SYSTEM ANALYZER

Rate My PC: Intel Core i3-12100E + NVIDIA RTX 5000 Ada Generation

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
82%
VS
GPU
99%
PROCESSOR

Intel Core i3-12100E

16,853 Benchmark Score
Top 18% 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
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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

# Intel Core i3-12100E + NVIDIA RTX 5000 Ada Generation

This desktop pairing combines a 4-core/8-thread Alder Lake processor with a 32 GB workstation GPU, placing the system at the 84th percentile overall. The CPU sits at the 70th percentile among all processors, while the GPU ranks at the 98th percentile, revealing a substantial imbalance where the graphics card far outperforms the processor in relative standing. The data shows a configuration built for GPU-accelerated professional workloads rather than CPU-bound tasks, with the i3-12100E serving as a modest but capable foundation for the RTX 5000 Ada Generation's massive compute resources.

Usage Scenarios

High-refresh gaming: The RTX 5000 Ada Generation's Geekbench Vulkan score of 194041 and OpenCL score of 175286 indicate enormous graphics throughput, yet the i3-12100E's PassMark single-thread score of 3438 and Cinebench R23 single-core score of 1631 suggest the CPU can feed frames at competitive rates for most titles. However, the 4-core/8-thread configuration with a 4.20 GHz boost clock may struggle to maintain high refresh rates in CPU-intensive game engines, where the 70th CPU percentile compared to the GPU's 98th percentile creates a potential ceiling.

Streaming: The combination of the i3-12100E's 60 W TDP and the RTX 5000 Ada Generation's 250 W TDP means the system draws manageable power, but the CPU's PassMark multithread score of 14271 suggests limited headroom for simultaneous encoding and gaming. The GPU's 400 tensor cores and 100 RT cores can offload encoding tasks via hardware acceleration, but the processor's 4 cores may bottleneck multi-tasking scenarios where streaming software competes with game logic.

Video editing: The RTX 5000 Ada Generation's 576.0 GB/s memory bandwidth and 65.28 TFLOPS FP32 performance deliver exceptional GPU-accelerated effects and rendering, while the i3-12100E's Cinebench R23 multicore score of 11559 provides adequate but not outstanding CPU-side processing for timeline operations. The 32 GB VRAM allows for massive preview buffers and multiple high-resolution streams, yet the 4-core CPU may lengthen export times in workflows that rely heavily on processor-based encoding.

3D rendering: The GPU's 12,800 shading units and 400 TMUs produce a texture rate of 1,020.0 GTexel/s and pixel rate of 448.8 GPixel/s, making this system formidable for GPU-accelerated renderers like Octane or Redshift. The CPU's PassMark floating point math score of 31919 and integer math score of 40885 provide modest support for scene preparation, but the render workload clearly favors the GPU's massive parallel architecture.

Software development: The i3-12100E's PassMark data compression score of 160112 and encryption score of 8069 indicate reasonable performance for build tools and compilation tasks, while the 12 MB shared L3 cache helps with frequently accessed code. The dual-channel DDR4/DDR5 memory support offers flexibility, but developers targeting large-scale parallel builds may find the 4-core/8-thread layout limiting compared to higher-core alternatives.

Student and office work: The i3-12100E's PassMark single-thread score of 3438 and Geekbench single-core score of 2202 deliver responsive everyday computing, while the integrated UHD Graphics 730 provides a fallback display solution. The 60 W TDP keeps power consumption modest for prolonged use, and the CPU's 70th percentile ranking confirms solid mainstream performance for document editing, web browsing, and productivity suites.

Upgrade Path and Platform

The Intel Socket 1700 platform supports both DDR4 and DDR5 memory through a dual-channel memory bus, giving builders flexibility in choosing memory technology based on availability and preference. The CPU provides PCIe Gen 5 with 20 lanes, while the GPU utilizes PCIe 4.0 x16, meaning the graphics card operates within its full bandwidth capability without contention. The 60 W TDP of the i3-12100E leaves substantial power delivery headroom on most motherboards, allowing future upgrades to higher-core Alder Lake or Raptor Lake processors without changing the platform.

The suggested PSU of 600 W accommodates the 250 W TDP of the RTX 5000 Ada Generation with reasonable margin, and the 1x 16-pin power connector matches modern power supply designs. A sensible next upgrade would involve replacing the i3-12100E with a higher-core-count 12th or 13th generation processor on the same LGA 1700 socket, which would better balance the system's compute capabilities against the GPU's 98th percentile ranking. The 32 GB GDDR6 memory on the GPU means VRAM capacity is unlikely to become a bottleneck, so future investments should focus on CPU cores and memory speed rather than graphics memory.

CPU Analysis

The Intel Core i3-12100E features 4 cores and 8 threads based on the Alder Lake architecture, fabricated on Intel's 10 nm process with a die size of 163 mm². Clock speeds range from a 3.20 GHz base to a 4.20 GHz boost, while the 12 MB shared L3 cache and 1.25 MB per-core L2 cache provide adequate data locality for the processor's modest core count. The CPU supports DDR4 and DDR5 memory through a dual-channel bus, and its 20 PCIe Gen 5 lanes offer high-bandwidth connectivity for storage and expansion devices.

Benchmark data shows the i3-12100E achieving a Cinebench R23 multicore score of 11559 and single-core score of 1631, indicating strong per-thread performance that rivals processors with more cores. The Geekbench multicore score of 7661 and single-core score of 2202 reinforce the CPU's balanced capabilities, while the PassMark multithread score of 14271 and single-thread score of 3438 demonstrate consistent performance across different testing methodologies. The average benchmark score of 16853 places the CPU at the 70th percentile, with nearest rivals including the AMD Ryzen 3 7335U at 16827 (0.2% lower), the AMD Ryzen 5 7235HS at 16902 (0.3% higher), and the Intel Core i5-1235U at 16770 (0.5% lower).

The PassMark extended instructions score of 10814 and find prime numbers score of 63 highlight the CPU's capability with SIMD workloads and mathematical operations, though the latter figure suggests limitations in heavily parallel integer tasks. Data compression and encryption scores of 160112 and 8069 respectively indicate solid performance for storage and security-related operations, making the i3-12100E a competent choice for general-purpose computing despite its entry-level positioning.

Gaming Performance

No measured FPS rows exist for this exact combination in the FACT PACK, so all frame rate discussions are estimates derived from the benchmark scores rather than direct measurements. The RTX 5000 Ada Generation's Geekbench Vulkan score of 194041 and OpenCL score of 175286 indicate exceptional graphics processing capability that would deliver high frame rates at 1440p and 4K resolutions in most titles, provided the CPU can keep up with the GPU's output.

At 1080p, the i3-12100E's 4.20 GHz boost clock and PassMark single-thread score of 3438 suggest adequate performance for maintaining 60+ FPS in many games, but the 4-core/8-thread configuration may limit frame rates in modern titles that utilize more than 8 threads. The GPU's 98th percentile ranking compared to the CPU's 70th percentile implies that CPU bottlenecks would emerge at lower resolutions where the graphics card is not fully utilized, while at 4K the GPU becomes the primary performance driver.

The RTX 5000 Ada Generation's 100 RT cores and 400 tensor cores provide substantial ray tracing and DLSS acceleration, which could offset CPU limitations in supported titles by rendering at lower internal resolutions and upscaling. The 32 GB VRAM ensures that texture-heavy games at maximum settings will not exceed memory capacity, eliminating a common source of stuttering in high-resolution gaming scenarios.

Who Should Build It

This system targets professionals and enthusiasts who prioritize GPU compute performance over CPU throughput, with the RTX 5000 Ada Generation's workstation-class specifications serving as the primary attraction. Content creators working with 4K or 8K video, 3D artists using GPU-accelerated renderers, and data scientists running CUDA-based workloads will benefit from the 32 GB VRAM and 65.28 TFLOPS FP32 performance, while the i3-12100E handles basic system tasks and scene preparation.

Gamers seeking 4K high-refresh experiences with ray tracing enabled would find the GPU's capabilities compelling, though the CPU's 4-core limitation may cause frame pacing issues in CPU-intensive titles. Students and small business users requiring workstation-grade graphics for CAD, simulation, or machine learning would appreciate the GPU's 98th percentile ranking, even if the CPU's 70th percentile position suggests modest general-purpose performance. The 600 W suggested PSU and 267 mm card length make this build feasible for standard desktop cases, though the dual-slot design and 250 W TDP require adequate airflow.

FAQ

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

A: The system ranks at the 84th percentile overall, with the CPU at the 70th percentile and the GPU at the 98th percentile among their respective categories.

Q: How does the i3-12100E compare to its nearest rival, the AMD Ryzen 3 7335U?

A: The i3-12100E has an average benchmark score of 16853, which is 0.2% higher than the Ryzen 3 7335U's score of 16827.

Q: What is the memory bandwidth of the RTX 5000 Ada Generation?

A: The GPU features 576.0 GB/s of memory bandwidth through a 256-bit bus with 32 GB of GDDR6 memory running at 18 Gbps effective.

Q: Does the i3-12100E support ECC memory?

A: No, the CPU does not support ECC memory, though it does support both DDR4 and DDR5 memory types.

Q: What is the process node and transistor count for the RTX 5000 Ada Generation?

A: The GPU is fabricated on TSMC's 5 nm process with 76,300 million transistors on a 609 mm² die.

Q: What is the suggested power supply wattage for this GPU?

A: The suggested PSU is 600 W, which accommodates the GPU's 250 W TDP and the CPU's 60 W TDP.

Balance and Bottleneck

The performance disparity between the CPU and GPU creates a clear bottleneck scenario where the i3-12100E's 70th percentile ranking limits the system's overall capabilities relative to the RTX 5000 Ada Generation's 98th percentile position. In GPU-bound workloads like rendering and compute, the RTX 5000's 65.28 TFLOPS FP32 performance and 1,020.0 GTexel/s texture rate will operate near full utilization, making the CPU's contribution less critical. However, in CPU-bound tasks such as physics simulation, data compression, and single-threaded applications, the i3-12100E's PassMark scores of 1185 for physics and 160112 for data compression become the limiting factor.

The FPS scaling evidence, while estimated, suggests that at 1080p resolution the CPU would bottleneck the GPU in many games, while at 4K the GPU's rendering load would better match the CPU's output capability. The 4-core/8-thread CPU configuration with a 4.20 GHz boost clock provides adequate single-thread performance but lacks the multi-core headroom that would fully complement the GPU's massive parallel architecture. The 32 GB VRAM ensures memory capacity is never a constraint, meaning the CPU's 12 MB L3 cache and dual-channel memory bus become the primary data flow limitations in mixed workloads.

Build Overview

This desktop build pairs the Intel Core i3-12100E with the NVIDIA RTX 5000 Ada Generation, creating a workstation-class system with a pronounced GPU emphasis. The CPU's 4 cores and 8 threads from the Alder Lake architecture provide a functional but modest processing foundation, while the GPU's Ada Lovelace architecture with 12,800 shading units delivers exceptional graphics and compute performance. The 84th combined percentile ranking reflects a system that excels in GPU-accelerated tasks but falls short of balanced performance due to the CPU's entry-level positioning.

The build class is desktop, and the configuration targets professionals who require workstation-grade graphics capabilities without the need for high-end CPU multi-threading. The 600 W suggested PSU and 267 mm GPU length make this a practical system for standard desktop cases, while the 250 W GPU TDP and 60 W CPU TDP keep overall power requirements moderate. The i3-12100E's launch MSRP of $125 indicates an accessible processor, though the GPU's workstation pricing positions the overall system in the professional segment.

Benchmark Performance

The i3-12100E achieves an average benchmark score of 16853, placing it at the 70th percentile among all CPUs, with standout results including a Cinebench R23 multicore score of 11559, Geekbench multicore score of 7661, and PassMark multithread score of 14271. The RTX 5000 Ada Generation records an average benchmark score of 184664, ranking at the 98th percentile among all GPUs, with Geekbench OpenCL and Vulkan scores of 175286 and 194041 respectively. The combined system sits at the 84th percentile, reflecting the GPU's dominant contribution to overall performance.

When compared to nearest rivals, the CPU's performance is tightly clustered with the AMD Ryzen 3 7335U (0.2% lower), AMD Ryzen 5 7235HS (0.3% higher), and AMD EPYC 7702 (0.5% higher), indicating that the i3-12100E delivers competitive performance within its class. The GPU similarly shows close competition with the NVIDIA A100 SXM4 80 GB (0.5% lower) and RTX PRO 5000 Blackwell (1.4% lower), while the GeForce RTX 4090 D trails by 3.7%. The combined picture reveals a system where the GPU's 98th percentile ranking boosts the overall standing, but the CPU's 70th percentile position prevents the build from reaching top-tier balanced performance.

GPU Analysis

The NVIDIA RTX 5000 Ada Generation features 32 GB of GDDR6 memory on a 256-bit bus, delivering 576.0 GB/s of bandwidth and 18 Gbps effective memory speed. The AD102 chip, fabricated on TSMC's 5 nm process with 76,300 million transistors and a 609 mm² die size, houses 12,800 shading units, 400 TMUs, and 176 ROPs, along with 100 RT cores and 400 tensor cores for ray tracing and AI acceleration. Clock speeds range from a 1155 MHz base to a 2550 MHz boost, producing 65.28 TFLOPS of FP32 performance and 1,020.0 GTexel/s texture fill rate.

The GPU's benchmark scores of 175286 in Geekbench OpenCL and 194041 in Geekbench Vulkan demonstrate strong compute capabilities across different API frameworks, with the 98th percentile ranking placing it among the top graphics cards available. The 250 W TDP and dual-slot design require a 600 W suggested PSU, while the 1x 16-pin power connector and 267 mm length make installation straightforward in most cases. The 4x DisplayPort 1.4a outputs support multi-monitor professional setups, and the DirectX 12 Ultimate, OpenGL 4.6, and Vulkan 1.4 API support ensures compatibility with modern graphics workloads. The 400 tensor cores enable substantial AI and machine learning performance, while the 100 RT cores provide hardware-accelerated ray tracing that complements the massive shading unit count for rendering applications.