SYSTEM ANALYZER

Rate My PC: Intel Core i7-12700E + Intel Arc B770

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 i7-12700E

6,776 Benchmark Score
Top 22% Market Ranking
View Full Specs →
GRAPHICS CARD

Intel Arc B770

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

The Intel Core i7-12700E and Intel Arc B770 pairing represents a specific configuration in the desktop benchmark database, combining a 12th-generation Intel processor with a current-generation Intel graphics card. This analysis draws exclusively from the provided data to interpret what the benchmark scores indicate about the system's capabilities, its position relative to other hardware, and the workloads it is best suited for. The data shows no measured FPS rows for this exact combination, so all gaming performance discussions are framed as estimates derived from the component benchmark scores.

CPU Analysis

The Intel Core i7-12700E is a desktop processor built on the Alder Lake architecture, utilizing Intel's 10 nm process node with a die size of 215 mm². It features a hybrid design with 12 cores and 20 threads, a configuration that supports simultaneous multithreading. The base clock is 2.10 GHz, with a boost clock reaching 4.80 GHz, providing a significant dynamic range for varying workload intensities. The processor has a 65 W TDP, placing it in a power-efficient tier for a 12-core part. Cache hierarchy includes 80 KB of L1 per core, 1.25 MB of L2 per core, and a shared 25 MB L3 cache, which is substantial for handling large working sets in multitasking environments. Memory support includes both DDR4 and DDR5, operating on a dual-channel bus, giving builders flexibility in platform cost and performance. The CPU provides PCIe Gen 5 with 20 lanes from the processor itself, ensuring high-bandwidth connectivity for modern storage and expansion cards. The integrated UHD Graphics 770 is present, offering a basic display output capability independent of the discrete GPU.

Benchmark data for the i7-12700E shows a strong single-core and multi-core profile. In Cinebench R23, the processor scores 23879 in multi-core and 3371 in single-core. The Geekbench results are 10676 multi-core and 2094 single-core. The average benchmark score across the suite is 6776, placing the CPU at the 62nd percentile among all CPUs in the database. This percentile position indicates that the processor outperforms the majority of tested CPUs, while the nearest rivals provide context. The AMD Ryzen Threadripper 2970WX scores an average of 6760, a delta of 0.2% higher, meaning the i7-12700E is essentially tied with that high-end workstation part. The Intel Xeon Gold 6154 averages 6803, which is a 0.4% delta, indicating the i7-12700E is marginally behind that server chip. The Intel Xeon D-2775TE and Xeon Gold 5317 both average 6710, with a 1% delta, showing the i7-12700E holds a slight edge over these enterprise processors. These comparisons highlight that the i7-12700E delivers performance in the range of older high-core-count server parts, but with the advantage of a modern desktop platform and higher clock speeds.

The Cinebench R15 scores of 2406 multi-core and 339 single-core, along with R20 scores of 10029 multi-core and 1415 single-core, reinforce a pattern of balanced performance. The single-core scores are particularly relevant for everyday responsiveness and applications that rely on lightly threaded tasks. The multi-core scores, while not matching the very top-tier HEDT processors, are competitive with the server-class chips listed as rivals. For real workloads, this CPU can handle compiling code, running virtual machines, or processing complex spreadsheets without significant bottlenecking. The 10 nm process and 65 W TDP suggest that thermal management is achievable with a capable air cooler, though the boost clock of 4.80 GHz will require adequate ventilation.

Benchmark Performance

The CPU benchmark scores provide a comprehensive picture of the i7-12700E's compute capabilities. The Cinebench R23 multi-core score of 23879 is a strong indicator of sustained all-core performance, which is critical for rendering tasks and batch processing. The single-core score of 3371 is equally important, as it reflects the processor's ability to handle lightly threaded workloads such as web browsing, office applications, and legacy software. The Geekbench scores, with a multi-core result of 10676 and single-core of 2094, corroborate the Cinebench findings, showing consistency across different benchmarking methodologies. The average benchmark score of 6776, with a percentile rank of 62 among all CPUs, positions the i7-12700E as a solid mid-to-high-tier performer. The nearest rivals, all with average scores within a 1% delta, suggest that the i7-12700E sits in a performance band where minor architectural differences yield negligible real-world differences.

The GPU data shows the Intel Arc B770 has no benchmark scores in the provided FACT PACK, and its average benchmark score is listed as 0, with a percentile rank of 50 among all GPUs. The combined percentile for the build is 56, which is higher than the CPU's individual percentile of 62 and the GPU's percentile of 50, indicating a balanced pairing where neither component is severely mismatched. The combined percentile of 56 suggests that this system outperforms 56% of all benchmarked desktop configurations in the database. Since the GPU has no measured scores, the combined percentile is likely derived from the CPU scores and the GPU's theoretical position based on its specifications. The absence of GPU benchmark scores means that the gaming performance must be inferred entirely from the GPU's hardware characteristics, which include a 16 GB VRAM capacity and a 512.0 GB/s memory bandwidth.

The combined picture from the CPU and GPU data is one of a system that excels in compute-heavy tasks but has uncertain gaming performance. The CPU's strong multi-core and single-core scores indicate that it will not be a bottleneck in most scenarios, whether the workload is CPU-bound or GPU-bound. The GPU, with its high memory bandwidth and large VRAM, is positioned for high-resolution textures and complex scenes, but without benchmark scores, its raw compute throughput in games cannot be quantified. The data suggests a system that is well-suited for productivity and creation, with gaming performance that is likely respectable given the hardware specifications, but remains an estimate until measured.

Usage Scenarios

High-Refresh Gaming: For high-refresh gaming, the CPU's single-core performance is critical. A Cinebench R23 single-core score of 3371 places the i7-12700E in a strong position to drive high frame rates in CPU-bound titles. The boost clock of 4.80 GHz ensures that the processor can respond quickly to per-frame instructions. However, the GPU's lack of measured FPS data means that the actual frame rates are unknown. The Arc B770's 16 GB VRAM and 512.0 GB/s bandwidth suggest it can handle 1440p and 4K textures, but achieving high refresh rates at those resolutions depends on the GPU's raw compute power, which is not benchmarked. The data indicates the CPU will support high-refresh monitors, but the GPU's contribution is an estimate.

Streaming: Streaming workloads require both CPU and GPU resources. The i7-12700E's 12 cores and 20 threads provide ample headroom for encoding video while running a game. The multi-core score of 23879 in Cinebench R23 indicates that the CPU can handle the encoding workload without severely impacting game performance. The Arc B770's architecture, which includes dedicated hardware for media encoding, could offload the streaming task entirely, but this is not explicitly confirmed by the benchmark data. The CPU's 65 W TDP also means that power consumption is manageable during extended streaming sessions.

Video Editing: Video editing software often relies on multi-core performance for rendering and export, while single-core performance affects timeline scrubbing and effects. The i7-12700E's Cinebench R20 multi-core score of 10029 and single-core score of 1415 indicate a balanced capability. The 25 MB of L3 cache helps with large media files. The Arc B770's 16 GB VRAM is beneficial for storing video previews and applying effects in real-time. The GPU's 512.0 GB/s memory bandwidth ensures that frame buffers are updated quickly. The data suggests this system can handle 4K video editing with efficient playback and reasonable export times.

3D Rendering: 3D rendering is heavily dependent on CPU multi-core performance and GPU compute. The i7-12700E's Cinebench R23 multi-core score of 23879 is strong for a 65 W processor, indicating that it can render scenes effectively. The Arc B770's FP32 performance is 19.66 TFLOPS, which is a theoretical measure of its compute throughput. The GPU's 4096 shading units and 128 ROPs suggest it can handle complex rendering tasks. The combination of a 12-core CPU and a GPU with 16 GB VRAM is well-suited for rendering scenes with high polygon counts and large textures.

Software Development: Software development involves frequent compilation, which is a multi-core workload, and code editing, which is single-core dependent. The i7-12700E's Geekbench multi-core score of 10676 indicates that compilation times will be reasonable. The single-core score of 2094 ensures that the editor remains responsive. The 20 threads allow for parallel builds and running multiple development tools simultaneously. The CPU's 10 nm process and 65 W TDP mean that sustained load during a large build will not cause thermal throttling with adequate cooling.

Student and Office Work: For students and office workers, the i7-12700E provides more performance than necessary for typical tasks like word processing, spreadsheets, and web browsing. The single-core score of 339 in Cinebench R15 is more than sufficient for these workloads. The integrated UHD Graphics 770 provides a backup display output, which is a practical feature. The CPU's 65 W TDP ensures that the system runs quietly and efficiently, which is ideal for a shared or quiet workspace. The Arc B770, while powerful, is overkill for this scenario, but it does not detract from the system's overall capability.

Who Should Build It

The target users for this system are those who need a balanced desktop platform for both compute and graphics tasks. Content creators, such as video editors and 3D artists, will benefit from the CPU's multi-core performance and the GPU's large VRAM. The Cinebench R23 multi-core score of 23879 and the GPU's 16 GB memory are directly relevant to these workloads. Software developers will appreciate the 20 threads for compilation and the single-core speed for interactive coding, as evidenced by the Geekbench scores of 10676 and 2094. Gamers who prioritize high resolutions and detailed textures over maximum frame rates might find this system suitable, though the lack of measured FPS data requires caution. The GPU's 512.0 GB/s bandwidth and 16 GB VRAM are suited for 4K gaming, but the actual frame rates are unknown.

Students in engineering or computer science fields could use this system for simulation and programming assignments, leveraging the CPU's 12 cores. Small business workstations that run database applications or financial modeling software would benefit from the CPU's multi-threaded performance, as indicated by the Cinebench R20 score of 10029. The system's class is desktop, and its combined percentile of 56 means it is above average in the database, suggesting that it is a competitive choice for these users. The CPU's percentile of 62 indicates that it is a strong processor, while the GPU's percentile of 50 shows that it is an average performer among GPUs, which might be a consideration for users who are GPU-bound in their tasks.

Upgrade Path and Platform

The Intel Core i7-12700E uses the Intel Socket 1700 platform, which is a mature socket that supports both DDR4 and DDR5 memory. The dual-channel memory bus means that adding two DIMMs is the optimal configuration for bandwidth. The CPU provides PCIe Gen 5 with 20 lanes, which is the latest standard, ensuring that future high-speed NVMe SSDs and graphics cards will be compatible. The integrated UHD Graphics 770 provides a fallback if the discrete GPU is removed or fails. The platform supports a 65 W TDP processor, but the socket is capable of higher-power parts, so a motherboard with robust power delivery is recommended. The GPU, Intel Arc B770, uses a PCIe 4.0 x16 interface, which is backward compatible with the CPU's PCIe Gen 5 slots.

The suggested PSU for the GPU is 550 W, and the GPU's TDP is 225 W, while the CPU's TDP is 65 W. This leaves a significant amount of headroom for other components like storage and fans. A 550 W power supply is a sensible baseline, but a higher-wattage unit would allow for future upgrades to a more power-hungry CPU or GPU. The GPU requires 1x 6-pin and 1x 8-pin power connectors, so the PSU must have these available. The platform's upgrade path is limited by the socket, as Intel Socket 1700 is not expected to support future generations beyond 13th Gen, but the current i7-12700E is a high-end part in its generation. A sensible next upgrade would be to a higher-core-count CPU on the same socket, if available, or to a more powerful GPU, as the PCIe 4.0 interface and 550 W PSU headroom can accommodate a GPU with a similar or slightly higher TDP.

Gaming Performance

The data contains no measured FPS for this CPU and GPU combination, so all frame rate discussions are estimates based on the benchmark scores and hardware specifications. The Intel Arc B770's specifications suggest it is designed for high-performance gaming. With 16 GB of GDDR6 memory on a 256-bit bus, the memory bandwidth is 512.0 GB/s, which is sufficient for high-resolution textures and complex scenes. The GPU has 4096 shading units, 256 TMUs, and 128 ROPs, indicating a high fill rate. The pixel rate is 307.2 GPixel/s, and the texture rate is 614.4 GTexel/s, which are theoretical maximums.

The CPU's gaming performance is well-documented through its benchmark scores. A Cinebench R23 single-core score of 3371 is strong, and the boost clock of 4.80 GHz ensures that the CPU can feed frames to the GPU quickly. For 1080p gaming, the CPU is likely not a bottleneck, and the GPU's performance will be the primary determinant of frame rates. The GPU's FP32 performance of 19.66 TFLOPS suggests that it can handle modern game engines at high settings. For 1440p gaming, the GPU's 16 GB VRAM is an advantage, allowing for high-resolution textures without exceeding memory capacity. The memory bandwidth of 512.0 GB/s is also beneficial at this resolution. For 4K gaming, the GPU's compute power and memory are sufficient for many titles, but the actual frame rates are unknown. The data suggests that this system is capable of 1440p gaming at high settings, with 4K gaming being playable but potentially requiring settings adjustments.

Balance and Bottleneck

The balance between the CPU and GPU is a critical factor in determining which component limits performance in various workloads. The CPU's percentile of 62 among all CPUs is higher than the GPU's percentile of 50 among all GPUs, indicating that the GPU is the weaker link in this pairing. This means that in GPU-bound workloads, such as gaming at high resolutions with demanding graphics settings, the GPU is likely to be the bottleneck. The CPU has enough headroom to feed the GPU without stalling, as evidenced by its strong single-core performance and high boost clock.

For CPU-bound workloads, such as 3D rendering in software that uses the CPU, the i7-12700E will be the limiting factor. Its Cinebench R23 multi-core score of 23879 is good, but not exceptional, meaning that extremely complex scenes will take longer to render compared to a higher-core-count CPU. In mixed workloads, such as streaming while gaming, the CPU's 20 threads provide enough resources to handle both tasks, but the GPU's encoding capabilities, if present, could offload the streaming workload. The combined percentile of 56 suggests that the system is well-balanced overall, but the GPU's lower percentile means that upgrading the GPU would provide the most significant performance improvement in gaming and graphics-intensive tasks.

FAQ

Q: What is the Intel Core i7-12700E's position relative to its nearest rivals?

A: The i7-12700E has an average benchmark score of 6776, which is 0.2% higher than the AMD Ryzen Threadripper 2970WX (6760), 0.4% lower than the Intel Xeon Gold 6154 (6803), and 1% higher than both the Intel Xeon D-2775TE and Intel Xeon Gold 5317 (both 6710).

Q: Does the Intel Arc B770 have any benchmark scores in the database?

A: No, the FACT PACK indicates that the GPU has an empty benchmarks array and an average benchmark score of 0. Its percentile is 50 among all GPUs, but no specific test scores are available.

Q: What is the memory bandwidth of the Intel Arc B770?

A: The GPU has a memory bandwidth of 512.0 GB/s, which is derived from its 16 GB of GDDR6 memory on a 256-bit bus with a memory clock of 2000 MHz (16 Gbps effective).

Q: What power supply is recommended for this build?

A: The suggested PSU for the Intel Arc B770 is 550 W, while the GPU's TDP is 225 W and the CPU's TDP is 65 W, leaving headroom for other components.

Q: What PCIe version does the CPU support, and what does the GPU use?

A: The CPU supports PCIe Gen 5 with 20 lanes, while the GPU uses a PCIe 4.0 x16 interface, which is backward compatible with the CPU's slots.

Q: Is the integrated graphics on the CPU functional?

A: Yes, the i7-12700E includes UHD Graphics 770, which provides basic display output capabilities if the discrete GPU is not used or is unavailable.

Q: What is the combined percentile of this build?

A: The combined percentile for the desktop build is 56, indicating that this configuration outperforms 56% of all benchmarked desktop systems in the database.

GPU Analysis

The Intel Arc B770 is a desktop GPU built on the Xe2-HPG architecture, with the chip codename BMG-G31. It is manufactured on a 5 nm process by TSMC, with a die size of 368 mm². The GPU has a base clock of 2100 MHz and a boost clock of 2400 MHz. The memory subsystem is substantial, featuring 16 GB of GDDR6 memory on a 256-bit bus, with a memory clock of 2000 MHz (16 Gbps effective), yielding a bandwidth of 512.0 GB/s. The GPU contains 4096 shading units, 256 TMUs, and 128 ROPs, providing a pixel rate of 307.2 GPixel/s and a texture rate of 614.4 GTexel/s. The FP32 performance is 19.66 TFLOPS, with FP16 performance at 39.32 TFLOPS (2:1). The GPU has 32 RT cores, which are dedicated to ray tracing workloads, though tensor cores are not listed in the data.

The GPU's TDP is 225 W, requiring a 550 W power supply, and it uses 1x 6-pin and 1x 8-pin power connectors. The bus interface is PCIe 4.0 x16, and display outputs include 1x HDMI 2.1a and 3x DisplayPort 2.1. API support includes DirectX 12 Ultimate (12_2), OpenGL 4.6, and Vulkan 1.4, ensuring compatibility with current and upcoming games. The release date is listed as 2025-12-31, and its predecessor is Alchemist. The GPU has no benchmark scores in the database, and its percentile of 50 among all GPUs suggests that it is an average performer in the overall GPU pool. The lack of scores means that the GPU's real-world performance is unknown, but its specifications indicate that it is designed for high-resolution gaming and content creation. The 16 GB VRAM is particularly notable, as it exceeds the capacity of many current GPUs, making it suitable for 4K textures and large datasets. The memory bandwidth of 512.0 GB/s ensures that data transfer is not a bottleneck. The RT cores suggest that ray tracing will be supported, but the performance level is uncertain. For rendering workloads, the FP32 performance of 19.66 TFLOPS is a theoretical measure of compute capability, and the 4096 shading units provide a high throughput for pixel and vertex processing.

Build Overview

This is a desktop build comprising the Intel Core i7-12700E and the Intel Arc B770. The CPU is a 12-core, 20-thread processor from the Alder Lake generation, with a base clock of 2.10 GHz and a boost clock of 4.80 GHz. The GPU is a Battlemage architecture part with 16 GB of VRAM and a 512.0 GB/s memory bandwidth. The combined percentile for this build is 56, meaning it outperforms 56% of all benchmarked desktop configurations. The CPU's percentile is 62, indicating a strong processor, while the GPU's percentile is 50, showing an average GPU. This pairing represents a system where the CPU is the stronger component, and the GPU provides adequate graphics capability for most tasks. The build class is desktop, and the overall tier is mid-to-high, based on the combined percentile. The lack of measured FPS data for gaming means that the system's gaming performance is an estimate, but the hardware specifications suggest it is capable of 1440p gaming at high settings, with 4K gaming being possible but less certain. This build is suited for users who prioritize CPU performance for productivity tasks while still having a capable GPU for gaming and graphics work. The 65 W CPU TDP and 225 W GPU TDP make it a manageable system in terms of power and cooling, and the 550 W suggested PSU provides sufficient headroom. Overall, this is a balanced desktop system that is competitive with other configurations in its performance tier.