AMD Ryzen 7 6800HS
AMD processor specifications and benchmark scores
At a Glance
AMDAMD Ryzen 7 6800HS Specifications
Ryzen 7 6800HS Core Configuration
Processing cores and threading
The AMD Ryzen 7 6800HS features 8 physical cores and 16 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.
7 6800HS Clock Speeds
Base and boost frequencies
Clock speed is a critical factor in Ryzen 7 6800HS 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 Ryzen 7 6800HS by AMD can dynamically adjust its frequency based on workload and thermal headroom.
AMD's Ryzen 7 6800HS Cache Hierarchy
L1, L2, L3 cache sizes
Cache memory is ultra-fast storage built directly into the 7 6800HS 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 Ryzen 7 6800HS's cache configuration is optimized for both gaming performance and productivity workloads, minimizing data fetch delays during intensive computations.
Zen 3+ Architecture & Process
Manufacturing and design details
The AMD Ryzen 7 6800HS is built on AMD's 6 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 7 6800HS incorporate advanced branch prediction and out-of-order execution for optimal performance.
Zen 3+ Instruction Set Features
Supported CPU instructions and extensions
The Ryzen 7 6800HS by AMD 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.
7 6800HS Power & Thermal
TDP and power specifications
The AMD Ryzen 7 6800HS has a TDP (Thermal Design Power) of 35W, 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.
AMD Socket FP7 Platform & Socket
Compatibility information
The Ryzen 7 6800HS uses the AMD Socket FP7 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.
AMD Socket FP7 Memory Support
RAM compatibility and speeds
Memory support specifications for the 7 6800HS 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 Ryzen 7 6800HS 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.
AMD's Ryzen 7 6800HS Integrated Graphics
Built-in GPU specifications
The AMD Ryzen 7 6800HS includes integrated graphics, eliminating the need for a dedicated GPU in basic computing scenarios. Integrated graphics are ideal for office productivity, video playback, and light gaming. While not designed for demanding GPU benchmarks, the iGPU in the 7 6800HS provides hardware video encoding and decoding capabilities. This makes the processor suitable for compact builds, HTPCs, and systems where power efficiency is prioritized over gaming performance.
Ryzen 7 6800HS Product Information
Release and pricing details
The AMD Ryzen 7 6800HS is manufactured by AMD 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 Ryzen 7 6800HS by AMD offers a specific balance of performance, features, and cost within AMD's product lineup.
Ryzen 7 6800HS Benchmark Scores
cinebench_cinebench_r15_multicoreSource
Cinebench R15 multi-core renders a complex 3D scene using all CPU threads simultaneously. This test reveals how AMD Ryzen 7 6800HS performs in parallel rendering workloads.
cinebench_cinebench_r15_singlecoreSource
Cinebench R15 single-core measures the speed of one CPU thread rendering 3D geometry. This score indicates how AMD Ryzen 7 6800HS handles tasks that can't be parallelized.
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 AMD Ryzen 7 6800HS. 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_singlecoreSource
Cinebench R20 single-core tests one thread against a more demanding scene than R15. This reveals the true single-thread rendering capability of AMD Ryzen 7 6800HS. 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_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 AMD Ryzen 7 6800HS 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_singlecoreSource
Cinebench R23 single-core measures sustained single-thread performance over 10 minutes. This reveals how AMD Ryzen 7 6800HS 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.
geekbench_multicoreSource
Geekbench multi-core tests AMD Ryzen 7 6800HS across real-world workloads including image processing, machine learning, and data compression. All available threads are utilized to measure parallel performance. Higher scores indicate better capability in multitasking and content creation. The cross-platform nature of Geekbench allows direct comparison with systems running different operating systems.
geekbench_singlecoreSource
Geekbench single-core measures how fast one thread of AMD Ryzen 7 6800HS can process tasks like web browsing and document editing. This score correlates with how snappy the system feels during normal use. Many applications still depend primarily on single-thread performance. Gaming performance is also heavily influenced by single-core speed in CPU-limited scenarios.
passmark_data_compressionSource
Data compression measures how fast AMD Ryzen 7 6800HS 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_encryptionSource
Data encryption tests how fast AMD Ryzen 7 6800HS 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_extended_instructionsSource
Extended instructions tests AMD Ryzen 7 6800HS 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_find_prime_numbersSource
Find prime numbers tests AMD Ryzen 7 6800HS ability to identify primes through intensive calculations. This is a pure computational benchmark that stresses CPU arithmetic units without memory bottlenecks.
passmark_floating_point_mathSource
Floating point math measures how AMD Ryzen 7 6800HS 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_integer_mathSource
Integer math tests how fast AMD Ryzen 7 6800HS 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_multithreadSource
PassMark multi-thread tests AMD Ryzen 7 6800HS 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_physicsSource
Physics tests how AMD Ryzen 7 6800HS 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_random_string_sortingSource
Random string sorting measures how fast AMD Ryzen 7 6800HS 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_single_threadSource
PassMark single-thread measures per-core performance of AMD Ryzen 7 6800HS across various computational tasks. This score is critical for gaming and single-threaded applications.
passmark_singlethreadSource
PassMark single-thread measures per-core performance of AMD Ryzen 7 6800HS across various computational tasks. This score is critical for gaming and single-threaded applications. Higher scores mean better system responsiveness in everyday use.
About AMD Ryzen 7 6800HS
The AMD Ryzen 7 6800HS is a mobile processor from AMD’s 6000 series, built on the Zen 3+ (Rembrandt) architecture and manufactured by TSMC on a 6 nm process. It has 8 cores, 16 threads, a base clock of 3.20, a boost clock of 4.70, and a 35 TDP. The chip uses AMD Socket FP7 and integrates a Radeon 680M GPU. Its memory controller supports dual-channel DDR5 at 76.8 GB/s, and the CPU provides PCIe Gen 4 with 20 lanes. In the database aggregate, the 6800HS records an average benchmark score of 29856, placing it at the 86th percentile among all CPUs.
How It Compares
Against the AMD Ryzen 7 7840H, the deltaPct is 0. The 7840H has an average score of 29868; the 6800HS is 29856. These aggregate scores are effectively identical, so the data places the two parts in the same performance class.
Against the AMD Ryzen 9 7940HS, the 6800HS has a deltaPct of -0.3. The 7940HS average score is 29948, so it sits slightly above the 6800HS’s 29856. This is a negligible gap in aggregate terms, but it is the only negative delta among the nearest rivals.
Against the AMD Ryzen 7 5800XT, the 6800HS is ahead by 0.3%. The 5800XT average score is 29774, below the 6800HS’s 29856. The 0.3 deltaPct is small, and individual benchmark variation can easily close it.
Against the AMD Ryzen 7 PRO 5755GE, the 6800HS leads by 0.4%. The 5755GE averages 29740, the lowest aggregate score among the nearest rivals. Even the largest gap in this rivalry group is still just 0.4%.
Power and Thermals
The 6800HS is listed with a 35 TDP. This is the power-related figure in the specification, and it defines the thermal envelope for the whole mobile platform. A 35 TDP part is aimed at systems that need to balance throughput with chassis heat, such as laptops built around a compact thermal solution. The 6 nm TSMC process and the 208 mm² die size describe the silicon, but no specific cooler or thermal measurement is provided in the data.
Because the TDP is 35, the implied cooling tier is a capable notebook cooler rather than a desktop tower cooler. The FP7 socket reinforces that this is a mobile platform part. The data does not include cooler dimensions, chassis design, or sustained power limits beyond the 35 TDP figure. The integrated Radeon 680M GPU also operates within the same system thermal envelope, so the cooling solution must account for both CPU and graphics load in a single notebook design.
Who Should Consider It
Workloads that use all 8 cores and 16 threads will see the 6800HS’s multi-threaded results. Cinebench R23 multicore returns 19374, Cinebench R20 multicore returns 8137, Geekbench multicore returns 8651, and PassMark multithread returns 22801. Users running rendering, compilation, or media encoding on the CPU will get strong throughput within this 35 TDP class.
For single-thread-bound office work, the data is solid as well. Cinebench R15 singlecore scores 275, R20 singlecore 1148, R23 singlecore 2735, Geekbench singlecore 1816, and PassMark singlethread 3184. These scores indicate responsive application behavior for general productivity.
Data-heavy workloads have specific PassMark strengths. Data compression is 292698, data encryption is 18104, random string sorting is 30266, and extended instructions are 20114. The 16 MB shared L3 cache and dual-channel DDR5 at 76.8 GB/s support data-intensive tasks such as archiving, encryption, and parsing.
For users who want a laptop without a discrete GPU, the Radeon 680M integrated graphics is present. There are no iGPU benchmark scores in the data, so the appropriate statement is that the platform includes an iGPU and high-bandwidth dual-channel DDR5 memory, not that it delivers a particular frame rate.
Users who need ECC memory should note that ECC is not supported. Users who intend to adjust clock multipliers should note that the multiplier is locked.
FAQ
Q: What socket does the AMD Ryzen 7 6800HS use?
A: AMD Socket FP7.
Q: What are the core and thread counts?
A: 8 cores and 16 threads, with a base clock of 3.20 and a boost clock of 4.70. The multiplier is not unlocked.
Q: What memory does it support?
A: Dual-channel DDR5, with 76.8 GB/s memory bandwidth. ECC memory is not supported.
Q: What integrated graphics does it include?
A: Radeon 680M.
Q: How does it compare to the AMD Ryzen 7 7840H in average score?
A: The 6800HS averages 29856, the 7840H averages 29868, and the deltaPct is 0. The aggregate result is a tie.
Q: Is the processor still in production?
A: The production status field is Active, and the market segment is Mobile.
Benchmark Performance
The aggregate score and percentile define the overall position. The 6800HS has an average benchmark score of 29856 and sits at the 86th percentile of all CPUs. Among its nearest rivals, the deltaPct values are 0 against the 7840H, -0.3 against the 7940HS, 0.3 against the 5800XT, and 0.4 against the 5755GE. This means the 6800HS is not significantly faster or slower than any of them.
Drilling into Cinebench, the multicore results show steady throughput across the R15, R20, and R23 versions: 1952, 8137, and 19374, respectively. The singlecore results are 275, 1148, and 2735. The R23 singlecore score of 2735 is a strong number for a mobile chip, while the R23 multicore score of 19374 indicates that the 8-core/16-thread configuration extracts good throughput from the 35 TDP envelope.
Geekbench results align with the Cinebench picture: a multicore score of 8651 and a singlecore score of 1816. PassMark multithread is 22801 and PassMark singlethread is 3184. The focused PassMark subtests add further detail. Integer math scores 84228, floating point math 47533, extended instructions 20114, data encryption 18104, data compression 292698, random string sorting 30266, physics 1009, and find prime numbers 56. The high integer math and data compression scores point to strong algorithmic and archiving performance, while the lower physics and prime-number scores are narrow subtests within the broader aggregate.
In the rival context, the exact deltaPct values are the most direct comparison. The 0 delta with the 7840H and the 0.3 delta with the 5800XT support the conclusion that the 6800HS belongs to a tightly grouped performance tier. The -0.3 delta with the 7940HS does not create a meaningful hierarchy; a 0.3% aggregate difference is within the normal range of benchmark movement. The 0.4 delta with the 5755GE is the largest edge in this group. The cache layout is listed as 64 KB L1 per core, 512 KB L2 per core, and 16 MB shared L3, which provides the data-level context for these scores.
Overall, the benchmark results indicate that the 6800HS is a very consistent mid-to-high mobile processor. It does not lead its nearest rival group by any significant margin, and it does not trail by a significant margin. Its positioning at the 86th percentile, combined with the 35 TDP class and integrated Radeon 680M GPU, makes it a balanced choice for mobile systems that need strong CPU performance without a discrete graphics card.
The Intel Equivalent of Ryzen 7 6800HS
Looking for a similar processor from Intel? The Intel Core i7-14701E offers comparable performance and features in the Intel lineup.
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