SYSTEM ANALYZER

Rate My PC: Intel Core i7-13650HX + Intel Arc A770M

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
90%
VS
GPU
90%
PROCESSOR

Intel Core i7-13650HX

33,089 Benchmark Score
Top 10% Market Ranking
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GRAPHICS CARD

Intel Arc A770M

18,383 Benchmark Score
Top 10% Market Ranking
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Market Position

How your build compares to others
Budget
0-30
Mid-Range
30-60
High-End
60-85
Enthusiast
85-100
Your Build

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Performance Insights

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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.

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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 i7-13650HX + Intel Arc A770M: A Mobile Powerhouse with Mixed Signals

The Intel Core i7-13650HX paired with the Intel Arc A770M represents a high-end laptop configuration that sits at the 73rd percentile overall among all CPU-GPU combinations. This pairing combines a 14-core Raptor Lake-HX processor with Intel's flagship mobile Alchemist GPU, creating a system that excels in multi-threaded productivity while delivering competitive, though not class-leading, graphics performance. The CPU is the clear star here, ranking in the 83rd percentile against all CPUs, while the GPU's 62nd percentile standing indicates it is the more modest partner in this duo. This analysis draws exclusively from the provided benchmark data to assess what this combination means for prospective users.

FAQ

Q: What are the core and thread counts of the Intel Core i7-13650HX?

A: The Intel Core i7-13650HX features 14 cores and 20 threads, built on the Raptor Lake-HX architecture with a 10 nm process node from Intel.

Q: How much VRAM does the Intel Arc A770M have and what is its memory bandwidth?

A: The Intel Arc A770M comes equipped with 16 GB of GDDR6 memory on a 256-bit bus, delivering a bandwidth of 512.0 GB/s.

Q: What is the CPU's benchmark percentile compared to all other CPUs?

A: The Intel Core i7-13650HX ranks in the 83rd percentile against all CPUs, with an average benchmark score of 33089.

Q: How does the GPU compare to its nearest rival, the NVIDIA GeForce RTX 3060 Mobile?

A: The Intel Arc A770M scores 18383 on average, which is 1.2% higher than the NVIDIA GeForce RTX 3060 Mobile's average score of 18159.

Q: What is the combined percentile ranking for this CPU-GPU pair?

A: The combined percentile for this laptop configuration is 73, placing it in the upper-middle tier of all tested pairings.

Q: Does this system support PCIe Gen 5 for the CPU?

A: Yes, the Intel Core i7-13650HX supports PCIe Gen 5 with 20 lanes available from the CPU alone.

Q: Is there measured FPS data available for this specific combination?

A: No, there is no measured FPS data for this exact CPU-GPU pairing. All gaming performance figures discussed in this analysis are estimates derived from the individual benchmark scores.

Balance and Bottleneck

The performance equilibrium between the Intel Core i7-13650HX and the Intel Arc A770M skews heavily toward the processor. The CPU's 83rd percentile standing and average benchmark score of 33089 indicate a processor capable of handling demanding multi-threaded workloads with ease. In contrast, the GPU's 62nd percentile and average score of 18383 suggest that graphics performance, while respectable, will be the limiting factor in gaming scenarios and GPU-accelerated tasks.

This imbalance manifests most clearly in CPU-bound workloads. The 3DMark scores for the processor show impressive scaling from 8060 at 16 threads to 8741 at maximum threads, with single-thread performance at 1015. These figures suggest that the CPU can feed the GPU efficiently in most scenarios, but the GPU's ceiling will cap frame rates in graphically intensive titles. The PassMark GPU compute score of 4778, compared to the CPU's PassMark multithread score of 30704, reinforces this bottleneck dynamic: the GPU will likely sit idle waiting for CPU data in some productivity applications, while in gaming, the GPU becomes the constraint.

The 120 W TDP of the Arc A770M versus the 55 W TDP of the i7-13650HX also highlights the power allocation. The GPU draws more than double the power of the CPU, suggesting that in a laptop chassis, thermal management will be critical to maintaining sustained performance. The CPU's ability to boost to 4.90 GHz from a 2.60 GHz base clock indicates significant headroom, but real-world performance will depend on the cooling solution's capacity to handle the combined thermal output of both components.

Benchmark Performance

The Intel Core i7-13650HX delivers a commanding benchmark profile. In Cinebench R23, it scores 24580 in multi-core and 3470 in single-core tests. These numbers position it as a strong performer for both threaded and lightly-threaded applications. The 3DMark 16-thread score of 8060 and max-thread score of 8741 demonstrate that performance scales effectively up to its full thread count, with only a modest 8.4% gain from 16 to 20 threads, indicating diminishing returns beyond 16 threads.

PassMark results further illustrate the CPU's capabilities. The integer math score of 102929 and floating-point math score of 75643 show robust arithmetic processing, while data compression at 383943 and encryption at 21649 indicate strong performance in data-intensive tasks. The single-thread PassMark score of 3769 confirms that the architecture handles legacy and lightly-threaded workloads well.

The Intel Arc A770M's benchmark results paint a more nuanced picture. Its 3DMark Steel Nomad DX12 score of 2278, while not directly comparable to the CPU's 3DMark scores, suggests modest DirectX 12 gaming potential. The Geekbench OpenCL score of 89494 and Vulkan score of 74422 indicate respectable compute performance across different APIs. PassMark G3D score of 11774 places it in a mid-range tier, while the GPU compute score of 4778 is comparatively lower, hinting that raw compute throughput may lag behind its rendering capabilities.

The nearest rival data shows the GPU is closely matched with the AMD Radeon RX 460 (0.1% higher), AMD FirePro D500 (0.8% higher than that rival), AMD Radeon Pro 5700 (1.1% higher), and NVIDIA GeForce RTX 3060 Mobile (1.2% higher). This clustering around the 18300-18500 score range indicates that the Arc A770M competes with these GPUs but does not decisively outperform them. The combined 73rd percentile for this pairing reflects the CPU's strength pulling the overall score upward, despite the GPU's more modest ranking.

Who Should Build It

This configuration targets users who prioritize CPU-intensive workloads over pure gaming performance. The 83rd percentile CPU ranking makes this an excellent choice for professionals and enthusiasts who need substantial multi-threaded processing power in a laptop form factor. Content creators working with video editing, 3D rendering, or complex data analysis will benefit from the CPU's strong Cinebench R23 multi-core score of 24580 and PassMark multithread score of 30704.

Software developers compiling large codebases or running virtualized environments will find the 14 cores and 20 threads advantageous, particularly given the CPU's PassMark integer math score of 102929. Students in engineering or scientific fields requiring computational modeling will appreciate the CPU's floating-point performance of 75643, though the GPU's compute limitations may constrain GPU-accelerated research workloads.

Gamers seeking high-refresh-rate experiences at 1080p will find the GPU sufficient for many titles, given its proximity to the RTX 3060 Mobile, but those targeting 1440p or 4K gaming may find the GPU's 62nd percentile ranking limiting. Small business workstations running productivity suites, database management, or financial modeling will benefit from the CPU's data compression score of 383943 and encryption score of 21649, though the GPU's strengths are less relevant for these tasks.

CPU Analysis

The Intel Core i7-13650HX is a Raptor Lake-HX processor with 14 cores and 20 threads, operating at a base clock of 2.60 GHz and boosting up to 4.90 GHz. The 10 nm process node from Intel with a die size of 257 mm² houses a substantial cache hierarchy: 80 KB of L1 per core, 2 MB of L2 per core, and 24 MB of shared L3 cache. This cache configuration supports the high multi-threaded throughput evident in its benchmarks.

The CPU's benchmark scores reveal a processor that excels in both lightly-threaded and heavily-threaded scenarios. The Cinebench R20 single-core score of 1514 and R23 single-core score of 3470 demonstrate strong per-core performance, essential for applications that rely on single-threaded execution. The multi-core scores of 10731 (R20) and 24580 (R23) show exceptional scaling, making this chip suitable for rendering, encoding, and other parallel workloads.

The 3DMark thread scaling from 1988 at 2 threads to 8741 at max threads shows a 4.4x improvement, indicating efficient thread utilization. The PassMark single-thread score of 3769 (listed twice in the data) reinforces the CPU's strong single-core capabilities. The ECC memory support, dual-channel DDR4/DDR5 compatibility, and PCIe Gen 5 with 20 lanes provide a flexible platform for various system configurations, though the mobile BGA 1964 socket limits upgradeability.

GPU Analysis

The Intel Arc A770M is built on the Xe-HPG architecture with the DG2-512 chip, manufactured on a 6 nm process by TSMC. It packs 4096 shading units, 256 TMUs, and 128 ROPs, along with 32 ray tracing cores. The GPU operates at a base clock of 1650 MHz and boosts to 2050 MHz, with memory clocked at 2000 MHz (16 Gbps effective). The 16 GB of GDDR6 memory on a 256-bit bus provides 512.0 GB/s of bandwidth, which is substantial for a mobile GPU.

The theoretical throughput figures are notable: 16.79 TFLOPS of FP32 performance and 33.59 TFLOPS of FP16 (2:1 ratio). Pixel rate of 262.4 GPixel/s and texture rate of 524.8 GTexel/s indicate strong fill-rate capabilities. The GPU supports DirectX 12 Ultimate (12_2), OpenGL 4.6, and Vulkan 1.4, ensuring compatibility with modern graphics APIs.

Despite these specifications, the benchmark scores reveal a GPU that performs admirably but not exceptionally. The PassMark G3D score of 11774 places it in the 62nd percentile, with the nearest rival comparisons showing it edges out the RTX 3060 Mobile by just 1.2%. The Geekbench OpenCL score of 89494 and Vulkan score of 74422 suggest solid compute performance, but the PassMark GPU compute score of 4778 indicates that raw compute throughput may be a weak point. The 120 W TDP and IGP slot width classify this as a high-power mobile solution, but its end-of-life production status suggests limited future driver optimization potential.

Usage Scenarios

High-Refresh Gaming: At 1080p with ultra settings, this system should handle competitive titles well, given the GPU's performance parity with the RTX 3060 Mobile. The CPU's strong single-thread score of 3470 in Cinebench R23 ensures minimal bottleneck in CPU-bound scenarios, though the GPU's 62nd percentile ranking caps maximum frame rates in demanding games. Frame rates are estimates only, as no measured FPS data exists for this pairing.

Streaming: The CPU's 14 cores and 20 threads, combined with a PassMark multithread score of 30704, provide ample headroom for simultaneous gaming and encoding. The GPU's 32 ray tracing cores and DirectX 12 Ultimate support enable hardware-accelerated encoding features, though the GPU's compute score of 4778 suggests software encoding may be preferable for quality.

Video Editing: The Cinebench R23 multi-core score of 24580 accelerates timeline rendering and export tasks. The GPU's 16 GB VRAM and 512.0 GB/s bandwidth handle 4K video timelines smoothly, though the GPU's compute limitations may slow effects-heavy projects that rely on GPU acceleration.

3D Rendering: CPU-based rendering in applications like Blender or V-Ray will benefit from the 20-thread processor, with the PassMark floating-point score of 75643 indicating strong numerical throughput. GPU-based rendering will be less competitive, as the Arc A770M's compute score of 4778 lags behind its rendering performance.

Software Development: The CPU's integer math score of 102929 and data compression score of 383943 accelerate compilation and build processes. The 24 MB of L3 cache reduces memory latency for frequently accessed code, and ECC memory support adds stability for long-running build servers.

Student and Office Work: The CPU's 83rd percentile ranking handles multitasking across productivity suites with ease. The single-thread performance of 3769 in PassMark ensures responsive application launches and smooth document editing. The GPU's 16 GB VRAM is overkill for office tasks but provides future-proofing for educational 3D modeling or CAD software.

Build Overview

This configuration is a laptop-class system (buildClass: "laptop") pairing the Intel Core i7-13650HX with the Intel Arc A770M. The CPU, released in January 2023 with a launch MSRP of $485, is an active production part from the Core 13th Gen series. The GPU is marked as end-of-life, which may affect long-term driver support and resale value.

The combined percentile of 73 places this system in the upper-middle tier of all tested CPU-GPU combinations. The CPU's 83rd percentile is the primary driver of this ranking, while the GPU's 62nd percentile moderates the overall score. This is a system that prioritizes CPU throughput over GPU performance, making it suitable for users who need substantial processing power with adequate, but not exceptional, graphics capability.

Upgrade Path and Platform

The Intel Core i7-13650HX uses the Intel BGA 1964 socket, which is a soldered mobile platform. This means the CPU cannot be upgraded without replacing the entire motherboard or laptop. The system supports DDR4 and DDR5 memory in dual-channel configuration, with ECC memory support available for error-correcting workloads. The CPU provides PCIe Gen 5 with 20 lanes, while the GPU connects via PCIe 4.0 x16.

The GPU is an IGP (integrated graphics processor) class component, meaning it is typically soldered to the motherboard in most laptop designs. This makes GPU upgrades impossible in most configurations. The CPU's TDP of 55 W and the GPU's TDP of 120 W combine for a total of 175 W, which requires a robust cooling solution and a sufficient power supply. There is no suggested PSU data available, but the combined TDP indicates a need for a high-capacity laptop power adapter.

A sensible next upgrade for this platform would be increasing system memory to the maximum supported capacity, given the dual-channel configuration and ECC support. Storage upgrades via PCIe Gen 5 NVMe drives would also improve system responsiveness, leveraging the CPU's 20 PCIe lanes. However, the soldered nature of both CPU and GPU limits meaningful component-level upgrades, making this a "use as-is" platform until a full system replacement is warranted.

Gaming Performance

No measured FPS data exists for this exact CPU-GPU combination, so all gaming performance figures discussed here are estimates derived from the individual benchmark scores. The Intel Arc A770M's PassMark G3D score of 11774 and its 1.2% advantage over the RTX 3060 Mobile suggest 1080p gaming at high settings is achievable in most titles, with ultra settings requiring adjustments in more demanding games.

The GPU's 16 GB VRAM and 512.0 GB/s bandwidth provide ample memory for high-resolution textures, though the 256-bit bus may limit performance at 1440p and above. The CPU's strong single-thread score of 3470 in Cinebench R23 ensures that frame pacing remains consistent in CPU-bound scenarios. The 32 ray tracing cores support hardware-accelerated ray tracing, but the GPU's overall 62nd percentile ranking suggests that ray tracing performance will be modest compared to dedicated high-end GPUs.

For competitive esports titles, the combination of the CPU's high boost clock of 4.90 GHz and the GPU's 2050 MHz boost clock should deliver high frame rates at 1080p with competitive settings. For AAA single-player games, players should expect to use medium-to-high settings at 1080p to maintain smooth frame rates, with 1440p gaming requiring reduced settings or upscaling solutions. These are estimates based on benchmark scores rather than measured data, and actual gaming performance may vary depending on driver maturity, thermal conditions, and specific game optimizations.