Intel Xeon 6767P
Intel processor specifications and benchmark scores
At a Glance
IntelIntel Xeon 6767P Specifications
Xeon 6767P Core Configuration
Processing cores and threading
The Intel Xeon 6767P features 64 physical cores and 128 threads, which directly impacts multi-threaded performance in CPU benchmarks. More cores allow the processor to handle parallel workloads efficiently, improving performance in video editing, 3D rendering, and multitasking scenarios. Thread count determines how many simultaneous tasks the CPU can process, with higher thread counts benefiting productivity applications and content creation workflows.
6767P Clock Speeds
Base and boost frequencies
Clock speed is a critical factor in Xeon 6767P benchmark performance, measured in GHz. The base clock represents the guaranteed operating frequency, while the boost clock indicates maximum single-core performance under optimal conditions. Higher clock speeds translate to faster single-threaded performance, which is essential for gaming and applications that don't fully utilize multiple cores. The Xeon 6767P by Intel can dynamically adjust its frequency based on workload and thermal headroom.
Intel's Xeon 6767P Cache Hierarchy
L1, L2, L3 cache sizes
Cache memory is ultra-fast storage built directly into the 6767P processor die. L1 cache provides the fastest access for frequently used data, while L2 and L3 caches offer progressively larger storage with slightly higher latency. Larger cache sizes significantly improve CPU benchmark scores by reducing memory access times. The Xeon 6767P's cache configuration is optimized for both gaming performance and productivity workloads, minimizing data fetch delays during intensive computations.
Granite Rapids Architecture & Process
Manufacturing and design details
The Intel Xeon 6767P is built on Intel's 5 nm manufacturing process, which determines power efficiency and thermal characteristics. Smaller process nodes allow for more transistors in the same space, enabling higher performance per watt. The architecture defines how the processor handles instructions and manages data flow, directly impacting benchmark results across different workload types. Modern CPU architectures like the one in 6767P incorporate advanced branch prediction and out-of-order execution for optimal performance.
Granite Rapids Instruction Set Features
Supported CPU instructions and extensions
The Xeon 6767P by Intel supports various instruction set extensions that enable optimized performance for specific workloads. SIMD instructions like SSE and AVX accelerate multimedia, scientific computing, and AI workloads by processing multiple data points simultaneously. Features like AES-NI provide hardware-accelerated encryption, while AVX-512 (if supported) enables advanced vector processing for data centers and high-performance computing. These instruction sets are critical for software compatibility and performance in modern applications.
6767P Power & Thermal
TDP and power specifications
The Intel Xeon 6767P has a TDP (Thermal Design Power) of 350W, indicating the cooling solution required for sustained operation. TDP affects both system power consumption and the type of cooler needed. Lower TDP processors are ideal for compact builds and laptops, while higher TDP chips typically offer better sustained performance in demanding CPU benchmarks. Understanding power requirements helps ensure your system can deliver consistent performance without thermal throttling.
Intel Socket 4710 Platform & Socket
Compatibility information
The Xeon 6767P uses the Intel Socket 4710 socket, which determines motherboard compatibility. Choosing the right platform is essential for building a system around this processor. The socket type also influences available features like PCIe lanes, memory support, and upgrade paths. When comparing CPU benchmarks, ensure you're looking at processors compatible with your existing or planned motherboard to make informed purchasing decisions.
Intel Socket 4710 Memory Support
RAM compatibility and speeds
Memory support specifications for the 6767P define which RAM types and speeds are compatible. Faster memory can significantly improve CPU benchmark performance, especially in memory-intensive applications and gaming. The memory controller integrated into the Xeon 6767P determines maximum supported speeds and channels. Dual-channel or quad-channel memory configurations can double or quadruple memory bandwidth, providing noticeable performance gains in content creation and scientific workloads.
Xeon 6767P Product Information
Release and pricing details
The Intel Xeon 6767P is manufactured by Intel and represents their commitment to delivering competitive CPU performance. Understanding the release date and pricing helps contextualize benchmark comparisons with other processors from the same generation. Launch pricing provides a baseline for evaluating value, though street prices often differ. Whether you're building a new system or upgrading, the Xeon 6767P by Intel offers a specific balance of performance, features, and cost within Intel's product lineup.
Xeon 6767P Benchmark Scores
No benchmark data available for this CPU.
About Intel Xeon 6767P
The Intel Xeon 6767P is a 64-core, 128-thread server processor built on the Granite Rapids architecture (Xeon 6 family) and fabricated on Intel's 5 nm process. It combines a 2.40 GHz base clock with a 3.90 GHz boost clock, a 350 W TDP, and an eight-channel DDR5 memory interface with 409.6 GB/s of bandwidth. The chip carries a launch MSRP of $9595. In the aggregate benchmark index, it sits at the 50th percentile of all CPUs, meaning half of all processors score higher and half lower, a position that reflects its specialized throughput orientation rather than general-purpose dominance.
Who Should Consider It
The Xeon 6767P is aimed squarely at server and workstation environments where parallel compute density matters more than single-thread responsiveness. With 64 physical cores and 128 threads, it excels at workloads that can scale across many threads: virtualization, database serving, scientific simulation, and large-scale data processing. The 336 MB of shared L3 cache provides a vast staging area for frequently accessed data, reducing memory latency in cache-heavy workloads. The eight-channel DDR5 memory subsystem, delivering 409.6 GB/s, ensures that the core complex is fed with data at rates far beyond typical consumer platforms. This makes the chip suitable for in-memory analytics, high-performance computing, and enterprise applications that demand both high core counts and massive memory bandwidth. Conversely, the lack of integrated graphics means that any display output requires a discrete GPU, reinforcing its headless server role. For single-threaded or lightly threaded tasks, the 2.40 GHz base and 3.90 GHz boost are modest by modern standards, so users whose primary load is office productivity or web browsing would find this processor overkill and inefficient. The 50th percentile aggregate ranking suggests that on a mixed workload index, it performs at the median of all CPUs, but that metric is skewed by consumer parts with far fewer cores but higher per-core performance. Therefore, the Xeon 6767P is best considered by organizations that can fully utilize its 128 threads and 88 PCIe Gen 5 lanes for accelerators, networking, and storage.
Single-Thread vs Multi-Thread Behavior
The Xeon 6767P presents a clear dichotomy: moderate single-thread capability but exceptional multi-thread throughput. Its base clock of 2.40 GHz is relatively low, and even the 3.90 GHz boost cannot match the high frequencies found in desktop CPUs. This means that workloads relying on a single thread—such as legacy software, certain scripting languages, or light interactive tasks—will not see the same responsiveness as a high-frequency consumer chip. However, the processor's strength lies in its thread count. With 128 threads, the aggregate compute capacity is enormous, and any application that can parallelize will see near-linear scaling up to the core count. The L1 cache of 112 KB per core and L2 cache of 2 MB per core provide per-core working sets, while the shared 336 MB L3 cache acts as a massive pool for data shared across cores. This hierarchy is designed to keep multi-threaded workloads from stalling on memory access. In practice, the split means that the Xeon 6767P is a poor choice for latency-sensitive single-thread tasks but an excellent fit for batch processing, rendering, compilation, and server-side workloads that can distribute work across many threads. The 50th percentile aggregate score reflects this trade-off: it loses to high-frequency consumer chips in single-thread tests but would likely outperform them in heavily threaded benchmarks, though specific scores are not recorded in the FACT PACK.
Power and Thermals
With a TDP of 350 W, the Xeon 6767P is a high-power processor that demands a robust cooling solution. This TDP class is typical for server CPUs with many cores, but it has direct implications for system design. The 350 W figure represents the typical thermal design power, meaning that a cooler must be able to dissipate at least that much heat under sustained load. For a dual-die package (2x 598 mm²), the heat density is concentrated across a large area, but the total thermal output is substantial. In a server chassis, this typically requires active heatsinks with high static pressure fans, or liquid cooling in dense configurations. The 5 nm process node (Intel's own fabrication) helps manage power efficiency, but the sheer number of cores and the high boost clock still push the TDP to 350 W. The locked multiplier (multiplierUnlocked: false) means that overclocking is not possible, so users cannot adjust voltage or frequency beyond the factory settings; the processor will run at its rated 2.40 GHz base and 3.90 GHz boost under all conditions. Consequently, cooling must be designed for the maximum sustained power draw, not just the average. The lack of integrated graphics also means that the entire thermal envelope is dedicated to compute, further emphasizing the need for effective thermal management. For workstation users, this implies a high-end tower cooler or a custom liquid loop; for server deployments, it points to a well-ventilated rack with adequate airflow.
How It Compares
The FACT PACK does not list any nearest rivals, and no benchmark scores are recorded for the Xeon 6767P. Its position in the market can be inferred from its specification set and its 50th percentile ranking among all CPUs. That percentile indicates that, on a broad aggregate index, it sits exactly in the middle of the performance distribution—a surprising result for a processor with 64 cores, but one that reflects the fact that the index includes consumer CPUs with high single-thread performance. In the server segment, this processor would be compared against other high-core-count Xeon and EPYC parts, but no specific rival data is provided. What the data does show is that the Xeon 6767P offers a unique combination: 128 threads, 336 MB of L3 cache, eight-channel DDR5 at 409.6 GB/s, and 88 PCIe Gen 5 lanes. These features place it firmly in the enterprise class, where its capabilities are defined by throughput and I/O rather than by latency. Without rival scores, the only quantitative comparison is the 50th percentile figure, which serves as a baseline for its aggregate performance across all CPU types. In that light, the Xeon 6767P is not an outlier on either end of the spectrum; it is a balanced server part that will excel in its intended workloads but does not dominate the entire CPU landscape.
Platform and Compatibility
The Xeon 6767P uses Intel Socket 4710, a server socket that supports the Granite Rapids-SP generation of Xeon 6 processors. The architecture is Granite Rapids, built on a 5 nm process. Memory support is limited to DDR5, with an eight-channel bus that delivers 409.6 GB/s of peak bandwidth. ECC memory is supported, which is essential for error-correcting workloads in servers and workstations. The processor provides 88 PCIe Gen 5 lanes (CPU only), meaning that these lanes are available for discrete GPUs, NVMe storage, and high-speed networking without a separate chipset. This is a significant I/O capability for a server platform. There is no integrated graphics, so a discrete GPU is required for any display output. The multiplier is locked, preventing overclocking. The processor was released on 2025-02-23 and is currently in active production. For upgrade paths, the Socket 4710 platform is specific to this generation, so future upgrades would likely require a new motherboard and processor. The part number is SRV5F. The dual-die design (2x 598 mm²) indicates a multi-chip module, which is typical for high-core-count server processors. The 336 MB shared L3 cache is distributed across the two dies, but the exact allocation is not specified. The platform is designed for server and workstation motherboards that support the high TDP of 350 W and the eight-channel memory configuration.
FAQ
Q: What is the core and thread count of the Intel Xeon 6767P?
A: It has 64 cores and 128 threads.
Q: What memory type and bandwidth does it support?
A: It supports DDR5 memory with an eight-channel bus, providing 409.6 GB/s of bandwidth, and it includes ECC support.
Q: Does the processor have integrated graphics?
A: No, it does not include integrated graphics, so a discrete GPU is required for display output.
Q: What is the TDP and what cooling is needed?
A: The TDP is 350 W, which requires a high-performance cooling solution capable of dissipating at least that much heat under sustained load.
Q: What PCIe version and lane count does it offer?
A: It offers PCIe Gen 5 with 88 lanes (CPU only).
Q: Is the multiplier unlocked for overclocking?
A: No, the multiplier is locked, so the processor cannot be overclocked.
Q: When was it released and what is its production status?
A: It was released on 2025-02-23 and is currently in active production.
Benchmark Performance
The FACT PACK includes no benchmark scores for the Intel Xeon 6767P, and no nearest rival data is provided. The only quantitative performance indicator is the percentileVsAllCpus value of 50, which places the processor at the median of all CPUs in the database's aggregate benchmark index. This percentile is derived from an unspecified benchmark suite, and without scores, it is impossible to compute exact deltas against rivals. However, the specification sheet offers strong qualitative signals. The 64-core, 128-thread configuration, combined with a 336 MB shared L3 cache and 409.6 GB/s of memory bandwidth, points to exceptional multi-threaded performance in workloads that can utilize all threads. The 2.40 GHz base and 3.90 GHz boost clocks are modest for single-thread tasks, so the processor will likely underperform high-frequency consumer CPUs in single-thread benchmarks. The 50th percentile aggregate score suggests that, when averaged across a wide range of workloads, the Xeon 6767P matches the median CPU, but this is a misleading summary because the distribution includes many low-core-count parts that score well on single-thread tests. In its intended server market, the Xeon 6767P would be expected to outperform the vast majority of consumer CPUs in parallel throughput, but without concrete benchmark data, those comparisons cannot be quantified. The absence of rival names and deltaPct values in the FACT PACK limits the analysis to the percentile figure, which serves as the sole numerical benchmark reference. Consequently, any performance assessment must rely on the architectural specifications rather than measured scores. The 350 W TDP and eight-channel memory further reinforce that this is a compute-oriented part designed for sustained heavy loads, not for bursty consumer tasks. In summary, the benchmark performance of the Xeon 6767P is characterized by its median aggregate percentile, but its true value lies in its multi-threaded capabilities, which are not captured by that single figure.
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