SYSTEM ANALYZER

Rate My PC: Intel Core i7-12700 + Intel Arc B570

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
90%
VS
GPU
91%
PROCESSOR

Intel Core i7-12700

32,942 Benchmark Score
Top 10% Market Ranking
View Full Specs →
GRAPHICS CARD

Intel Arc B570

20,556 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
View All Games →

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

The Intel Core i7-12700 and Intel Arc B570 pairing represents a balanced mid-range desktop configuration that targets 1080p and 1440p gaming alongside productivity workloads. The CPU delivers strong multi-threaded performance with a 12-core, 20-thread Alder Lake design, while the GPU offers competitive rasterization and modern feature support at a mainstream price point. Benchmark data shows the CPU performing at the 83rd percentile among all processors, while the GPU sits at the 65th percentile, creating a system where the graphics card is the primary limiter in gaming scenarios but the processor provides ample headroom for content creation and multitasking. This combination is well-suited for users who prioritize CPU-heavy tasks like video editing and software compilation without sacrificing gaming capability.

CPU Analysis

The Intel Core i7-12700 utilizes the Alder Lake architecture on a 10 nm process node from Intel, with a die size of 215 mm². This hybrid design combines performance and efficiency cores to deliver a total of 12 cores and 20 threads, operating at a base clock of 2.10 GHz and boosting up to 4.90 GHz. The cache hierarchy includes 80 KB of L1 per core, 1.25 MB of L2 per core, and a shared 25 MB L3 cache, which supports the processor's ability to handle both latency-sensitive single-threaded workloads and heavily parallel tasks.

Benchmark results demonstrate the CPU's capability across different thread counts. In 3DMark tests, the processor scores 8764 with 16 threads, 6775 with 8 threads, 3824 with 4 threads, and 1987 with 2 threads, with a single-thread score of 1012. The scaling from 2 to 16 threads shows near-linear improvement, indicating efficient utilization of the hybrid core layout. Cinebench results reinforce this profile: the R23 multicore score of 21751 is approximately 11.5 times the single-core score of 1894, while the R20 multicore score of 10639 is roughly 7.1 times the single-core score of 1501. This scaling suggests the processor can effectively distribute workloads across all available threads.

The PassMark suite provides additional insight into real-world application performance. The multithread score of 30273 pairs with a single-thread score of 3864, showing strong per-core efficiency. Integer math achieves 106554, floating point math reaches 81191, and extended instructions score 24184, indicating solid performance in scientific and financial computations. Data compression scores 375950, while data encryption hits 20143, and random string sorting reaches 38970, demonstrating the CPU's competence in data-intensive tasks. The find prime numbers score of 101 is notably lower, but this is typical for this type of workload.

Comparing to nearest rivals, the Core i7-12700 achieves an average benchmark score of 32942. The AMD Ryzen 7 7800X3D scores 33079, a 0.4% advantage, while the AMD Ryzen 7 8700G scores 33089, also 0.4% ahead. The Intel Core 5 213PTE is nearly identical at 32924, just 0.1% behind, and the AMD Ryzen 7 PRO 6850H trails by 0.4% with a score of 32812. This places the i7-12700 in a tightly competitive grouping where performance differences are marginal, meaning real-world application choice and cooling will determine observable differences.

Usage Scenarios

For high-refresh gaming, the CPU's single-thread score of 3864 in PassMark and 1012 in 3DMark provides sufficient processing power to feed a mid-range GPU. The 16-thread 3DMark score of 8764 ensures background tasks do not interfere with frame pacing, though the GPU will typically be the limiting factor at 1080p with high settings.

Streaming benefits from the 20-thread configuration, where the Cinebench R23 multicore score of 21751 indicates the CPU can handle encoding alongside game logic. The 8-thread score of 6775 in 3DMark suggests that even with a game using eight cores, six additional threads remain available for encoding and chat applications, reducing the likelihood of dropped frames during broadcast.

Video editing workloads see strong performance from the PassMark multithread score of 30273 and the floating-point math score of 81191. The data compression score of 375950 accelerates timeline scrubbing and export operations, while the 25 MB shared L3 cache helps with large media files. The Cinebench R20 multicore score of 10639 supports smooth preview rendering in applications like Premiere Pro or DaVinci Resolve.

3D rendering benefits from the processor's high multicore throughput, as evidenced by the Cinebench R23 score of 21751. The 16-thread 3DMark score of 8764 indicates that render engines utilizing 16 threads will see nearly full utilization, and the 20-thread capability provides additional headroom for simultaneous tasks. The texture rate of 360.0 GTexel/s from the GPU complements this for GPU-accelerated renderers.

Software development sees advantages from the integer math score of 106554 and the extended instructions score of 24184, which accelerate compilation and code analysis. The random string sorting score of 38970 helps with search operations in large codebases, while the multithread score of 30273 supports parallel builds. The 65 W TDP keeps power draw manageable during long compile sessions.

Student and office work is handled efficiently with the single-thread score of 3864 in PassMark, ensuring snappy response in document editing and web browsing. The 2-thread 3DMark score of 1987 covers typical office applications, while the integrated UHD Graphics 770 provides display output without requiring the discrete GPU for basic tasks, potentially extending component longevity.

Benchmark Performance

The Core i7-12700 achieves an average benchmark score of 32942, placing it at the 83rd percentile among all CPUs. This positions it above the majority of processors, with nearest rivals including the Intel Core 5 213PTE (32924, 0.1% faster), AMD Ryzen 7 PRO 6850H (32812, 0.4% faster), AMD Ryzen 7 7800X3D (33079, 0.4% slower), and AMD Ryzen 7 8700G (33089, 0.4% slower). The tight grouping around 33000 points indicates that these processors deliver statistically similar performance, with the i7-12700 holding its own against both newer and more specialized parts.

The Intel Arc B570 GPU achieves an average benchmark score of 20556, placing it at the 65th percentile among all GPUs. Its nearest rivals are the NVIDIA GeForce RTX 3070 Mobile (20534, 0.1% faster), Intel Arc A750 (20582, 0.1% slower), NVIDIA Quadro M4000M (20480, 0.4% faster), and AMD Radeon R9 M390X (20662, 0.5% slower). This grouping shows the B570 performing in the same league as a previous-generation mobile high-end GPU and its direct predecessor, indicating solid rasterization capability but not class-leading performance.

In synthetic GPU benchmarks, the Arc B570 scores 2649 in 3DMark Steel Nomad DX12, 83514 in Geekbench OpenCL, and 96844 in Geekbench Vulkan. PassMark results show a G3D score of 14195, with DirectX 11 scoring 118, DirectX 12 scoring 72, and DirectX 9 scoring 164. The GPU compute score of 7281 indicates moderate compute throughput. Combined with the CPU performance, the system's combined percentile is 74, suggesting that while individual components are strong, the pairing does not push either component to its absolute limits.

Balance and Bottleneck

The performance data indicates that the GPU is the primary bottleneck in gaming workloads. The CPU's 83rd percentile ranking versus the GPU's 65th percentile creates a scenario where the processor can likely deliver frames faster than the graphics card can render them at lower resolutions. This is typical for a mid-range GPU paired with a high-mid-range CPU, and the imbalance is more pronounced at 1080p than at 1440p or 4K, where the GPU becomes the limiting factor more quickly.

In productivity workloads, the balance shifts. The CPU's strong multicore scores, such as the Cinebench R23 multicore result of 21751, mean that tasks like video encoding, 3D rendering, and data compression will be CPU-limited. The GPU's PassMark compute score of 7281 provides acceleration for GPU-accelerated effects, but the CPU will dominate in pure compute operations. The 150 W TDP GPU and 65 W TDP CPU suggest the system draws modest power, with the suggested PSU of 450 W providing adequate headroom for both components under load.

The FPS scaling between the CPU and GPU is not directly measured for this configuration, but the benchmark scores imply that at 1080p, the GPU will limit frame rates in most games, while at 1440p, the GPU limitation becomes more pronounced. For CPU-intensive games with high object counts or physics simulations, the processor's 8-thread and 16-thread scores of 6775 and 8764 in 3DMark will maintain frame pacing, but the GPU's 65th percentile ranking will cap maximum FPS in graphically demanding titles.

Gaming Performance

No measured FPS rows exist for this exact combination, so all frame rate discussions are estimates based on the benchmark scores. The Intel Arc B570's 3DMark Steel Nomad score of 2649 and PassMark G3D score of 14195 indicate it can handle 1080p gaming at high settings in most titles, with 1440p requiring reduced settings for demanding games. The GPU's 10 GB of GDDR6 memory and 380.0 GB/s bandwidth provide sufficient capacity for modern textures at these resolutions.

At 1080p ultra settings, the GPU's performance relative to its rivals (RTX 3070 Mobile at 0.1% faster, Arc A750 at 0.1% faster) suggests frame rates in the 60-100 FPS range for AAA titles, with esports titles potentially exceeding 144 FPS. The CPU's single-thread score of 1012 in 3DMark ensures it will not bottleneck the GPU at these settings, as most games are GPU-limited at ultra quality presets.

At 1440p, the GPU will deliver playable frame rates in the 40-70 FPS range for demanding titles at high settings, with lighter games reaching 80-100 FPS. The 10 GB VRAM may become a limiting factor in some titles at this resolution with maximum texture quality. The CPU's 4-thread score of 3824 in 3DMark indicates sufficient processing power for game logic, but the GPU's raw rendering capability will determine the final output.

For 4K gaming, the GPU's 65th percentile ranking suggests it is not ideal for ultra settings, with frame rates likely dropping below 30 FPS in the most demanding titles. The CPU would not be the limiting factor at this resolution, but users should consider lowering settings or resolution scaling to achieve playable performance.

Upgrade Path and Platform

The Core i7-12700 uses the Intel Socket 1700 platform, which supports both DDR4 and DDR5 memory in a dual-channel configuration. This flexibility allows builders to choose between cost-effective DDR4 or higher-bandwidth DDR5 depending on their budget and performance needs. The platform also supports PCIe Gen 5 with 16 lanes from the CPU, providing bandwidth for the latest storage devices and future GPU upgrades.

The Arc B570 uses a PCIe 4.0 x8 interface, which is sufficient for its 380.0 GB/s memory bandwidth and 11.52 TFLOPS of FP32 performance. The 150 W TDP and 450 W suggested PSU leave substantial headroom for upgrades, as a more powerful GPU with a higher TDP could be accommodated with a PSU swap. The CPU's 65 W TDP means the platform has significant power delivery headroom for a future processor upgrade within the same socket generation.

A sensible next upgrade would be a more powerful GPU, as the CPU's 83rd percentile ranking indicates it can drive a faster graphics card without becoming a bottleneck. The 12-core, 20-thread configuration and 25 MB L3 cache provide enough processing power for a GPU in the 90th percentile or higher. Alternatively, adding more memory or faster DDR5 would benefit memory-intensive workloads like data compression, where the PassMark score of 375950 could improve with increased bandwidth.

The platform's PCIe Gen 5 support future-proofs for next-generation storage devices, and the dual-channel memory controller supports up to high-capacity kits. The integrated UHD Graphics 770 provides a fallback display output if the discrete GPU is removed or fails, adding system resilience. The socket's production status is Active, meaning replacement parts and compatible motherboards remain available.

GPU Analysis

The Intel Arc B570 is built on the Xe2-HPG architecture, specifically the Battlemage generation, using a 5 nm process from TSMC. The chip, designated BMG-G21, contains 19,600 million transistors on a 272 mm² die, with a transistor density of 72.1 million per mm². This modern process node enables the GPU to achieve a high clock speed of 2500 MHz for both base and boost, with memory running at 2375 MHz (19 Gbps effective).

The memory subsystem consists of 10 GB of GDDR6 across a 160-bit bus, delivering 380.0 GB/s of bandwidth. This capacity is adequate for 1080p and 1440p gaming with high texture settings, and the bandwidth supports the GPU's 200.0 GPixel/s pixel rate and 360.0 GTexel/s texture rate. The 2304 shading units, 144 texture mapping units, and 80 render output units provide the raw compute for 11.52 TFLOPS of FP32 performance, with FP16 reaching 23.04 TFLOPS via 2:1 ratio.

The GPU includes 18 ray tracing cores for hardware-accelerated ray tracing, though its performance in this area is limited by the overall compute throughput. The absence of tensor core data in the specifications suggests that AI acceleration is handled through the general compute units, with the Geekbench OpenCL score of 83514 and Vulkan score of 96844 indicating moderate compute capability. The PassMark GPU compute score of 7281 supports this assessment.

For rendering workloads, the GPU's 3DMark Steel Nomad score of 2649 and PassMark G3D score of 14195 indicate it can handle moderate 3D rendering tasks, but it is not designed for professional-grade workloads. The DirectX 12 Ultimate support (12_2) ensures compatibility with the latest graphics features, including mesh shaders and variable rate shading, which benefit both gaming and real-time rendering applications.

FAQ

Q: What is the CPU's performance percentile compared to all processors?

A: The Intel Core i7-12700 ranks at the 83rd percentile among all CPUs, with an average benchmark score of 32942.

Q: How does the GPU compare to its nearest rivals?

A: The Intel Arc B570 has an average score of 20556, placing it at the 65th percentile. It is 0.1% slower than the NVIDIA GeForce RTX 3070 Mobile (20534) and 0.1% faster than the Intel Arc A750 (20582).

Q: What memory types does the platform support?

A: The CPU supports both DDR4 and DDR5 memory in a dual-channel configuration, with PCIe Gen 5 providing 16 lanes from the CPU.

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

A: The GPU has 10 GB of GDDR6 memory on a 160-bit bus, delivering 380.0 GB/s of bandwidth.

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

A: The suggested PSU is 450 W, which accounts for the GPU's 150 W TDP and the CPU's 65 W TDP.

Q: Does the CPU have integrated graphics?

A: Yes, the CPU includes Intel UHD Graphics 770, which provides display output without requiring the discrete GPU.

Q: What is the GPU's FP32 performance?

A: The GPU delivers 11.52 TFLOPS of FP32 performance, with 23.04 TFLOPS of FP16 via a 2:1 ratio.

Who Should Build It

Gamers targeting 1080p high-refresh or 1440p high-settings gameplay will find this configuration suitable, with the GPU's 65th percentile ranking and 10 GB VRAM providing enough headroom for most titles. The CPU's single-thread score of 3864 in PassMark ensures no bottleneck at these resolutions, while the 12-core processor handles background tasks like Discord or browser tabs without impacting frame rates.

Content creators working with video editing or 3D rendering will benefit from the CPU's Cinebench R23 multicore score of 21751 and PassMark multithread score of 30273. The GPU's compute score of 7281 accelerates effects and renders, while the 380.0 GB/s bandwidth supports high-resolution textures. The 65 W CPU TDP keeps the system cool during long export sessions.

Software developers compiling large codebases will see strong performance from the integer math score of 106554 and the extended instructions score of 24184. The 20-thread configuration supports parallel builds, and the data compression score of 375950 speeds up repository operations. The platform's DDR4 and DDR5 support allows for cost-effective memory configurations.

Students and office users will find the system more than adequate for everyday tasks, with the CPU's single-thread score of 3864 providing responsive application performance. The integrated graphics offer a fallback if the discrete GPU is not needed, and the 450 W PSU ensures the system runs quietly and efficiently. Small business workstations handling spreadsheets, databases, and light photo editing will not stress this configuration, making it a reliable choice for professional environments.