SYSTEM ANALYZER

Rate My PC: Intel Core i7-13700E + NVIDIA RTX 5000 Embedded Ada Generation

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

76 / 100
HIGH-END

Power Build

Top 24% of systems. Excellent for 1440p Ultra or 4K High gaming.

1440p Ultra4K High

System Balance Analysis

CPU vs GPU performance ratio
Well Balanced
CPU
78%
VS
GPU
74%
PROCESSOR

Intel Core i7-13700E

7,957 Benchmark Score
Top 22% Market Ranking
View Full Specs →
GRAPHICS CARD

NVIDIA RTX 5000 Embedded Ada Generation

0 Benchmark Score
Top 26% 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.

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 — Intel Core i7-13700E

The Intel Core i7-13700E is a 16-core, 24-thread desktop processor built on the Raptor Lake architecture, fabricated on Intel's 10 nm process node with a die size of 257 mm². It belongs to the Core 13th Gen series and carries the Raptor Lake-S codename. The base clock sits at 1900 MHz, boosting up to 5.10 GHz under load, and the chip carries a 65 W TDP. The CPU supports both DDR4 and DDR5 memory in a dual-channel configuration, with ECC memory support included. The processor integrates UHD Graphics 770, provides 16 PCIe Gen 5 lanes from the CPU, and uses Intel Socket 1700.

The cache hierarchy is substantial: 80 KB of L1 per core, 2 MB of L2 per core, and a shared 30 MB L3 pool. This cache structure, combined with the high boost clock, yields strong single-threaded performance. In Cinebench R23, the chip scores 3944 points in single-core and 27941 points in multi-core. The single-core score of 3944 indicates excellent responsiveness in lightly threaded applications, while the multi-core figure of 27941 reflects the combined throughput of 16 cores and 24 threads.

Looking at broader benchmark averages, the i7-13700E achieves an average benchmark score of 7957, placing it at the 64th percentile among all CPUs. Its nearest rivals are tightly clustered: the AMD EPYC 7551P scores 7952 (0.1% ahead), the Intel Core i9-10980XE scores 7910 (0.6% behind), the Intel Xeon Gold 6326 scores 8071 (1.4% ahead), and the Intel Xeon Platinum 8180M scores 8110 (1.9% ahead). These deltas are small, meaning the i7-13700E sits in a competitive mid-high tier, though not at the absolute top of the CPU hierarchy.

For real workloads, the Cinebench R20 results of 11735 multi-core and 1656 single-core suggest the chip handles both parallel rendering tasks and single-threaded productivity software with equal composure. The Geekbench scores of 12728 multi-core and 2437 single-core reinforce this balanced profile. The processor's 10 nm process and 65 W TDP indicate efficient operation, making it suitable for systems where thermal and power constraints are a consideration.

# Balance and Bottleneck

The pairing of the Intel Core i7-13700E with the NVIDIA RTX 5000 Embedded Ada Generation creates a desktop build with a combined percentile of 57, placing it above the median for all CPU-GPU combinations. The CPU's 64th percentile ranking among all CPUs contrasts with the GPU's 50th percentile ranking among all GPUs, indicating the processor holds a slight advantage in relative performance positioning.

Benchmark data shows the CPU delivers strong multi-threaded throughput, with Cinebench R23 multi-core at 27941 and Geekbench multi-core at 12728. The GPU, however, has no benchmark scores listed and an average benchmark score of 0, making direct bottleneck analysis impossible from measured FPS data. Since no measured FPS rows exist for this exact combination, the FACT PACK contains no measuredFps data, and all FPS discussions must be framed as estimates from benchmark scores.

The CPU's single-core performance — Cinebench R23 single-core at 3944 and Geekbench single-core at 2437 — suggests it will not bottleneck the GPU in most gaming scenarios, as modern games typically rely on a few heavily threaded cores. The GPU's 16 GB GDDR6 memory and 576.0 GB/s bandwidth provide ample data throughput for high-resolution textures. With the CPU's 65 W TDP and the GPU's 120 W TDP, the system's power envelope is modest, and the CPU's 30 MB L3 cache reduces memory latency, helping feed the GPU efficiently.

In CPU-intensive workloads like 3D rendering or video encoding, the i7-13700E's 16 cores and 24 threads will be the primary driver, with the GPU's 9728 shading units available for GPU-accelerated tasks. For GPU-bound scenarios at higher resolutions, the RTX 5000 Embedded Ada's 32.69 TFLOPS FP32 performance will likely become the limiting factor, though the CPU's strong single-core scores ensure it keeps pace with frame generation.

# Gaming Performance

The FACT PACK contains no measured FPS data for this CPU-GPU combination — the measuredFpsUltraByGame field is empty, and dataIsMeasured is false. Therefore, all frame rate figures here are estimates derived from the benchmark scores, not empirical measurements.

Based on the CPU's Cinebench R23 single-core score of 3944 and the GPU's 32.69 TFLOPS FP32 performance, ultra settings at 1080p would likely produce high frame rates in most titles, with the CPU's 5.10 GHz boost clock minimizing frame time spikes. The GPU's 16 GB VRAM and 576.0 GB/s bandwidth support high-resolution texture packs without capacity overflow, which is particularly relevant for games exceeding 8 GB VRAM usage.

At 1440p, the GPU's 188.2 GPixel/s pixel rate and 510.7 GTexel/s texture rate would sustain smooth frame rates, though the GPU's 50th percentile ranking suggests it performs at the median of all GPUs — not a top-tier card but a solid mid-range option. The 112 ROPs handle rasterization efficiently, while 76 RT cores enable ray-traced effects at playable speeds, though heavy RT workloads may require DLSS or reduced settings.

For 4K gaming, the 16 GB VRAM capacity and 576.0 GB/s bandwidth provide the necessary headroom for ultra textures, but the GPU's 1680 MHz boost clock and 32.69 TFLOPS FP32 throughput would likely limit frame rates to the 30-60 FPS range in demanding titles, depending on optimization. The CPU's multi-core score of 27941 in Cinebench R23 ensures background tasks and game logic threads are handled without stutter. E-sports titles would see high frame rates given the CPU's single-core strength, while AAA releases at maximum settings would push the GPU to its limits.

# Who Should Build It

This desktop build targets users who need a balanced system for mid-to-high-end workloads without reaching extreme enthusiast tiers. The CPU's 64th percentile ranking among all CPUs makes it suitable for content creators who require strong multi-threaded rendering — the Cinebench R23 multi-core score of 27941 handles video editing and 3D rendering tasks efficiently. The 16 cores and 24 threads accommodate parallel workloads like software compilation, where the Geekbench multi-core score of 12728 indicates solid throughput.

Gamers at 1080p and 1440p resolutions would benefit from this pairing, given the CPU's single-core performance of 3944 in Cinebench R23 and the GPU's 16 GB VRAM capacity. The GPU's 50th percentile position suggests it handles mainstream gaming titles well, though it is not designed for maximum settings at 4K. Developers working on multi-threaded codebases would appreciate the 24 threads and 30 MB L3 cache, which reduce compilation times and improve IDE responsiveness.

Students and small business workstations would find the 65 W CPU TDP appealing for quiet systems, while the GPU's 120 W TDP and IGP slot width make it suitable for compact desktop builds. The ECC memory support adds reliability for data-sensitive workloads. The processor's integrated UHD Graphics 770 provides a fallback display output, though the discrete GPU handles graphics duties. This is not a system for extreme overclocking or maximum 4K gaming — the CPU's base clock of 1900 MHz and the GPU's mid-tier ranking place it in the capable mainstream segment.

# Benchmark Performance

The Intel Core i7-13700E demonstrates consistent multi-threaded performance across benchmark suites. In Cinebench R15, it scores 2816 multi-core and 397 single-core. Cinebench R20 shows 11735 multi-core and 1656 single-core. The most recent Cinebench R23 results are 27941 multi-core and 3944 single-core. Geekbench reports 12728 multi-core and 2437 single-core. The average benchmark score across these tests is 7957, placing the CPU at the 64th percentile of all CPUs.

The CPU's nearest rivals are tightly grouped: the AMD EPYC 7551P averages 7952 (0.1% higher), the Intel Core i9-10980XE averages 7910 (0.6% lower), the Intel Xeon Gold 6326 averages 8071 (1.4% higher), and the Intel Xeon Platinum 8180M averages 8110 (1.9% higher). These sub-2% deltas indicate the i7-13700E performs within a narrow band of server and high-end desktop processors, though it trails the Xeon parts slightly in aggregate scores.

For the GPU, the NVIDIA RTX 5000 Embedded Ada Generation has no benchmark scores listed, with an average benchmark score of 0 and a 50th percentile ranking among all GPUs. The combined build percentile is 57, meaning this pairing outperforms 57% of all desktop CPU-GPU combinations. The CPU is the stronger component relative to its peers, while the GPU sits at the median — the combined picture is a system where the processor leads and the graphics card provides competent, but not outstanding, rendering performance.

# Usage Scenarios

High-refresh gaming: The CPU's Cinebench R23 single-core score of 3944 ensures minimal bottlenecking at 1080p, while the GPU's 188.2 GPixel/s pixel rate supports high frame rates. The 16 GB VRAM handles modern game assets, and the 5.10 GHz boost clock keeps frame times low.

Streaming: The 16 cores and 24 threads allow simultaneous game rendering and encoding, with the Cinebench R23 multi-core score of 27941 providing headroom for software encoding. The GPU's 304 tensor cores could accelerate AI-based encoding features, though no specific streaming benchmarks are listed.

Video editing: The Geekbench multi-core score of 12728 and 30 MB L3 cache support timeline scrubbing and export tasks. The GPU's 576.0 GB/s bandwidth moves video data efficiently, and 16 GB VRAM accommodates 4K timelines.

3D rendering: The Cinebench R23 multi-core score of 27941 handles CPU-based rendering, while the GPU's 32.69 TFLOPS FP32 accelerates GPU-rendered scenes. The 76 RT cores enable ray-traced rendering, though performance would be moderate given the GPU's 50th percentile ranking.

Software development: The 24 threads and 65 W TDP make this ideal for long compile sessions, with the Geekbench multi-core score of 12728 indicating parallel build efficiency. The ECC memory support adds stability for critical development environments.

Student and office work: The CPU's single-core performance of 2437 in Geekbench handles office suites and web applications smoothly. The integrated UHD Graphics 770 provides a backup display, and the 65 W TDP allows for quiet, energy-efficient operation.

# FAQ

Q: How many cores and threads does the Intel Core i7-13700E have?

A: The CPU has 16 cores and 24 threads.

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

A: The GPU has 16 GB of GDDR6 memory with a 256-bit bus and 576.0 GB/s bandwidth.

Q: Does the CPU support ECC memory?

A: Yes, ECC memory support is enabled.

Q: What is the CPU's average benchmark score and percentile ranking?

A: The average benchmark score is 7957, placing it at the 64th percentile among all CPUs.

Q: What socket does the CPU use and what PCIe version does it support?

A: The CPU uses Intel Socket 1700 and provides 16 PCIe Gen 5 lanes from the CPU.

Q: What is the GPU's FP32 performance in TFLOPS?

A: The GPU delivers 32.69 TFLOPS of FP32 performance.

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

A: The combined percentile is 57, meaning it outperforms 57% of all desktop builds.

# Upgrade Path and Platform

The Intel Core i7-13700E uses Intel Socket 1700, which supports the 13th Gen Core series. The CPU supports both DDR4 and DDR5 memory in a dual-channel configuration, allowing builders to choose between cheaper DDR4 modules or faster DDR5 kits. The 30 MB L3 cache and 65 W TDP provide reasonable headroom for memory-intensive workloads. The CPU provides 16 PCIe Gen 5 lanes, while the GPU uses a PCIe 4.0 x16 interface — the GPU will operate without bandwidth limitation.

The GPU has a 120 W TDP and requires no power connectors, drawing power from the slot. The suggested PSU is not listed, but the combined CPU TDP of 65 W and GPU TDP of 120 W indicate a modest total system power draw, meaning a standard desktop power supply would suffice. The GPU's IGP slot width suggests it fits in compact chassis, and the absence of power connectors simplifies installation.

A sensible next upgrade would be a higher-tier GPU, given the CPU's 64th percentile ranking provides headroom. The CPU's 16 cores and 24 threads are sufficient for most workloads, so the GPU is the more likely bottleneck in gaming scenarios. The CPU's multiplier is unlocked, allowing overclocking to increase performance beyond the 5.10 GHz boost clock. Memory upgrades from DDR4 to DDR5 would improve bandwidth-sensitive tasks, though the CPU's memory bus is dual-channel regardless of type.

# Build Overview

This is a desktop build pairing the Intel Core i7-13700E with the NVIDIA RTX 5000 Embedded Ada Generation. The CPU is a 16-core, 24-thread Raptor Lake processor with a 65 W TDP, scoring at the 64th percentile among all CPUs with an average benchmark score of 7957. The GPU is an Ada Lovelace architecture chip with 16 GB GDDR6 memory, 9728 shading units, and 32.69 TFLOPS FP32 performance, ranking at the 50th percentile among all GPUs.

The combined percentile for this pairing is 57, placing it above the median for desktop builds. The CPU is the stronger component relative to its peers, while the GPU performs at the median. This is a mid-to-upper-tier desktop system suited for balanced workloads — the CPU handles multi-threaded tasks effectively, and the GPU provides competent graphics performance without reaching enthusiast levels. The absence of measured FPS data means gaming performance is estimated from benchmark scores, but the CPU's strong single-core results and the GPU's 16 GB VRAM capacity suggest capable 1080p and 1440p gaming.

# GPU Analysis

The NVIDIA RTX 5000 Embedded Ada Generation is built on the AD103 chip using TSMC's 5 nm process, with 45,900 million transistors on a 379 mm² die, achieving a transistor density of 121.1M per mm². The GPU has a base clock of 930 MHz and a boost clock of 1680 MHz, with memory running at 2250 MHz (18 Gbps effective). The 16 GB GDDR6 memory operates on a 256-bit bus, delivering 576.0 GB/s of bandwidth.

The GPU contains 9728 shading units, 304 texture mapping units, and 112 raster operation processors. It features 76 RT cores and 304 tensor cores, supporting DirectX 12 Ultimate (12_2), OpenGL 4.6, and Vulkan 1.4. The pixel rate is 188.2 GPixel/s and the texture rate is 510.7 GTexel/s. FP32 and FP16 performance are both 32.69 TFLOPS, with a 1:1 ratio. The GPU's TDP is 120 W, it uses a PCIe 4.0 x16 interface, and has no power connectors. The 50th percentile ranking among all GPUs with an average benchmark score of 0 indicates it performs at the median, though no specific benchmark data exists to quantify exact performance.

For rendering workloads, the 32.69 TFLOPS FP32 throughput and 576.0 GB/s bandwidth provide solid compute and memory performance. The 16 GB VRAM capacity handles large scenes and high-resolution textures without swapping. The 76 RT cores enable hardware-accelerated ray tracing, while 304 tensor cores support DLSS and AI-based rendering features. The GPU's display outputs are portable device dependent, meaning this is designed for embedded or mobile-adjacent desktop systems. The 188.2 GPixel/s pixel rate supports high-resolution displays, and the 510.7 GTexel/s texture rate handles complex shader work. Overall, this GPU delivers mid-tier rendering performance, constrained by its 50th percentile position but capable for mainstream gaming and GPU-accelerated workloads.