SYSTEM ANALYZER

Rate My PC: Intel Core i7-13700T + Intel Arc A770

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

94 / 100
ULTIMATE READY

Apex Performer

Top 6% 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
91%
VS
GPU
97%
PROCESSOR

Intel Core i7-13700T

35,403 Benchmark Score
Top 9% Market Ranking
View Full Specs →
GRAPHICS CARD

Intel Arc A770

68,809 Benchmark Score
Top 3% 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

The Intel Core i7-13700T and Intel Arc A770 form a desktop pairing that lands in the 88th combined percentile when measured against all CPU and GPU combinations in the database. The processor is a 16-core, 24-thread Raptor Lake-S part with a 35W TDP, while the graphics card is a 16GB GDDR6 solution based on the Xe-HPG architecture. No measured FPS data exists for this exact combination, so all gaming performance discussion here is estimated from the individual benchmark scores of the two components.

FAQ

Q: What is the combined performance percentile of this CPU and GPU pairing?

A: The combined percentile for the Intel Core i7-13700T and Intel Arc A770 is 88, placing this desktop build in the top tier of all recorded CPU+GPU combinations.

Q: How does the Core i7-13700T compare to its closest rival, the Intel Core i7-12700KF?

A: The i7-13700T has an average benchmark score of 35403, which is 0.1% higher than the i7-12700KF’s 35365 score. The two processors are effectively neck-and-neck in aggregate performance.

Q: What is the GPU’s memory bandwidth and capacity?

A: The Intel Arc A770 features 16 GB of GDDR6 memory on a 256-bit bus, delivering a bandwidth of 512.0 GB/s. The memory clock runs at 2000 MHz with 16 Gbps effective transfer rate.

Q: What is the CPU’s boost clock and how many threads does it support?

A: The Core i7-13700T boosts up to 4.90 GHz from a 1400.00 MHz base clock, and it supports 24 threads across its 16 cores.

Q: Which workloads show the CPU’s strongest performance relative to other processors?

A: The CPU’s 85th percentile ranking among all CPUs is supported by strong multi-threaded scores, including a Cinebench R23 multicore result of 23248 and a Passmark multithread score of 28211. Single-thread performance is also solid with a Cinebench R23 single-core score of 3282.

Q: What is the GPU’s pixel and texture fill rate?

A: The Arc A770 achieves a pixel rate of 307.2 GPixel/s and a texture rate of 614.4 GTexel/s, driven by its 4096 shading units, 256 TMUs, and 128 ROPs.

Q: Does the CPU support DDR5 memory?

A: Yes, the Core i7-13700T supports both DDR4 and DDR5 memory through its dual-channel memory bus, though the FACT PACK does not specify a maximum bandwidth for either type.

Benchmark Performance

The Core i7-13700T delivers a Cinebench R23 multicore score of 23248 and a single-core score of 3282, placing it in the 85th percentile of all CPUs. In Geekbench, the processor scores 11573 multicore and 2490 single-core. The average benchmark score across all CPU tests is 35403. Its nearest rival, the Intel Core 5 213PE, scores 35428, a delta of -0.1%, meaning the i7-13700T is essentially tied with that part. Against the Intel Core i7-12700KF, the i7-13700T leads by a 0.1% delta, and against the Intel Core i5-13600T it leads by 0.3%. This places the CPU in a cluster of high-performance desktop parts where small percentage differences separate the models.

The Intel Arc A770 GPU scores 2969 in 3DMark Steel Nomad DX12, 109175 in Geekbench OpenCL, and 94284 in Geekbench Vulkan. Its average benchmark score is 68809, which ranks it in the 90th percentile among all GPUs. The nearest rival, the NVIDIA CMP 90HX, scores 69000, a delta of -0.3%, meaning the Arc A770 trails that card by a negligible margin. Against the AMD Radeon Instinct MI25, the Arc A770 leads by 0.4%, but it trails the AMD Radeon Pro WX 8200 by 1.5% (that card scores 69870) and the NVIDIA Quadro P6000 by 1.7% (that card scores 69986). The GPU’s FP32 compute is rated at 19.66 TFLOPS, with FP16 at 39.32 TFLOPS (2:1 ratio).

The combined picture shows a build where both components sit in the upper tier of their respective categories. The CPU’s 85th percentile and the GPU’s 90th percentile combine to a system-level 88th percentile, indicating that neither component significantly drags down the other. The CPU’s multi-threaded strengths align well with the GPU’s compute-heavy architecture, making this a balanced pairing for productivity and gaming alike. However, since no measured FPS data exists for this exact combination, any gaming frame rate claims must be treated as estimates derived from the benchmark scores.

Balance and Bottleneck

The data indicates that the CPU and GPU are well matched in aggregate, but workload-specific scores reveal which component carries the load in different scenarios. The CPU’s Passmark data compression score of 327700 and data encryption score of 19230 show strong throughput in data-heavy tasks. The floating point math score of 73928 and integer math score of 105397 further demonstrate the processor’s capability in general compute. Meanwhile, the GPU’s 3DMark Steel Nomad DX12 score of 2969 and its Geekbench OpenCL score of 109175 highlight its strength in graphics and parallel compute workloads.

For gaming, the bottleneck would typically shift toward the GPU in most titles, given that the CPU’s single-core Cinebench R15 score of 330 and R20 score of 1378 are competitive but not class-leading. The GPU’s 90th percentile ranking suggests it can handle high-resolution rendering well, but the CPU’s 85th percentile means it might limit frame rates in CPU-bound scenarios at lower resolutions. The FPS scaling between the two cannot be measured directly due to the lack of measured FPS data, but the percentile gap of 5 points suggests a minor imbalance where the GPU slightly outpaces the CPU in raw performance headroom.

The CPU’s Passmark find prime numbers score of 127 is notably low, indicating that this processor is not optimized for that specific type of integer workload. This could create a bottleneck in highly specialized computational tasks that rely on prime number generation, though such workloads are uncommon in typical gaming or productivity use. The GPU’s 16GB VRAM and 512.0 GB/s bandwidth provide ample memory for texture-heavy scenes, so memory bandwidth is unlikely to be a limiting factor. Overall, the data suggests the CPU is the more likely bottleneck in gaming scenarios, while the GPU excels in rendering and compute tasks.

Who Should Build It

The Core i7-13700T and Arc A770 pairing targets users who need strong multi-threaded CPU performance alongside high-end GPU compute. Gamers playing at 1440p or 4K resolutions would benefit from the GPU’s 90th percentile ranking and its 16GB VRAM, which supports high-resolution textures without running out of memory. The CPU’s Cinebench R23 multicore score of 23248 indicates it can handle modern game engines that utilize multiple cores, though its 35W TDP suggests it is optimized for efficiency rather than extreme sustained performance.

Content creators working with video editing or 3D rendering software would find the combination suitable, as the CPU’s Passmark multithread score of 28211 and the GPU’s OpenCL score of 109175 both point to strong parallel computing abilities. Software developers compiling large codebases would appreciate the 16 cores and 24 threads, particularly given the CPU’s Passmark integer math score of 105397. The build is also viable for students and small business workstations that require reliable performance for office productivity, document processing, and light media creation, though the GPU’s 225W TDP makes it a more power-hungry option than integrated graphics solutions.

The CPU’s 85th percentile and the GPU’s 90th percentile mean this build sits above the majority of systems in the database. Users who prioritize gaming at high settings, especially with ray tracing or high-resolution assets, would see the GPU’s 32 ray tracing cores and 512.0 GB/s bandwidth put to good use. For professionals, the combination of the CPU’s 30 MB L3 cache and the GPU’s 19.66 TFLOPS FP32 compute makes it a capable workstation for rendering and simulation tasks.

Usage Scenarios

High-refresh gaming: The Arc A770’s 90th percentile GPU ranking and 16GB GDDR6 memory suggest it can drive high frame rates at 1440p. The CPU’s single-core Cinebench R23 score of 3282 supports responsive gameplay, though the lack of measured FPS data means exact refresh rates are estimates. The GPU’s 19.66 TFLOPS FP32 compute provides ample headroom for modern game engines.

Streaming: The CPU’s 24 threads enable efficient encoding and streaming simultaneously, with the Passmark data compression score of 327700 indicating strong throughput for video encoding. The GPU’s dedicated hardware supports parallel workloads, allowing game rendering and stream encoding to run concurrently without severe performance degradation.

Video editing: The CPU’s Cinebench R23 multicore score of 23248 and the GPU’s OpenCL score of 109175 combine to accelerate timeline rendering and effect processing. The GPU’s 16GB VRAM handles large 4K timelines, while the CPU’s Passmark floating point math score of 73928 supports complex filters and transitions.

3D rendering: The GPU’s 39.32 TFLOPS FP16 performance and 32 ray tracing cores make it suitable for real-time and offline rendering workloads. The CPU’s Passmark multithread score of 28211 ensures that scene preparation and physics simulations keep pace with GPU rendering tasks.

Software development: The CPU’s 16 cores and 24 threads accelerate compilation times, with the Passmark integer math score of 105397 indicating strong performance for code processing. The GPU’s Vulkan score of 94284 supports graphics debugging and API development, while the CPU’s 30 MB L3 cache reduces memory latency during iterative builds.

Student and office work: The CPU’s 35W TDP keeps power consumption low for daily tasks, and its Passmark single thread score of 3821 handles web browsing, document editing, and spreadsheets efficiently. The GPU is overkill for basic office tasks, but its presence allows for occasional photo editing or light video work without a separate workstation.

GPU Analysis

The Intel Arc A770 is built on the DG2-512 chip using the Xe-HPG architecture, fabricated on TSMC’s 6 nm process with 21,700 million transistors on a 406 mm² die. The GPU operates at a base clock of 2100 MHz and boosts to 2400 MHz, with memory running 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 high-resolution textures and large datasets.

The GPU includes 4096 shading units, 256 TMUs, and 128 ROPs, yielding a pixel rate of 307.2 GPixel/s and a texture rate of 614.4 GTexel/s. FP32 compute is rated at 19.66 TFLOPS, while FP16 reaches 39.32 TFLOPS with a 2:1 ratio. The 32 ray tracing cores support DirectX 12 Ultimate (12_2), OpenGL 4.6, and Vulkan 1.4, making the card compatible with modern rendering APIs. The 3DMark Steel Nomad DX12 score of 2969 places the GPU in the 90th percentile, with the NVIDIA CMP 90HX trailing by just 0.3% and the AMD Radeon Instinct MI25 behind by 0.4%.

For rendering workloads, the GPU’s high texture rate and large VRAM capacity make it well-suited for 3D modeling and animation. The 512.0 GB/s bandwidth ensures that texture streaming is rarely a bottleneck, while the 32 ray tracing cores handle real-time ray tracing effects. The Geekbench Vulkan score of 94284 indicates strong low-level API performance, which benefits modern game engines and compute-heavy applications. The GPU’s end-of-life production status means it is no longer manufactured, but its benchmark scores remain competitive against current mid-range cards.

Upgrade Path and Platform

The Core i7-13700T uses the Intel Socket 1700 platform, which supports both DDR4 and DDR5 memory through a dual-channel memory bus. The CPU provides PCIe Gen 5 with 20 lanes (CPU only), allowing for fast NVMe storage and future GPU upgrades. The socket is compatible with other 13th Gen processors, so a user could upgrade to a higher-tier chip without changing the motherboard. The CPU’s 35W TDP is notably low, meaning the power delivery system has ample headroom for a more power-hungry CPU if desired.

The GPU connects via PCIe 4.0 x16 and requires a 550W suggested PSU, with power delivered through a 1x 6-pin and 1x 8-pin connector. The GPU’s 225W TDP leaves significant PSU headroom when paired with the CPU’s 35W TDP, so the system’s total power draw is manageable. A sensible next upgrade would be a newer generation GPU with higher performance, as the PCIe 4.0 interface remains current. The CPU could also be upgraded to a higher-tier Raptor Lake part, but the current i7-13700T’s 85th percentile ranking means such an upgrade would offer diminishing returns. The platform’s DDR4 and DDR5 support allows for memory upgrades without replacing the motherboard, and the 30 MB L3 cache provides sufficient capacity for gaming and productivity workloads.

Build Overview

This desktop build pairs the Intel Core i7-13700T with the Intel Arc A770, creating a system that ranks in the 88th combined percentile. The CPU, with its 16 cores and 24 threads, delivers a Cinebench R23 multicore score of 23248 and sits at the 85th percentile among all CPUs. The GPU, with 16 GB GDDR6 memory and 19.66 TFLOPS FP32 compute, ranks in the 90th percentile with an average benchmark score of 68809. The combination is balanced enough that neither component dominates the other, though the GPU’s higher percentile suggests it has slightly more performance headroom.

The build class is desktop, and the overall tier from the percentiles is high-end, with the CPU and GPU both placing above 85% of their respective categories. The CPU’s nearest rivals, the Intel Core 5 213PE and Intel Core i7-12700KF, are within 0.1% of its average score, indicating that the i7-13700T is competitive with prior-generation high-end parts. The GPU’s nearest rivals, the NVIDIA CMP 90HX and AMD Radeon Instinct MI25, are similarly close, with just 0.3% and 0.4% deltas respectively. This desktop system is a capable all-rounder for gaming, content creation, and professional workloads, with the CPU’s efficiency (35W TDP) and the GPU’s large memory pool being standout features.

CPU Analysis

The Intel Core i7-13700T is a 16-core, 24-thread processor based on the Raptor Lake architecture, fabricated on Intel’s 10 nm process with a die size of 257 mm². It has a base clock of 1400.00 MHz and a boost clock of 4.90 GHz, with a 35W TDP that emphasizes power efficiency. The L1 cache is 80 KB per core, L2 is 2 MB per core, and L3 is 30 MB shared. The CPU supports dual-channel DDR4 and DDR5 memory, and it includes integrated UHD Graphics 770. It was released on January 3, 2023, with a launch MSRP of $384, and it has an unlocked multiplier for overclocking.

Benchmark results show a processor that excels in multi-threaded workloads. The Cinebench R15 multicore score is 2343, R20 multicore is 9764, and R23 multicore is 23248. Geekbench multicore is 11573. Single-thread scores are also respectable: Cinebench R15 single-core is 330, R20 is 1378, R23 is 3282, and Geekbench single-core is 2490. Passmark tests reveal specific strengths: data compression scores 327700, data encryption scores 19230, extended instructions score 19306, floating point math scores 73928, integer math scores 105397, multithread scores 28211, physics scores 1769, random string sorting scores 34939, and single thread scores 3821. The find prime numbers score of 127 is the only weak point, indicating poor performance in that specific workload.

The CPU’s average benchmark score of 35403 places it in the 85th percentile, with nearest rivals being the Intel Core 5 213PE (35428, -0.1%), Intel Core i7-12700KF (35365, 0.1%), Intel Core i5-13600T (35305, 0.3%), and Intel Core i7-12700K (35287, 0.3%). This means the i7-13700T is statistically tied with several high-end processors from the previous generation. For real workloads, the CPU handles video encoding, 3D rendering, and software compilation with ease, thanks to its high core count and strong multi-threaded scores. The low TDP makes it suitable for compact builds where cooling is limited, while the boost clock of 4.90 GHz ensures responsive single-threaded performance for gaming and everyday tasks.