SYSTEM ANALYZER

Rate My PC: Intel Core i7-13700T + NVIDIA Quadro RTX 5000

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

91 / 100
ULTIMATE READY

Apex Performer

Top 9% 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
91%
PROCESSOR

Intel Core i7-13700T

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

NVIDIA Quadro RTX 5000

21,629 Benchmark Score
Top 9% 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

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

# CPU Analysis

The Intel Core i7-13700T is a 16-core, 24-thread desktop processor built on Intel's Raptor Lake architecture and manufactured on a 10 nm process. Its base clock sits at 1400.00 MHz, but the boost clock reaches 4.90 GHz, which is a wide frequency range typical of a power-efficient T-series chip. The 35 W TDP is notably low for a 16-core part, indicating that this CPU prioritizes thermals and power draw over sustained peak performance. The cache hierarchy is substantial: 80 KB of L1 per core, 2 MB of L2 per core, and 30 MB of shared L3 cache. Memory support covers both DDR4 and DDR5 in a dual-channel configuration, and the CPU provides PCIe Gen 5 with 20 lanes. Integrated graphics come in the form of UHD Graphics 770, and the chip is unlocked, allowing overclocking if the platform permits it.

Benchmark data places this CPU in the 85th percentile of all CPUs, with an average benchmark score of 35403. That puts it just ahead of the Intel Core i7-12700KF by 0.1% and behind the Intel Core 5 213PE by 0.1%. The differences between these rivals are negligible — less than a third of a percent in all cases. In multi-threaded workloads, the Cinebench R23 multi-core score of 23248 is strong, while the R23 single-core score of 3282 indicates very capable per-thread performance. The Geekbench single-core score of 2490 and multi-core score of 11573 further confirm that this chip handles both lightly-threaded and heavily-threaded tasks competently.

The PassMark results break down specialized workloads. Data compression scores 327700, which is excellent for archiving and file management. Data encryption hits 19230, and extended instructions score 19306. Floating-point math reaches 73928, integer math is 105397, and random string sorting hits 34939. The single-thread PassMark score is 3821. These numbers suggest that the CPU is balanced across integer, floating-point, and memory-intensive operations, though the low TDP means sustained all-core loads will likely thermal-throttle or power-limit before reaching theoretical maximums. For real-world use, this means the CPU delivers strong burst performance and respectable sustained throughput, but it is not a replacement for higher-TDP desktop parts in prolonged rendering jobs.

Usage Scenarios

High-refresh gaming: The single-core performance is the key metric here. A Cinebench R23 single-core score of 3282 and a Geekbench single-core score of 2490 indicate that the CPU will not bottleneck modern game engines in most titles. The PassMark single-thread score of 3821 reinforces this. For high-refresh 1080p or 1440p gaming, the i7-13700T provides enough per-core speed to keep frame rates high, though the 35 W TDP may limit all-core boost behavior during heavy gaming sessions that also load background tasks.

Streaming: With 24 threads, the CPU has ample resources for encoding and broadcasting simultaneously. The multi-thread score of 28211 in PassMark and the Cinebench R23 multi-core result of 23248 suggest that software x264 encoding at reasonable presets is feasible without dedicated hardware encoders. The integrated UHD Graphics 770 also offers Quick Sync capabilities, which can offload transcoding tasks from the CPU. However, the low TDP means that sustained encoding loads will hit power limits, so streamers should expect some clock reduction over long broadcasts.

Video editing: The combination of high single-core speed and strong multi-core performance is ideal for timeline scrubbing, effects rendering, and export tasks. The Geekbench multi-core score of 11573 and the Cinebench R20 multi-core score of 9764 indicate that 4K video editing with moderate effects stacks is realistic. The data compression score of 327700 also helps with large media file transfers and project archiving. For editors who work with proxy workflows, this CPU will feel responsive, but heavy 8K timelines or complex Fusion compositions will stress the 35 W power envelope.

3D rendering: The Cinebench R15 multi-core score of 2343 and R20 multi-core score of 9764 show that the CPU can handle CPU-based rendering, but the 35 W TDP is a significant constraint. Rendering engines like Blender Cycles or V-Ray will use all 24 threads, and power limits will cap clock speeds well below the 4.90 GHz boost. Expect render times to be longer than a higher-TDP 16-core part like the i7-12700K, which scores only 0.3% higher on average but sustains clocks better under load. For occasional renders, this CPU is adequate; for daily production rendering, a more power-hungry chip is preferable.

Software development: Compilation workloads benefit from both multi-core parallelism and single-thread responsiveness. The PassMark integer math score of 105397 and the extended instructions score of 19306 show strong performance for code compilation and test execution. The 16 cores and 24 threads allow parallel builds across many translation units. The low power draw makes it an efficient choice for developers who run long builds or multiple VMs. The data encryption score of 19230 also helps with secure development workflows.

Student and office work: This CPU is overkill for basic productivity. Office suites, web browsing, and spreadsheets will run with minimal load. The single-thread performance ensures snappy UI responsiveness, while the 16 cores provide headroom for multitasking, such as running a browser, a document editor, and a video call simultaneously. The 35 W TDP makes it a good fit for compact desktop builds where thermals and noise are a concern, though the platform cost may be higher than needed for purely administrative tasks.

GPU Analysis

The NVIDIA Quadro RTX 5000 is a workstation-class GPU based on the Turing architecture, built on a 12 nm process at TSMC. The chip, designated TU104, contains 13,600 million transistors on a 545 mm² die, giving a transistor density of 25.0M per mm². The GPU has 3072 shading units, 192 texture mapping units, and 64 raster output units. It features 48 RT cores for ray tracing and 384 tensor cores for AI-accelerated workloads. Clock speeds are set at 1620 MHz base and 1815 MHz boost, with memory running at 1750 MHz (14 Gbps effective). The memory subsystem consists of 16 GB of GDDR6 on a 256-bit bus, delivering 448.0 GB/s of bandwidth. Pixel rate is 116.2 GPixel/s, and texture rate is 348.5 GTexel/s. FP32 performance is 11.15 TFLOPS, with FP16 reaching 22.30 TFLOPS via a 2:1 ratio. The card has a 230 W TDP, requires a 550 W suggested PSU, uses 1x 6-pin and 1x 8-pin power connectors, and occupies a dual-slot design. It supports PCIe 3.0 x16, outputs 4x DisplayPort 1.4a and 1x USB Type-C, and is rated for DirectX 12 Ultimate (12_2), OpenGL 4.6, and Vulkan 1.4.

Benchmark results place the Quadro RTX 5000 in the 67th percentile of all GPUs, with an average benchmark score of 21629. The nearest rival is the NVIDIA GeForce GTX 1060 6 GB, which scores 21856 — 1% higher. The NVIDIA RTX A4000 Mobile is 1.2% lower at 21379, the AMD Radeon HD 8970M is 1.8% lower at 21237, and the AMD Radeon RX Vega M GL is 2.3% lower at 21153. These are remarkably close scores, meaning the Quadro RTX 5000 performs on par with a GTX 1060 in raw compute benchmarks despite its workstation positioning. The Geekbench OpenCL score of 78999 and Vulkan score of 92309 indicate strong compute capability for professional applications. PassMark DirectX scores are 113 for DX10, 140 for DX11, 59 for DX12, and 195 for DX9. The G2D score is 709, G3D is 15616, and GPU compute is 6525.

In rendering workloads, the 16 GB VRAM and 448.0 GB/s bandwidth are significant assets. Large 3D scenes, high-resolution textures, and multi-GPU rendering setups benefit from the generous memory pool. The RT cores support real-time ray tracing in supported applications, while the tensor cores accelerate denoising and AI-based features in software like OctaneRender and DaVinci Resolve. However, the overall compute performance is modest by modern standards — the 11.15 TFLOPS FP32 figure is far below current high-end consumer and workstation GPUs. The DirectX 12 score of 59 is particularly low, suggesting that gaming performance in modern titles will be limited, especially compared to the GTX 1060's 1% higher average score.

FAQ

Q: Does the Intel Core i7-13700T support overclocking?

A: Yes, the multiplier is unlocked, allowing overclocking on compatible Intel Socket 1700 motherboards with appropriate power delivery and cooling.

Q: What memory types does the i7-13700T support?

A: It supports both DDR4 and DDR5 in a dual-channel configuration, but not simultaneously — the motherboard determines which memory type is used.

Q: Does the NVIDIA Quadro RTX 5000 support real-time ray tracing?

A: Yes, it has 48 RT cores designed for hardware-accelerated ray tracing, though its overall performance in ray-traced workloads is modest compared to newer generations.

Q: How does the Quadro RTX 5000 compare to the GTX 1060 6 GB?

A: The average benchmark scores are nearly identical — the GTX 1060 6 GB scores 1% higher. However, the Quadro has 16 GB VRAM versus 6 GB, and includes RT and tensor cores that the GTX lacks.

Q: What is the launch MSRP of the i7-13700T?

A: The launch MSRP is $384.

Q: Is the Quadro RTX 5000 still in production?

A: No, it is marked as end-of-life. Its predecessor is Quadro Volta and its successor is Workstation Ampere.

Q: What is the PCIe interface of the Quadro RTX 5000?

A: It uses PCIe 3.0 x16, which is older than the CPU's PCIe Gen 5 support, but remains compatible with modern motherboards.

Balance and Bottleneck

The CPU and GPU in this pairing are at different performance tiers. The CPU sits in the 85th percentile of all CPUs, while the GPU is in the 67th percentile of all GPUs. The combined percentile is 76, reflecting a system where the CPU is the stronger component relative to its respective market. In CPU-bound workloads — such as data compression, integer math, and single-threaded tasks — the i7-13700T will not be a limiting factor. The PassMark single-thread score of 3821 and the Cinebench R23 single-core score of 3282 indicate that the CPU can feed the GPU adequately in most scenarios.

However, the GPU's performance profile suggests it will be the bottleneck in graphics-intensive tasks. The DirectX 12 score of 59 is exceptionally low, and the PassMark G3D score of 15616 places it in the lower two-thirds of all GPUs. In gaming at 1080p or 1440p with high settings, the Quadro RTX 5000 will likely limit frame rates well before the CPU becomes a constraint. The CPU's 4.90 GHz boost clock and strong single-core scores mean it can handle game logic and physics, but the GPU's modest compute throughput will cap FPS. For workstation tasks like 3D rendering or GPU compute, the balance shifts: the CPU's 35 W TDP may throttle under sustained load, while the GPU's 230 W TDP allows it to run at full boost. In such workloads, the CPU could become the bottleneck if power limits reduce its clock speed significantly.

The memory bandwidth of 448.0 GB/s on the GPU is adequate for its compute level, and the 16 GB VRAM avoids capacity bottlenecks in most professional applications. The CPU's dual-channel memory support for DDR4 or DDR5 is standard and will not bottleneck either component. The PCIe Gen 5 CPU lanes provide ample bandwidth for the GPU's PCIe 3.0 x16 interface, so no bottleneck exists there. Overall, the system is GPU-limited in graphics tasks and potentially CPU-limited in sustained all-core compute due to the 35 W TDP.

Who Should Build It

Gamers at 1080p: The Quadro RTX 5000's performance is comparable to a GTX 1060 6 GB, which is a 1080p-class card. At 1080p with medium to high settings, this pairing can deliver playable frame rates in most titles, though the low DirectX 12 score of 59 suggests that newer games may require reduced settings. The CPU's strong single-core performance ensures consistent frame pacing.

Gamers at 1440p: At this resolution, the GPU will become the limiting factor more often. The 11.15 TFLOPS FP32 performance is modest for 1440p gaming, and users should expect to lower settings in demanding titles. The 16 GB VRAM helps with texture-heavy games, but the raw compute is insufficient for high-refresh 1440p in most modern releases.

Content creators: Video editors and 3D artists will benefit from the combination of a strong multi-threaded CPU and a workstation GPU with 16 GB VRAM. DaVinci Resolve, Blender, and similar applications can use the RT and tensor cores for acceleration. The CPU's Cinebench R23 multi-core score of 23248 handles rendering and encoding, while the GPU's 384 tensor cores accelerate AI denoising. The 35 W CPU TDP keeps system thermals manageable in a workstation environment.

Software developers: The 16 cores and 24 threads excel at parallel compilation. The PassMark integer math score of 105397 and data compression score of 327700 indicate fast build times and efficient handling of large codebases. Developers who use containerized environments or run multiple virtual machines will appreciate the thread count, though the GPU is not a factor in most development workflows.

Students and office workers: This is overkill for document editing, web browsing, and spreadsheets. The CPU's single-core performance ensures snappy responsiveness, but the GPU's workstation-class features are unused. The low CPU TDP makes it a quiet and cool option for a dorm room or small office, though the platform cost is higher than necessary for basic tasks.

Small business workstations: For CAD, architectural visualization, or scientific computing, the Quadro RTX 5000's 16 GB VRAM and professional driver support are valuable. The CPU's multi-threaded performance handles simulation and analysis workloads. The combined 76th percentile ranking indicates a competent workstation for professional use, though the GPU's end-of-life status means driver updates may eventually cease.

Benchmark Performance

The CPU's average benchmark score is 35403, placing it in the 85th percentile of all CPUs. 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. The Intel Core i7-12700KF scores 35365, which is 0.1% lower, and the Intel Core i5-13600T scores 35305, 0.3% lower. The i7-12700K scores 35287, 0.3% lower. These results show that the i7-13700T is competitively positioned within its performance class, though none of these differences are meaningful in real-world use.

The GPU's average benchmark score is 21629, placing it in the 67th percentile of all GPUs. The NVIDIA GeForce GTX 1060 6 GB scores 21856, which is 1% higher — a significant margin given that the GTX 1060 is a consumer gaming card from a similar era. The NVIDIA RTX A4000 Mobile scores 21379, 1.2% lower, and the AMD Radeon HD 8970M scores 21237, 1.8% lower. The AMD Radeon RX Vega M GL scores 21153, 2.3% lower. The GPU's performance is therefore tightly clustered with these rivals, none of which are modern high-end parts.

No measured FPS rows exist for this exact CPU+GPU combination. The FACT PACK contains no measuredFps data, so all frame rate discussion is estimated from the benchmark scores. The combined picture is a system where the CPU is a top-tier performer relative to its peers, while the GPU is mid-tier. The combined percentile of 76 reflects this imbalance. In CPU-bound workloads, the system performs near the level of the i7-12700KF, which is a higher-TDP part. In GPU-bound workloads, the system performs near the level of a GTX 1060 6 GB, which is a significantly less expensive component.

Upgrade Path and Platform

The CPU uses the Intel Socket 1700 platform, which supports DDR4 and DDR5 memory. This gives builders flexibility in choosing memory based on budget and performance needs, though the two types are not interchangeable. The CPU provides PCIe Gen 5 with 20 lanes, which is forward-looking, but the GPU only uses PCIe 3.0 x16 — an older standard. The motherboard must support the PCIe generation and memory type chosen; the CPU is compatible with both.

The GPU has a 230 W TDP and a suggested PSU of 550 W. The CPU has a 35 W TDP, so the total system power draw is well within the suggested PSU rating, leaving headroom for additional drives, fans, and peripherals. The GPU uses 1x 6-pin and 1x 8-pin power connectors, which should be available on most modern power supplies. The dual-slot design and 267 mm length (10.5 inches) require a case with adequate clearance.

A sensible next upgrade would be a more modern GPU. The Quadro RTX 5000 is end-of-life, and its successor is Workstation Ampere, which would offer better performance and newer features. The CPU has room to drive a more powerful GPU; its 85th percentile ranking means it will not bottleneck a higher-tier graphics card in most scenarios. Alternatively, upgrading the CPU to a higher-TDP Raptor Lake part on the same socket would improve sustained multi-core performance, though the 35 W TDP of the current chip is a defining feature of this build. The memory can also be upgraded to faster DDR5 if the motherboard supports it, which would benefit memory-sensitive workloads. The PCIe Gen 5 lanes on the CPU are available for future storage devices, though current GPUs do not fully utilize them.

Build Overview

This is a desktop-class build pairing the Intel Core i7-13700T with the NVIDIA Quadro RTX 5000. The CPU is a 16-core, 24-thread Raptor Lake part with a 35 W TDP and a 4.90 GHz boost clock, ranking in the 85th percentile of all CPUs. The GPU is a Turing-architecture workstation card with 16 GB of GDDR6 memory and a 230 W TDP, ranking in the 67th percentile of all GPUs. The combined percentile of 76 puts this system in the upper-middle tier of all desktop configurations.

The CPU is the stronger component. Its average benchmark score of 35403 places it just ahead of the i7-12700K and i7-12700KF, making it a high-performing processor despite its low TDP. The GPU, with an average score of 21629, is comparable to the GTX 1060 6 GB, which is a much less expensive card. This pairing is therefore unusual: a top-tier CPU from 2023 with a mid-tier GPU from 2018. The system is best suited for workloads that emphasize CPU performance — such as software development, data processing, and multitasking — while the GPU provides workstation-class features like 16 GB VRAM and RT/tensor cores for professional applications. Gaming performance will be modest by modern standards, and high-refresh gaming is not a primary strength. The build class is desktop, confirming this is a stationary system, and the overall tier from the percentiles indicates a competent mid-to-high-range workstation rather than a gaming powerhouse.