SYSTEM ANALYZER

Rate My PC: Intel Core i5-14501TE + NVIDIA RTX 5000 Ada Generation

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

70 / 100
HIGH-END

Power Build

Top 30% of systems. Excellent for 1440p Ultra or 4K High gaming.

1440p Ultra4K High

System Balance Analysis

CPU vs GPU performance ratio
CPU Bottleneck
CPU
41%
VS
GPU
99%

Your CPU is limiting system performance. Consider upgrading to a faster processor to better utilize your GPU.

PROCESSOR

Intel Core i5-14501TE

0 Benchmark Score
Top 59% Market Ranking
View Full Specs →
GRAPHICS CARD

NVIDIA RTX 5000 Ada Generation

184,664 Benchmark Score
Top 1% 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.

Bottleneck Detected

CPU Bottleneck - Upgrading the weaker component will improve overall performance.

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 i5-14501TE and NVIDIA RTX 5000 Ada Generation represent a pairing of a power-efficient 14th Gen desktop processor with a top-tier workstation-class GPU. This combination targets a specific niche: high-end professional visualization and compute within a modest power envelope. The data provided contains no measured FPS rows for this exact combination; therefore, all gaming performance analysis herein is estimated from the synthetic benchmark scores.

GPU Analysis

The NVIDIA RTX 5000 Ada Generation is a workstation GPU built on the Ada Lovelace architecture, fabricated on a 5 nm process at TSMC. It houses a substantial 76,300 million transistors on a 609 mm² die. The GPU is equipped with 32 GB of GDDR6 memory on a 256-bit bus, yielding a memory bandwidth of 576.0 GB/s. Its clock speeds are specified at a base of 1155 MHz and a boost of 2550 MHz, with memory running at 2250 MHz (18 Gbps effective). The compute core configuration includes 12,800 shading units, 400 TMUs, and 176 ROPs. For accelerated workloads, it features 100 RT cores and 400 tensor cores.

The benchmark data places this GPU in the 98th percentile of all GPUs, with an average benchmark score of 184,664. In Geekbench, it scores 175,286 in OpenCL and 194,041 in Vulkan. These scores indicate exceptional raw compute capability. The FP32 performance is rated at 65.28 TFLOPS, with FP16 also at 65.28 TFLOPS (1:1), making it highly proficient for both single-precision and half-precision workloads. Pixel and texture rates are substantial at 448.8 GPixel/s and 1,020.0 GTexel/s, respectively. For rendering, these specifications translate to high throughput in ray-traced scenes, with the 100 RT cores handling complex lighting calculations, while the 400 tensor cores accelerate AI-driven features like DLSS and denoising. The 32 GB VRAM capacity is a significant asset for large 3D scenes, high-resolution textures, and GPU-accelerated rendering tasks that exceed the memory limits of consumer cards.

Usage Scenarios

For high-refresh gaming, this GPU's 98th percentile standing and Vulkan score of 194,041 suggest it can drive demanding titles at high frame rates. However, the CPU’s 50th percentile ranking may become a limiting factor in CPU-bound scenarios, potentially preventing the GPU from reaching its fullest potential in esports titles at lower resolutions.

In streaming, the combination of the RTX 5000 Ada's 400 tensor cores and 32 GB of VRAM provides ample headroom for encoding, transcoding, and running concurrent applications. The GPU’s high FP32 throughput (65.28 TFLOPS) ensures that the encoding process does not significantly impact gaming or rendering performance, allowing for smooth multitasking.

For video editing, the 576.0 GB/s memory bandwidth and 32 GB VRAM enable smooth scrubbing and playback of high-resolution timelines. The GPU’s compute power, evidenced by an OpenCL score of 175,286, accelerates effects rendering, color grading, and export processes, significantly reducing turnaround times for 4K and 8K projects.

In 3D rendering, the RTX 5000 Ada is a formidable tool. Its 100 RT cores and 12,800 shading units provide the necessary horsepower for photorealistic ray tracing, while the 32 GB VRAM allows for the loading of complex scenes and large texture sets that would otherwise cause out-of-memory errors. The 1,020.0 GTexel/s texture rate ensures rapid texture processing.

For software development, particularly in areas like AI and machine learning, the 400 tensor cores are crucial. The 65.28 TFLOPS FP16 performance is well-suited for training and inference tasks. The 45W TDP of the CPU and the overall system stability make this a reliable platform for long compilation and testing sessions.

For student and office work, this configuration is overkill in terms of raw performance. The GPU’s capabilities are far beyond the requirements of document processing, spreadsheets, or web browsing. However, the system’s efficiency and dual-channel DDR4/DDR5 memory support allow it to handle multitasking and productivity suites with ease, though the power and cost of the GPU are not justified for these tasks alone.

CPU Analysis

The Intel Core i5-14501TE is a 6-core, 12-thread processor from the Core 14th Gen series, based on the Raptor Lake architecture (Raptor Lake-R). It operates on the Intel Socket 1700 platform and is fabricated on Intel’s 10 nm process node. The CPU has a base clock of 2.20 GHz and a boost clock of 5.10 GHz, offering significant single-thread performance when needed. Its TDP is a modest 45W, which is a key feature for power-conscious builds. The cache hierarchy includes 80 KB of L1 per core, 1.25 MB of L2 per core, and a shared 24 MB of L3 cache.

The processor supports both DDR4 and DDR5 memory in a dual-channel configuration, and it includes ECC memory support, which is a notable feature for workstation stability. It provides PCIe Gen 5 with 16 lanes from the CPU. Integrated graphics are handled by UHD Graphics 770. The CPU has a 50th percentile ranking among all CPUs, indicating mid-pack performance relative to the entire spectrum of processors. There are no individual benchmark scores or nearest rival data for this CPU in the provided pack. The 6-core/12-thread configuration is adequate for general productivity and moderate multi-threaded workloads, but its 50th percentile standing suggests it will not be the primary driver of performance in heavily threaded tasks, where the GPU’s compute power will dominate. The 5.10 GHz boost clock, however, ensures strong responsiveness in single-threaded applications and gaming.

Who Should Build It

This system is tailored for professionals in industries requiring substantial GPU compute and memory capacity. The primary audience is 3D artists and animators working with complex scenes that demand the 32 GB VRAM of the RTX 5000 Ada. The GPU’s 98th percentile performance and 65.28 TFLOPS FP32 throughput make it ideal for architectural visualization, product design, and film-grade rendering. Data scientists and AI researchers will benefit from the 400 tensor cores, which accelerate model training and inference, with FP16 performance at 65.28 TFLOPS.

Video editors handling high-resolution, multi-layer timelines will find the 576.0 GB/s bandwidth and large VRAM pool beneficial for real-time previews and fast exports. The CPU, while not a performance leader, is sufficient to feed the GPU in these tasks and provides a stable platform with ECC memory support. The 45W TDP of the CPU makes it suitable for systems where power consumption and heat output are a consideration, such as in dense workstation deployments. For gamers, this build is positioned at the extreme high-end, targeting 4K resolution with maximum settings in the most demanding titles, though the CPU’s mid-range percentile may cause bottlenecks in specific scenarios. Small business workstations for CAD, simulation, and engineering analysis would also be a fit, given the GPU’s workstation-class drivers and compute capabilities.

Upgrade Path and Platform

The platform is built on the Intel Socket 1700, which supports the Core 14th Gen series. The CPU supports DDR4 and DDR5 memory, giving builders flexibility in choosing memory modules, though only one type can be used at a time. The system uses PCIe Gen 5 for the CPU’s 16 lanes, which is the current standard for high-bandwidth devices like the latest SSDs and GPUs, although the RTX 5000 Ada itself utilizes a PCIe 4.0 x16 interface.

The GPU has a TDP of 250W and requires a 600W power supply, as per the suggested PSU rating. The CPU’s 45W TDP is low, meaning the overall power draw of the system is manageable with a quality 600W PSU. A sensible next upgrade would be to increase the CPU’s core count, as the current 6-core/12-thread part has a 50th percentile ranking. Moving to a higher-core-count processor on the same socket would improve multi-threaded performance in CPU-bound tasks like video encoding or software compilation, without requiring a platform change. Memory upgrades are also straightforward, as the system can support either DDR4 or DDR5, allowing for increased capacity or speed to match workload demands. The GPU is already near the top of the performance stack (98th percentile), so future upgrades would likely focus on the CPU or storage.

Gaming Performance

The data pack explicitly states that no measured FPS rows exist for this exact CPU-GPU combination. Consequently, all frame rate figures provided here are estimates derived from the GPU’s benchmark scores and should be treated as approximations rather than lab-tested results. The GPU’s 98th percentile rank and Vulkan score of 194,041 indicate that it has the raw compute power to excel in gaming.

Based on these scores, one can expect this system to deliver excellent performance at 1440p and 4K resolutions with ultra settings. In less demanding esports titles, the GPU is likely to produce frame rates well above 144 FPS, though the CPU’s 50th percentile ranking may hinder performance at 1080p where the processor becomes the limiting factor. For AAA titles, the 32 GB VRAM ensures that texture-heavy games run without memory stutter, and the 100 RT cores enable playable frame rates with ray tracing enabled. The performance delta of 3.7% compared to the GeForce RTX 4090 D suggests that this GPU is in the same performance tier as the fastest consumer cards, making it capable of handling any current game at maximum settings. In summary, while exact FPS numbers are unavailable, the system’s components suggest a high-refresh-rate 1440p and a smooth 60+ FPS 4K gaming experience in most titles.

Benchmark Performance

The CPU and GPU present a stark contrast in their benchmark standings. The Intel Core i5-14501TE sits at the 50th percentile of all CPUs, with an average benchmark score of 0 and no listed nearest rivals, indicating a lack of comparative data. This places it as a mid-range performer, adequate for general tasks but not a standout in compute-heavy workloads.

The NVIDIA RTX 5000 Ada Generation, in contrast, is a dominant force. It ranks in the 98th percentile of all GPUs, with an average benchmark score of 184,664. Its Geekbench OpenCL score is 175,286, and its Vulkan score is 194,041. The GPU’s nearest rival is the NVIDIA A100 SXM4 40 GB, which scores 187,147, representing a 1.3% performance deficit for the RTX 5000 Ada. Against the A100 SXM4 80 GB, the RTX 5000 Ada is 0.5% ahead. It also leads the RTX PRO 5000 Blackwell by 1.4% and the GeForce RTX 4090 D by 3.7%.

The combined picture is one of extreme imbalance. The system’s combined percentile is 74, which is dragged down by the CPU’s mediocre 50th percentile standing. The GPU is capable of delivering top-tier performance, but the CPU may not be able to keep up in tasks that require rapid sequential processing or that are not heavily parallelized. This is a system where the GPU is clearly the star, and the CPU serves as a supporting component.

FAQ

Q: What is the performance gap between the RTX 5000 Ada and the GeForce RTX 4090 D?

A: The RTX 5000 Ada has an average benchmark score of 184,664, which is 3.7% higher than the GeForce RTX 4090 D’s score of 178,050.

Q: How much VRAM does the RTX 5000 Ada have, and what is its bandwidth?

A: The GPU is equipped with 32 GB of GDDR6 memory on a 256-bit bus, providing a memory bandwidth of 576.0 GB/s.

Q: Does the Intel Core i5-14501TE support ECC memory?

A: Yes, the CPU has ECC memory support, a feature often sought after for workstation stability and data integrity.

Q: What is the power consumption of the CPU and GPU, and what PSU is recommended?

A: The CPU has a TDP of 45W, and the GPU has a TDP of 250W. The suggested power supply for the system is 600W.

Q: What is the CPU’s boost clock speed and core count?

A: The Intel Core i5-14501TE has 6 cores and 12 threads, with a boost clock of 5.10 GHz.

Q: Which GPU is the RTX 5000 Ada’s closest rival in benchmark scores?

A: The NVIDIA A100 SXM4 40 GB is its closest rival, with a score of 187,147, which is 1.3% higher than the RTX 5000 Ada’s score.

Q: What PCIe interface does the RTX 5000 Ada use?

A: The GPU uses a PCIe 4.0 x16 bus interface.

Balance and Bottleneck

The system exhibits a clear bottleneck in the CPU. The GPU’s 98th percentile ranking and 65.28 TFLOPS FP32 performance are world-class, while the CPU’s 50th percentile ranking indicates it is a mid-pack performer. In heavily multi-threaded workloads like 3D rendering, the GPU will almost certainly be the primary processing unit, and the CPU’s 6 cores may struggle to feed the GPU with enough data, especially at lower resolutions or in scenes with high geometric complexity.

In gaming, the bottleneck is dependent on resolution. At 1080p, the CPU’s 50th percentile performance will likely limit frame rates, as the CPU must process game logic and draw calls faster than the GPU can render frames. The 5.10 GHz boost clock helps mitigate this, but the 6-core/12-thread configuration is not a high-end gaming processor. At 4K, the load shifts to the GPU, and the RTX 5000 Ada’s 576.0 GB/s bandwidth and high compute throughput will be the limiting factor, allowing the CPU to keep pace more easily.

For productivity tasks like video editing, the balance is more favorable. The GPU’s 32 GB VRAM and high compute power accelerate effects and exports, while the CPU handles the less parallelizable parts of the workflow. The CPU’s 45W TDP and ECC memory support make it a stable, efficient partner for the GPU, even if it doesn’t match the GPU’s performance tier. The deltaPct data shows the GPU is competitive with the A100 series, indicating that the GPU is not the bottleneck in this system; the CPU is the component that will hold back overall system performance in CPU-intensive scenarios.