
View Full Specs →
GRAPHICS CARD

Intel Arc B770

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.

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 i5-14600 and Intel Arc B770 form a desktop pairing that lands in the 70th percentile overall, placing it above the median for combined CPU and GPU performance. The processor is a 14-core, 20-thread Raptor Lake-R part on Intel’s 10 nm process, with a base clock of 2.70 GHz and a boost clock of 5.20 GHz. The GPU is an Intel Arc B770 on the Xe2-HPG architecture, built on TSMC’s 5 nm node. With no measured FPS data available for this exact combination, all gaming discussion below is estimated from the benchmark scores, and any specific frame rates should be treated as projections rather than observed results.

CPU Analysis

The Core i5-14600 presents a hybrid configuration of 14 cores and 20 threads, relying on the Raptor Lake architecture in its Raptor Lake-R refresh form. The 2.70 GHz base clock and 5.20 GHz boost clock define the operational range, with a 65 W TDP indicating a power-conscious design that still offers substantial throughput. The cache hierarchy includes 80 KB of L1 per core, 2 MB of L2 per core, and 24 MB of shared L3, which supports the processor’s ability to handle both latency-sensitive single-threaded tasks and larger working sets. The CPU supports both DDR4 and DDR5 memory in dual-channel mode, with ECC memory listed as supported, and provides PCIe Gen 5 with 16 lanes from the CPU.

Benchmark results show a processor that excels in both single-core and multi-core workloads. The Cinebench R23 multicore score of 30464 and single-core score of 4300 indicate strong rendering capability per thread and across all cores. Geekbench results of 14680 multicore and 2424 single-core reinforce this pattern. The Passmark suite provides additional texture: integer math at 117078, floating-point math at 85759, and extended instructions at 25674. Data compression and encryption scores of 434620 and 25082 respectively suggest the CPU handles archival and security workloads with ease. These numbers place the i5-14600 at the 89th percentile among all CPUs, which means it outperforms the vast majority of processors in the database.

The nearest rivals provide context for the i5-14600’s position. The Intel Core i9-12900KS scores 45094 with a delta of -0.5% relative to the i5-14600’s average score of 44889, meaning the i5 is essentially on par with a previous-generation flagship. The AMD EPYC 4344P also sits at a -0.5% delta, while the AMD Ryzen 5 7500X3D is 0.7% behind and the Intel Core Ultra X9 388H is 1% behind. This indicates the i5-14600 delivers performance comparable to higher-tier or more specialized parts, particularly in mixed workloads where its core count and clock speed balance shine.

Benchmark Performance

The CPU’s average benchmark score of 44889 places it just slightly below the Core i9-12900KS at 45094 and the EPYC 4344P at 45122, yet above the Ryzen 5 7500X3D at 44573 and the Core Ultra X9 388H at 44466. The percentile rank of 89 confirms this is a top-tier processor, but the GPU side tells a different story. The Arc B770 has an empty benchmark array, an average score of 0, and a percentile of 50, meaning it sits exactly at the median of all GPUs. The combined percentile of 70 reflects the CPU pulling the overall performance upward, while the GPU holds the middle ground.

In practical terms, the CPU scores indicate strong performance in multi-threaded productivity tasks. The Cinebench R23 multicore score of 30464 suggests the i5-14600 can handle video encoding, 3D rendering, and compilation workloads efficiently. The single-core score of 4300 in the same test means everyday responsiveness and lightly threaded applications will not suffer. The Passmark multithread score of 35848 and physics score of 2330 further support the CPU’s capability for simulation and physics calculations. The data compression score of 434620 is particularly notable, as it suggests file archiving and decompression tasks are handled rapidly.

The GPU’s lack of benchmark data means its raw compute potential must be inferred from its specifications rather than measured scores. The Arc B770’s FP32 throughput of 19.66 TFLOPS and FP16 of 39.32 TFLOPS (2:1) position it as a capable compute device, but without percentile rivals, its standing relative to other GPUs remains unclear. The combined picture is a system where the CPU is the standout component, likely driving most high-performance scenarios, while the GPU provides balanced rendering output.

Gaming Performance

No measured FPS rows exist for the Intel Core i5-14600 with the Intel Arc B770. The FACT PACK contains no measuredFps data for this combination, so all frame rates discussed here are estimates based on the benchmark scores and hardware specifications. Do not treat these figures as validated results.

Given the CPU’s 89th percentile standing and the GPU’s 50th percentile, the likely gaming behavior is that the i5-14600 will rarely be the limiting factor. The CPU’s single-core performance, evidenced by the Cinebench R23 single-core score of 4300, suggests it can feed frames quickly in CPU-bound scenarios. The GPU, with its 16 GB of GDDR6 memory and 512.0 GB/s bandwidth, should handle textures and memory-heavy scenes competently. The Xe2-HPG architecture includes 32 ray tracing cores, which means hardware-accelerated ray tracing is available, though its real-world performance cannot be quantified from the available data.

At 1080p resolution, the system should deliver high frame rates in most titles, with the GPU’s 50th percentile suggesting it is an average performer that will meet typical 60 FPS targets but may struggle with maximum settings in demanding games. At 1440p, the 16 GB VRAM becomes an advantage, allowing high-resolution textures without memory pressure, but the raw compute may limit frame rates in GPU-heavy scenes. At 4K, the GPU is likely the bottleneck, as its mid-tier percentile indicates it is not designed for extreme resolutions with ultra settings. The CPU’s strength means frame pacing should be consistent, but the GPU will determine the ceiling.

Who Should Build It

This pairing suits users who prioritize CPU-heavy workloads alongside moderate gaming. Content creators working with video editing, 3D rendering, or software compilation will benefit from the i5-14600’s multicore performance, as the Cinebench R23 multicore score of 30464 and Passmark multithread score of 35848 demonstrate. Developers compiling large codebases or running virtual machines will appreciate the 20 threads and the data encryption score of 25082, which suggests strong cryptographic performance for secure workloads. Students in engineering or computer science programs can leverage the CPU’s compute power for simulations and data analysis, while the GPU handles visualization tasks.

Small business workstations that run office productivity suites, database queries, or financial modeling will find the CPU more than adequate, given its 89th percentile standing. The GPU’s 16 GB VRAM supports large datasets for data visualization or basic machine learning inference tasks. Gamers at 1080p or 1440p who play at medium-to-high settings, rather than ultra, will find the Arc B770 sufficient, especially given the CPU’s ability to maintain high frame rates in CPU-bound titles. However, enthusiasts seeking maximum graphical fidelity at 4K should look elsewhere, as the GPU’s median performance suggests it is not built for that tier.

Balance and Bottleneck

The data clearly indicates the CPU is the stronger component, with an 89th percentile versus the GPU’s 50th percentile. In CPU-bound workloads such as data compression, integer math, and single-threaded applications, the i5-14600 will perform exceptionally, with the GPU largely idle. In GPU-bound scenarios like high-resolution gaming or heavy rendering, the Arc B770 will be the limiting factor, capping overall performance at its median level.

The FPS scaling between resolutions would reflect this imbalance. At lower resolutions like 1080p, the CPU’s strength can push frame rates higher, but the GPU still sets the final number. At higher resolutions like 4K, the GPU becomes overwhelmingly the bottleneck, as its compute throughput of 19.66 TFLOPS is modest compared to higher-tier cards. The CPU’s 5.20 GHz boost clock and 24 MB L3 cache do not compensate for the GPU’s limitations in pixel-heavy workloads. For a balanced system, the user should expect the GPU to limit gaming performance while the CPU provides headroom for productivity tasks.

GPU Analysis

The Intel Arc B770 is built on the Xe2-HPG architecture, codenamed Battlemage, and uses the BMG-G31 chip on a 5 nm process from TSMC. The die size is 368 mm², and the GPU operates with a base clock of 2100 MHz and a boost clock of 2400 MHz. Memory is 16 GB of GDDR6 on a 256-bit bus, yielding a bandwidth of 512.0 GB/s, with memory clocked at 2000 MHz or 16 Gbps effective. The GPU features 4096 shading units, 256 texture mapping units, and 128 raster operation units, along with 32 ray tracing cores.

The compute capabilities are substantial on paper: FP32 at 19.66 TFLOPS and FP16 at 39.32 TFLOPS (2:1). Pixel rate is 307.2 GPixel/s and texture rate is 614.4 GTexel/s, indicating strong fill rates for its class. The GPU supports DirectX 12 Ultimate (12_2), OpenGL 4.6, and Vulkan 1.4, making it compatible with modern APIs. Display outputs include 1x HDMI 2.1a and 3x DisplayPort 2.1, which supports high refresh rates and multiple monitors. The TDP is 225 W, requiring a suggested PSU of 550 W, with power delivered via 1x 6-pin and 1x 8-pin connectors.

At the 50th percentile, the Arc B770 is an average GPU by database standards. The lack of benchmark scores means no direct comparison to rivals is possible, but the specifications suggest it is a mid-range card. The 16 GB VRAM is generous for its tier, which helps with modern games and larger textures, but the FP32 throughput of 19.66 TFLOPS limits its raw rendering speed. The ray tracing cores enable hardware-accelerated RT, but without measured performance, its effectiveness remains speculative.

Usage Scenarios

High-refresh gaming at 1080p is a plausible scenario, with the CPU’s strong single-core performance providing high frame rates in esports titles, though the GPU’s median percentile may cap maximum FPS below what high-refresh monitors demand. Streaming while gaming is supported by the CPU’s 20 threads, which can handle encoding tasks alongside game logic, and the GPU’s 16 GB VRAM ensures no memory contention. Video editing in software like Premiere Pro or DaVinci Resolve will benefit from the CPU’s Cinebench R23 multicore score of 30464, which indicates fast export times, while the GPU accelerates effects and color grading.

3D rendering in Blender or similar tools will see the CPU handle geometry and physics, with the Passmark physics score of 2330 and floating-point math at 85759, while the GPU’s FP32 compute offloads some rendering tasks. Software development, including compiling large projects or running containerized workloads, is well-suited to the CPU’s 20 threads and data encryption score of 25082, which aids in secure builds. Student and office work is easily handled, as the CPU’s 89th percentile ensures snappy responses in spreadsheets, document processing, and web browsing, with the GPU providing adequate acceleration for any graphical tasks. In all scenarios, the CPU is the workhorse, while the GPU provides competent but not exceptional support.

Upgrade Path and Platform

The Intel Core i5-14600 uses the Intel Socket 1700, which supports both DDR4 and DDR5 memory in dual-channel mode. This flexibility means users can choose between cost-effective DDR4 or higher-bandwidth DDR5, depending on motherboard selection. The CPU provides PCIe Gen 5 with 16 lanes, offering substantial bandwidth for high-end storage and future GPU upgrades, though the Arc B770 itself uses PCIe 4.0 x16. The 65 W TDP is modest, and the suggested PSU of 550 W for the GPU means the overall system has headroom for additional components.

A sensible next upgrade would be to replace the GPU, as the CPU has significant headroom at the 89th percentile. Moving to a higher-tier GPU would better match the CPU’s performance, reducing the bottleneck in GPU-bound workloads. The CPU’s support for ECC memory is a niche feature that may appeal to workstation users, but the platform’s DDR4/DDR5 compatibility is the more practical consideration. The PCIe Gen 5 lanes future-proof storage and accelerator options, making the platform viable for several years. The i5-14600 is not multiplier-unlocked, meaning overclocking is not available, but its boost clock of 5.20 GHz already provides high single-thread performance.

FAQ

Q: What is the CPU’s core and thread count?

A: The Intel Core i5-14600 has 14 cores and 20 threads.

Q: What is the GPU’s memory configuration?

A: The Intel Arc B770 has 16 GB of GDDR6 memory on a 256-bit bus with 512.0 GB/s bandwidth.

Q: How does the CPU compare to its nearest rivals?

A: The i5-14600 has an average benchmark score of 44889, which is 0.5% below the Core i9-12900KS and EPYC 4344P, 0.7% above the Ryzen 5 7500X3D, and 1% above the Core Ultra X9 388H.

Q: Does the CPU support ECC memory?

A: Yes, the Intel Core i5-14600 supports ECC memory.

Q: What is the GPU’s ray tracing capability?

A: The Intel Arc B770 has 32 ray tracing cores, which provide hardware acceleration for ray-traced effects.

Q: What is the combined performance percentile of this build?

A: The combined percentile is 70, indicating the system performs better than 70% of all CPU+GPU pairings in the database.

Q: Are there measured gaming frame rates for this combination?

A: No, there are no measured FPS rows for the Intel Core i5-14600 with the Intel Arc B770, so any gaming performance is estimated from benchmark scores.

Build Overview

This desktop build pairs the Intel Core i5-14600 with the Intel Arc B770. The CPU is a 14-core, 20-thread processor from the Core 14th Gen series, built on the Raptor Lake architecture with a 65 W TDP. The GPU is a Battlemage-generation card with 16 GB of GDDR6 memory, 4096 shading units, and a 225 W TDP. The system’s overall percentile is 70, with the CPU at the 89th percentile and the GPU at the 50th percentile. This is a CPU-forward configuration, suited for users who need strong multi-threaded compute and are willing to accept mid-range GPU performance. The launch MSRP for the CPU is $255, which positions it as a mid-range processor, though the GPU has no listed launch MSRP. The build is best described as a productivity-first desktop with competent gaming capability, where the processor drives performance and the GPU provides balanced rendering output.