SYSTEM ANALYZER

Rate My PC: Intel Core i5-12450H + Intel Arc A550M

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

90 / 100
ULTIMATE READY

Apex Performer

Top 10% 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
83%
VS
GPU
96%
PROCESSOR

Intel Core i5-12450H

17,239 Benchmark Score
Top 17% Market Ranking
View Full Specs →
GRAPHICS CARD

Intel Arc A550M

49,737 Benchmark Score
Top 4% 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

# Intel Core i5-12450H + Intel Arc A550M: Benchmark Analysis

This mobile pairing combines Intel's Alder Lake-H processor with Intel's Arc 5-series discrete GPU, targeting the upper-middle tier of laptop performance. The CPU sits at the 71st percentile among all processors, while the GPU reaches the 86th percentile among all graphics cards, placing the combined system at the 79th percentile overall. The data shows a balanced pairing where the CPU's multithreaded capacity and the GPU's strong compute performance complement each other across demanding workloads, though the 45W CPU TDP and 60W GPU TDP indicate a power-conscious design rather than an extreme-performance flagship.

Usage Scenarios

High-Refresh Gaming: The Arc A550M's 86th percentile GPU ranking, backed by an average benchmark score of 49737, positions this system for smooth high-refresh gaming at 1080p in most titles. The GPU's FP32 throughput of 8.397 TFLOPS and 224.0 GB/s memory bandwidth provide substantial headroom for esports and competitive titles, where the CPU's 3dmark_2_threads score of 1743 and single-thread score of 912 ensure responsive frame pacing. The 8-core, 12-thread processor with a 4.40 GHz boost clock prevents CPU bottlenecks in less demanding scenarios.

Streaming: The 12-thread configuration, with a 3dmark_max_threads score of 5020, handles concurrent encoding and gaming workloads without significant degradation. The passmark_multithread score of 16265 indicates solid parallel processing capability for software encoding, while the GPU's DirectX 12 Ultimate and Vulkan 1.4 support enable hardware-accelerated encoding paths. The 16 RT cores on the GPU provide additional compute resources for modern streaming software that leverages ray-tracing acceleration for visual effects.

Video Editing: The Cinebench R23 multicore score of 8822.5 demonstrates strong rendering capability for video export tasks, while the passmark_data_compression score of 195132 supports efficient handling of compressed video codecs. The GPU's 8 GB GDDR6 memory with 128-bit bus width and 224.0 GB/s bandwidth accelerates effects processing and timeline scrubbing. The passmark_floating_point_math score of 40568 indicates robust mathematical throughput for color grading and filter applications.

3D Rendering: The CPU's Cinebench R20 multicore score of 5671 and R15 multicore score of 1350 show capable multi-threaded rendering performance for a mobile processor. The GPU's 2048 shading units and 128 texture mapping units, delivering 262.4 GTexel/s texture rate, provide substantial rasterization throughput for viewport previews. The combined 79th percentile system ranking suggests viable entry-level 3D work, though the 60W GPU power envelope limits sustained heavy render workloads compared to desktop-class alternatives.

Software Development: The passmark_integer_math score of 54782 and data encryption score of 10832 indicate strong performance for compilation tasks and cryptographic operations. The 12 threads handle parallel builds efficiently, while the 3dmark_8_threads score of 4233 shows balanced multi-core scaling. The 20 PCIe Gen 4 lanes from the CPU provide ample bandwidth for NVMe storage, accelerating project load times and build artifact I/O.

Student and Office Work: The passmark_single_thread score of 3306 and Cinebench R23 single-core score of 1661 deliver responsive application launches and smooth document editing. The integrated UHD Graphics provides a fallback display solution, while the discrete GPU accelerates productivity applications that leverage GPU compute. The 12 MB shared L3 cache reduces latency for frequently accessed office documents and browser tabs, making this system far more capable than typical productivity laptops.

FAQ

Q: How does the Intel Core i5-12450H compare to the AMD Ryzen 5 4500?

A: The two processors have nearly identical average benchmark scores, with the i5-12450H at 17239 and the Ryzen 5 4500 at 17333, a delta of -0.5%. This places them effectively in the same performance tier for general workloads.

Q: What is the GPU's performance relative to the NVIDIA GeForce RTX 5070 Ti?

A: The Arc A550M's average benchmark score of 49737 is just 0.4% lower than the RTX 5070 Ti's 49957, indicating statistically equivalent compute performance in the tested benchmarks, despite the significant generational difference.

Q: Does the CPU support overclocking?

A: No, the multiplier is locked, and the processor is designed for mobile platforms where power efficiency and thermal management take precedence over manual tuning.

Q: What memory types does the CPU support?

A: The i5-12450H supports both DDR4 and DDR5 memory in a dual-channel configuration, giving system integrators flexibility in balancing cost and bandwidth.

Q: Is the GPU still in production?

A: The Arc A550M is marked as end-of-life, meaning Intel has ceased active production of this specific mobile GPU variant, though systems containing it remain in circulation.

Q: What API features does the GPU support?

A: The Arc A550M supports DirectX 12 Ultimate (12_2), OpenGL 4.6, and Vulkan 1.4, covering the full range of modern graphics APIs for gaming and professional applications.

Q: How much memory bandwidth does the GPU have?

A: The GPU has 224.0 GB/s of bandwidth across an 8 GB GDDR6 memory interface with a 128-bit bus width, running at 1750 MHz (14 Gbps effective).

Gaming Performance

The FACT PACK contains no measured FPS data for this exact CPU+GPU combination. All frame rate expectations are therefore estimates derived from the benchmark scores and relative performance positions. The GPU's 86th percentile ranking and average benchmark score of 49737 suggest strong 1080p gaming performance across most titles. At 1440p, the 8 GB GDDR6 frame buffer and 224.0 GB/s bandwidth provide adequate capacity, though the 128-bit memory bus may limit performance in bandwidth-sensitive scenes. The CPU's 3dmark_16_threads score of 5001 and 3dmark_4_threads score of 3091 indicate sufficient processing power to feed the GPU in most gaming scenarios.

For competitive esports titles, the combination of the CPU's single-thread score of 912 and the GPU's 8.397 TFLOPS FP32 throughput should deliver high frame rates at 1080p with reduced graphical settings. The CPU's boost clock of 4.40 GHz ensures low latency frame generation, while the GPU's 131.2 GPixel/s pixel rate handles rasterization efficiently. In more demanding AAA titles, the 8 GB VRAM capacity may become a limiting factor at 1440p with maximum textures, though the GPU's 16 RT cores provide hardware-accelerated ray tracing for supported games. The 64 ROPs and 128 TMUs deliver solid fill rates for particle effects and texture-dense environments.

The GPU's nearest rival comparisons show performance within 2.6% of the AMD Radeon RX 6800 XT and 2.4% below the RX 6900 XT, suggesting the Arc A550M competes with desktop-class graphics hardware from the previous generation. This translates to playable frame rates at 1440p in most titles and reasonable 4K performance in less demanding games or with upscaling technologies. The 60W TDP, however, means sustained gaming sessions may see thermal throttling in thin chassis designs, potentially reducing frame rates below the initial benchmark-derived estimates.

Balance and Bottleneck

The CPU and GPU occupy different performance percentiles—71st for the processor and 86th for the graphics card—indicating that the GPU is the more capable component in this pairing. In gaming workloads, the GPU will likely be the primary bottleneck at higher resolutions, where the CPU's 3dmark_2_threads score of 1743 and single-thread score of 912 provide adequate instruction throughput. The CPU's advantage in multithreaded tasks, evidenced by the passmark_multithread score of 16265, ensures that CPU-bound scenarios such as physics simulation and AI processing do not starve the GPU.

In productivity workloads, the balance shifts. The CPU's 8 cores and 12 threads, with a Cinebench R23 multicore score of 8822.5, become the limiting factor in heavily parallel tasks like video encoding and 3D rendering, where the GPU's compute capability cannot compensate for insufficient CPU thread throughput. The passmark_data_compression score of 195132 suggests the CPU handles data-intensive tasks well, but the 45W TDP envelope caps sustained all-core performance. The GPU's FP16 throughput of 16.79 TFLOPS (2:1) provides acceleration for AI-accelerated applications, partially offloading work from the CPU in supported software.

Memory bandwidth presents a potential bottleneck. The CPU supports dual-channel DDR4 or DDR5, while the GPU has its own 224.0 GB/s dedicated bandwidth. In gaming, the 128-bit GPU memory bus may limit performance in high-resolution texture streaming, while the CPU's dual-channel configuration could constrain data-heavy workloads. The 12 MB shared L3 cache mitigates some CPU memory latency, but the overall system balance favors GPU-intensive tasks over memory-bandwidth-hungry CPU workloads.

Upgrade Path and Platform

The CPU uses the Intel BGA 1744 socket, which is a soldered mobile platform—this means the processor is not upgradeable in a traditional sense. The 20 PCIe Gen 4 lanes from the CPU provide connectivity for high-speed storage and the GPU, which interfaces via PCIe 4.0 x16. Memory support includes both DDR4 and DDR5 in dual-channel configurations, allowing system integrators to choose between established and newer memory technologies. The platform's 45W CPU TDP and 60W GPU TDP require adequate cooling but do not demand an oversized power supply, though the FACT PACK does not specify a suggested PSU rating.

The GPU is marked as end-of-life, so future upgrades would require a full system replacement rather than a component swap. The PCIe 4.0 x16 interface ensures compatibility with current and near-future discrete GPUs, but the mobile form factor limits expansion options. The 8 GB GDDR6 memory is adequate for current games but may become restrictive as VRAM requirements grow. The system's 79th combined percentile suggests a sensible next upgrade would be a platform with a newer CPU generation and a GPU with higher memory bandwidth and capacity, assuming a move to a new laptop chassis.

Who Should Build It

Gamers seeking high-refresh 1080p performance will find this pairing well-suited, given the GPU's 86th percentile ranking and the CPU's adequate single-thread performance for frame generation. Content creators working with video editing and 3D rendering will benefit from the 12-thread CPU and the GPU's compute capabilities, though the 45W CPU TDP limits sustained heavy workloads. Software developers will appreciate the CPU's strong integer math and encryption scores, which accelerate compilation and security-related tasks. Students and office workers gain a system that handles productivity applications with ease, backed by the integrated graphics as a fallback and the discrete GPU for acceleration.

Small business workstations requiring moderate compute power for data analysis, design software, or light rendering will find the 79th combined percentile sufficient for most tasks. The GPU's DirectX 12 Ultimate support ensures compatibility with emerging graphics technologies, while the 8 GB VRAM accommodates larger datasets in GPU-accelerated applications. The system is less suitable for users requiring extreme multithreaded performance, where the CPU's percentile ranking suggests better options exist, or for those needing extensive VRAM beyond 8 GB for large-scale machine learning or high-resolution texture work.

CPU Analysis

The Intel Core i5-12450H features 8 cores and 12 threads, combining performance and efficiency cores in an Alder Lake-H architecture built on Intel's 10 nm process. The base clock of 2000 MHz boosts to 4.40 GHz, providing a wide dynamic range for varying workloads. The cache hierarchy includes 80 KB of L1 per core, 1.25 MB of L2 per core, and 12 MB of shared L3 cache, totaling a die size of 217 mm². The processor supports DDR4 and DDR5 memory in dual-channel mode and offers 20 PCIe Gen 4 lanes for peripheral connectivity.

Benchmark results show a processor that scales well with thread count: the 3dmark_2_threads score of 1743 rises to 5001 at 16 threads, a near-linear scaling that indicates efficient core utilization. The Cinebench R23 scores of 1661 single-core and 8822.5 multi-core position this CPU as competitive with desktop processors from a few generations prior, as evidenced by the 0.4% delta against the Intel Core i5-11400F. The passmark results reinforce this picture, with a multithread score of 16265 and single-thread score of 3306, placing the CPU at the 71st percentile overall.

The integrated UHD Graphics provides basic display output and video decode capabilities, while the CPU's primary role is feeding the discrete Arc GPU. The 45W TDP indicates a processor designed for performance laptops rather than ultraportables, with the boost clock of 4.40 GHz enabling bursty workloads like game loading and application launches. The passmark extended instructions score of 11992 shows robust SIMD performance for media encoding and scientific workloads, though the find prime numbers score of 46 indicates modest integer throughput in specific mathematical operations.

Build Overview

This is a laptop-class system pairing the Intel Core i5-12450H with the Intel Arc A550M, combining Intel's 12th-generation Alder Lake-H processor with the Alchemist-generation mobile GPU. The combined percentile of 79 places this system in the upper-midrange tier of laptop configurations, with the GPU significantly outperforming the CPU in relative standing. The CPU's 71st percentile and GPU's 86th percentile create a GPU-favored balance, meaning the graphics card is the stronger component in this pairing.

The Arc A550M, built on TSMC's 6 nm process with 21,700 million transistors across a 406 mm² die, represents Intel's attempt at the discrete mobile GPU market. Its 2048 shading units, 128 TMUs, and 64 ROPs deliver competitive compute performance, while the 16 RT cores provide ray-tracing capability. The 60W TDP and IGP slot width indicate a design intended for thinner laptops rather than gaming behemoths. The GPU's end-of-life status suggests this represents a specific generation of Intel's mobile graphics strategy rather than an ongoing product line.

The system's combined benchmark picture shows a configuration that excels in GPU-accelerated tasks while providing competent CPU performance for everyday and moderately parallel workloads. The 79th combined percentile means this system outperforms roughly four-fifths of all tested configurations, making it a solid choice for mainstream gaming and content creation. The lack of measured FPS data for this exact pairing means real-world gaming performance must be inferred from the component benchmarks, which suggest strong 1080p capability and viable 1440p performance.

Benchmark Performance

The CPU's average benchmark score of 17239 places it at the 71st percentile among all processors, with nearest rivals including the AMD Ryzen 3 PRO 8300G (17278, -0.2% delta), the Intel Core i5-11400F (17177, +0.4% delta), the AMD Ryzen 3 210 (17321, -0.5% delta), and the AMD Ryzen 5 4500 (17333, -0.5% delta). This clustering within 0.5% of multiple rivals indicates the i5-12450H sits in a densely populated performance tier where minor architectural differences determine ranking.

The GPU's average benchmark score of 49737 places it at the 86th percentile among all GPUs, with nearest rivals including the NVIDIA GeForce RTX 5070 Ti (49957, -0.4% delta), the AMD Radeon RX Vega 64 (50001, -0.5% delta), the AMD Radeon RX 6900 XT (50951, -2.4% delta), and the AMD Radeon RX 6800 XT (48477, +2.6% delta). The GPU's Geekbench scores of 49894 in OpenCL and 49580 in Vulkan show consistent performance across different compute APIs.

The combined picture shows a system where the GPU outperforms the CPU in relative terms, with the 86th percentile GPU paired with a 71st percentile CPU. The combined percentile of 79 reflects this balance, suggesting the GPU will drive most demanding workloads while the CPU provides adequate support. The deltaPct values against rivals indicate that the CPU is competitive with several desktop-class processors, while the GPU matches or exceeds desktop GPUs from the previous generation, making this a system where the graphics card punches above its mobile-class designation.