INTEL

Intel Xeon 6527P

Intel processor specifications and benchmark scores

24
Cores
48
Threads
4.2
GHz Boost
255W
TDP
ECC Memory

At a Glance

Intel
Cores / Threads 24C / 48T
Boost Clock 4.2 GHz
Base Clock 3 GHz
L3 Cache 144 MB (shared)
TDP 255W
Architecture Granite Rapids
Socket Intel Socket 4710
nm
Process 5 nm
Released Feb 2025

Intel Xeon 6527P Specifications

Xeon 6527P Core Configuration

Processing cores and threading

The Intel Xeon 6527P features 24 physical cores and 48 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.

Cores
24
Threads
48
SMP CPUs
2

6527P Clock Speeds

Base and boost frequencies

Clock speed is a critical factor in Xeon 6527P 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 6527P by Intel can dynamically adjust its frequency based on workload and thermal headroom.

Base Clock
3 GHz
Boost Clock
4.2 GHz
All-Core Turbo
4.2 GHz
Multiplier
30x

Intel's Xeon 6527P Cache Hierarchy

L1, L2, L3 cache sizes

Cache memory is ultra-fast storage built directly into the 6527P 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 6527P's cache configuration is optimized for both gaming performance and productivity workloads, minimizing data fetch delays during intensive computations.

L1 Cache
112 KB (per core)
L2 Cache
2 MB (per core)
L3 Cache
144 MB (shared)

Granite Rapids Architecture & Process

Manufacturing and design details

The Intel Xeon 6527P 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 6527P incorporate advanced branch prediction and out-of-order execution for optimal performance.

Architecture
Granite Rapids
Codename
Granite Rapids
Process Node
5 nm
Foundry
Intel
Die Size
598 mm²
Generation
Xeon 6 (Granite Rapids-SP)

Granite Rapids Instruction Set Features

Supported CPU instructions and extensions

The Xeon 6527P 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.

MMX
SSE
SSE2
SSE3
SSSE3
SSE4.1
SSE4.2
AVX
AVX2
AVX-512
FMA3
SHA
AES-NI
F16C
BMI1
BMI2
AMX
Intel 64
VT-x
VT-d

Power & Thermal

TDP and power specifications

The Intel Xeon 6527P has a TDP (Thermal Design Power) of 255W, 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.

TDP
255W
Tj Max
102°C

Intel Socket 4710 Platform & Socket

Compatibility information

The Xeon 6527P 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.

Socket
Intel Socket 4710
PCIe
Gen 5, 88 Lanes(CPU only)
Package
FC-LGA18N
DDR5

Intel Socket 4710 Memory Support

RAM compatibility and speeds

Memory support specifications for the 6527P 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 6527P 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.

Memory Type
DDR5
Memory Bus
Eight-channel
Memory Bandwidth
409.6 GB/s
ECC Memory
Supported

Product Information

Release and pricing details

The Intel Xeon 6527P 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 6527P by Intel offers a specific balance of performance, features, and cost within Intel's product lineup.

Manufacturer
Intel
Release Date
Feb 2025
Launch Price
$2878
Market
Server/Workstation
Status
Active
Part Number
SRVNY
Bundled Cooler
None

About Intel Xeon 6527P

The Intel Xeon 6527P is a 24-core, 48-thread server processor built on the Granite Rapids architecture, targeting the Server/Workstation market segment. It positions itself as a mid-pack performer in the overall CPU landscape, with a percentile score of 50 against all CPUs, indicating it sits exactly at the median of the database. The processor operates with a base clock of 3.00 GHz and a boost clock of 4.20 GHz, paired with a substantial 144 MB of shared L3 cache, making it a serious contender for multi-threaded enterprise workloads.

Benchmark Performance

The benchmark data for the Intel Xeon 6527P is sparse, with an average benchmark score of zero and no direct rival comparisons available in the nearestRivals field. However, the processor’s percentile ranking of 50 against all CPUs provides a clear positional signal: it is neither a top-tier flagship nor a low-end part, but rather a solidly average performer in the global database. This percentile is computed across every CPU tracked, including consumer and enterprise parts, so a score at the 50th mark indicates that half of all processors outperform it and half underperform it.

The lack of specific benchmark scores means the analysis must rely on architectural indicators. With 24 cores and 48 threads, the Xeon 6527P offers parallel processing capacity that is typical for mid-range server silicon. The base clock of 3.00 GHz is modest, but the 4.20 GHz boost clock provides a headroom of 1.20 GHz for bursty single-threaded tasks. The 144 MB shared L3 cache is notably large, which should reduce memory latency for workloads that exhibit cache locality, potentially improving effective throughput beyond what raw clock speeds suggest.

The absence of nearestRivals data means we cannot cite exact delta percentages against specific competitors. Instead, the percentile figure serves as the only quantitative benchmark anchor. A percentile of 50 implies that in a mixed workload suite, the Xeon 6527P would deliver performance that is typical for its class, but without superior scores in any particular metric. The data suggests that this chip is designed for balanced performance rather than extreme single-thread dominance or massive multi-core scaling beyond its 24-core count.

Power and Thermals

The Intel Xeon 6527P carries a thermal design power (TDP) of 255 watts. This TDP class places it in the high-power segment of server processors, requiring robust cooling solutions beyond what a typical desktop air cooler can provide. The 255 W figure indicates that the processor dissipates significant heat under full load, which is consistent with its 24-core architecture and 4.20 GHz boost capability.

For cooling tier implications, the 255 W TDP demands a server-grade cooling solution. This could include high-end air coolers with large heatsinks and multiple heat pipes, or more commonly in data center environments, liquid cooling loops or advanced chassis-level airflow designs. The die size of 598 mm², fabricated on Intel’s 5 nm process node, is relatively large, which spreads heat across a wider area but also increases the total thermal load. The process node being 5 nm helps with efficiency, but the raw core count and clock speeds still drive the TDP to that 255 W level.

The memory bandwidth of 409.6 GB/s, provided by eight-channel DDR5 memory support, also contributes to thermal output, as the memory controllers operate actively under load. The processor does not feature an integrated graphics unit, which means all thermal headroom is dedicated to compute cores and uncore elements. In practice, a system builder must ensure that the cooling solution can sustain continuous operation at 255 W without throttling, especially in dense server racks where ambient temperatures are already elevated.

How It Compares

The nearestRivals field in the FACT PACK is empty, so no direct competitor comparisons with specific scores or delta percentages are available. This absence of data means we cannot provide quantitative comparisons against named rivals. The processor’s percentile rank of 50 against all CPUs is the only comparative metric.

Without rival data, the analysis must rely on the internal characteristics of the Xeon 6527P. Its 24 cores and 48 threads position it in a segment where many competing server processors offer similar core counts. The 144 MB L3 cache is a differentiator, as many chips in this class feature smaller caches, which could give the Xeon 6527P an advantage in workloads that benefit from large shared caches, such as database caching or in-memory analytics.

The base clock of 3.00 GHz is on the lower end for server parts, but the boost clock of 4.20 GHz is competitive. The eight-channel memory bus, supporting DDR5 with a bandwidth of 409.6 GB/s, exceeds what many dual-channel or quad-channel consumer platforms offer, making this chip suitable for memory-bandwidth-intensive tasks. However, without explicit rival scores, any statement about being "ahead" or "behind" a specific competitor would be speculative and is therefore omitted.

Platform and Compatibility

The Intel Xeon 6527P uses the Intel Socket 4710, which is a server-class socket designed for the Granite Rapids-SP generation. This socket is not compatible with consumer platforms, so the processor requires a server motherboard specifically designed for Xeon 6 (Granite Rapids-SP) processors. The socket supports the 5 nm Granite Rapids architecture, and the processor’s part number is SRVNY.

Memory support is limited to DDR5, with an eight-channel memory bus. This configuration provides a memory bandwidth of 409.6 GB/s, which is substantial for memory-hungry server workloads. The processor supports ECC memory, which is critical for data integrity in server environments. The memory controller is integrated on the die, and the eight-channel design means that populating all channels with appropriate DDR5 modules is necessary to achieve the full bandwidth figure.

For expansion, the Xeon 6527P provides PCIe Gen 5 with 88 lanes available from the CPU alone. This high lane count supports multiple high-speed devices, such as GPUs, NVMe storage, or network adapters, without requiring a separate chipset for lane expansion. The production status is "Active," and the release date is noted as 2025-02-23. The launch MSRP is $2878, which reflects its positioning in the server market. The processor is not multiplier unlocked, meaning overclocking is not supported, which is typical for server parts. The upgrade path is tied to the Socket 4710 platform, meaning future processor upgrades would require a motherboard compatible with that socket and the Granite Rapids generation.

FAQ

Q: What is the core and thread count of the Intel Xeon 6527P?

A: The Intel Xeon 6527P has 24 cores and 48 threads, which enables it to handle 48 concurrent processing threads for multi-threaded workloads.

Q: What is the TDP of this processor?

A: The TDP is 255 watts, indicating that it requires a high-performance server cooling solution capable of dissipating that level of heat under sustained load.

Q: What memory type and bandwidth does it support?

A: It supports DDR5 memory with an eight-channel bus, providing a memory bandwidth of 409.6 GB/s. It also supports ECC memory for error correction.

Q: What is the socket type and PCIe generation?

A: The processor uses Intel Socket 4710 and provides PCIe Gen 5 with 88 lanes from the CPU only, allowing for extensive expansion options.

Q: What is the launch MSRP?

A: The launch MSRP is $2878, as listed in the product data.

Q: What is the production status and release date?

A: The production status is "Active," and the release date is recorded as 2025-02-23.

Who Should Consider It

The Intel Xeon 6527P is suited for server and workstation deployments where balanced multi-threaded performance is required. The 24 cores and 48 threads make it appropriate for virtualization environments, where multiple virtual machines can be assigned dedicated cores. The 144 MB shared L3 cache benefits workloads that repeatedly access a large working set, such as in-memory databases or data analytics pipelines. The eight-channel DDR5 memory support with 409.6 GB/s bandwidth is ideal for applications that stream large datasets, like scientific computing or financial modeling.

For gaming, this processor is not the primary choice, as gaming typically favors high single-thread performance, and the percentile rank of 50 indicates it is not in the top tier for such tasks. However, for content creation, the 24 cores provide strong parallel processing for video rendering or 3D animation, where multi-threaded performance is paramount. Office productivity workloads, which are often single-threaded, will benefit from the 4.20 GHz boost clock, but the high TDP of 255 W may be overkill for simple office tasks. The processor is best suited for enterprise environments that require sustained throughput across many cores, not for consumer desktops.

The lack of integrated graphics means a discrete GPU is mandatory for any display output, which is standard for server platforms. The 88 PCIe Gen 5 lanes allow for multiple high-end GPUs or NVMe storage devices, making it viable for workstation builds that accelerate compute with GPUs. The launch MSRP of $2878 positions it as a mid-to-high-cost server component, so it is intended for organizations with dedicated server budgets rather than individual enthusiasts.

Single-Thread vs Multi-Thread Behavior

The Intel Xeon 6527P exhibits a clear split between its single-thread and multi-thread capabilities. With a base clock of 3.00 GHz and a boost clock of 4.20 GHz, the single-thread performance is modest by modern standards, especially when compared to high-clock consumer processors that often exceed 5.00 GHz. The 4.20 GHz boost is the maximum achievable on a single core under light load, but the 24-core design means that sustained all-core workloads will likely run closer to the base clock of 3.00 GHz, depending on thermal and power limits.

For multi-threaded workloads, the 48 threads provide substantial parallel throughput. The 144 MB shared L3 cache is a key asset here, as it allows all cores to access a large pool of cached data, reducing the need to fetch from system memory. The eight-channel DDR5 memory bus with 409.6 GB/s bandwidth ensures that the memory subsystem does not become a bottleneck when all cores are active. This combination of core count, cache size, and memory bandwidth makes the processor well-suited for tasks like compiling large codebases, running multiple virtual machines, or processing large datasets.

In contrast, single-threaded tasks such as legacy software or lightly-threaded applications will rely on the 4.20 GHz boost clock, which is adequate but not exceptional. The percentile rank of 50 against all CPUs suggests that in a mixed benchmark suite, the processor holds a middle ground: it is not a leader in single-thread responsiveness, but it provides strong multi-threaded scaling. Users running mostly single-threaded applications would see no advantage from the 24 cores, while those running parallel workloads would fully utilize the processor’s capabilities. The balance between these two behaviors defines the Xeon 6527P’s role as a general-purpose server chip, rather than a specialized accelerator for either extreme.

Detailed benchmark scores and charts for the Intel Xeon 6527P are below.

Benchmark Scores

cinebench_cinebench_r15_multicoreSource

Cinebench R15 multi-core renders a complex 3D scene using all CPU threads simultaneously. This test reveals how Intel Xeon 6527P performs in parallel rendering workloads like video production and 3D animation. Higher scores mean faster render times in professional applications.

cinebench_cinebench_r15_multicore #67 of 1967
6,378
43%
Max: 14,978

cinebench_cinebench_r15_singlecoreSource

Cinebench R15 single-core measures the speed of one CPU thread rendering 3D geometry. This score indicates how Intel Xeon 6527P handles tasks that can't be parallelized across multiple cores. Games and many desktop applications still rely heavily on single-thread performance.

cinebench_cinebench_r15_singlecore #59 of 1400
900
43%
Max: 2,114

cinebench_cinebench_r20_multicoreSource

Cinebench R20 multi-core uses a scene requiring 4x more computational power than R15. This test better reflects modern CPU capabilities for professional rendering on Intel Xeon 6527P.

cinebench_cinebench_r20_multicore #64 of 1786
26,576
43%
Max: 62,412
Compare with other CPUs

cinebench_cinebench_r20_singlecoreSource

Cinebench R20 single-core tests one thread against a more demanding scene than R15. This reveals the true single-thread rendering capability of Intel Xeon 6527P.

cinebench_cinebench_r20_singlecore #59 of 1776
3,751
43%
Max: 8,811

cinebench_cinebench_r23_multicoreSource

Cinebench R23 multi-core is the current standard for CPU rendering benchmarks with a 10-minute minimum runtime. This extended test reveals sustained performance of Intel Xeon 6527P after thermal limits kick in.

cinebench_cinebench_r23_multicore #64 of 1938
63,278
43%
Max: 148,601
Compare with other CPUs

cinebench_cinebench_r23_singlecoreSource

Cinebench R23 single-core measures sustained single-thread performance over 10 minutes. This reveals how Intel Xeon 6527P maintains boost clocks under continuous load.

cinebench_cinebench_r23_singlecore #50 of 1923
8,933
43%
Max: 20,979
Compare with other CPUs

passmark_data_compressionSource

Data compression measures how fast Intel Xeon 6527P can compress and decompress files. This is important for archiving, backup software, and file transfer applications.

passmark_data_compression #60 of 696
1,030,818
18%
Max: 5,679,990
Compare with other CPUs

Top 5 Performers

#1 AMD EPYC 9965
5,679,990
#2 AMD EPYC 9845
4,680,013
#3 AMD EPYC 9755
4,517,407
#4 AMD EPYC 9745
3,929,890

Nearby Performers

passmark_data_encryptionSource

Data encryption tests how fast Intel Xeon 6527P can encrypt information using AES and other algorithms. This is critical for security applications, VPNs, and secure communications. Modern CPUs with AES-NI hardware acceleration score significantly higher. Disk encryption, secure browsing, and VPN performance all benefit from faster encryption.

passmark_data_encryption #60 of 696
60,333
17%
Max: 348,449
Compare with other CPUs

Top 5 Performers

#1 AMD EPYC 9965
348,449
#2 AMD EPYC 9845
296,808
#3 AMD EPYC 9755
284,927
#4 AMD EPYC 9754
231,891
#5 AMD EPYC 9745
229,447

passmark_extended_instructionsSource

Extended instructions tests Intel Xeon 6527P performance using SSE and AVX instruction sets. These specialized instructions accelerate multimedia, scientific, and AI workloads.

passmark_extended_instructions #64 of 696
71,600
19%
Max: 383,298
Compare with other CPUs

Top 5 Performers

#1 AMD EPYC 9965
383,298
#2 AMD EPYC 9845
314,798
#3 AMD EPYC 9755
303,321
#4 AMD EPYC 9745
280,477

passmark_find_prime_numbersSource

Find prime numbers tests Intel Xeon 6527P ability to identify primes through intensive calculations. This is a pure computational benchmark that stresses CPU arithmetic units without memory bottlenecks. The test reveals raw mathematical processing capability.

passmark_find_prime_numbers #68 of 696
508
21%
Max: 2,422

passmark_floating_point_mathSource

Floating point math measures how Intel Xeon 6527P handles decimal calculations critical for scientific computing and 3D rendering. This affects performance in CAD and physics simulations.

passmark_floating_point_math #62 of 696
195,005
17%
Max: 1,153,453
Compare with other CPUs

passmark_integer_mathSource

Integer math tests how fast Intel Xeon 6527P processes whole number calculations essential for database operations and compression algorithms. This is fundamental to general computing performance. Encryption and data processing heavily rely on integer operations. Higher scores benefit applications that work primarily with non-decimal numbers.

passmark_integer_math #62 of 696
268,985
14%
Max: 1,926,069
Compare with other CPUs

Top 5 Performers

#1 AMD EPYC 9965
1,926,069
#2 AMD EPYC 9845
1,687,531
#3 AMD EPYC 9755
1,549,946
#4 AMD EPYC 9655P
1,225,251
#5 AMD EPYC 9745
1,224,315

passmark_multithreadSource

PassMark multi-thread tests Intel Xeon 6527P across integer math, floating point, compression, and encryption using all cores. This provides an overall multi-threaded CPU performance score. The combined result reflects general-purpose parallel computing capability. Results can be compared against millions of submissions in the PassMark database.

passmark_multithread #50 of 696
74,445
43%
Max: 171,200
Compare with other CPUs

Top 5 Performers

#2 AMD EPYC 9755
166,328
#3 AMD EPYC 9965
160,542
#4 AMD EPYC 9655P
160,490
#5 AMD EPYC 9655
156,110

passmark_physicsSource

Physics tests how Intel Xeon 6527P handles physics simulations used in games and engineering software. This measures performance in calculating object interactions and movements.

passmark_physics #35 of 696
8,037
29%
Max: 27,806
Compare with other CPUs

Top 5 Performers

#1 AMD EPYC 9755
27,806
#2 AMD EPYC 9655
25,947
#3 AMD EPYC 9655P
25,847
#4 Intel Xeon 6960P
24,937
#5 AMD EPYC 9684X
24,686

passmark_random_string_sortingSource

Random string sorting measures how fast Intel Xeon 6527P can organize text data. This is important for database operations, search indexing, and data processing applications.

passmark_random_string_sorting #48 of 696
131,597
21%
Max: 633,030
Compare with other CPUs

Top 5 Performers

#1 AMD EPYC 9965
633,030
#2 AMD EPYC 9755
571,185
#3 AMD EPYC 9845
538,060
#4 AMD EPYC 9745
468,975
#5 AMD EPYC 9655P
451,824

Nearby Performers

passmark_single_threadSource

PassMark single-thread measures per-core performance of Intel Xeon 6527P across various computational tasks. This score is critical for gaming and single-threaded applications. Higher scores mean better system responsiveness in everyday use.

passmark_single_thread #356 of 696
3,539
70%
Max: 5,087

passmark_singlethreadSource

PassMark single-thread measures per-core performance of Intel Xeon 6527P across various computational tasks. This score is critical for gaming and single-threaded applications. Higher scores mean better system responsiveness in everyday use. Many legacy applications and games still depend heavily on single-thread speed.

passmark_singlethread #356 of 696
3,539
70%
Max: 5,087

Compare with Other CPUs

Select another CPU to compare specifications and benchmarks side-by-side.

Browse CPUs