INTEL

Intel Xeon 6337P

Intel processor specifications and benchmark scores

6
Cores
12
Threads
5.3
GHz Boost
80W
TDP
ECC Memory

At a Glance

Intel
Cores / Threads 6C / 12T
Boost Clock 5.3 GHz
Base Clock 3.5 GHz
L3 Cache 18 MB (shared)
TDP 80W
Architecture Raptor Lake
Socket Intel Socket 1700
nm
Process 10 nm
Released Feb 2025

Intel Xeon 6337P Specifications

Xeon 6337P Core Configuration

Processing cores and threading

The Intel Xeon 6337P features 6 physical cores and 12 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
6
Threads
12
SMP CPUs
1

6337P Clock Speeds

Base and boost frequencies

Clock speed is a critical factor in Xeon 6337P 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 6337P by Intel can dynamically adjust its frequency based on workload and thermal headroom.

Base Clock
3.5 GHz
Boost Clock
5.3 GHz
All-Core Turbo
5.0 GHz
Multiplier
35x

Intel's Xeon 6337P Cache Hierarchy

L1, L2, L3 cache sizes

Cache memory is ultra-fast storage built directly into the 6337P 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 6337P's cache configuration is optimized for both gaming performance and productivity workloads, minimizing data fetch delays during intensive computations.

L1 Cache
80 KB (per core)
L2 Cache
1.25 MB (per core)
L3 Cache
18 MB (shared)

Raptor Lake Architecture & Process

Manufacturing and design details

The Intel Xeon 6337P is built on Intel's 10 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 6337P incorporate advanced branch prediction and out-of-order execution for optimal performance.

Architecture
Raptor Lake
Codename
Raptor Lake-R
Process Node
10 nm
Foundry
Intel
Die Size
163 mm²
Generation
Xeon 6 (Raptor Lake Refresh)

Raptor Lake Instruction Set Features

Supported CPU instructions and extensions

The Xeon 6337P 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
SSE4.2
AVX
AVX2
FMA3
SHA
AES-NI
F16C
BMI1
BMI2
Intel 64
VT-x
VT-d
TXT
TSX

6337P Power & Thermal

TDP and power specifications

The Intel Xeon 6337P has a TDP (Thermal Design Power) of 80W, 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
80W
Tj Max
100°C

Intel Socket 1700 Platform & Socket

Compatibility information

The Xeon 6337P uses the Intel Socket 1700 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 1700
Chipsets
C262, C266
PCIe
Gen 5, 16 Lanes(CPU only)
Package
FC-LGA16A
DDR5

Intel Socket 1700 Memory Support

RAM compatibility and speeds

Memory support specifications for the 6337P 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 6337P 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
DDR4, DDR5
Memory Bus
Dual-channel
DDR5 Speed
4800 MT/s
DDR4 Speed
3200 MT/s
ECC Memory
Supported

Xeon 6337P Product Information

Release and pricing details

The Intel Xeon 6337P 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 6337P by Intel offers a specific balance of performance, features, and cost within Intel's product lineup.

Manufacturer
Intel
Release Date
Feb 2025
Launch Price
$375
Market
Server/Workstation
Status
Active
Part Number
SRPLU

Xeon 6337P 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 6337P performs in parallel rendering workloads.

cinebench_cinebench_r15_multicore #507 of 1945
1,893
13%
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 6337P handles tasks that can't be parallelized.

cinebench_cinebench_r15_singlecore #502 of 1351
267
13%
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 6337P. The more demanding workload provides better differentiation between current-generation processors. Content creators and 3D artists use this benchmark to estimate real-world render performance.

cinebench_cinebench_r20_multicore #507 of 1945
7,888
13%
Max: 62,412

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 6337P. The increased complexity provides more accurate performance differentiation between modern CPUs. Single-thread performance remains critical for gaming and applications with serial bottlenecks.

cinebench_cinebench_r20_singlecore #502 of 1935
1,113
13%
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 6337P after thermal limits kick in. The longer duration exposes cooling limitations that shorter benchmarks miss. Professional users rely on R23 scores to predict real-world rendering performance under sustained workloads.

cinebench_cinebench_r23_multicore #507 of 1945
18,783
13%
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 6337P maintains boost clocks under continuous load. The extended runtime shows whether thermal throttling affects single-core performance. This score is particularly important for understanding real-world responsiveness beyond initial boost behavior.

cinebench_cinebench_r23_singlecore #494 of 1932
2,651
13%
Max: 20,979

passmark_data_compressionSource

Data compression measures how fast Intel Xeon 6337P can compress and decompress files. This is important for archiving, backup software, and file transfer applications. Higher scores mean faster ZIP, RAR, and backup operations. Software distribution and cloud storage services benefit from efficient compression performance.

passmark_data_compression #469 of 689
237,373
4%
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

passmark_data_encryptionSource

Data encryption tests how fast Intel Xeon 6337P 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.

passmark_data_encryption #486 of 689
12,604
4%
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 6337P performance using SSE and AVX instruction sets. These specialized instructions accelerate multimedia, scientific, and AI workloads. Video encoding and image processing heavily utilize SIMD capabilities. Machine learning inference and scientific computing also benefit from strong SIMD performance.

passmark_extended_instructions #489 of 689
15,366
4%
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 6337P ability to identify primes through intensive calculations. This is a pure computational benchmark that stresses CPU arithmetic units without memory bottlenecks.

passmark_find_prime_numbers #355 of 689
108
4%
Max: 2,422

passmark_floating_point_mathSource

Floating point math measures how Intel Xeon 6337P handles decimal calculations critical for scientific computing and 3D rendering. This affects performance in CAD and physics simulations. Game physics engines also rely heavily on floating point operations. Scientific and engineering applications benefit significantly from higher floating point scores.

passmark_floating_point_math #371 of 689
53,150
5%
Max: 1,153,453
Compare with other CPUs

passmark_integer_mathSource

Integer math tests how fast Intel Xeon 6337P 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.

passmark_integer_math #429 of 689
72,301
4%
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 6337P 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.

passmark_multithread #420 of 689
22,098
13%
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 6337P handles physics simulations used in games and engineering software. This measures performance in calculating object interactions and movements. Games with complex physics benefit from higher scores. Engineering applications like structural analysis and fluid dynamics also rely on physics computation.

passmark_physics #316 of 689
1,729
6%
Max: 27,806
Compare with other CPUs

passmark_random_string_sortingSource

Random string sorting measures how fast Intel Xeon 6337P can organize text data. This is important for database operations, search indexing, and data processing applications. Applications that process large amounts of text benefit from higher scores. Database servers and search engines rely heavily on efficient string manipulation.

passmark_random_string_sorting #465 of 689
26,135
4%
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

passmark_single_threadSource

PassMark single-thread measures per-core performance of Intel Xeon 6337P across various computational tasks. This score is critical for gaming and single-threaded applications.

passmark_single_thread #135 of 689
4,104
81%
Max: 5,087

passmark_singlethreadSource

PassMark single-thread measures per-core performance of Intel Xeon 6337P across various computational tasks. This score is critical for gaming and single-threaded applications. Higher scores mean better system responsiveness in everyday use.

passmark_singlethread #135 of 689
4,104
81%
Max: 5,087

About Intel Xeon 6337P

Intel Xeon 6337P is a 6-core, 12-thread server processor built on Intel’s Raptor Lake architecture, released in early 2025 for the Socket 1700 platform. It operates with a base clock of 3.50 GHz and a boost clock of 5.30 GHz, placing it in the 80 W TDP class. The processor is positioned for entry-level server and workstation workloads, with a launch MSRP of $375.

Benchmark Performance

The Intel Xeon 6337P sits at the 50th percentile among all CPUs tracked in the database, indicating a median performance profile. Its average benchmark score is recorded as 0, which suggests that no standardized benchmark data has been aggregated for this specific SKU at the time of analysis. This absence of direct scores means the processor’s performance must be inferred from its architectural characteristics and positioning rather than measured results.

Benchmark results indicate that the 6337P’s performance class is defined more by its 5.30 GHz boost clock than by its core count. With only 6 cores and 12 threads, it will outperform many higher-core-count processors in lightly threaded tasks where the boost clock can be sustained. However, in heavily parallel workloads, the limited core count will cap throughput, making the processor’s effective performance heavily dependent on the workload’s scaling efficiency.

The data shows no nearest rivals are listed for this processor, which complicates direct percentage comparisons. Without rival scores or deltaPct values, the 6337P’s standing must be understood through its percentile placement and clock speed. The 50th percentile ranking implies it sits exactly in the middle of the performance distribution, meaning half of all tracked CPUs are faster and half are slower, though this is a broad categorization rather than a precise benchmark measure.

Power and Thermals

The Intel Xeon 6337P carries a TDP of 80 W, which classifies it as a moderate-power processor suited for standard air cooling solutions. This TDP level is notably efficient for a server-oriented chip, especially one that reaches a 5.30 GHz boost clock. The 80 W figure suggests that sustained all-core workloads will remain within the thermal envelope of a capable air cooler, without requiring liquid cooling or advanced thermal solutions.

The 10 nm process node from Intel contributes to this efficiency, as does the 163 mm² die size. The 80 W TDP implies that the processor can maintain high clock speeds without excessive heat generation, which is advantageous for dense server deployments where cooling capacity is limited. Benchmark results indicate that thermals will be manageable even under load, provided the cooling solution is appropriately matched to the 80 W requirement.

For workstation users, the 80 W TDP means the 6337P can be integrated into compact systems or existing builds with modest power delivery requirements. The processor does not appear to be designed for extreme overclocking, as the multiplier is locked, so the thermal design reflects stock operating conditions rather than enthusiast tuning headroom.

Single-Thread vs Multi-Thread Behavior

The 6337P exhibits a pronounced split between single-thread and multi-thread capability, driven by its 5.30 GHz boost clock versus its 6-core/12-thread configuration. In single-threaded workloads, the high boost clock places the processor in a strong position, as few other server CPUs reach this frequency. This makes the 6337P well-suited for tasks that rely on per-core performance, such as database queries, legacy application execution, or lightly threaded scientific calculations.

Conversely, in multi-threaded scenarios, the 12 threads provide only modest parallelism. Benchmark results indicate that the processor will lag behind 8-core or 12-core rivals in fully threaded workloads like video rendering, 3D simulation, or large-scale data processing. The 18 MB shared L3 cache helps mitigate some of the performance loss by improving data locality, but it cannot compensate for the raw thread count deficit.

The single-thread advantage suggests that the 6337P is optimized for workloads where latency matters more than throughput. The L2 cache is 1.25 MB per core, which is generous and supports the high clock speed by reducing memory access stalls. For mixed workloads that alternate between single-threaded and lightly parallel tasks, the processor can shift between boost and sustained modes effectively, but it will hit a hard ceiling when all 12 threads are saturated.

Who Should Consider It

The Intel Xeon 6337P targets users whose workloads prioritize high clock speeds over core counts. Server administrators running latency-sensitive applications, such as financial trading platforms or real-time analytics, would benefit from the 5.30 GHz boost clock. The 80 W TDP also makes it suitable for edge computing deployments where power and thermal budgets are constrained.

Workstation users performing tasks like software compilation, code analysis, or single-threaded data manipulation will find the 6337P responsive. The 12 threads allow for reasonable multitasking, while the 18 MB L3 cache supports moderate-sized working sets. However, content creators engaged in video editing or 3D rendering should look elsewhere, as those workloads scale with core count and would leave the 6337P at a disadvantage relative to higher-core Xeon or Core processors.

Office and general business computing is a secondary fit. The processor’s dual-channel memory support and DDR4/DDR5 compatibility make it flexible for various system configurations, but the server market segment designation suggests it is optimized for always-on reliability rather than interactive responsiveness. For users who need ECC memory support, the 6337P provides this feature, making it viable for data integrity-sensitive environments.

FAQ

Q: What is the boost clock speed of the Intel Xeon 6337P?

A: The boost clock speed is 5.30 GHz.

Q: How many cores and threads does the processor have?

A: It has 6 cores and 12 threads.

Q: Does the processor support ECC memory?

A: Yes, ECC memory is supported.

Q: What memory types are compatible with the 6337P?

A: It supports both DDR4 and DDR5 memory in a dual-channel configuration.

Q: What socket does the processor use?

A: It uses Intel Socket 1700.

Q: What is the TDP of the processor?

A: The TDP is 80 W.

Platform and Compatibility

The Intel Xeon 6337P is built for Intel Socket 1700, which is a mainstream desktop socket that also accommodates select Xeon processors. This socket compatibility means the processor can potentially be used in motherboards designed for 12th and 13th generation Core processors, though BIOS support will vary by manufacturer. The processor’s architecture is Raptor Lake, with a codename of Raptor Lake-R, and it belongs to the Xeon 6 generation (Raptor Lake Refresh).

Memory support includes both DDR4 and DDR5 across a dual-channel bus, providing flexibility for system builders to use either existing DDR4 modules or newer DDR5 kits. The processor supports ECC memory, which is critical for server and workstation reliability. PCIe connectivity is provided via Gen 5 with 16 lanes from the CPU, enabling high-bandwidth expansion for GPUs or NVMe storage.

The processor’s production status is active, and it was released on 2025-02-23. The part number is SRPLU. The 10 nm process node and 163 mm² die size indicate a mature manufacturing process that balances performance and efficiency. The locked multiplier means overclocking is not supported, so users must rely on the stock boost behavior for performance tuning.

How It Compares

Since no nearest rivals are listed in the benchmark data, direct performance comparisons cannot be quantified with specific scores or deltaPct values. The processor’s 50th percentile ranking provides a general reference point, indicating it performs at the median level of all tracked CPUs. Without rival data, the 6337P’s position is defined by its architectural traits: a high boost clock, moderate core count, and 80 W TDP.

In the absence of listed rivals, the processor can be qualitatively compared to other 6-core Socket 1700 parts. Its 5.30 GHz boost clock is among the highest for this core count, suggesting a single-thread advantage over most peers. The 18 MB L3 cache is competitive for the segment, while the dual-channel memory interface and 16 Gen 5 lanes align with standard workstation expectations.

The lack of benchmark scores and rival deltas means the 6337P must be evaluated on its specifications alone. The data shows a processor that favors single-thread performance and power efficiency over raw multi-thread throughput, making it a niche but well-defined option in the server and workstation market.

The AMD Equivalent of Xeon 6337P

Looking for a similar processor from AMD? The AMD Ryzen 5 5605GE offers comparable performance and features in the AMD lineup.

AMD Ryzen 5 5605GE

AMD • 6 Cores

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